blob: 81999fca74535aa49c179212fbbacfa050700f42 [file] [log] [blame]
Paul Beesley8aa05052019-03-07 15:47:15 +00001Porting Guide
2=============
Douglas Raillard6f625742017-06-28 15:23:03 +01003
Douglas Raillard6f625742017-06-28 15:23:03 +01004Introduction
5------------
6
Dan Handley4def07d2018-03-01 18:44:00 +00007Porting Trusted Firmware-A (TF-A) to a new platform involves making some
Douglas Raillard6f625742017-06-28 15:23:03 +01008mandatory and optional modifications for both the cold and warm boot paths.
9Modifications consist of:
10
11- Implementing a platform-specific function or variable,
12- Setting up the execution context in a certain way, or
13- Defining certain constants (for example #defines).
14
15The platform-specific functions and variables are declared in
Paul Beesley34760952019-04-12 14:19:42 +010016``include/plat/common/platform.h``. The firmware provides a default
Sandrine Bailleux8a665972023-02-08 13:55:51 +010017implementation of variables and functions to fulfill the optional requirements
18in order to ease the porting effort. Each platform port can use them as is or
19provide their own implementation if the default implementation is inadequate.
20
21 .. note::
22
23 TF-A historically provided default implementations of platform interfaces
24 as *weak* functions. This practice is now discouraged and new platform
25 interfaces as they get introduced in the code base should be *strongly*
26 defined. We intend to convert existing weak functions over time. Until
27 then, you will find references to *weak* functions in this document.
Douglas Raillard6f625742017-06-28 15:23:03 +010028
Sandrine Bailleuxfd093352023-04-04 16:36:08 +020029Please review the :ref:`Threat Model` documents as part of the porting
30effort. Some platform interfaces play a key role in mitigating against some of
31the threats. Failing to fulfill these expectations could undermine the security
32guarantees offered by TF-A. These platform responsibilities are highlighted in
33the threat assessment section, under the "`Mitigations implemented?`" box for
34each threat.
35
Douglas Raillard6f625742017-06-28 15:23:03 +010036Some modifications are common to all Boot Loader (BL) stages. Section 2
37discusses these in detail. The subsequent sections discuss the remaining
38modifications for each BL stage in detail.
39
Sandrine Bailleuxa6a1dcb2022-11-08 13:36:42 +010040Please refer to the :ref:`Platform Ports Policy` for the policy regarding
41compatibility and deprecation of these porting interfaces.
Soby Mathew6e93eef2018-09-26 11:17:23 +010042
Antonio Nino Diaz8f457da2019-02-13 14:07:38 +000043Only Arm development platforms (such as FVP and Juno) may use the
44functions/definitions in ``include/plat/arm/common/`` and the corresponding
45source files in ``plat/arm/common/``. This is done so that there are no
46dependencies between platforms maintained by different people/companies. If you
47want to use any of the functionality present in ``plat/arm`` files, please
Sandrine Bailleux93e1ad72023-02-08 14:01:18 +010048propose a patch that moves the code to ``plat/common`` so that it can be
Antonio Nino Diaz8f457da2019-02-13 14:07:38 +000049discussed.
50
Douglas Raillard6f625742017-06-28 15:23:03 +010051Common modifications
52--------------------
53
54This section covers the modifications that should be made by the platform for
55each BL stage to correctly port the firmware stack. They are categorized as
56either mandatory or optional.
57
58Common mandatory modifications
59------------------------------
60
61A platform port must enable the Memory Management Unit (MMU) as well as the
62instruction and data caches for each BL stage. Setting up the translation
63tables is the responsibility of the platform port because memory maps differ
Sandrine Bailleux24d0fbc2023-02-08 14:02:45 +010064across platforms. A memory translation library (see ``lib/xlat_tables_v2/``) is
Sandrine Bailleuxde3d7042017-07-20 16:11:01 +010065provided to help in this setup.
66
67Note that although this library supports non-identity mappings, this is intended
68only for re-mapping peripheral physical addresses and allows platforms with high
69I/O addresses to reduce their virtual address space. All other addresses
70corresponding to code and data must currently use an identity mapping.
71
Dan Handley4def07d2018-03-01 18:44:00 +000072Also, the only translation granule size supported in TF-A is 4KB, as various
73parts of the code assume that is the case. It is not possible to switch to
7416 KB or 64 KB granule sizes at the moment.
Douglas Raillard6f625742017-06-28 15:23:03 +010075
Dan Handley4def07d2018-03-01 18:44:00 +000076In Arm standard platforms, each BL stage configures the MMU in the
Douglas Raillard6f625742017-06-28 15:23:03 +010077platform-specific architecture setup function, ``blX_plat_arch_setup()``, and uses
78an identity mapping for all addresses.
79
80If the build option ``USE_COHERENT_MEM`` is enabled, each platform can allocate a
81block of identity mapped secure memory with Device-nGnRE attributes aligned to
82page boundary (4K) for each BL stage. All sections which allocate coherent
Chris Kayda043412023-02-14 11:30:04 +000083memory are grouped under ``.coherent_ram``. For ex: Bakery locks are placed in a
84section identified by name ``.bakery_lock`` inside ``.coherent_ram`` so that its
Douglas Raillard6f625742017-06-28 15:23:03 +010085possible for the firmware to place variables in it using the following C code
86directive:
87
88::
89
Chris Kayda043412023-02-14 11:30:04 +000090 __section(".bakery_lock")
Douglas Raillard6f625742017-06-28 15:23:03 +010091
92Or alternatively the following assembler code directive:
93
94::
95
Chris Kayda043412023-02-14 11:30:04 +000096 .section .bakery_lock
Douglas Raillard6f625742017-06-28 15:23:03 +010097
Chris Kayda043412023-02-14 11:30:04 +000098The ``.coherent_ram`` section is a sum of all sections like ``.bakery_lock`` which are
Douglas Raillard6f625742017-06-28 15:23:03 +010099used to allocate any data structures that are accessed both when a CPU is
100executing with its MMU and caches enabled, and when it's running with its MMU
101and caches disabled. Examples are given below.
102
103The following variables, functions and constants must be defined by the platform
104for the firmware to work correctly.
105
Javier Almansa Sobrino69447292022-04-07 18:26:49 +0100106.. _platform_def_mandatory:
107
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100108File : platform_def.h [mandatory]
109~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100110
111Each platform must ensure that a header file of this name is in the system
Antonio Nino Diaz5e447812019-02-01 12:22:22 +0000112include path with the following constants defined. This will require updating
113the list of ``PLAT_INCLUDES`` in the ``platform.mk`` file.
Douglas Raillard6f625742017-06-28 15:23:03 +0100114
Paul Beesley34760952019-04-12 14:19:42 +0100115Platform ports may optionally use the file ``include/plat/common/common_def.h``,
Douglas Raillard6f625742017-06-28 15:23:03 +0100116which provides typical values for some of the constants below. These values are
117likely to be suitable for all platform ports.
118
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100119- **#define : PLATFORM_LINKER_FORMAT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100120
121 Defines the linker format used by the platform, for example
122 ``elf64-littleaarch64``.
123
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100124- **#define : PLATFORM_LINKER_ARCH**
Douglas Raillard6f625742017-06-28 15:23:03 +0100125
126 Defines the processor architecture for the linker by the platform, for
127 example ``aarch64``.
128
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100129- **#define : PLATFORM_STACK_SIZE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100130
131 Defines the normal stack memory available to each CPU. This constant is used
Paul Beesley34760952019-04-12 14:19:42 +0100132 by ``plat/common/aarch64/platform_mp_stack.S`` and
133 ``plat/common/aarch64/platform_up_stack.S``.
Douglas Raillard6f625742017-06-28 15:23:03 +0100134
David Horstmann5d9101b2020-11-12 15:19:04 +0000135- **#define : CACHE_WRITEBACK_GRANULE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100136
Max Yu5c60b8c2022-09-08 23:21:21 +0000137 Defines the size in bytes of the largest cache line across all the cache
Douglas Raillard6f625742017-06-28 15:23:03 +0100138 levels in the platform.
139
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100140- **#define : FIRMWARE_WELCOME_STR**
Douglas Raillard6f625742017-06-28 15:23:03 +0100141
142 Defines the character string printed by BL1 upon entry into the ``bl1_main()``
143 function.
144
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100145- **#define : PLATFORM_CORE_COUNT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100146
147 Defines the total number of CPUs implemented by the platform across all
148 clusters in the system.
149
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100150- **#define : PLAT_NUM_PWR_DOMAINS**
Douglas Raillard6f625742017-06-28 15:23:03 +0100151
152 Defines the total number of nodes in the power domain topology
153 tree at all the power domain levels used by the platform.
154 This macro is used by the PSCI implementation to allocate
155 data structures to represent power domain topology.
156
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100157- **#define : PLAT_MAX_PWR_LVL**
Douglas Raillard6f625742017-06-28 15:23:03 +0100158
159 Defines the maximum power domain level that the power management operations
160 should apply to. More often, but not always, the power domain level
161 corresponds to affinity level. This macro allows the PSCI implementation
162 to know the highest power domain level that it should consider for power
163 management operations in the system that the platform implements. For
164 example, the Base AEM FVP implements two clusters with a configurable
165 number of CPUs and it reports the maximum power domain level as 1.
166
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100167- **#define : PLAT_MAX_OFF_STATE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100168
169 Defines the local power state corresponding to the deepest power down
170 possible at every power domain level in the platform. The local power
171 states for each level may be sparsely allocated between 0 and this value
172 with 0 being reserved for the RUN state. The PSCI implementation uses this
173 value to initialize the local power states of the power domain nodes and
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100174 to specify the requested power state for a PSCI_CPU_OFF call.
Douglas Raillard6f625742017-06-28 15:23:03 +0100175
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100176- **#define : PLAT_MAX_RET_STATE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100177
178 Defines the local power state corresponding to the deepest retention state
179 possible at every power domain level in the platform. This macro should be
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100180 a value less than PLAT_MAX_OFF_STATE and greater than 0. It is used by the
Douglas Raillard6f625742017-06-28 15:23:03 +0100181 PSCI implementation to distinguish between retention and power down local
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100182 power states within PSCI_CPU_SUSPEND call.
Douglas Raillard6f625742017-06-28 15:23:03 +0100183
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100184- **#define : PLAT_MAX_PWR_LVL_STATES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100185
186 Defines the maximum number of local power states per power domain level
187 that the platform supports. The default value of this macro is 2 since
188 most platforms just support a maximum of two local power states at each
189 power domain level (power-down and retention). If the platform needs to
190 account for more local power states, then it must redefine this macro.
191
192 Currently, this macro is used by the Generic PSCI implementation to size
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100193 the array used for PSCI_STAT_COUNT/RESIDENCY accounting.
Douglas Raillard6f625742017-06-28 15:23:03 +0100194
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100195- **#define : BL1_RO_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100196
197 Defines the base address in secure ROM where BL1 originally lives. Must be
198 aligned on a page-size boundary.
199
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100200- **#define : BL1_RO_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100201
202 Defines the maximum address in secure ROM that BL1's actual content (i.e.
203 excluding any data section allocated at runtime) can occupy.
204
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100205- **#define : BL1_RW_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100206
207 Defines the base address in secure RAM where BL1's read-write data will live
208 at runtime. Must be aligned on a page-size boundary.
209
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100210- **#define : BL1_RW_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100211
212 Defines the maximum address in secure RAM that BL1's read-write data can
213 occupy at runtime.
214
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100215- **#define : BL2_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100216
217 Defines the base address in secure RAM where BL1 loads the BL2 binary image.
Jiafei Pan7d173fc2018-03-21 07:20:09 +0000218 Must be aligned on a page-size boundary. This constant is not applicable
219 when BL2_IN_XIP_MEM is set to '1'.
Douglas Raillard6f625742017-06-28 15:23:03 +0100220
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100221- **#define : BL2_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100222
223 Defines the maximum address in secure RAM that the BL2 image can occupy.
Jiafei Pan7d173fc2018-03-21 07:20:09 +0000224 This constant is not applicable when BL2_IN_XIP_MEM is set to '1'.
225
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100226- **#define : BL2_RO_BASE**
Jiafei Pan7d173fc2018-03-21 07:20:09 +0000227
228 Defines the base address in secure XIP memory where BL2 RO section originally
229 lives. Must be aligned on a page-size boundary. This constant is only needed
230 when BL2_IN_XIP_MEM is set to '1'.
231
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100232- **#define : BL2_RO_LIMIT**
Jiafei Pan7d173fc2018-03-21 07:20:09 +0000233
234 Defines the maximum address in secure XIP memory that BL2's actual content
235 (i.e. excluding any data section allocated at runtime) can occupy. This
236 constant is only needed when BL2_IN_XIP_MEM is set to '1'.
237
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100238- **#define : BL2_RW_BASE**
Jiafei Pan7d173fc2018-03-21 07:20:09 +0000239
240 Defines the base address in secure RAM where BL2's read-write data will live
241 at runtime. Must be aligned on a page-size boundary. This constant is only
242 needed when BL2_IN_XIP_MEM is set to '1'.
243
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100244- **#define : BL2_RW_LIMIT**
Jiafei Pan7d173fc2018-03-21 07:20:09 +0000245
246 Defines the maximum address in secure RAM that BL2's read-write data can
247 occupy at runtime. This constant is only needed when BL2_IN_XIP_MEM is set
248 to '1'.
Douglas Raillard6f625742017-06-28 15:23:03 +0100249
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100250- **#define : BL31_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100251
252 Defines the base address in secure RAM where BL2 loads the BL31 binary
253 image. Must be aligned on a page-size boundary.
254
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100255- **#define : BL31_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100256
257 Defines the maximum address in secure RAM that the BL31 image can occupy.
258
Tamas Ban624c9a02024-02-21 13:55:31 +0100259- **#define : PLAT_RSE_COMMS_PAYLOAD_MAX_SIZE**
Tamas Ban1bc78552022-09-16 14:09:30 +0200260
Tamas Ban624c9a02024-02-21 13:55:31 +0100261 Defines the maximum message size between AP and RSE. Need to define if
262 platform supports RSE.
Tamas Ban1bc78552022-09-16 14:09:30 +0200263
Douglas Raillard6f625742017-06-28 15:23:03 +0100264For every image, the platform must define individual identifiers that will be
265used by BL1 or BL2 to load the corresponding image into memory from non-volatile
266storage. For the sake of performance, integer numbers will be used as
267identifiers. The platform will use those identifiers to return the relevant
268information about the image to be loaded (file handler, load address,
269authentication information, etc.). The following image identifiers are
270mandatory:
271
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100272- **#define : BL2_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100273
274 BL2 image identifier, used by BL1 to load BL2.
275
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100276- **#define : BL31_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100277
278 BL31 image identifier, used by BL2 to load BL31.
279
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100280- **#define : BL33_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100281
282 BL33 image identifier, used by BL2 to load BL33.
283
284If Trusted Board Boot is enabled, the following certificate identifiers must
285also be defined:
286
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100287- **#define : TRUSTED_BOOT_FW_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100288
289 BL2 content certificate identifier, used by BL1 to load the BL2 content
290 certificate.
291
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100292- **#define : TRUSTED_KEY_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100293
294 Trusted key certificate identifier, used by BL2 to load the trusted key
295 certificate.
296
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100297- **#define : SOC_FW_KEY_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100298
299 BL31 key certificate identifier, used by BL2 to load the BL31 key
300 certificate.
301
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100302- **#define : SOC_FW_CONTENT_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100303
304 BL31 content certificate identifier, used by BL2 to load the BL31 content
305 certificate.
306
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100307- **#define : NON_TRUSTED_FW_KEY_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100308
309 BL33 key certificate identifier, used by BL2 to load the BL33 key
310 certificate.
311
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100312- **#define : NON_TRUSTED_FW_CONTENT_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100313
314 BL33 content certificate identifier, used by BL2 to load the BL33 content
315 certificate.
316
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100317- **#define : FWU_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100318
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100319 Firmware Update (FWU) certificate identifier, used by NS_BL1U to load the
Douglas Raillard6f625742017-06-28 15:23:03 +0100320 FWU content certificate.
321
Douglas Raillard6f625742017-06-28 15:23:03 +0100322If the AP Firmware Updater Configuration image, BL2U is used, the following
323must also be defined:
324
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100325- **#define : BL2U_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100326
327 Defines the base address in secure memory where BL1 copies the BL2U binary
328 image. Must be aligned on a page-size boundary.
329
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100330- **#define : BL2U_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100331
332 Defines the maximum address in secure memory that the BL2U image can occupy.
333
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100334- **#define : BL2U_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100335
336 BL2U image identifier, used by BL1 to fetch an image descriptor
337 corresponding to BL2U.
338
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100339If the SCP Firmware Update Configuration Image, SCP_BL2U is used, the following
Douglas Raillard6f625742017-06-28 15:23:03 +0100340must also be defined:
341
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100342- **#define : SCP_BL2U_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100343
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100344 SCP_BL2U image identifier, used by BL1 to fetch an image descriptor
345 corresponding to SCP_BL2U.
Paul Beesleye1c50262019-03-13 16:20:44 +0000346
347 .. note::
348 TF-A does not provide source code for this image.
Douglas Raillard6f625742017-06-28 15:23:03 +0100349
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100350If the Non-Secure Firmware Updater ROM, NS_BL1U is used, the following must
Douglas Raillard6f625742017-06-28 15:23:03 +0100351also be defined:
352
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100353- **#define : NS_BL1U_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100354
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100355 Defines the base address in non-secure ROM where NS_BL1U executes.
Douglas Raillard6f625742017-06-28 15:23:03 +0100356 Must be aligned on a page-size boundary.
Paul Beesleye1c50262019-03-13 16:20:44 +0000357
358 .. note::
359 TF-A does not provide source code for this image.
Douglas Raillard6f625742017-06-28 15:23:03 +0100360
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100361- **#define : NS_BL1U_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100362
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100363 NS_BL1U image identifier, used by BL1 to fetch an image descriptor
364 corresponding to NS_BL1U.
Douglas Raillard6f625742017-06-28 15:23:03 +0100365
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100366If the Non-Secure Firmware Updater, NS_BL2U is used, the following must also
Douglas Raillard6f625742017-06-28 15:23:03 +0100367be defined:
368
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100369- **#define : NS_BL2U_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100370
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100371 Defines the base address in non-secure memory where NS_BL2U executes.
Douglas Raillard6f625742017-06-28 15:23:03 +0100372 Must be aligned on a page-size boundary.
Paul Beesleye1c50262019-03-13 16:20:44 +0000373
374 .. note::
375 TF-A does not provide source code for this image.
Douglas Raillard6f625742017-06-28 15:23:03 +0100376
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100377- **#define : NS_BL2U_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100378
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100379 NS_BL2U image identifier, used by BL1 to fetch an image descriptor
380 corresponding to NS_BL2U.
Douglas Raillard6f625742017-06-28 15:23:03 +0100381
382For the the Firmware update capability of TRUSTED BOARD BOOT, the following
383macros may also be defined:
384
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100385- **#define : PLAT_FWU_MAX_SIMULTANEOUS_IMAGES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100386
387 Total number of images that can be loaded simultaneously. If the platform
388 doesn't specify any value, it defaults to 10.
389
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100390If a SCP_BL2 image is supported by the platform, the following constants must
Douglas Raillard6f625742017-06-28 15:23:03 +0100391also be defined:
392
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100393- **#define : SCP_BL2_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100394
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100395 SCP_BL2 image identifier, used by BL2 to load SCP_BL2 into secure memory
Paul Beesley8aabea32019-01-11 18:26:51 +0000396 from platform storage before being transferred to the SCP.
Douglas Raillard6f625742017-06-28 15:23:03 +0100397
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100398- **#define : SCP_FW_KEY_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100399
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100400 SCP_BL2 key certificate identifier, used by BL2 to load the SCP_BL2 key
Douglas Raillard6f625742017-06-28 15:23:03 +0100401 certificate (mandatory when Trusted Board Boot is enabled).
402
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100403- **#define : SCP_FW_CONTENT_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100404
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100405 SCP_BL2 content certificate identifier, used by BL2 to load the SCP_BL2
Douglas Raillard6f625742017-06-28 15:23:03 +0100406 content certificate (mandatory when Trusted Board Boot is enabled).
407
408If a BL32 image is supported by the platform, the following constants must
409also be defined:
410
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100411- **#define : BL32_IMAGE_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100412
413 BL32 image identifier, used by BL2 to load BL32.
414
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100415- **#define : TRUSTED_OS_FW_KEY_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100416
417 BL32 key certificate identifier, used by BL2 to load the BL32 key
418 certificate (mandatory when Trusted Board Boot is enabled).
419
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100420- **#define : TRUSTED_OS_FW_CONTENT_CERT_ID**
Douglas Raillard6f625742017-06-28 15:23:03 +0100421
422 BL32 content certificate identifier, used by BL2 to load the BL32 content
423 certificate (mandatory when Trusted Board Boot is enabled).
424
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100425- **#define : BL32_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100426
427 Defines the base address in secure memory where BL2 loads the BL32 binary
428 image. Must be aligned on a page-size boundary.
429
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100430- **#define : BL32_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100431
432 Defines the maximum address that the BL32 image can occupy.
433
434If the Test Secure-EL1 Payload (TSP) instantiation of BL32 is supported by the
435platform, the following constants must also be defined:
436
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100437- **#define : TSP_SEC_MEM_BASE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100438
439 Defines the base address of the secure memory used by the TSP image on the
440 platform. This must be at the same address or below ``BL32_BASE``.
441
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100442- **#define : TSP_SEC_MEM_SIZE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100443
444 Defines the size of the secure memory used by the BL32 image on the
Paul Beesley8aabea32019-01-11 18:26:51 +0000445 platform. ``TSP_SEC_MEM_BASE`` and ``TSP_SEC_MEM_SIZE`` must fully
446 accommodate the memory required by the BL32 image, defined by ``BL32_BASE``
447 and ``BL32_LIMIT``.
Douglas Raillard6f625742017-06-28 15:23:03 +0100448
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100449- **#define : TSP_IRQ_SEC_PHY_TIMER**
Douglas Raillard6f625742017-06-28 15:23:03 +0100450
451 Defines the ID of the secure physical generic timer interrupt used by the
452 TSP's interrupt handling code.
453
454If the platform port uses the translation table library code, the following
455constants must also be defined:
456
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100457- **#define : PLAT_XLAT_TABLES_DYNAMIC**
Douglas Raillard6f625742017-06-28 15:23:03 +0100458
459 Optional flag that can be set per-image to enable the dynamic allocation of
460 regions even when the MMU is enabled. If not defined, only static
461 functionality will be available, if defined and set to 1 it will also
462 include the dynamic functionality.
463
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100464- **#define : MAX_XLAT_TABLES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100465
466 Defines the maximum number of translation tables that are allocated by the
467 translation table library code. To minimize the amount of runtime memory
468 used, choose the smallest value needed to map the required virtual addresses
469 for each BL stage. If ``PLAT_XLAT_TABLES_DYNAMIC`` flag is enabled for a BL
470 image, ``MAX_XLAT_TABLES`` must be defined to accommodate the dynamic regions
471 as well.
472
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100473- **#define : MAX_MMAP_REGIONS**
Douglas Raillard6f625742017-06-28 15:23:03 +0100474
475 Defines the maximum number of regions that are allocated by the translation
476 table library code. A region consists of physical base address, virtual base
477 address, size and attributes (Device/Memory, RO/RW, Secure/Non-Secure), as
478 defined in the ``mmap_region_t`` structure. The platform defines the regions
479 that should be mapped. Then, the translation table library will create the
480 corresponding tables and descriptors at runtime. To minimize the amount of
481 runtime memory used, choose the smallest value needed to register the
482 required regions for each BL stage. If ``PLAT_XLAT_TABLES_DYNAMIC`` flag is
483 enabled for a BL image, ``MAX_MMAP_REGIONS`` must be defined to accommodate
484 the dynamic regions as well.
485
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100486- **#define : PLAT_VIRT_ADDR_SPACE_SIZE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100487
488 Defines the total size of the virtual address space in bytes. For example,
David Cunado5724481f2018-02-16 21:12:58 +0000489 for a 32 bit virtual address space, this value should be ``(1ULL << 32)``.
Douglas Raillard6f625742017-06-28 15:23:03 +0100490
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100491- **#define : PLAT_PHY_ADDR_SPACE_SIZE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100492
493 Defines the total size of the physical address space in bytes. For example,
David Cunado5724481f2018-02-16 21:12:58 +0000494 for a 32 bit physical address space, this value should be ``(1ULL << 32)``.
Douglas Raillard6f625742017-06-28 15:23:03 +0100495
496If the platform port uses the IO storage framework, the following constants
497must also be defined:
498
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100499- **#define : MAX_IO_DEVICES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100500
501 Defines the maximum number of registered IO devices. Attempting to register
502 more devices than this value using ``io_register_device()`` will fail with
503 -ENOMEM.
504
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100505- **#define : MAX_IO_HANDLES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100506
507 Defines the maximum number of open IO handles. Attempting to open more IO
508 entities than this value using ``io_open()`` will fail with -ENOMEM.
509
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100510- **#define : MAX_IO_BLOCK_DEVICES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100511
512 Defines the maximum number of registered IO block devices. Attempting to
513 register more devices this value using ``io_dev_open()`` will fail
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100514 with -ENOMEM. MAX_IO_BLOCK_DEVICES should be less than MAX_IO_DEVICES.
Douglas Raillard6f625742017-06-28 15:23:03 +0100515 With this macro, multiple block devices could be supported at the same
516 time.
517
518If the platform needs to allocate data within the per-cpu data framework in
519BL31, it should define the following macro. Currently this is only required if
520the platform decides not to use the coherent memory section by undefining the
521``USE_COHERENT_MEM`` build flag. In this case, the framework allocates the
522required memory within the the per-cpu data to minimize wastage.
523
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100524- **#define : PLAT_PCPU_DATA_SIZE**
Douglas Raillard6f625742017-06-28 15:23:03 +0100525
526 Defines the memory (in bytes) to be reserved within the per-cpu data
527 structure for use by the platform layer.
528
529The following constants are optional. They should be defined when the platform
Dan Handley4def07d2018-03-01 18:44:00 +0000530memory layout implies some image overlaying like in Arm standard platforms.
Douglas Raillard6f625742017-06-28 15:23:03 +0100531
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100532- **#define : BL31_PROGBITS_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100533
534 Defines the maximum address in secure RAM that the BL31's progbits sections
535 can occupy.
536
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100537- **#define : TSP_PROGBITS_LIMIT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100538
539 Defines the maximum address that the TSP's progbits sections can occupy.
540
Wing Li606b7432022-09-14 13:18:17 -0700541If the platform supports OS-initiated mode, i.e. the build option
542``PSCI_OS_INIT_MODE`` is enabled, and if the platform's maximum power domain
543level for PSCI_CPU_SUSPEND differs from ``PLAT_MAX_PWR_LVL``, the following
544constant must be defined.
545
546- **#define : PLAT_MAX_CPU_SUSPEND_PWR_LVL**
547
548 Defines the maximum power domain level that PSCI_CPU_SUSPEND should apply to.
549
Douglas Raillard6f625742017-06-28 15:23:03 +0100550If the platform port uses the PL061 GPIO driver, the following constant may
551optionally be defined:
552
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100553- **PLAT_PL061_MAX_GPIOS**
Douglas Raillard6f625742017-06-28 15:23:03 +0100554 Maximum number of GPIOs required by the platform. This allows control how
555 much memory is allocated for PL061 GPIO controllers. The default value is
556
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100557 #. $(eval $(call add_define,PLAT_PL061_MAX_GPIOS))
Douglas Raillard6f625742017-06-28 15:23:03 +0100558
559If the platform port uses the partition driver, the following constant may
560optionally be defined:
561
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100562- **PLAT_PARTITION_MAX_ENTRIES**
Douglas Raillard6f625742017-06-28 15:23:03 +0100563 Maximum number of partition entries required by the platform. This allows
564 control how much memory is allocated for partition entries. The default
565 value is 128.
Paul Beesley34760952019-04-12 14:19:42 +0100566 For example, define the build flag in ``platform.mk``:
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100567 PLAT_PARTITION_MAX_ENTRIES := 12
568 $(eval $(call add_define,PLAT_PARTITION_MAX_ENTRIES))
Douglas Raillard6f625742017-06-28 15:23:03 +0100569
Haojian Zhuangf8631f52019-09-14 18:01:16 +0800570- **PLAT_PARTITION_BLOCK_SIZE**
571 The size of partition block. It could be either 512 bytes or 4096 bytes.
572 The default value is 512.
Paul Beesleybe653a62019-10-04 16:17:46 +0000573 For example, define the build flag in ``platform.mk``:
Haojian Zhuangf8631f52019-09-14 18:01:16 +0800574 PLAT_PARTITION_BLOCK_SIZE := 4096
575 $(eval $(call add_define,PLAT_PARTITION_BLOCK_SIZE))
576
Rob Hughes6ce4c6c2023-02-20 12:03:52 +0000577If the platform port uses the Arm® Ethos™-N NPU driver, the following
578configuration must be performed:
579
580- The NPU SiP service handler must be hooked up. This consists of both the
581 initial setup (``ethosn_smc_setup``) and the handler itself
582 (``ethosn_smc_handler``)
583
Rajasekaran Kalidoss70a296e2022-11-16 17:16:44 +0100584If the platform port uses the Arm® Ethos™-N NPU driver with TZMP1 support
Rob Hughes6ce4c6c2023-02-20 12:03:52 +0000585enabled, the following constants and configuration must also be defined:
Rajasekaran Kalidoss70a296e2022-11-16 17:16:44 +0100586
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200587- **ETHOSN_NPU_PROT_FW_NSAID**
Rajasekaran Kalidoss70a296e2022-11-16 17:16:44 +0100588
589 Defines the Non-secure Access IDentity (NSAID) that the NPU shall use to
590 access the protected memory that contains the NPU's firmware.
591
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200592- **ETHOSN_NPU_PROT_DATA_RW_NSAID**
Rajasekaran Kalidoss70a296e2022-11-16 17:16:44 +0100593
Mikael Olsson986c4e92023-03-14 18:29:06 +0100594 Defines the Non-secure Access IDentity (NSAID) that the NPU shall use for
595 read/write access to the protected memory that contains inference data.
596
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200597- **ETHOSN_NPU_PROT_DATA_RO_NSAID**
Mikael Olsson986c4e92023-03-14 18:29:06 +0100598
599 Defines the Non-secure Access IDentity (NSAID) that the NPU shall use for
600 read-only access to the protected memory that contains inference data.
601
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200602- **ETHOSN_NPU_NS_RW_DATA_NSAID**
Mikael Olsson986c4e92023-03-14 18:29:06 +0100603
604 Defines the Non-secure Access IDentity (NSAID) that the NPU shall use for
605 read/write access to the non-protected memory.
606
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200607- **ETHOSN_NPU_NS_RO_DATA_NSAID**
Mikael Olsson986c4e92023-03-14 18:29:06 +0100608
609 Defines the Non-secure Access IDentity (NSAID) that the NPU shall use for
610 read-only access to the non-protected memory.
Rajasekaran Kalidoss70a296e2022-11-16 17:16:44 +0100611
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200612- **ETHOSN_NPU_FW_IMAGE_BASE** and **ETHOSN_NPU_FW_IMAGE_LIMIT**
Rob Hughes33bcaed2023-01-17 16:10:26 +0000613
Rob Hughes6ce4c6c2023-02-20 12:03:52 +0000614 Defines the physical address range that the NPU's firmware will be loaded
615 into and executed from.
616
617- Configure the platforms TrustZone Controller (TZC) with appropriate regions
618 of protected memory. At minimum this must include a region for the NPU's
619 firmware code and a region for protected inference data, and these must be
620 accessible using the NSAIDs defined above.
621
622- Include the NPU firmware and certificates in the FIP.
623
624- Provide FCONF entries to configure the image source for the NPU firmware
625 and certificates.
Rob Hughes33bcaed2023-01-17 16:10:26 +0000626
627- Add MMU mappings such that:
628
629 - BL2 can write the NPU firmware into the region defined by
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200630 ``ETHOSN_NPU_FW_IMAGE_BASE`` and ``ETHOSN_NPU_FW_IMAGE_LIMIT``
Rob Hughes33bcaed2023-01-17 16:10:26 +0000631 - BL31 (SiP service) can read the NPU firmware from the same region
632
Rajasekaran Kalidossffdf5ea2023-05-09 12:28:07 +0200633- Add the firmware image ID ``ETHOSN_NPU_FW_IMAGE_ID`` to the list of images
Rob Hughes6ce4c6c2023-02-20 12:03:52 +0000634 loaded by BL2.
Rob Hughes33bcaed2023-01-17 16:10:26 +0000635
636Please see the reference implementation code for the Juno platform as an example.
637
638
Douglas Raillard6f625742017-06-28 15:23:03 +0100639The following constant is optional. It should be defined to override the default
640behaviour of the ``assert()`` function (for example, to save memory).
641
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100642- **PLAT_LOG_LEVEL_ASSERT**
Douglas Raillard6f625742017-06-28 15:23:03 +0100643 If ``PLAT_LOG_LEVEL_ASSERT`` is higher or equal than ``LOG_LEVEL_VERBOSE``,
644 ``assert()`` prints the name of the file, the line number and the asserted
645 expression. Else if it is higher than ``LOG_LEVEL_INFO``, it prints the file
646 name and the line number. Else if it is lower than ``LOG_LEVEL_INFO``, it
647 doesn't print anything to the console. If ``PLAT_LOG_LEVEL_ASSERT`` isn't
648 defined, it defaults to ``LOG_LEVEL``.
649
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +0100650If the platform port uses the DRTM feature, the following constants must be
651defined:
652
653- **#define : PLAT_DRTM_EVENT_LOG_MAX_SIZE**
654
655 Maximum Event Log size used by the platform. Platform can decide the maximum
656 size of the Event Log buffer, depending upon the highest hash algorithm
657 chosen and the number of components selected to measure during the DRTM
658 execution flow.
659
660- **#define : PLAT_DRTM_MMAP_ENTRIES**
661
662 Number of the MMAP entries used by the DRTM implementation to calculate the
663 size of address map region of the platform.
664
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100665File : plat_macros.S [mandatory]
666~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100667
668Each platform must ensure a file of this name is in the system include path with
Dan Handley4def07d2018-03-01 18:44:00 +0000669the following macro defined. In the Arm development platforms, this file is
Douglas Raillard6f625742017-06-28 15:23:03 +0100670found in ``plat/arm/board/<plat_name>/include/plat_macros.S``.
671
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100672- **Macro : plat_crash_print_regs**
Douglas Raillard6f625742017-06-28 15:23:03 +0100673
674 This macro allows the crash reporting routine to print relevant platform
675 registers in case of an unhandled exception in BL31. This aids in debugging
676 and this macro can be defined to be empty in case register reporting is not
677 desired.
678
679 For instance, GIC or interconnect registers may be helpful for
680 troubleshooting.
681
682Handling Reset
683--------------
684
685BL1 by default implements the reset vector where execution starts from a cold
686or warm boot. BL31 can be optionally set as a reset vector using the
687``RESET_TO_BL31`` make variable.
688
689For each CPU, the reset vector code is responsible for the following tasks:
690
691#. Distinguishing between a cold boot and a warm boot.
692
693#. In the case of a cold boot and the CPU being a secondary CPU, ensuring that
694 the CPU is placed in a platform-specific state until the primary CPU
695 performs the necessary steps to remove it from this state.
696
697#. In the case of a warm boot, ensuring that the CPU jumps to a platform-
698 specific address in the BL31 image in the same processor mode as it was
699 when released from reset.
700
701The following functions need to be implemented by the platform port to enable
702reset vector code to perform the above tasks.
703
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100704Function : plat_get_my_entrypoint() [mandatory when PROGRAMMABLE_RESET_ADDRESS == 0]
705~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100706
707::
708
709 Argument : void
710 Return : uintptr_t
711
712This function is called with the MMU and caches disabled
713(``SCTLR_EL3.M`` = 0 and ``SCTLR_EL3.C`` = 0). The function is responsible for
714distinguishing between a warm and cold reset for the current CPU using
715platform-specific means. If it's a warm reset, then it returns the warm
716reset entrypoint point provided to ``plat_setup_psci_ops()`` during
717BL31 initialization. If it's a cold reset then this function must return zero.
718
719This function does not follow the Procedure Call Standard used by the
Dan Handley4def07d2018-03-01 18:44:00 +0000720Application Binary Interface for the Arm 64-bit architecture. The caller should
Douglas Raillard6f625742017-06-28 15:23:03 +0100721not assume that callee saved registers are preserved across a call to this
722function.
723
724This function fulfills requirement 1 and 3 listed above.
725
726Note that for platforms that support programming the reset address, it is
727expected that a CPU will start executing code directly at the right address,
728both on a cold and warm reset. In this case, there is no need to identify the
729type of reset nor to query the warm reset entrypoint. Therefore, implementing
730this function is not required on such platforms.
731
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100732Function : plat_secondary_cold_boot_setup() [mandatory when COLD_BOOT_SINGLE_CPU == 0]
733~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100734
735::
736
737 Argument : void
738
739This function is called with the MMU and data caches disabled. It is responsible
740for placing the executing secondary CPU in a platform-specific state until the
741primary CPU performs the necessary actions to bring it out of that state and
742allow entry into the OS. This function must not return.
743
Dan Handley4def07d2018-03-01 18:44:00 +0000744In the Arm FVP port, when using the normal boot flow, each secondary CPU powers
Douglas Raillard6f625742017-06-28 15:23:03 +0100745itself off. The primary CPU is responsible for powering up the secondary CPUs
746when normal world software requires them. When booting an EL3 payload instead,
747they stay powered on and are put in a holding pen until their mailbox gets
748populated.
749
750This function fulfills requirement 2 above.
751
752Note that for platforms that can't release secondary CPUs out of reset, only the
753primary CPU will execute the cold boot code. Therefore, implementing this
754function is not required on such platforms.
755
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100756Function : plat_is_my_cpu_primary() [mandatory when COLD_BOOT_SINGLE_CPU == 0]
757~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100758
759::
760
761 Argument : void
762 Return : unsigned int
763
764This function identifies whether the current CPU is the primary CPU or a
765secondary CPU. A return value of zero indicates that the CPU is not the
766primary CPU, while a non-zero return value indicates that the CPU is the
767primary CPU.
768
769Note that for platforms that can't release secondary CPUs out of reset, only the
770primary CPU will execute the cold boot code. Therefore, there is no need to
771distinguish between primary and secondary CPUs and implementing this function is
772not required.
773
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100774Function : platform_mem_init() [mandatory]
775~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100776
777::
778
779 Argument : void
780 Return : void
781
782This function is called before any access to data is made by the firmware, in
783order to carry out any essential memory initialization.
784
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100785Function: plat_get_rotpk_info()
786~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100787
788::
789
790 Argument : void *, void **, unsigned int *, unsigned int *
791 Return : int
792
793This function is mandatory when Trusted Board Boot is enabled. It returns a
794pointer to the ROTPK stored in the platform (or a hash of it) and its length.
795The ROTPK must be encoded in DER format according to the following ASN.1
796structure:
797
798::
799
800 AlgorithmIdentifier ::= SEQUENCE {
801 algorithm OBJECT IDENTIFIER,
802 parameters ANY DEFINED BY algorithm OPTIONAL
803 }
804
805 SubjectPublicKeyInfo ::= SEQUENCE {
806 algorithm AlgorithmIdentifier,
807 subjectPublicKey BIT STRING
808 }
809
810In case the function returns a hash of the key:
811
812::
813
814 DigestInfo ::= SEQUENCE {
815 digestAlgorithm AlgorithmIdentifier,
816 digest OCTET STRING
817 }
818
819The function returns 0 on success. Any other value is treated as error by the
820Trusted Board Boot. The function also reports extra information related
821to the ROTPK in the flags parameter:
822
823::
824
825 ROTPK_IS_HASH : Indicates that the ROTPK returned by the platform is a
826 hash.
827 ROTPK_NOT_DEPLOYED : This allows the platform to skip certificate ROTPK
828 verification while the platform ROTPK is not deployed.
829 When this flag is set, the function does not need to
830 return a platform ROTPK, and the authentication
831 framework uses the ROTPK in the certificate without
832 verifying it against the platform value. This flag
833 must not be used in a deployed production environment.
834
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100835Function: plat_get_nv_ctr()
836~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100837
838::
839
840 Argument : void *, unsigned int *
841 Return : int
842
843This function is mandatory when Trusted Board Boot is enabled. It returns the
844non-volatile counter value stored in the platform in the second argument. The
845cookie in the first argument may be used to select the counter in case the
846platform provides more than one (for example, on platforms that use the default
847TBBR CoT, the cookie will correspond to the OID values defined in
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100848TRUSTED_FW_NVCOUNTER_OID or NON_TRUSTED_FW_NVCOUNTER_OID).
Douglas Raillard6f625742017-06-28 15:23:03 +0100849
850The function returns 0 on success. Any other value means the counter value could
851not be retrieved from the platform.
852
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100853Function: plat_set_nv_ctr()
854~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100855
856::
857
858 Argument : void *, unsigned int
859 Return : int
860
861This function is mandatory when Trusted Board Boot is enabled. It sets a new
862counter value in the platform. The cookie in the first argument may be used to
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100863select the counter (as explained in plat_get_nv_ctr()). The second argument is
Douglas Raillard6f625742017-06-28 15:23:03 +0100864the updated counter value to be written to the NV counter.
865
866The function returns 0 on success. Any other value means the counter value could
867not be updated.
868
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +0100869Function: plat_set_nv_ctr2()
870~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +0100871
872::
873
874 Argument : void *, const auth_img_desc_t *, unsigned int
875 Return : int
876
877This function is optional when Trusted Board Boot is enabled. If this
878interface is defined, then ``plat_set_nv_ctr()`` need not be defined. The
879first argument passed is a cookie and is typically used to
880differentiate between a Non Trusted NV Counter and a Trusted NV
881Counter. The second argument is a pointer to an authentication image
882descriptor and may be used to decide if the counter is allowed to be
883updated or not. The third argument is the updated counter value to
884be written to the NV counter.
885
886The function returns 0 on success. Any other value means the counter value
887either could not be updated or the authentication image descriptor indicates
888that it is not allowed to be updated.
889
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +0100890Dynamic Root of Trust for Measurement support (in BL31)
891-------------------------------------------------------
892
893The functions mentioned in this section are mandatory, when platform enables
894DRTM_SUPPORT build flag.
895
896Function : plat_get_addr_mmap()
897~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
898
899::
900
901 Argument : void
902 Return : const mmap_region_t *
903
904This function is used to return the address of the platform *address-map* table,
905which describes the regions of normal memory, memory mapped I/O
906and non-volatile memory.
907
908Function : plat_has_non_host_platforms()
909~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
910
911::
912
913 Argument : void
914 Return : bool
915
916This function returns *true* if the platform has any trusted devices capable of
917DMA, otherwise returns *false*.
918
919Function : plat_has_unmanaged_dma_peripherals()
920~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
921
922::
923
924 Argument : void
925 Return : bool
926
927This function returns *true* if platform uses peripherals whose DMA is not
928managed by an SMMU, otherwise returns *false*.
929
930Note -
931If the platform has peripherals that are not managed by the SMMU, then the
932platform should investigate such peripherals to determine whether they can
933be trusted, and such peripherals should be moved under "Non-host platforms"
934if they can be trusted.
935
936Function : plat_get_total_num_smmus()
937~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
938
939::
940
941 Argument : void
942 Return : unsigned int
943
944This function returns the total number of SMMUs in the platform.
945
946Function : plat_enumerate_smmus()
947~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
948::
949
950
951 Argument : void
952 Return : const uintptr_t *, size_t
953
954This function returns an array of SMMU addresses and the actual number of SMMUs
955reported by the platform.
956
957Function : plat_drtm_get_dma_prot_features()
958~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
959
960::
961
962 Argument : void
963 Return : const plat_drtm_dma_prot_features_t*
964
965This function returns the address of plat_drtm_dma_prot_features_t structure
966containing the maximum number of protected regions and bitmap with the types
967of DMA protection supported by the platform.
968For more details see section 3.3 Table 6 of `DRTM`_ specification.
969
970Function : plat_drtm_dma_prot_get_max_table_bytes()
971~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
972
973::
974
975 Argument : void
976 Return : uint64_t
977
978This function returns the maximum size of DMA protected regions table in
979bytes.
980
981Function : plat_drtm_get_tpm_features()
982~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
983
984::
985
986 Argument : void
987 Return : const plat_drtm_tpm_features_t*
988
989This function returns the address of *plat_drtm_tpm_features_t* structure
990containing PCR usage schema, TPM-based hash, and firmware hash algorithm
991supported by the platform.
992
993Function : plat_drtm_get_min_size_normal_world_dce()
994~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
995
996::
997
998 Argument : void
999 Return : uint64_t
1000
1001This function returns the size normal-world DCE of the platform.
1002
1003Function : plat_drtm_get_imp_def_dlme_region_size()
Manish V Badarkhe7792bdb2025-02-24 21:16:47 +00001004~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01001005
1006::
1007
1008 Argument : void
1009 Return : uint64_t
1010
1011This function returns the size of implementation defined DLME region
1012of the platform.
1013
1014Function : plat_drtm_get_tcb_hash_table_size()
Manish V Badarkhe7792bdb2025-02-24 21:16:47 +00001015~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01001016
1017::
1018
1019 Argument : void
1020 Return : uint64_t
1021
1022This function returns the size of TCB hash table of the platform.
1023
Manish V Badarkhe7792bdb2025-02-24 21:16:47 +00001024Function : plat_drtm_get_acpi_tables_region_size()
1025~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1026
1027::
1028
1029 Argument : void
1030 Return : uint64_t
1031
1032This function returns the size of ACPI tables region of the platform.
1033
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01001034Function : plat_drtm_get_tcb_hash_features()
Manish V Badarkhe7792bdb2025-02-24 21:16:47 +00001035~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01001036
1037::
1038
1039 Argument : void
1040 Return : uint64_t
1041
1042This function returns the Maximum number of TCB hashes recorded by the
1043platform.
1044For more details see section 3.3 Table 6 of `DRTM`_ specification.
1045
Manish V Badarkhe0f7ebef2025-02-26 12:01:03 +00001046Function : plat_drtm_get_dlme_img_auth_features()
1047~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1048
1049::
1050
1051 Argument : void
1052 Return : uint64_t
1053
1054This function returns the DLME image authentication features.
1055For more details see section 3.3 Table 6 of `DRTM`_ specification.
1056
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01001057Function : plat_drtm_validate_ns_region()
1058~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1059
1060::
1061
1062 Argument : uintptr_t, uintptr_t
1063 Return : int
1064
1065This function validates that given region is within the Non-Secure region
1066of DRAM. This function takes a region start address and size an input
1067arguments, and returns 0 on success and -1 on failure.
1068
1069Function : plat_set_drtm_error()
1070~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1071
1072::
1073
1074 Argument : uint64_t
1075 Return : int
1076
1077This function writes a 64 bit error code received as input into
1078non-volatile storage and returns 0 on success and -1 on failure.
1079
1080Function : plat_get_drtm_error()
1081~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1082
1083::
1084
1085 Argument : uint64_t*
1086 Return : int
1087
1088This function reads a 64 bit error code from the non-volatile storage
1089into the received address, and returns 0 on success and -1 on failure.
1090
Douglas Raillard6f625742017-06-28 15:23:03 +01001091Common mandatory function modifications
1092---------------------------------------
1093
1094The following functions are mandatory functions which need to be implemented
1095by the platform port.
1096
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001097Function : plat_my_core_pos()
1098~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001099
1100::
1101
1102 Argument : void
1103 Return : unsigned int
1104
Paul Beesley8aabea32019-01-11 18:26:51 +00001105This function returns the index of the calling CPU which is used as a
Douglas Raillard6f625742017-06-28 15:23:03 +01001106CPU-specific linear index into blocks of memory (for example while allocating
1107per-CPU stacks). This function will be invoked very early in the
1108initialization sequence which mandates that this function should be
Paul Beesley8aabea32019-01-11 18:26:51 +00001109implemented in assembly and should not rely on the availability of a C
Douglas Raillard6f625742017-06-28 15:23:03 +01001110runtime environment. This function can clobber x0 - x8 and must preserve
1111x9 - x29.
1112
1113This function plays a crucial role in the power domain topology framework in
Paul Beesley34760952019-04-12 14:19:42 +01001114PSCI and details of this can be found in
1115:ref:`PSCI Power Domain Tree Structure`.
Douglas Raillard6f625742017-06-28 15:23:03 +01001116
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001117Function : plat_core_pos_by_mpidr()
1118~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001119
1120::
1121
1122 Argument : u_register_t
1123 Return : int
1124
1125This function validates the ``MPIDR`` of a CPU and converts it to an index,
1126which can be used as a CPU-specific linear index into blocks of memory. In
1127case the ``MPIDR`` is invalid, this function returns -1. This function will only
1128be invoked by BL31 after the power domain topology is initialized and can
Dan Handley4def07d2018-03-01 18:44:00 +00001129utilize the C runtime environment. For further details about how TF-A
1130represents the power domain topology and how this relates to the linear CPU
Paul Beesley34760952019-04-12 14:19:42 +01001131index, please refer :ref:`PSCI Power Domain Tree Structure`.
Douglas Raillard6f625742017-06-28 15:23:03 +01001132
Ambroise Vincent2374ab12019-04-10 12:50:27 +01001133Function : plat_get_mbedtls_heap() [when TRUSTED_BOARD_BOOT == 1]
1134~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1135
1136::
1137
1138 Arguments : void **heap_addr, size_t *heap_size
1139 Return : int
1140
1141This function is invoked during Mbed TLS library initialisation to get a heap,
1142by means of a starting address and a size. This heap will then be used
1143internally by the Mbed TLS library. Hence, each BL stage that utilises Mbed TLS
1144must be able to provide a heap to it.
1145
1146A helper function can be found in `drivers/auth/mbedtls/mbedtls_common.c` in
1147which a heap is statically reserved during compile time inside every image
1148(i.e. every BL stage) that utilises Mbed TLS. In this default implementation,
1149the function simply returns the address and size of this "pre-allocated" heap.
1150For a platform to use this default implementation, only a call to the helper
1151from inside plat_get_mbedtls_heap() body is enough and nothing else is needed.
1152
1153However, by writting their own implementation, platforms have the potential to
1154optimise memory usage. For example, on some Arm platforms, the Mbed TLS heap is
1155shared between BL1 and BL2 stages and, thus, the necessary space is not reserved
1156twice.
1157
1158On success the function should return 0 and a negative error code otherwise.
1159
Sumit Gargf97062a2019-11-15 18:47:53 +05301160Function : plat_get_enc_key_info() [when FW_ENC_STATUS == 0 or 1]
1161~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1162
1163::
1164
1165 Arguments : enum fw_enc_status_t fw_enc_status, uint8_t *key,
1166 size_t *key_len, unsigned int *flags, const uint8_t *img_id,
1167 size_t img_id_len
1168 Return : int
1169
1170This function provides a symmetric key (either SSK or BSSK depending on
1171fw_enc_status) which is invoked during runtime decryption of encrypted
1172firmware images. `plat/common/plat_bl_common.c` provides a dummy weak
1173implementation for testing purposes which must be overridden by the platform
1174trying to implement a real world firmware encryption use-case.
1175
1176It also allows the platform to pass symmetric key identifier rather than
1177actual symmetric key which is useful in cases where the crypto backend provides
1178secure storage for the symmetric key. So in this case ``ENC_KEY_IS_IDENTIFIER``
1179flag must be set in ``flags``.
1180
1181In addition to above a platform may also choose to provide an image specific
1182symmetric key/identifier using img_id.
1183
1184On success the function should return 0 and a negative error code otherwise.
1185
Manish Pandey700e7682021-10-21 21:53:49 +01001186Note that this API depends on ``DECRYPTION_SUPPORT`` build flag.
Sumit Gargf97062a2019-11-15 18:47:53 +05301187
Manish V Badarkhe0f20e502021-06-20 21:14:46 +01001188Function : plat_fwu_set_images_source() [when PSA_FWU_SUPPORT == 1]
1189~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1190
1191::
1192
Sughosh Ganu6aaf2572021-11-17 17:08:10 +05301193 Argument : const struct fwu_metadata *metadata
Manish V Badarkhe0f20e502021-06-20 21:14:46 +01001194 Return : void
1195
1196This function is mandatory when PSA_FWU_SUPPORT is enabled.
1197It provides a means to retrieve image specification (offset in
1198non-volatile storage and length) of active/updated images using the passed
1199FWU metadata, and update I/O policies of active/updated images using retrieved
1200image specification information.
1201Further I/O layer operations such as I/O open, I/O read, etc. on these
1202images rely on this function call.
1203
1204In Arm platforms, this function is used to set an I/O policy of the FIP image,
1205container of all active/updated secure and non-secure images.
1206
1207Function : plat_fwu_set_metadata_image_source() [when PSA_FWU_SUPPORT == 1]
1208~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1209
1210::
1211
1212 Argument : unsigned int image_id, uintptr_t *dev_handle,
1213 uintptr_t *image_spec
1214 Return : int
1215
1216This function is mandatory when PSA_FWU_SUPPORT is enabled. It is
1217responsible for setting up the platform I/O policy of the requested metadata
1218image (either FWU_METADATA_IMAGE_ID or BKUP_FWU_METADATA_IMAGE_ID) that will
1219be used to load this image from the platform's non-volatile storage.
1220
1221FWU metadata can not be always stored as a raw image in non-volatile storage
1222to define its image specification (offset in non-volatile storage and length)
1223statically in I/O policy.
1224For example, the FWU metadata image is stored as a partition inside the GUID
1225partition table image. Its specification is defined in the partition table
1226that needs to be parsed dynamically.
1227This function provides a means to retrieve such dynamic information to set
1228the I/O policy of the FWU metadata image.
1229Further I/O layer operations such as I/O open, I/O read, etc. on FWU metadata
1230image relies on this function call.
1231
1232It returns '0' on success, otherwise a negative error value on error.
1233Alongside, returns device handle and image specification from the I/O policy
1234of the requested FWU metadata image.
1235
Sughosh Ganu40c175e2021-12-01 15:53:32 +05301236Function : plat_fwu_get_boot_idx() [when PSA_FWU_SUPPORT == 1]
1237~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1238
1239::
1240
1241 Argument : void
1242 Return : uint32_t
1243
1244This function is mandatory when PSA_FWU_SUPPORT is enabled. It provides the
1245means to retrieve the boot index value from the platform. The boot index is the
1246bank from which the platform has booted the firmware images.
1247
1248By default, the platform will read the metadata structure and try to boot from
1249the active bank. If the platform fails to boot from the active bank due to
1250reasons like an Authentication failure, or on crossing a set number of watchdog
1251resets while booting from the active bank, the platform can then switch to boot
1252from a different bank. This function then returns the bank that the platform
1253should boot its images from.
1254
Douglas Raillard6f625742017-06-28 15:23:03 +01001255Common optional modifications
1256-----------------------------
1257
1258The following are helper functions implemented by the firmware that perform
1259common platform-specific tasks. A platform may choose to override these
1260definitions.
1261
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001262Function : plat_set_my_stack()
1263~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001264
1265::
1266
1267 Argument : void
1268 Return : void
1269
1270This function sets the current stack pointer to the normal memory stack that
1271has been allocated for the current CPU. For BL images that only require a
1272stack for the primary CPU, the UP version of the function is used. The size
1273of the stack allocated to each CPU is specified by the platform defined
1274constant ``PLATFORM_STACK_SIZE``.
1275
1276Common implementations of this function for the UP and MP BL images are
Paul Beesley34760952019-04-12 14:19:42 +01001277provided in ``plat/common/aarch64/platform_up_stack.S`` and
1278``plat/common/aarch64/platform_mp_stack.S``
Douglas Raillard6f625742017-06-28 15:23:03 +01001279
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001280Function : plat_get_my_stack()
1281~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001282
1283::
1284
1285 Argument : void
1286 Return : uintptr_t
1287
1288This function returns the base address of the normal memory stack that
1289has been allocated for the current CPU. For BL images that only require a
1290stack for the primary CPU, the UP version of the function is used. The size
1291of the stack allocated to each CPU is specified by the platform defined
1292constant ``PLATFORM_STACK_SIZE``.
1293
1294Common implementations of this function for the UP and MP BL images are
Paul Beesley34760952019-04-12 14:19:42 +01001295provided in ``plat/common/aarch64/platform_up_stack.S`` and
1296``plat/common/aarch64/platform_mp_stack.S``
Douglas Raillard6f625742017-06-28 15:23:03 +01001297
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001298Function : plat_report_exception()
1299~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001300
1301::
1302
1303 Argument : unsigned int
1304 Return : void
1305
1306A platform may need to report various information about its status when an
1307exception is taken, for example the current exception level, the CPU security
1308state (secure/non-secure), the exception type, and so on. This function is
1309called in the following circumstances:
1310
1311- In BL1, whenever an exception is taken.
1312- In BL2, whenever an exception is taken.
1313
1314The default implementation doesn't do anything, to avoid making assumptions
1315about the way the platform displays its status information.
1316
1317For AArch64, this function receives the exception type as its argument.
1318Possible values for exceptions types are listed in the
Paul Beesley34760952019-04-12 14:19:42 +01001319``include/common/bl_common.h`` header file. Note that these constants are not
Dan Handley4def07d2018-03-01 18:44:00 +00001320related to any architectural exception code; they are just a TF-A convention.
Douglas Raillard6f625742017-06-28 15:23:03 +01001321
1322For AArch32, this function receives the exception mode as its argument.
1323Possible values for exception modes are listed in the
Paul Beesley34760952019-04-12 14:19:42 +01001324``include/lib/aarch32/arch.h`` header file.
Douglas Raillard6f625742017-06-28 15:23:03 +01001325
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001326Function : plat_reset_handler()
1327~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001328
1329::
1330
1331 Argument : void
1332 Return : void
1333
1334A platform may need to do additional initialization after reset. This function
Paul Beesleybe653a62019-10-04 16:17:46 +00001335allows the platform to do the platform specific initializations. Platform
Paul Beesley8aabea32019-01-11 18:26:51 +00001336specific errata workarounds could also be implemented here. The API should
Douglas Raillard6f625742017-06-28 15:23:03 +01001337preserve the values of callee saved registers x19 to x29.
1338
1339The default implementation doesn't do anything. If a platform needs to override
Paul Beesley34760952019-04-12 14:19:42 +01001340the default implementation, refer to the :ref:`Firmware Design` for general
Douglas Raillard6f625742017-06-28 15:23:03 +01001341guidelines.
1342
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001343Function : plat_disable_acp()
1344~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001345
1346::
1347
1348 Argument : void
1349 Return : void
1350
John Tsichritzis4901c532018-07-23 09:18:04 +01001351This API allows a platform to disable the Accelerator Coherency Port (if
Douglas Raillard6f625742017-06-28 15:23:03 +01001352present) during a cluster power down sequence. The default weak implementation
John Tsichritzis4901c532018-07-23 09:18:04 +01001353doesn't do anything. Since this API is called during the power down sequence,
Douglas Raillard6f625742017-06-28 15:23:03 +01001354it has restrictions for stack usage and it can use the registers x0 - x17 as
1355scratch registers. It should preserve the value in x18 register as it is used
1356by the caller to store the return address.
1357
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001358Function : plat_error_handler()
1359~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001360
1361::
1362
1363 Argument : int
1364 Return : void
1365
1366This API is called when the generic code encounters an error situation from
1367which it cannot continue. It allows the platform to perform error reporting or
1368recovery actions (for example, reset the system). This function must not return.
1369
1370The parameter indicates the type of error using standard codes from ``errno.h``.
1371Possible errors reported by the generic code are:
1372
1373- ``-EAUTH``: a certificate or image could not be authenticated (when Trusted
1374 Board Boot is enabled)
1375- ``-ENOENT``: the requested image or certificate could not be found or an IO
1376 error was detected
Dan Handley4def07d2018-03-01 18:44:00 +00001377- ``-ENOMEM``: resources exhausted. TF-A does not use dynamic memory, so this
1378 error is usually an indication of an incorrect array size
Douglas Raillard6f625742017-06-28 15:23:03 +01001379
1380The default implementation simply spins.
1381
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001382Function : plat_panic_handler()
1383~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001384
1385::
1386
1387 Argument : void
1388 Return : void
1389
1390This API is called when the generic code encounters an unexpected error
1391situation from which it cannot recover. This function must not return,
1392and must be implemented in assembly because it may be called before the C
1393environment is initialized.
1394
Paul Beesleye1c50262019-03-13 16:20:44 +00001395.. note::
1396 The address from where it was called is stored in x30 (Link Register).
1397 The default implementation simply spins.
Douglas Raillard6f625742017-06-28 15:23:03 +01001398
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01001399Function : plat_system_reset()
1400~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1401
1402::
1403
1404 Argument : void
1405 Return : void
1406
1407This function is used by the platform to resets the system. It can be used
1408in any specific use-case where system needs to be resetted. For example,
1409in case of DRTM implementation this function reset the system after
1410writing the DRTM error code in the non-volatile storage. This function
1411never returns. Failure in reset results in panic.
1412
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001413Function : plat_get_bl_image_load_info()
1414~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001415
1416::
1417
1418 Argument : void
1419 Return : bl_load_info_t *
1420
1421This function returns pointer to the list of images that the platform has
Soby Mathew509af922018-09-27 16:46:41 +01001422populated to load. This function is invoked in BL2 to load the
1423BL3xx images.
Douglas Raillard6f625742017-06-28 15:23:03 +01001424
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001425Function : plat_get_next_bl_params()
1426~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001427
1428::
1429
1430 Argument : void
1431 Return : bl_params_t *
1432
1433This function returns a pointer to the shared memory that the platform has
Dan Handley4def07d2018-03-01 18:44:00 +00001434kept aside to pass TF-A related information that next BL image needs. This
Soby Mathew509af922018-09-27 16:46:41 +01001435function is invoked in BL2 to pass this information to the next BL
1436image.
Douglas Raillard6f625742017-06-28 15:23:03 +01001437
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001438Function : plat_get_stack_protector_canary()
1439~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001440
1441::
1442
1443 Argument : void
1444 Return : u_register_t
1445
1446This function returns a random value that is used to initialize the canary used
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001447when the stack protector is enabled with ENABLE_STACK_PROTECTOR. A predictable
Douglas Raillard6f625742017-06-28 15:23:03 +01001448value will weaken the protection as the attacker could easily write the right
1449value as part of the attack most of the time. Therefore, it should return a
1450true random number.
1451
Paul Beesleye1c50262019-03-13 16:20:44 +00001452.. warning::
1453 For the protection to be effective, the global data need to be placed at
1454 a lower address than the stack bases. Failure to do so would allow an
1455 attacker to overwrite the canary as part of the stack buffer overflow attack.
Douglas Raillard6f625742017-06-28 15:23:03 +01001456
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001457Function : plat_flush_next_bl_params()
1458~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001459
1460::
1461
1462 Argument : void
1463 Return : void
1464
1465This function flushes to main memory all the image params that are passed to
Soby Mathew509af922018-09-27 16:46:41 +01001466next image. This function is invoked in BL2 to flush this information
1467to the next BL image.
Douglas Raillard6f625742017-06-28 15:23:03 +01001468
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001469Function : plat_log_get_prefix()
1470~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Soby Mathew7f56e9a2017-09-04 11:49:29 +01001471
1472::
1473
1474 Argument : unsigned int
1475 Return : const char *
1476
1477This function defines the prefix string corresponding to the `log_level` to be
Dan Handley4def07d2018-03-01 18:44:00 +00001478prepended to all the log output from TF-A. The `log_level` (argument) will
1479correspond to one of the standard log levels defined in debug.h. The platform
1480can override the common implementation to define a different prefix string for
John Tsichritzis6d01a462018-06-07 16:31:34 +01001481the log output. The implementation should be robust to future changes that
Dan Handley4def07d2018-03-01 18:44:00 +00001482increase the number of log levels.
Soby Mathew7f56e9a2017-09-04 11:49:29 +01001483
Manish V Badarkhe0e753432020-02-22 08:43:00 +00001484Function : plat_get_soc_version()
Manish V Badarkhe2b066102020-03-26 14:20:27 +00001485~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Manish V Badarkhe0e753432020-02-22 08:43:00 +00001486
1487::
1488
1489 Argument : void
1490 Return : int32_t
1491
1492This function returns soc version which mainly consist of below fields
1493
1494::
1495
1496 soc_version[30:24] = JEP-106 continuation code for the SiP
1497 soc_version[23:16] = JEP-106 identification code with parity bit for the SiP
Manish V Badarkhe6f0a2f02020-07-23 20:23:01 +01001498 soc_version[15:0] = Implementation defined SoC ID
Manish V Badarkhe0e753432020-02-22 08:43:00 +00001499
1500Function : plat_get_soc_revision()
Manish V Badarkhe2b066102020-03-26 14:20:27 +00001501~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Manish V Badarkhe0e753432020-02-22 08:43:00 +00001502
1503::
1504
1505 Argument : void
1506 Return : int32_t
1507
1508This function returns soc revision in below format
1509
1510::
1511
1512 soc_revision[0:30] = SOC revision of specific SOC
1513
Arvind Ram Prakashcb4ee3e2025-07-11 10:39:41 -05001514Function : plat_get_soc_name()
1515~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1516
1517::
1518
1519 Argument : char **
1520 Return : int32_t
1521
1522The plat_get_soc_name() function allows a platform to expose the SoC name to
1523the firmware. It takes a pointer to a character pointer as an argument, which
1524must be set to point to a static, null-terminated SoC name string. The string
1525must be encoded in UTF-8 and should use only printable ASCII characters for
1526compatibility. It must not exceed 136 bytes, including the null terminator. On
1527success, the function returns SMC_ARCH_CALL_SUCCESS. If the platform does not
1528support SoC name retrieval, it returns SMC_ARCH_CALL_NOT_SUPPORTED. This API
1529allows platforms to support SoC name queries via SMCCC_ARCH_SOC_ID.
1530
Manish V Badarkhe6f0a2f02020-07-23 20:23:01 +01001531Function : plat_is_smccc_feature_available()
1532~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1533
1534::
1535
1536 Argument : u_register_t
1537 Return : int32_t
1538
1539This function returns SMC_ARCH_CALL_SUCCESS if the platform supports
1540the SMCCC function specified in the argument; otherwise returns
1541SMC_ARCH_CALL_NOT_SUPPORTED.
1542
Okash Khawaja04c73032022-11-04 12:38:01 +00001543Function : plat_can_cmo()
1544~~~~~~~~~~~~~~~~~~~~~~~~~
1545
1546::
1547
1548 Argument : void
1549 Return : uint64_t
1550
1551When CONDITIONAL_CMO flag is enabled:
1552
1553- This function indicates whether cache management operations should be
1554 performed. It returns 0 if CMOs should be skipped and non-zero
1555 otherwise.
Okash Khawajaa2e01232022-11-14 12:50:30 +00001556- The function must not clobber x1, x2 and x3. It's also not safe to rely on
1557 stack. Otherwise obey AAPCS.
Okash Khawaja04c73032022-11-04 12:38:01 +00001558
Yann Gautiera03dafe2024-04-10 12:03:33 +02001559Struct: plat_try_images_ops [optional]
1560~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1561
1562This optional structure holds platform hooks for alternative images load.
1563It has to be defined in platform code and registered by calling
1564plat_setup_try_img_ops() function, passing it the address of the
1565plat_try_images_ops struct.
1566
1567Function : plat_setup_try_img_ops [optional]
1568............................................
1569
1570::
1571
1572 Argument : const struct plat_try_images_ops *
1573 Return : void
1574
1575This optional function is called to register platform try images ops, given
1576as argument.
1577
1578Function : plat_try_images_ops.next_instance [optional]
1579.......................................................
1580
1581::
1582
1583 Argument : unsigned int image_id
1584 Return : int
1585
1586This optional function tries to load images from alternative places.
1587In case PSA FWU is not used, it can be any instance or media. If PSA FWU is
1588used, it is mandatory that the backup image is on the same media.
1589This is required for MTD devices like NAND.
1590The argument is the ID of the image for which we are looking for an alternative
1591place. It returns 0 in case of success and a negative errno value otherwise.
1592
Douglas Raillard6f625742017-06-28 15:23:03 +01001593Modifications specific to a Boot Loader stage
1594---------------------------------------------
1595
1596Boot Loader Stage 1 (BL1)
1597-------------------------
1598
1599BL1 implements the reset vector where execution starts from after a cold or
1600warm boot. For each CPU, BL1 is responsible for the following tasks:
1601
1602#. Handling the reset as described in section 2.2
1603
1604#. In the case of a cold boot and the CPU being the primary CPU, ensuring that
1605 only this CPU executes the remaining BL1 code, including loading and passing
1606 control to the BL2 stage.
1607
1608#. Identifying and starting the Firmware Update process (if required).
1609
1610#. Loading the BL2 image from non-volatile storage into secure memory at the
1611 address specified by the platform defined constant ``BL2_BASE``.
1612
1613#. Populating a ``meminfo`` structure with the following information in memory,
1614 accessible by BL2 immediately upon entry.
1615
1616 ::
1617
1618 meminfo.total_base = Base address of secure RAM visible to BL2
1619 meminfo.total_size = Size of secure RAM visible to BL2
Douglas Raillard6f625742017-06-28 15:23:03 +01001620
Soby Mathew509af922018-09-27 16:46:41 +01001621 By default, BL1 places this ``meminfo`` structure at the end of secure
1622 memory visible to BL2.
Douglas Raillard6f625742017-06-28 15:23:03 +01001623
Soby Mathewb2a68f82018-02-16 14:52:52 +00001624 It is possible for the platform to decide where it wants to place the
1625 ``meminfo`` structure for BL2 or restrict the amount of memory visible to
1626 BL2 by overriding the weak default implementation of
1627 ``bl1_plat_handle_post_image_load`` API.
Douglas Raillard6f625742017-06-28 15:23:03 +01001628
1629The following functions need to be implemented by the platform port to enable
1630BL1 to perform the above tasks.
1631
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001632Function : bl1_early_platform_setup() [mandatory]
1633~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001634
1635::
1636
1637 Argument : void
1638 Return : void
1639
1640This function executes with the MMU and data caches disabled. It is only called
1641by the primary CPU.
1642
Dan Handley4def07d2018-03-01 18:44:00 +00001643On Arm standard platforms, this function:
Douglas Raillard6f625742017-06-28 15:23:03 +01001644
1645- Enables a secure instance of SP805 to act as the Trusted Watchdog.
1646
1647- Initializes a UART (PL011 console), which enables access to the ``printf``
1648 family of functions in BL1.
1649
1650- Enables issuing of snoop and DVM (Distributed Virtual Memory) requests to
1651 the CCI slave interface corresponding to the cluster that includes the
1652 primary CPU.
1653
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001654Function : bl1_plat_arch_setup() [mandatory]
1655~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001656
1657::
1658
1659 Argument : void
1660 Return : void
1661
1662This function performs any platform-specific and architectural setup that the
1663platform requires. Platform-specific setup might include configuration of
1664memory controllers and the interconnect.
1665
Dan Handley4def07d2018-03-01 18:44:00 +00001666In Arm standard platforms, this function enables the MMU.
Douglas Raillard6f625742017-06-28 15:23:03 +01001667
1668This function helps fulfill requirement 2 above.
1669
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001670Function : bl1_platform_setup() [mandatory]
1671~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001672
1673::
1674
1675 Argument : void
1676 Return : void
1677
1678This function executes with the MMU and data caches enabled. It is responsible
1679for performing any remaining platform-specific setup that can occur after the
1680MMU and data cache have been enabled.
1681
Dan Handley4def07d2018-03-01 18:44:00 +00001682In Arm standard platforms, this function initializes the storage abstraction
Douglas Raillard6f625742017-06-28 15:23:03 +01001683layer used to load the next bootloader image.
1684
1685This function helps fulfill requirement 4 above.
1686
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001687Function : bl1_plat_sec_mem_layout() [mandatory]
1688~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001689
1690::
1691
1692 Argument : void
1693 Return : meminfo *
1694
1695This function should only be called on the cold boot path. It executes with the
1696MMU and data caches enabled. The pointer returned by this function must point to
1697a ``meminfo`` structure containing the extents and availability of secure RAM for
1698the BL1 stage.
1699
1700::
1701
1702 meminfo.total_base = Base address of secure RAM visible to BL1
1703 meminfo.total_size = Size of secure RAM visible to BL1
Douglas Raillard6f625742017-06-28 15:23:03 +01001704
1705This information is used by BL1 to load the BL2 image in secure RAM. BL1 also
1706populates a similar structure to tell BL2 the extents of memory available for
1707its own use.
1708
1709This function helps fulfill requirements 4 and 5 above.
1710
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001711Function : bl1_plat_prepare_exit() [optional]
1712~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001713
1714::
1715
1716 Argument : entry_point_info_t *
1717 Return : void
1718
1719This function is called prior to exiting BL1 in response to the
1720``BL1_SMC_RUN_IMAGE`` SMC request raised by BL2. It should be used to perform
1721platform specific clean up or bookkeeping operations before transferring
1722control to the next image. It receives the address of the ``entry_point_info_t``
1723structure passed from BL2. This function runs with MMU disabled.
1724
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001725Function : bl1_plat_set_ep_info() [optional]
1726~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001727
1728::
1729
1730 Argument : unsigned int image_id, entry_point_info_t *ep_info
1731 Return : void
1732
1733This function allows platforms to override ``ep_info`` for the given ``image_id``.
1734
1735The default implementation just returns.
1736
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001737Function : bl1_plat_get_next_image_id() [optional]
1738~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001739
1740::
1741
1742 Argument : void
1743 Return : unsigned int
1744
1745This and the following function must be overridden to enable the FWU feature.
1746
1747BL1 calls this function after platform setup to identify the next image to be
1748loaded and executed. If the platform returns ``BL2_IMAGE_ID`` then BL1 proceeds
1749with the normal boot sequence, which loads and executes BL2. If the platform
1750returns a different image id, BL1 assumes that Firmware Update is required.
1751
Dan Handley4def07d2018-03-01 18:44:00 +00001752The default implementation always returns ``BL2_IMAGE_ID``. The Arm development
Douglas Raillard6f625742017-06-28 15:23:03 +01001753platforms override this function to detect if firmware update is required, and
1754if so, return the first image in the firmware update process.
1755
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001756Function : bl1_plat_get_image_desc() [optional]
1757~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001758
1759::
1760
1761 Argument : unsigned int image_id
1762 Return : image_desc_t *
1763
1764BL1 calls this function to get the image descriptor information ``image_desc_t``
1765for the provided ``image_id`` from the platform.
1766
Dan Handley4def07d2018-03-01 18:44:00 +00001767The default implementation always returns a common BL2 image descriptor. Arm
Douglas Raillard6f625742017-06-28 15:23:03 +01001768standard platforms return an image descriptor corresponding to BL2 or one of
1769the firmware update images defined in the Trusted Board Boot Requirements
1770specification.
1771
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001772Function : bl1_plat_handle_pre_image_load() [optional]
1773~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Masahiro Yamada11f001c2018-02-01 16:46:18 +09001774
1775::
1776
Soby Mathew566034f2018-02-08 17:45:12 +00001777 Argument : unsigned int image_id
Masahiro Yamada11f001c2018-02-01 16:46:18 +09001778 Return : int
1779
1780This function can be used by the platforms to update/use image information
Soby Mathew566034f2018-02-08 17:45:12 +00001781corresponding to ``image_id``. This function is invoked in BL1, both in cold
1782boot and FWU code path, before loading the image.
Masahiro Yamada11f001c2018-02-01 16:46:18 +09001783
Harrison Mutai6a4da292024-01-04 16:18:47 +00001784Function : bl1_plat_calc_bl2_layout() [optional]
1785~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
1786
1787::
1788
1789 Argument : const meminfo_t *bl1_mem_layout, meminfo_t *bl2_mem_layout
1790 Return : void
1791
1792This utility function calculates the memory layout of BL2, representing it in a
1793`meminfo_t` structure. The default implementation derives this layout from the
1794positioning of BL1’s RW data at the top of the memory layout.
1795
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001796Function : bl1_plat_handle_post_image_load() [optional]
1797~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Masahiro Yamada11f001c2018-02-01 16:46:18 +09001798
1799::
1800
Soby Mathew566034f2018-02-08 17:45:12 +00001801 Argument : unsigned int image_id
Masahiro Yamada11f001c2018-02-01 16:46:18 +09001802 Return : int
1803
1804This function can be used by the platforms to update/use image information
Soby Mathew566034f2018-02-08 17:45:12 +00001805corresponding to ``image_id``. This function is invoked in BL1, both in cold
1806boot and FWU code path, after loading and authenticating the image.
Masahiro Yamada11f001c2018-02-01 16:46:18 +09001807
Soby Mathewb2a68f82018-02-16 14:52:52 +00001808The default weak implementation of this function calculates the amount of
1809Trusted SRAM that can be used by BL2 and allocates a ``meminfo_t``
1810structure at the beginning of this free memory and populates it. The address
1811of ``meminfo_t`` structure is updated in ``arg1`` of the entrypoint
1812information to BL2.
1813
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001814Function : bl1_plat_fwu_done() [optional]
1815~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001816
1817::
1818
1819 Argument : unsigned int image_id, uintptr_t image_src,
1820 unsigned int image_size
1821 Return : void
1822
1823BL1 calls this function when the FWU process is complete. It must not return.
1824The platform may override this function to take platform specific action, for
1825example to initiate the normal boot flow.
1826
1827The default implementation spins forever.
1828
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001829Function : bl1_plat_mem_check() [mandatory]
1830~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001831
1832::
1833
1834 Argument : uintptr_t mem_base, unsigned int mem_size,
1835 unsigned int flags
1836 Return : int
1837
1838BL1 calls this function while handling FWU related SMCs, more specifically when
1839copying or authenticating an image. Its responsibility is to ensure that the
1840region of memory identified by ``mem_base`` and ``mem_size`` is mapped in BL1, and
1841that this memory corresponds to either a secure or non-secure memory region as
1842indicated by the security state of the ``flags`` argument.
1843
1844This function can safely assume that the value resulting from the addition of
1845``mem_base`` and ``mem_size`` fits into a ``uintptr_t`` type variable and does not
1846overflow.
1847
1848This function must return 0 on success, a non-null error code otherwise.
1849
1850The default implementation of this function asserts therefore platforms must
1851override it when using the FWU feature.
1852
1853Boot Loader Stage 2 (BL2)
1854-------------------------
1855
1856The BL2 stage is executed only by the primary CPU, which is determined in BL1
1857using the ``platform_is_primary_cpu()`` function. BL1 passed control to BL2 at
Soby Mathew509af922018-09-27 16:46:41 +01001858``BL2_BASE``. BL2 executes in Secure EL1 and and invokes
1859``plat_get_bl_image_load_info()`` to retrieve the list of images to load from
1860non-volatile storage to secure/non-secure RAM. After all the images are loaded
1861then BL2 invokes ``plat_get_next_bl_params()`` to get the list of executable
1862images to be passed to the next BL image.
Douglas Raillard6f625742017-06-28 15:23:03 +01001863
1864The following functions must be implemented by the platform port to enable BL2
1865to perform the above tasks.
1866
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001867Function : bl2_early_platform_setup2() [mandatory]
1868~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001869
1870::
1871
Soby Mathew509af922018-09-27 16:46:41 +01001872 Argument : u_register_t, u_register_t, u_register_t, u_register_t
Douglas Raillard6f625742017-06-28 15:23:03 +01001873 Return : void
1874
1875This function executes with the MMU and data caches disabled. It is only called
Soby Mathew509af922018-09-27 16:46:41 +01001876by the primary CPU. The 4 arguments are passed by BL1 to BL2 and these arguments
1877are platform specific.
Douglas Raillard6f625742017-06-28 15:23:03 +01001878
Soby Mathew509af922018-09-27 16:46:41 +01001879On Arm standard platforms, the arguments received are :
1880
Manish V Badarkhed1c54e52020-06-24 15:58:38 +01001881 arg0 - Points to load address of FW_CONFIG
Soby Mathew509af922018-09-27 16:46:41 +01001882
1883 arg1 - ``meminfo`` structure populated by BL1. The platform copies
1884 the contents of ``meminfo`` as it may be subsequently overwritten by BL2.
Douglas Raillard6f625742017-06-28 15:23:03 +01001885
Dan Handley4def07d2018-03-01 18:44:00 +00001886On Arm standard platforms, this function also:
Douglas Raillard6f625742017-06-28 15:23:03 +01001887
1888- Initializes a UART (PL011 console), which enables access to the ``printf``
1889 family of functions in BL2.
1890
1891- Initializes the storage abstraction layer used to load further bootloader
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001892 images. It is necessary to do this early on platforms with a SCP_BL2 image,
1893 since the later ``bl2_platform_setup`` must be done after SCP_BL2 is loaded.
Douglas Raillard6f625742017-06-28 15:23:03 +01001894
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001895Function : bl2_plat_arch_setup() [mandatory]
1896~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001897
1898::
1899
1900 Argument : void
1901 Return : void
1902
1903This function executes with the MMU and data caches disabled. It is only called
1904by the primary CPU.
1905
1906The purpose of this function is to perform any architectural initialization
1907that varies across platforms.
1908
Dan Handley4def07d2018-03-01 18:44:00 +00001909On Arm standard platforms, this function enables the MMU.
Douglas Raillard6f625742017-06-28 15:23:03 +01001910
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001911Function : bl2_platform_setup() [mandatory]
1912~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001913
1914::
1915
1916 Argument : void
1917 Return : void
1918
1919This function may execute with the MMU and data caches enabled if the platform
1920port does the necessary initialization in ``bl2_plat_arch_setup()``. It is only
1921called by the primary CPU.
1922
1923The purpose of this function is to perform any platform initialization
1924specific to BL2.
1925
Dan Handley4def07d2018-03-01 18:44:00 +00001926In Arm standard platforms, this function performs security setup, including
Douglas Raillard6f625742017-06-28 15:23:03 +01001927configuration of the TrustZone controller to allow non-secure masters access
1928to most of DRAM. Part of DRAM is reserved for secure world use.
1929
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001930Function : bl2_plat_handle_pre_image_load() [optional]
1931~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01001932
1933::
1934
1935 Argument : unsigned int
1936 Return : int
1937
1938This function can be used by the platforms to update/use image information
Masahiro Yamadaba68ef52018-02-01 16:45:51 +09001939for given ``image_id``. This function is currently invoked in BL2 before
Soby Mathew509af922018-09-27 16:46:41 +01001940loading each image.
Masahiro Yamadaba68ef52018-02-01 16:45:51 +09001941
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001942Function : bl2_plat_handle_post_image_load() [optional]
1943~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Masahiro Yamadaba68ef52018-02-01 16:45:51 +09001944
1945::
1946
1947 Argument : unsigned int
1948 Return : int
1949
1950This function can be used by the platforms to update/use image information
1951for given ``image_id``. This function is currently invoked in BL2 after
Soby Mathew509af922018-09-27 16:46:41 +01001952loading each image.
Douglas Raillard6f625742017-06-28 15:23:03 +01001953
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001954Function : bl2_plat_preload_setup [optional]
1955~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Roberto Vargas01f62b62017-09-26 12:53:01 +01001956
1957::
John Tsichritzis677ad322018-06-06 09:38:10 +01001958
Roberto Vargas01f62b62017-09-26 12:53:01 +01001959 Argument : void
1960 Return : void
1961
1962This optional function performs any BL2 platform initialization
1963required before image loading, that is not done later in
Yann Gautier2c303e32024-02-05 11:28:29 +01001964bl2_platform_setup().
Roberto Vargas01f62b62017-09-26 12:53:01 +01001965
Roberto Vargas4cd17692017-11-20 13:36:10 +00001966Boot Loader Stage 2 (BL2) at EL3
1967--------------------------------
1968
Dan Handley4def07d2018-03-01 18:44:00 +00001969When the platform has a non-TF-A Boot ROM it is desirable to jump
1970directly to BL2 instead of TF-A BL1. In this case BL2 is expected to
Paul Beesley34760952019-04-12 14:19:42 +01001971execute at EL3 instead of executing at EL1. Refer to the :ref:`Firmware Design`
1972document for more information.
Roberto Vargas4cd17692017-11-20 13:36:10 +00001973
1974All mandatory functions of BL2 must be implemented, except the functions
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001975bl2_early_platform_setup and bl2_el3_plat_arch_setup, because
1976their work is done now by bl2_el3_early_platform_setup and
1977bl2_el3_plat_arch_setup. These functions should generally implement
1978the bl1_plat_xxx() and bl2_plat_xxx() functionality combined.
Roberto Vargas4cd17692017-11-20 13:36:10 +00001979
1980
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001981Function : bl2_el3_early_platform_setup() [mandatory]
1982~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Roberto Vargas4cd17692017-11-20 13:36:10 +00001983
1984::
John Tsichritzis677ad322018-06-06 09:38:10 +01001985
Roberto Vargas4cd17692017-11-20 13:36:10 +00001986 Argument : u_register_t, u_register_t, u_register_t, u_register_t
1987 Return : void
1988
1989This function executes with the MMU and data caches disabled. It is only called
1990by the primary CPU. This function receives four parameters which can be used
1991by the platform to pass any needed information from the Boot ROM to BL2.
1992
Dan Handley4def07d2018-03-01 18:44:00 +00001993On Arm standard platforms, this function does the following:
Roberto Vargas4cd17692017-11-20 13:36:10 +00001994
1995- Initializes a UART (PL011 console), which enables access to the ``printf``
1996 family of functions in BL2.
1997
1998- Initializes the storage abstraction layer used to load further bootloader
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01001999 images. It is necessary to do this early on platforms with a SCP_BL2 image,
2000 since the later ``bl2_platform_setup`` must be done after SCP_BL2 is loaded.
Roberto Vargas4cd17692017-11-20 13:36:10 +00002001
2002- Initializes the private variables that define the memory layout used.
2003
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002004Function : bl2_el3_plat_arch_setup() [mandatory]
2005~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Roberto Vargas4cd17692017-11-20 13:36:10 +00002006
2007::
John Tsichritzis677ad322018-06-06 09:38:10 +01002008
Roberto Vargas4cd17692017-11-20 13:36:10 +00002009 Argument : void
2010 Return : void
2011
2012This function executes with the MMU and data caches disabled. It is only called
2013by the primary CPU.
2014
2015The purpose of this function is to perform any architectural initialization
2016that varies across platforms.
2017
Dan Handley4def07d2018-03-01 18:44:00 +00002018On Arm standard platforms, this function enables the MMU.
Roberto Vargas4cd17692017-11-20 13:36:10 +00002019
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002020Function : bl2_el3_plat_prepare_exit() [optional]
2021~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Roberto Vargas4cd17692017-11-20 13:36:10 +00002022
2023::
John Tsichritzis677ad322018-06-06 09:38:10 +01002024
Roberto Vargas4cd17692017-11-20 13:36:10 +00002025 Argument : void
2026 Return : void
2027
2028This function is called prior to exiting BL2 and run the next image.
2029It should be used to perform platform specific clean up or bookkeeping
2030operations before transferring control to the next image. This function
2031runs with MMU disabled.
2032
Douglas Raillard6f625742017-06-28 15:23:03 +01002033FWU Boot Loader Stage 2 (BL2U)
2034------------------------------
2035
2036The AP Firmware Updater Configuration, BL2U, is an optional part of the FWU
2037process and is executed only by the primary CPU. BL1 passes control to BL2U at
2038``BL2U_BASE``. BL2U executes in Secure-EL1 and is responsible for:
2039
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002040#. (Optional) Transferring the optional SCP_BL2U binary image from AP secure
2041 memory to SCP RAM. BL2U uses the SCP_BL2U ``image_info`` passed by BL1.
2042 ``SCP_BL2U_BASE`` defines the address in AP secure memory where SCP_BL2U
2043 should be copied from. Subsequent handling of the SCP_BL2U image is
Douglas Raillard6f625742017-06-28 15:23:03 +01002044 implemented by the platform specific ``bl2u_plat_handle_scp_bl2u()`` function.
2045 If ``SCP_BL2U_BASE`` is not defined then this step is not performed.
2046
2047#. Any platform specific setup required to perform the FWU process. For
Dan Handley4def07d2018-03-01 18:44:00 +00002048 example, Arm standard platforms initialize the TZC controller so that the
Douglas Raillard6f625742017-06-28 15:23:03 +01002049 normal world can access DDR memory.
2050
2051The following functions must be implemented by the platform port to enable
2052BL2U to perform the tasks mentioned above.
2053
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002054Function : bl2u_early_platform_setup() [mandatory]
2055~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002056
2057::
2058
2059 Argument : meminfo *mem_info, void *plat_info
2060 Return : void
2061
2062This function executes with the MMU and data caches disabled. It is only
2063called by the primary CPU. The arguments to this function is the address
2064of the ``meminfo`` structure and platform specific info provided by BL1.
2065
2066The platform may copy the contents of the ``mem_info`` and ``plat_info`` into
2067private storage as the original memory may be subsequently overwritten by BL2U.
2068
Dan Handley4def07d2018-03-01 18:44:00 +00002069On Arm CSS platforms ``plat_info`` is interpreted as an ``image_info_t`` structure,
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002070to extract SCP_BL2U image information, which is then copied into a private
Douglas Raillard6f625742017-06-28 15:23:03 +01002071variable.
2072
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002073Function : bl2u_plat_arch_setup() [mandatory]
2074~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002075
2076::
2077
2078 Argument : void
2079 Return : void
2080
2081This function executes with the MMU and data caches disabled. It is only
2082called by the primary CPU.
2083
2084The purpose of this function is to perform any architectural initialization
2085that varies across platforms, for example enabling the MMU (since the memory
2086map differs across platforms).
2087
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002088Function : bl2u_platform_setup() [mandatory]
2089~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002090
2091::
2092
2093 Argument : void
2094 Return : void
2095
2096This function may execute with the MMU and data caches enabled if the platform
2097port does the necessary initialization in ``bl2u_plat_arch_setup()``. It is only
2098called by the primary CPU.
2099
2100The purpose of this function is to perform any platform initialization
2101specific to BL2U.
2102
Dan Handley4def07d2018-03-01 18:44:00 +00002103In Arm standard platforms, this function performs security setup, including
Douglas Raillard6f625742017-06-28 15:23:03 +01002104configuration of the TrustZone controller to allow non-secure masters access
2105to most of DRAM. Part of DRAM is reserved for secure world use.
2106
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002107Function : bl2u_plat_handle_scp_bl2u() [optional]
2108~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002109
2110::
2111
2112 Argument : void
2113 Return : int
2114
2115This function is used to perform any platform-specific actions required to
2116handle the SCP firmware. Typically it transfers the image into SCP memory using
2117a platform-specific protocol and waits until SCP executes it and signals to the
2118Application Processor (AP) for BL2U execution to continue.
2119
2120This function returns 0 on success, a negative error code otherwise.
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002121This function is included if SCP_BL2U_BASE is defined.
Douglas Raillard6f625742017-06-28 15:23:03 +01002122
2123Boot Loader Stage 3-1 (BL31)
2124----------------------------
2125
2126During cold boot, the BL31 stage is executed only by the primary CPU. This is
2127determined in BL1 using the ``platform_is_primary_cpu()`` function. BL1 passes
2128control to BL31 at ``BL31_BASE``. During warm boot, BL31 is executed by all
2129CPUs. BL31 executes at EL3 and is responsible for:
2130
2131#. Re-initializing all architectural and platform state. Although BL1 performs
2132 some of this initialization, BL31 remains resident in EL3 and must ensure
2133 that EL3 architectural and platform state is completely initialized. It
2134 should make no assumptions about the system state when it receives control.
2135
2136#. Passing control to a normal world BL image, pre-loaded at a platform-
Soby Mathew509af922018-09-27 16:46:41 +01002137 specific address by BL2. On ARM platforms, BL31 uses the ``bl_params`` list
2138 populated by BL2 in memory to do this.
Douglas Raillard6f625742017-06-28 15:23:03 +01002139
2140#. Providing runtime firmware services. Currently, BL31 only implements a
2141 subset of the Power State Coordination Interface (PSCI) API as a runtime
Boyan Karatotev228b06a2022-11-22 12:01:09 +00002142 service. See :ref:`psci_in_bl31` below for details of porting the PSCI
Douglas Raillard6f625742017-06-28 15:23:03 +01002143 implementation.
2144
2145#. Optionally passing control to the BL32 image, pre-loaded at a platform-
Paul Beesley8aabea32019-01-11 18:26:51 +00002146 specific address by BL2. BL31 exports a set of APIs that allow runtime
Douglas Raillard6f625742017-06-28 15:23:03 +01002147 services to specify the security state in which the next image should be
Soby Mathew509af922018-09-27 16:46:41 +01002148 executed and run the corresponding image. On ARM platforms, BL31 uses the
2149 ``bl_params`` list populated by BL2 in memory to do this.
Douglas Raillard6f625742017-06-28 15:23:03 +01002150
2151If BL31 is a reset vector, It also needs to handle the reset as specified in
2152section 2.2 before the tasks described above.
2153
2154The following functions must be implemented by the platform port to enable BL31
2155to perform the above tasks.
2156
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002157Function : bl31_early_platform_setup2() [mandatory]
2158~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002159
2160::
2161
Soby Mathew509af922018-09-27 16:46:41 +01002162 Argument : u_register_t, u_register_t, u_register_t, u_register_t
Douglas Raillard6f625742017-06-28 15:23:03 +01002163 Return : void
2164
2165This function executes with the MMU and data caches disabled. It is only called
Soby Mathew509af922018-09-27 16:46:41 +01002166by the primary CPU. BL2 can pass 4 arguments to BL31 and these arguments are
2167platform specific.
Douglas Raillard6f625742017-06-28 15:23:03 +01002168
Soby Mathew509af922018-09-27 16:46:41 +01002169In Arm standard platforms, the arguments received are :
Douglas Raillard6f625742017-06-28 15:23:03 +01002170
Soby Mathew509af922018-09-27 16:46:41 +01002171 arg0 - The pointer to the head of `bl_params_t` list
2172 which is list of executable images following BL31,
Douglas Raillard6f625742017-06-28 15:23:03 +01002173
Soby Mathew509af922018-09-27 16:46:41 +01002174 arg1 - Points to load address of SOC_FW_CONFIG if present
Mikael Olsson5d5fb102021-02-12 17:30:16 +01002175 except in case of Arm FVP and Juno platform.
Manish V Badarkhed1c54e52020-06-24 15:58:38 +01002176
Mikael Olsson5d5fb102021-02-12 17:30:16 +01002177 In case of Arm FVP and Juno platform, points to load address
Manish V Badarkhed1c54e52020-06-24 15:58:38 +01002178 of FW_CONFIG.
Soby Mathew509af922018-09-27 16:46:41 +01002179
2180 arg2 - Points to load address of HW_CONFIG if present
2181
2182 arg3 - A special value to verify platform parameters from BL2 to BL31. Not
2183 used in release builds.
2184
2185The function runs through the `bl_param_t` list and extracts the entry point
2186information for BL32 and BL33. It also performs the following:
Douglas Raillard6f625742017-06-28 15:23:03 +01002187
2188- Initialize a UART (PL011 console), which enables access to the ``printf``
2189 family of functions in BL31.
2190
2191- Enable issuing of snoop and DVM (Distributed Virtual Memory) requests to the
2192 CCI slave interface corresponding to the cluster that includes the primary
2193 CPU.
2194
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002195Function : bl31_plat_arch_setup() [mandatory]
2196~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002197
2198::
2199
2200 Argument : void
2201 Return : void
2202
2203This function executes with the MMU and data caches disabled. It is only called
2204by the primary CPU.
2205
2206The purpose of this function is to perform any architectural initialization
2207that varies across platforms.
2208
Dan Handley4def07d2018-03-01 18:44:00 +00002209On Arm standard platforms, this function enables the MMU.
Douglas Raillard6f625742017-06-28 15:23:03 +01002210
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002211Function : bl31_platform_setup() [mandatory]
Douglas Raillard6f625742017-06-28 15:23:03 +01002212~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2213
2214::
2215
2216 Argument : void
2217 Return : void
2218
2219This function may execute with the MMU and data caches enabled if the platform
2220port does the necessary initialization in ``bl31_plat_arch_setup()``. It is only
2221called by the primary CPU.
2222
2223The purpose of this function is to complete platform initialization so that both
2224BL31 runtime services and normal world software can function correctly.
2225
Dan Handley4def07d2018-03-01 18:44:00 +00002226On Arm standard platforms, this function does the following:
Douglas Raillard6f625742017-06-28 15:23:03 +01002227
2228- Initialize the generic interrupt controller.
2229
2230 Depending on the GIC driver selected by the platform, the appropriate GICv2
2231 or GICv3 initialization will be done, which mainly consists of:
2232
2233 - Enable secure interrupts in the GIC CPU interface.
2234 - Disable the legacy interrupt bypass mechanism.
2235 - Configure the priority mask register to allow interrupts of all priorities
2236 to be signaled to the CPU interface.
2237 - Mark SGIs 8-15 and the other secure interrupts on the platform as secure.
2238 - Target all secure SPIs to CPU0.
2239 - Enable these secure interrupts in the GIC distributor.
2240 - Configure all other interrupts as non-secure.
2241 - Enable signaling of secure interrupts in the GIC distributor.
2242
2243- Enable system-level implementation of the generic timer counter through the
2244 memory mapped interface.
2245
2246- Grant access to the system counter timer module
2247
2248- Initialize the power controller device.
2249
2250 In particular, initialise the locks that prevent concurrent accesses to the
2251 power controller device.
2252
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002253Function : bl31_plat_runtime_setup() [optional]
2254~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002255
2256::
2257
2258 Argument : void
2259 Return : void
2260
Salman Nabi31edc202024-02-01 15:28:43 +00002261The purpose of this function is to allow the platform to perform any BL31 runtime
2262setup just prior to BL31 exit during cold boot. The default weak implementation
2263of this function is empty. Any platform that needs to perform additional runtime
2264setup, before BL31 exits, will need to override this function.
Douglas Raillard6f625742017-06-28 15:23:03 +01002265
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002266Function : bl31_plat_get_next_image_ep_info() [mandatory]
2267~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002268
2269::
2270
Sandrine Bailleux1ec1ebf2018-05-14 14:25:47 +02002271 Argument : uint32_t
Douglas Raillard6f625742017-06-28 15:23:03 +01002272 Return : entry_point_info *
2273
2274This function may execute with the MMU and data caches enabled if the platform
2275port does the necessary initializations in ``bl31_plat_arch_setup()``.
2276
2277This function is called by ``bl31_main()`` to retrieve information provided by
2278BL2 for the next image in the security state specified by the argument. BL31
2279uses this information to pass control to that image in the specified security
2280state. This function must return a pointer to the ``entry_point_info`` structure
2281(that was copied during ``bl31_early_platform_setup()``) if the image exists. It
2282should return NULL otherwise.
2283
Javier Almansa Sobrino8c980a42021-11-24 18:37:37 +00002284Function : plat_rmmd_get_cca_attest_token() [mandatory when ENABLE_RME == 1]
Soby Mathew0f9159b2022-03-22 16:19:39 +00002285~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2286
2287::
2288
Juan Pablo Conde42cf6022024-07-10 14:33:42 -05002289 Argument : uintptr_t, size_t *, uintptr_t, size_t, size_t *
Soby Mathew0f9159b2022-03-22 16:19:39 +00002290 Return : int
2291
Juan Pablo Conde42cf6022024-07-10 14:33:42 -05002292This function returns the Platform attestation token. If the full token does
2293not fit in the buffer, the function will return a hunk of the token and
2294indicate how many bytes were copied and how many are pending. Multiple calls
2295to this function may be needed to retrieve the entire token.
Soby Mathew0f9159b2022-03-22 16:19:39 +00002296
2297The parameters of the function are:
2298
2299 arg0 - A pointer to the buffer where the Platform token should be copied by
Juan Pablo Conde42cf6022024-07-10 14:33:42 -05002300 this function. If the platform token does not completely fit in the
2301 buffer, the function may return a piece of the token only.
Soby Mathew0f9159b2022-03-22 16:19:39 +00002302
Juan Pablo Conde42cf6022024-07-10 14:33:42 -05002303 arg1 - Contains the size (in bytes) of the buffer passed in arg0. In
2304 addition, this parameter is used by the function to return the size
2305 of the platform token length hunk copied to the buffer.
Soby Mathew0f9159b2022-03-22 16:19:39 +00002306
2307 arg2 - A pointer to the buffer where the challenge object is stored.
2308
2309 arg3 - The length of the challenge object in bytes. Possible values are 32,
Juan Pablo Conde42cf6022024-07-10 14:33:42 -05002310 48 and 64. This argument must be zero for subsequent calls to
2311 retrieve the remaining hunks of the token.
Soby Mathew0f9159b2022-03-22 16:19:39 +00002312
Juan Pablo Conde42cf6022024-07-10 14:33:42 -05002313 arg4 - Returns the remaining length of the token (in bytes) that is yet to
2314 be returned in further calls.
2315
2316The function returns 0 on success, -EINVAL on failure and -EAGAIN if the
2317resource associated with the platform token retrieval is busy.
Soby Mathew0f9159b2022-03-22 16:19:39 +00002318
Javier Almansa Sobrino8c980a42021-11-24 18:37:37 +00002319Function : plat_rmmd_get_cca_realm_attest_key() [mandatory when ENABLE_RME == 1]
2320~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Soby Mathewa0435102022-03-22 16:21:19 +00002321
2322::
2323
2324 Argument : uintptr_t, size_t *, unsigned int
2325 Return : int
2326
2327This function returns the delegated realm attestation key which will be used to
2328sign Realm attestation token. The API currently only supports P-384 ECC curve
2329key.
2330
2331The parameters of the function are:
2332
2333 arg0 - A pointer to the buffer where the attestation key should be copied
2334 by this function. The buffer must be big enough to hold the
2335 attestation key.
2336
2337 arg1 - Contains the size (in bytes) of the buffer passed in arg0. The
2338 function returns the attestation key length in this parameter.
2339
2340 arg2 - The type of the elliptic curve to which the requested attestation key
2341 belongs.
2342
2343The function returns 0 on success, -EINVAL on failure.
2344
Javier Almansa Sobrino8c980a42021-11-24 18:37:37 +00002345Function : plat_rmmd_get_el3_rmm_shared_mem() [when ENABLE_RME == 1]
2346~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2347
2348::
2349
2350 Argument : uintptr_t *
2351 Return : size_t
2352
2353This function returns the size of the shared area between EL3 and RMM (or 0 on
2354failure). A pointer to the shared area (or a NULL pointer on failure) is stored
2355in the pointer passed as argument.
2356
Javier Almansa Sobrino1d0ca402022-04-25 17:18:15 +01002357Function : plat_rmmd_load_manifest() [when ENABLE_RME == 1]
2358~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2359
2360::
2361
2362 Arguments : rmm_manifest_t *manifest
2363 Return : int
2364
2365When ENABLE_RME is enabled, this function populates a boot manifest for the
2366RMM image and stores it in the area specified by manifest.
2367
2368When ENABLE_RME is disabled, this function is not used.
2369
Tushar Khandelwalf801fdc2024-04-22 15:35:40 +01002370Function : plat_rmm_mecid_key_update() [when ENABLE_RME == 1]
2371~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2372
2373::
2374
2375 Argument : uint16_t
2376 Return : int
2377
2378This function is invoked by BL31's RMMD when there is a request from the RMM
2379monitor to update the tweak for the encryption key associated to a MECID.
2380
2381The first parameter (``uint16_t mecid``) contains the MECID for which the
2382encryption key is to be updated.
2383
2384Return value is 0 upon success and -EFAULT otherwise.
2385
2386This function needs to be implemented by a platform if it enables RME.
2387
Raghu Krishnamurthyb2263572024-10-13 17:22:43 -07002388Function : plat_rmmd_el3_token_sign_push_req() [mandatory when RMMD_ENABLE_EL3_TOKEN_SIGN == 1]
2389~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2390
2391::
2392
2393 Arguments : const struct el3_token_sign_request *req
2394 Return : int
2395
2396Queue realm attestation token signing request from the RMM in EL3. The interface between
2397the RMM and EL3 is modeled as a queue but the underlying implementation may be different,
2398so long as the semantics of queuing and the error codes are used as defined below.
2399
2400See :ref:`el3_token_sign_request_struct` for definition of the request structure.
2401
2402Optional interface from the RMM-EL3 interface v0.4 onwards.
2403
2404The parameters of the functions are:
2405 arg0: Pointer to the token sign request to be pushed to EL3.
2406 The structure must be located in the RMM-EL3 shared
2407 memory buffer and must be locked before use.
2408
2409Return codes:
2410 - E_RMM_OK On Success.
2411 - E_RMM_INVAL If the arguments are invalid.
2412 - E_RMM_AGAIN Indicates that the request was not queued since the
2413 queue in EL3 is full. This may also be returned for any reason
2414 or situation in the system, that prevents accepting the request
2415 from the RMM.
2416 - E_RMM_UNK If the SMC is not implemented or if interface
2417 version is < 0.4.
2418
2419Function : plat_rmmd_el3_token_sign_pull_resp() [mandatory when RMMD_ENABLE_EL3_TOKEN_SIGN == 1]
2420~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2421
2422::
2423
2424 Arguments : struct el3_token_sign_response *resp
2425 Return : int
2426
2427Populate the attestation signing response in the ``resp`` parameter. The interface between
2428the RMM and EL3 is modeled as a queue for responses but the underlying implementation may
2429be different, so long as the semantics of queuing and the error codes are used as defined
2430below.
2431
2432See :ref:`el3_token_sign_response_struct` for definition of the response structure.
2433
2434Optional interface from the RMM-EL3 interface v0.4 onwards.
2435
2436The parameters of the functions are:
2437 resp: Pointer to the token sign response to get from EL3.
2438 The structure must be located in the RMM-EL3 shared
2439 memory buffer and must be locked before use.
2440
2441Return:
2442 - E_RMM_OK On Success.
2443 - E_RMM_INVAL If the arguments are invalid.
2444 - E_RMM_AGAIN Indicates that a response is not ready yet.
2445 - E_RMM_UNK If the SMC is not implemented or if interface
2446 version is < 0.4.
2447
2448Function : plat_rmmd_el3_token_sign_get_rak_pub() [mandatory when RMMD_ENABLE_EL3_TOKEN_SIGN == 1]
2449~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2450
2451::
2452
2453 Argument : uintptr_t, size_t *, unsigned int
2454 Return : int
2455
2456This function returns the public portion of the realm attestation key which will be used to
2457sign Realm attestation token. Typically, with delegated attestation, the private key is
2458returned, however, there may be platforms where the private key bits are better protected
2459in a platform specific manner such that the private key is not exposed. In such cases,
2460the RMM will only cache the public key and forward any requests such as signing, that
2461uses the private key to EL3. The API currently only supports P-384 ECC curve key.
2462
2463This is an optional interface from the RMM-EL3 interface v0.4 onwards.
2464
2465The parameters of the function are:
2466
2467 arg0 - A pointer to the buffer where the public key should be copied
2468 by this function. The buffer must be big enough to hold the
2469 attestation key.
2470
2471 arg1 - Contains the size (in bytes) of the buffer passed in arg0. The
2472 function returns the attestation key length in this parameter.
2473
2474 arg2 - The type of the elliptic curve to which the requested attestation key
2475 belongs.
2476
2477The function returns E_RMM_OK on success, RMM_E_INVAL if arguments are invalid and
2478E_RMM_UNK if the SMC is not implemented or if interface version is < 0.4.
2479
Sona Mathew0616bf02025-04-02 00:22:18 -05002480Function : plat_rmmd_el3_ide_key_program() [mandatory when RMMD_ENABLE_IDE_KEY_PROG == 1]
2481~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2482
2483::
2484
2485 Argument : uint64_t, uint64_t, uint64_t, struct rp_ide_key_info_t *, uint64_t, uint64_t
2486 Return : int
2487
2488This function sets the key/IV info for an IDE stream at the Root port. The key is 256 bits
2489and IV is 96 bits. The caller calls this SMC to program this key to the Rx and Tx ports
2490and for each substream corresponding to a single keyset. The platform should validate
2491the arguments `Ecam address` and `Rootport ID` before acting on it. The arguments `request ID`
2492and `cookie` are to be ignored for blocking mode and are pass-through to the response for
2493non-blocking mode.
2494
2495The platform needs to ensure proper exclusives are in place when accessed from multiple CPUs.
2496Depending on the expected latency for IDE-KM interface, the platform should choose blocking
2497or non-blocking semantics. More details about IDE Setup flow can be found
2498in this `RFC <https://github.com/TF-RMM/tf-rmm/wiki/RFC:-EL3-RMM-IDE-KM-Interface>`_.
2499
2500The parameters of the function are:
2501
2502 arg0 - The ecam address, to access and configure PCI devices in a system.
2503
2504 arg1 - The rootport ID used to identify the PCIe rootport of a connected device.
2505
2506 arg2 - The IDE stream info associated with a physical device, this parameter packs the
2507 the keyset, direction, substream and stream ID info.
2508
2509 arg3 - Structure with key and IV info.
2510
2511 arg4 - The request ID, is used in non-blocking mode only and can be ignored in blocking mode.
2512
2513 arg5 - The cookie variable, is used in non-blocking mode only and can be ignored in blocking
2514 mode.
2515
2516The function returns E_RMM_OK on success, E_RMM_INVAL if arguments are invalid, E_RMM_FAULT
2517if the key programming is unsuccesful, E_RMM_UNK for an unknown error, E_RMM_AGAIN returned
2518only for non-blocking mode if the IDE-KM interface is busy or the request queue is full.
2519E_RMM_INPROGRESS returned if the request is queued successfully and used only in non-blocking
2520mode.
2521
2522Function : plat_rmmd_el3_ide_key_set_go() [mandatory when RMMD_ENABLE_IDE_KEY_PROG == 1]
2523~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2524
2525::
2526
2527 Argument : uint64_t, uint64_t, uint64_t, uint64_t, uint64_t
2528 Return : int
2529
2530This function activates the IDE stream at the Root Port once all the keys have been
2531programmed. The platform should validate the arguments `Ecam address` and `Rootport ID`
2532before acting on it. The arguments `request ID` and `cookie` are to be ignored for blocking
2533mode and are pass-through to the response for non-blocking mode.
2534
2535The platform needs to ensure proper exclusives are in place when accessed from multiple CPUs.
2536Depending on the expected latency for IDE-KM interface, the platform should choose blocking
2537or non-blocking semantics. More details about IDE Setup flow can be found
2538in this `RFC <https://github.com/TF-RMM/tf-rmm/wiki/RFC:-EL3-RMM-IDE-KM-Interface>`_.
2539
2540The parameters of the function are:
2541
2542 arg0 - The ecam address, to access and configure PCI devices in a system.
2543
2544 arg1 - The rootport ID used to identify the PCIe rootport of a connected device.
2545
2546 arg2 - The IDE stream info associated with a physical device, this parameter packs the
2547 the keyset, direction, substream and stream ID info.
2548
2549 arg3 - The request ID, is used in non-blocking mode only and can be ignored in blocking mode.
2550
2551 arg4 - The cookie variable, is used in non-blocking mode only and can be ignored in blocking
2552 mode.
2553
2554The function returns E_RMM_OK on success, E_RMM_INVAL if arguments are invalid, E_RMM_FAULT
2555if the key programming is unsuccesful, E_RMM_UNK for an unknown error, E_RMM_AGAIN returned
2556only for non-blocking mode if the IDE-KM interface is busy or the request queue is full.
2557E_RMM_INPROGRESS returned if the request is queued successfully and used only in non-blocking
2558mode.
2559
2560Function : plat_rmmd_el3_ide_key_set_stop() [mandatory when RMMD_ENABLE_IDE_KEY_PROG == 1]
2561~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2562
2563::
2564
2565 Argument : uint64_t, uint64_t, uint64_t, uint64_t, uint64_t
2566 Return : int
2567
2568This function stops the IDE stream and is used to tear down the IDE stream at Root Port.
2569The platform should validate the arguments `Ecam address` and `Rootport ID` before acting
2570on it. The arguments `request ID` and `cookie` are to be ignored for blocking
2571mode and are pass-through to the response for non-blocking mode.
2572
2573The platform needs to ensure proper exclusives are in place when accessed from multiple CPUs.
2574Depending on the expected latency for IDE-KM interface, the platform should choose blocking
2575or non-blocking semantics. More details about IDE Setup flow can be found
2576in this `RFC <https://github.com/TF-RMM/tf-rmm/wiki/RFC:-EL3-RMM-IDE-KM-Interface>`_.
2577
2578The parameters of the function are:
2579
2580 arg0 - The ecam address, to access and configure PCI devices in a system.
2581
2582 arg1 - The rootport ID used to identify the PCIe rootport of a connected device.
2583
2584 arg2 - The IDE stream info associated with a physical device, this parameter packs the
2585 the keyset, direction, substream and stream ID info.
2586
2587 arg3 - The request ID, is used in non-blocking mode only and can be ignored in blocking mode.
2588
2589 arg4 - The cookie variable, is used in non-blocking mode only and can be ignored in blocking
2590 mode.
2591
2592The function returns E_RMM_OK on success, E_RMM_INVAL if arguments are invalid, E_RMM_FAULT
2593if the key programming is unsuccesful, E_RMM_UNK for an unknown error, E_RMM_AGAIN returned
2594only for non-blocking mode if the IDE-KM interface is busy or the request queue is full.
2595E_RMM_INPROGRESS returned if the request is queued successfully and used only in non-blocking
2596mode.
2597
2598Function : plat_rmmd_el3_ide_km_pull_response() [mandatory when RMMD_ENABLE_IDE_KEY_PROG == 1]
2599~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2600
2601::
2602
2603 Argument : uint64_t, uint64_t, uint64_t *, uint64_t *, uint64_t *
2604 Return : int
2605
2606This function retrieves a reponse for any of the prior non-blocking IDE-KM requests. The
2607caller has to identify the request and populate the accurate response. For blocking calls,
2608this function always returns E_RMM_UNK.
2609
2610The platform needs to ensure proper exclusives are in place when accessed from multiple CPUs.
2611Depending on the expected latency for IDE-KM interface, the platform should choose blocking
2612or non-blocking semantics. More details about IDE Setup flow can be found
2613in this `RFC <https://github.com/TF-RMM/tf-rmm/wiki/RFC:-EL3-RMM-IDE-KM-Interface>`_.
2614
2615The parameters of the function are:
2616
2617 arg0 - The ecam address, to access and configure PCI devices in a system.
2618
2619 arg1 - The rootport ID used to identify the PCIe rootport of a connected device.
2620
2621 arg2 - Retrieved response corresponding to the previous IDE_KM request.
2622
2623 arg3 - returns the passthrough request ID of the retrieved response.
2624
2625 arg4 - returns the passthrough cookie of the retrieved response.
2626
2627The function returns E_RMM_OK if response is retrieved successfully, E_RMM_INVAL if arguments
2628to this function are invalid, E_RMM_UNK if response retrieval failed for an unknown error or
2629IDE-KM interface is having blocking semantics, E_RMM_AGAIN if the response queue is empty.
2630
2631The `arg2` return parameter can return the following values:
2632E_RMM_OK - The previous request was successful.
2633E_RMM_FAULT - The previous request was not successful.
2634E_RMM_INVAL - Arguments to previous request were incorrect.
2635E_RMM_UNK - Previous request returned Unknown error.
2636
Jeenu Viswambharan64ee2632018-04-27 15:17:03 +01002637Function : bl31_plat_enable_mmu [optional]
2638~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2639
2640::
2641
2642 Argument : uint32_t
2643 Return : void
2644
2645This function enables the MMU. The boot code calls this function with MMU and
2646caches disabled. This function should program necessary registers to enable
2647translation, and upon return, the MMU on the calling PE must be enabled.
2648
2649The function must honor flags passed in the first argument. These flags are
2650defined by the translation library, and can be found in the file
2651``include/lib/xlat_tables/xlat_mmu_helpers.h``.
2652
2653On DynamIQ systems, this function must not use stack while enabling MMU, which
Paul Beesley8aabea32019-01-11 18:26:51 +00002654is how the function in xlat table library version 2 is implemented.
Jeenu Viswambharan64ee2632018-04-27 15:17:03 +01002655
Alexei Fedoroved108b52019-09-13 14:11:59 +01002656Function : plat_init_apkey [optional]
2657~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Antonio Nino Diazb86048c2019-02-19 11:53:51 +00002658
2659::
2660
2661 Argument : void
Alexei Fedoroved108b52019-09-13 14:11:59 +01002662 Return : uint128_t
Antonio Nino Diazb86048c2019-02-19 11:53:51 +00002663
Alexei Fedoroved108b52019-09-13 14:11:59 +01002664This function returns the 128-bit value which can be used to program ARMv8.3
2665pointer authentication keys.
Antonio Nino Diazb86048c2019-02-19 11:53:51 +00002666
2667The value should be obtained from a reliable source of randomness.
2668
2669This function is only needed if ARMv8.3 pointer authentication is used in the
Olivier Deprez696ed162025-01-03 13:38:50 +01002670Trusted Firmware by building with ``BRANCH_PROTECTION`` option set to 1, 2 or 3.
Antonio Nino Diazb86048c2019-02-19 11:53:51 +00002671
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002672Function : plat_get_syscnt_freq2() [mandatory]
2673~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002674
2675::
2676
2677 Argument : void
2678 Return : unsigned int
2679
2680This function is used by the architecture setup code to retrieve the counter
2681frequency for the CPU's generic timer. This value will be programmed into the
Dan Handley4def07d2018-03-01 18:44:00 +00002682``CNTFRQ_EL0`` register. In Arm standard platforms, it returns the base frequency
Douglas Raillard6f625742017-06-28 15:23:03 +01002683of the system counter, which is retrieved from the first entry in the frequency
2684modes table.
2685
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002686#define : PLAT_PERCPU_BAKERY_LOCK_SIZE [optional]
2687~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002688
2689When ``USE_COHERENT_MEM = 0``, this constant defines the total memory (in
2690bytes) aligned to the cache line boundary that should be allocated per-cpu to
2691accommodate all the bakery locks.
2692
2693If this constant is not defined when ``USE_COHERENT_MEM = 0``, the linker
Chris Kayda043412023-02-14 11:30:04 +00002694calculates the size of the ``.bakery_lock`` input section, aligns it to the
Douglas Raillard6f625742017-06-28 15:23:03 +01002695nearest ``CACHE_WRITEBACK_GRANULE``, multiplies it with ``PLATFORM_CORE_COUNT``
2696and stores the result in a linker symbol. This constant prevents a platform
2697from relying on the linker and provide a more efficient mechanism for
2698accessing per-cpu bakery lock information.
2699
2700If this constant is defined and its value is not equal to the value
2701calculated by the linker then a link time assertion is raised. A compile time
2702assertion is raised if the value of the constant is not aligned to the cache
2703line boundary.
2704
Paul Beesley34760952019-04-12 14:19:42 +01002705.. _porting_guide_sdei_requirements:
2706
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002707SDEI porting requirements
2708~~~~~~~~~~~~~~~~~~~~~~~~~
2709
Paul Beesley8f62ca72019-03-13 13:58:02 +00002710The |SDEI| dispatcher requires the platform to provide the following macros
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002711and functions, of which some are optional, and some others mandatory.
2712
2713Macros
2714......
2715
2716Macro: PLAT_SDEI_NORMAL_PRI [mandatory]
2717^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2718
2719This macro must be defined to the EL3 exception priority level associated with
Paul Beesley8f62ca72019-03-13 13:58:02 +00002720Normal |SDEI| events on the platform. This must have a higher value
2721(therefore of lower priority) than ``PLAT_SDEI_CRITICAL_PRI``.
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002722
2723Macro: PLAT_SDEI_CRITICAL_PRI [mandatory]
2724^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2725
2726This macro must be defined to the EL3 exception priority level associated with
Paul Beesley8f62ca72019-03-13 13:58:02 +00002727Critical |SDEI| events on the platform. This must have a lower value
2728(therefore of higher priority) than ``PLAT_SDEI_NORMAL_PRI``.
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002729
Paul Beesley8f62ca72019-03-13 13:58:02 +00002730**Note**: |SDEI| exception priorities must be the lowest among Secure
2731priorities. Among the |SDEI| exceptions, Critical |SDEI| priority must
2732be higher than Normal |SDEI| priority.
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002733
2734Functions
2735.........
2736
Sandrine Bailleuxb62a5312020-05-15 12:05:51 +02002737Function: int plat_sdei_validate_entry_point() [optional]
2738^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002739
2740::
2741
Sandrine Bailleuxb62a5312020-05-15 12:05:51 +02002742 Argument: uintptr_t ep, unsigned int client_mode
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002743 Return: int
2744
Sandrine Bailleuxb62a5312020-05-15 12:05:51 +02002745This function validates the entry point address of the event handler provided by
2746the client for both event registration and *Complete and Resume* |SDEI| calls.
2747The function ensures that the address is valid in the client translation regime.
2748
2749The second argument is the exception level that the client is executing in. It
2750can be Non-Secure EL1 or Non-Secure EL2.
2751
2752The function must return ``0`` for successful validation, or ``-1`` upon failure.
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002753
Dan Handley4def07d2018-03-01 18:44:00 +00002754The default implementation always returns ``0``. On Arm platforms, this function
Sandrine Bailleuxb62a5312020-05-15 12:05:51 +02002755translates the entry point address within the client translation regime and
2756further ensures that the resulting physical address is located in Non-secure
2757DRAM.
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002758
2759Function: void plat_sdei_handle_masked_trigger(uint64_t mpidr, unsigned int intr) [optional]
2760^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2761
2762::
2763
2764 Argument: uint64_t
2765 Argument: unsigned int
2766 Return: void
2767
Paul Beesley8f62ca72019-03-13 13:58:02 +00002768|SDEI| specification requires that a PE comes out of reset with the events
2769masked. The client therefore is expected to call ``PE_UNMASK`` to unmask
2770|SDEI| events on the PE. No |SDEI| events can be dispatched until such
2771time.
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002772
Paul Beesley8f62ca72019-03-13 13:58:02 +00002773Should a PE receive an interrupt that was bound to an |SDEI| event while the
Jeenu Viswambharanb7cb1332017-10-16 08:43:14 +01002774events are masked on the PE, the dispatcher implementation invokes the function
2775``plat_sdei_handle_masked_trigger``. The MPIDR of the PE that received the
2776interrupt and the interrupt ID are passed as parameters.
2777
2778The default implementation only prints out a warning message.
2779
Jimmy Brisson7dfb9912020-06-22 14:18:42 -05002780.. _porting_guide_trng_requirements:
2781
2782TRNG porting requirements
2783~~~~~~~~~~~~~~~~~~~~~~~~~
2784
2785The |TRNG| backend requires the platform to provide the following values
2786and mandatory functions.
2787
2788Values
2789......
2790
2791value: uuid_t plat_trng_uuid [mandatory]
2792^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2793
2794This value must be defined to the UUID of the TRNG backend that is specific to
Jayanth Dodderi Chidanand0b22e592022-10-11 17:16:07 +01002795the hardware after ``plat_entropy_setup`` function is called. This value must
Jimmy Brisson7dfb9912020-06-22 14:18:42 -05002796conform to the SMCCC calling convention; The most significant 32 bits of the
2797UUID must not equal ``0xffffffff`` or the signed integer ``-1`` as this value in
2798w0 indicates failure to get a TRNG source.
2799
2800Functions
2801.........
2802
2803Function: void plat_entropy_setup(void) [mandatory]
2804^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2805
2806::
2807
2808 Argument: none
2809 Return: none
2810
2811This function is expected to do platform-specific initialization of any TRNG
2812hardware. This may include generating a UUID from a hardware-specific seed.
2813
2814Function: bool plat_get_entropy(uint64_t \*out) [mandatory]
2815^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2816
2817::
2818
2819 Argument: uint64_t *
2820 Return: bool
2821 Out : when the return value is true, the entropy has been written into the
2822 storage pointed to
2823
2824This function writes entropy into storage provided by the caller. If no entropy
2825is available, it must return false and the storage must not be written.
2826
Boyan Karatotev228b06a2022-11-22 12:01:09 +00002827.. _psci_in_bl31:
2828
Douglas Raillard6f625742017-06-28 15:23:03 +01002829Power State Coordination Interface (in BL31)
2830--------------------------------------------
2831
Dan Handley4def07d2018-03-01 18:44:00 +00002832The TF-A implementation of the PSCI API is based around the concept of a
2833*power domain*. A *power domain* is a CPU or a logical group of CPUs which
2834share some state on which power management operations can be performed as
2835specified by `PSCI`_. Each CPU in the system is assigned a cpu index which is
2836a unique number between ``0`` and ``PLATFORM_CORE_COUNT - 1``. The
2837*power domains* are arranged in a hierarchical tree structure and each
2838*power domain* can be identified in a system by the cpu index of any CPU that
2839is part of that domain and a *power domain level*. A processing element (for
2840example, a CPU) is at level 0. If the *power domain* node above a CPU is a
2841logical grouping of CPUs that share some state, then level 1 is that group of
2842CPUs (for example, a cluster), and level 2 is a group of clusters (for
2843example, the system). More details on the power domain topology and its
Paul Beesley34760952019-04-12 14:19:42 +01002844organization can be found in :ref:`PSCI Power Domain Tree Structure`.
Douglas Raillard6f625742017-06-28 15:23:03 +01002845
2846BL31's platform initialization code exports a pointer to the platform-specific
2847power management operations required for the PSCI implementation to function
2848correctly. This information is populated in the ``plat_psci_ops`` structure. The
2849PSCI implementation calls members of the ``plat_psci_ops`` structure for performing
2850power management operations on the power domains. For example, the target
2851CPU is specified by its ``MPIDR`` in a PSCI ``CPU_ON`` call. The ``pwr_domain_on()``
2852handler (if present) is called for the CPU power domain.
2853
2854The ``power-state`` parameter of a PSCI ``CPU_SUSPEND`` call can be used to
2855describe composite power states specific to a platform. The PSCI implementation
Antonio Nino Diaz73308612019-02-28 13:35:21 +00002856defines a generic representation of the power-state parameter, which is an
Douglas Raillard6f625742017-06-28 15:23:03 +01002857array of local power states where each index corresponds to a power domain
2858level. Each entry contains the local power state the power domain at that power
2859level could enter. It depends on the ``validate_power_state()`` handler to
2860convert the power-state parameter (possibly encoding a composite power state)
2861passed in a PSCI ``CPU_SUSPEND`` call to this representation.
2862
2863The following functions form part of platform port of PSCI functionality.
2864
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002865Function : plat_psci_stat_accounting_start() [optional]
2866~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002867
2868::
2869
2870 Argument : const psci_power_state_t *
2871 Return : void
2872
2873This is an optional hook that platforms can implement for residency statistics
2874accounting before entering a low power state. The ``pwr_domain_state`` field of
2875``state_info`` (first argument) can be inspected if stat accounting is done
2876differently at CPU level versus higher levels. As an example, if the element at
2877index 0 (CPU power level) in the ``pwr_domain_state`` array indicates a power down
2878state, special hardware logic may be programmed in order to keep track of the
2879residency statistics. For higher levels (array indices > 0), the residency
2880statistics could be tracked in software using PMF. If ``ENABLE_PMF`` is set, the
2881default implementation will use PMF to capture timestamps.
2882
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002883Function : plat_psci_stat_accounting_stop() [optional]
2884~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002885
2886::
2887
2888 Argument : const psci_power_state_t *
2889 Return : void
2890
2891This is an optional hook that platforms can implement for residency statistics
2892accounting after exiting from a low power state. The ``pwr_domain_state`` field
2893of ``state_info`` (first argument) can be inspected if stat accounting is done
2894differently at CPU level versus higher levels. As an example, if the element at
2895index 0 (CPU power level) in the ``pwr_domain_state`` array indicates a power down
2896state, special hardware logic may be programmed in order to keep track of the
2897residency statistics. For higher levels (array indices > 0), the residency
2898statistics could be tracked in software using PMF. If ``ENABLE_PMF`` is set, the
2899default implementation will use PMF to capture timestamps.
2900
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002901Function : plat_psci_stat_get_residency() [optional]
2902~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002903
2904::
2905
Deepika Bhavnani5b33ad12019-12-13 10:23:18 -06002906 Argument : unsigned int, const psci_power_state_t *, unsigned int
Douglas Raillard6f625742017-06-28 15:23:03 +01002907 Return : u_register_t
2908
2909This is an optional interface that is is invoked after resuming from a low power
2910state and provides the time spent resident in that low power state by the power
2911domain at a particular power domain level. When a CPU wakes up from suspend,
2912all its parent power domain levels are also woken up. The generic PSCI code
2913invokes this function for each parent power domain that is resumed and it
2914identified by the ``lvl`` (first argument) parameter. The ``state_info`` (second
2915argument) describes the low power state that the power domain has resumed from.
2916The current CPU is the first CPU in the power domain to resume from the low
2917power state and the ``last_cpu_idx`` (third parameter) is the index of the last
2918CPU in the power domain to suspend and may be needed to calculate the residency
2919for that power domain.
2920
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002921Function : plat_get_target_pwr_state() [optional]
2922~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002923
2924::
2925
2926 Argument : unsigned int, const plat_local_state_t *, unsigned int
2927 Return : plat_local_state_t
2928
2929The PSCI generic code uses this function to let the platform participate in
2930state coordination during a power management operation. The function is passed
2931a pointer to an array of platform specific local power state ``states`` (second
2932argument) which contains the requested power state for each CPU at a particular
2933power domain level ``lvl`` (first argument) within the power domain. The function
2934is expected to traverse this array of upto ``ncpus`` (third argument) and return
2935a coordinated target power state by the comparing all the requested power
2936states. The target power state should not be deeper than any of the requested
2937power states.
2938
2939A weak definition of this API is provided by default wherein it assumes
2940that the platform assigns a local state value in order of increasing depth
2941of the power state i.e. for two power states X & Y, if X < Y
2942then X represents a shallower power state than Y. As a result, the
2943coordinated target local power state for a power domain will be the minimum
2944of the requested local power state values.
2945
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002946Function : plat_get_power_domain_tree_desc() [mandatory]
2947~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002948
2949::
2950
2951 Argument : void
2952 Return : const unsigned char *
2953
2954This function returns a pointer to the byte array containing the power domain
2955topology tree description. The format and method to construct this array are
Paul Beesley34760952019-04-12 14:19:42 +01002956described in :ref:`PSCI Power Domain Tree Structure`. The BL31 PSCI
2957initialization code requires this array to be described by the platform, either
2958statically or dynamically, to initialize the power domain topology tree. In case
2959the array is populated dynamically, then plat_core_pos_by_mpidr() and
2960plat_my_core_pos() should also be implemented suitably so that the topology tree
2961description matches the CPU indices returned by these APIs. These APIs together
2962form the platform interface for the PSCI topology framework.
Douglas Raillard6f625742017-06-28 15:23:03 +01002963
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002964Function : plat_setup_psci_ops() [mandatory]
2965~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01002966
2967::
2968
2969 Argument : uintptr_t, const plat_psci_ops **
2970 Return : int
2971
2972This function may execute with the MMU and data caches enabled if the platform
2973port does the necessary initializations in ``bl31_plat_arch_setup()``. It is only
2974called by the primary CPU.
2975
2976This function is called by PSCI initialization code. Its purpose is to let
2977the platform layer know about the warm boot entrypoint through the
2978``sec_entrypoint`` (first argument) and to export handler routines for
2979platform-specific psci power management actions by populating the passed
2980pointer with a pointer to BL31's private ``plat_psci_ops`` structure.
2981
2982A description of each member of this structure is given below. Please refer to
Dan Handley4def07d2018-03-01 18:44:00 +00002983the Arm FVP specific implementation of these handlers in
Paul Beesley34760952019-04-12 14:19:42 +01002984``plat/arm/board/fvp/fvp_pm.c`` as an example. For each PSCI function that the
Douglas Raillard6f625742017-06-28 15:23:03 +01002985platform wants to support, the associated operation or operations in this
2986structure must be provided and implemented (Refer section 4 of
Paul Beesley34760952019-04-12 14:19:42 +01002987:ref:`Firmware Design` for the PSCI API supported in TF-A). To disable a PSCI
Dan Handley4def07d2018-03-01 18:44:00 +00002988function in a platform port, the operation should be removed from this
Douglas Raillard6f625742017-06-28 15:23:03 +01002989structure instead of providing an empty implementation.
2990
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01002991plat_psci_ops.cpu_standby()
2992...........................
Douglas Raillard6f625742017-06-28 15:23:03 +01002993
2994Perform the platform-specific actions to enter the standby state for a cpu
2995indicated by the passed argument. This provides a fast path for CPU standby
Paul Beesley8aabea32019-01-11 18:26:51 +00002996wherein overheads of PSCI state management and lock acquisition is avoided.
Douglas Raillard6f625742017-06-28 15:23:03 +01002997For this handler to be invoked by the PSCI ``CPU_SUSPEND`` API implementation,
2998the suspend state type specified in the ``power-state`` parameter should be
2999STANDBY and the target power domain level specified should be the CPU. The
3000handler should put the CPU into a low power retention state (usually by
3001issuing a wfi instruction) and ensure that it can be woken up from that
3002state by a normal interrupt. The generic code expects the handler to succeed.
3003
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003004plat_psci_ops.pwr_domain_on()
3005.............................
Douglas Raillard6f625742017-06-28 15:23:03 +01003006
3007Perform the platform specific actions to power on a CPU, specified
3008by the ``MPIDR`` (first argument). The generic code expects the platform to
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003009return PSCI_E_SUCCESS on success or PSCI_E_INTERN_FAIL for any failure.
Douglas Raillard6f625742017-06-28 15:23:03 +01003010
Varun Wadekar6cf4ae92023-04-25 14:03:27 +01003011plat_psci_ops.pwr_domain_off_early() [optional]
3012...............................................
3013
3014This optional function performs the platform specific actions to check if
3015powering off the calling CPU and its higher parent power domain levels as
3016indicated by the ``target_state`` (first argument) is possible or allowed.
3017
3018The ``target_state`` encodes the platform coordinated target local power states
3019for the CPU power domain and its parent power domain levels.
3020
3021For this handler, the local power state for the CPU power domain will be a
3022power down state where as it could be either power down, retention or run state
3023for the higher power domain levels depending on the result of state
3024coordination. The generic code expects PSCI_E_DENIED return code if the
3025platform thinks that CPU_OFF should not proceed on the calling CPU.
3026
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003027plat_psci_ops.pwr_domain_off()
3028..............................
Douglas Raillard6f625742017-06-28 15:23:03 +01003029
3030Perform the platform specific actions to prepare to power off the calling CPU
3031and its higher parent power domain levels as indicated by the ``target_state``
3032(first argument). It is called by the PSCI ``CPU_OFF`` API implementation.
3033
3034The ``target_state`` encodes the platform coordinated target local power states
3035for the CPU power domain and its parent power domain levels. The handler
3036needs to perform power management operation corresponding to the local state
3037at each power level.
3038
3039For this handler, the local power state for the CPU power domain will be a
3040power down state where as it could be either power down, retention or run state
3041for the higher power domain levels depending on the result of state
3042coordination. The generic code expects the handler to succeed.
3043
Wing Lid3488612023-05-04 08:31:19 -07003044plat_psci_ops.pwr_domain_validate_suspend() [optional]
3045......................................................
3046
3047This is an optional function that is only compiled into the build if the build
3048option ``PSCI_OS_INIT_MODE`` is enabled.
3049
3050If implemented, this function allows the platform to perform platform specific
3051validations based on hardware states. The generic code expects this function to
3052return PSCI_E_SUCCESS on success, or either PSCI_E_DENIED or
3053PSCI_E_INVALID_PARAMS as appropriate for any invalid requests.
3054
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003055plat_psci_ops.pwr_domain_suspend_pwrdown_early() [optional]
3056...........................................................
Varun Wadekar1862d622017-07-10 16:02:05 -07003057
3058This optional function may be used as a performance optimization to replace
3059or complement pwr_domain_suspend() on some platforms. Its calling semantics
3060are identical to pwr_domain_suspend(), except the PSCI implementation only
3061calls this function when suspending to a power down state, and it guarantees
3062that data caches are enabled.
3063
3064When HW_ASSISTED_COHERENCY = 0, the PSCI implementation disables data caches
3065before calling pwr_domain_suspend(). If the target_state corresponds to a
3066power down state and it is safe to perform some or all of the platform
3067specific actions in that function with data caches enabled, it may be more
3068efficient to move those actions to this function. When HW_ASSISTED_COHERENCY
3069= 1, data caches remain enabled throughout, and so there is no advantage to
3070moving platform specific actions to this function.
3071
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003072plat_psci_ops.pwr_domain_suspend()
3073..................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003074
3075Perform the platform specific actions to prepare to suspend the calling
3076CPU and its higher parent power domain levels as indicated by the
3077``target_state`` (first argument). It is called by the PSCI ``CPU_SUSPEND``
3078API implementation.
3079
3080The ``target_state`` has a similar meaning as described in
3081the ``pwr_domain_off()`` operation. It encodes the platform coordinated
3082target local power states for the CPU power domain and its parent
3083power domain levels. The handler needs to perform power management operation
3084corresponding to the local state at each power level. The generic code
3085expects the handler to succeed.
3086
Douglas Raillardc5229f82017-08-02 16:57:32 +01003087The difference between turning a power domain off versus suspending it is that
3088in the former case, the power domain is expected to re-initialize its state
3089when it is next powered on (see ``pwr_domain_on_finish()``). In the latter
3090case, the power domain is expected to save enough state so that it can resume
3091execution by restoring this state when its powered on (see
Douglas Raillard6f625742017-06-28 15:23:03 +01003092``pwr_domain_suspend_finish()``).
3093
Douglas Raillardc5229f82017-08-02 16:57:32 +01003094When suspending a core, the platform can also choose to power off the GICv3
3095Redistributor and ITS through an implementation-defined sequence. To achieve
3096this safely, the ITS context must be saved first. The architectural part is
3097implemented by the ``gicv3_its_save_disable()`` helper, but most of the needed
3098sequence is implementation defined and it is therefore the responsibility of
3099the platform code to implement the necessary sequence. Then the GIC
3100Redistributor context can be saved using the ``gicv3_rdistif_save()`` helper.
3101Powering off the Redistributor requires the implementation to support it and it
3102is the responsibility of the platform code to execute the right implementation
3103defined sequence.
3104
3105When a system suspend is requested, the platform can also make use of the
3106``gicv3_distif_save()`` helper to save the context of the GIC Distributor after
3107it has saved the context of the Redistributors and ITS of all the cores in the
3108system. The context of the Distributor can be large and may require it to be
3109allocated in a special area if it cannot fit in the platform's global static
3110data, for example in DRAM. The Distributor can then be powered down using an
3111implementation-defined sequence.
3112
Boyan Karatotevdb5fe4f2024-10-08 17:34:45 +01003113plat_psci_ops.pwr_domain_pwr_down()
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003114.......................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003115
3116This is an optional function and, if implemented, is expected to perform
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003117platform specific actions before the CPU is powered down. Since this function is
3118invoked outside the PSCI locks, the actions performed in this hook must be local
3119to the CPU or the platform must ensure that races between multiple CPUs cannot
3120occur.
Douglas Raillard6f625742017-06-28 15:23:03 +01003121
3122The ``target_state`` has a similar meaning as described in the ``pwr_domain_off()``
3123operation and it encodes the platform coordinated target local power states for
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003124the CPU power domain and its parent power domain levels.
Douglas Raillard6f625742017-06-28 15:23:03 +01003125
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003126It is preferred that this function returns. The caller will invoke
Boyan Karatotev232c1892025-03-11 16:41:33 +00003127``wfi()`` to powerdown the CPU, mitigate any powerdown errata,
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003128and handle any wakeups that may arise. Previously, this function did not return
3129and instead called ``wfi`` (in an infinite loop) directly. This is still
3130possible on platforms where this is guaranteed to be terminal, however, it is
3131strongly discouraged going forward.
Douglas Raillard6f625742017-06-28 15:23:03 +01003132
Boyan Karatotev232c1892025-03-11 16:41:33 +00003133Previously this function was called ``pwr_domain_pwr_down_wfi()`` and invoked
3134``psci_power_down_wfi()`` (now removed).
Boyan Karatotev507fca82025-03-04 09:40:25 +00003135
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003136plat_psci_ops.pwr_domain_on_finish()
3137....................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003138
3139This function is called by the PSCI implementation after the calling CPU is
3140powered on and released from reset in response to an earlier PSCI ``CPU_ON`` call.
3141It performs the platform-specific setup required to initialize enough state for
3142this CPU to enter the normal world and also provide secure runtime firmware
3143services.
3144
3145The ``target_state`` (first argument) is the prior state of the power domains
3146immediately before the CPU was turned on. It indicates which power domains
3147above the CPU might require initialization due to having previously been in
3148low power states. The generic code expects the handler to succeed.
3149
Madhukar Pappireddy10107702019-08-12 18:31:33 -05003150plat_psci_ops.pwr_domain_on_finish_late() [optional]
3151...........................................................
3152
3153This optional function is called by the PSCI implementation after the calling
3154CPU is fully powered on with respective data caches enabled. The calling CPU and
3155the associated cluster are guaranteed to be participating in coherency. This
3156function gives the flexibility to perform any platform-specific actions safely,
3157such as initialization or modification of shared data structures, without the
3158overhead of explicit cache maintainace operations.
3159
3160The ``target_state`` has a similar meaning as described in the ``pwr_domain_on_finish()``
3161operation. The generic code expects the handler to succeed.
3162
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003163plat_psci_ops.pwr_domain_suspend_finish()
3164.........................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003165
3166This function is called by the PSCI implementation after the calling CPU is
3167powered on and released from reset in response to an asynchronous wakeup
3168event, for example a timer interrupt that was programmed by the CPU during the
3169``CPU_SUSPEND`` call or ``SYSTEM_SUSPEND`` call. It performs the platform-specific
3170setup required to restore the saved state for this CPU to resume execution
3171in the normal world and also provide secure runtime firmware services.
3172
3173The ``target_state`` (first argument) has a similar meaning as described in
3174the ``pwr_domain_on_finish()`` operation. The generic code expects the platform
3175to succeed.
3176
Douglas Raillardc5229f82017-08-02 16:57:32 +01003177If the Distributor, Redistributors or ITS have been powered off as part of a
3178suspend, their context must be restored in this function in the reverse order
3179to how they were saved during suspend sequence.
3180
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003181plat_psci_ops.system_off()
3182..........................
Douglas Raillard6f625742017-06-28 15:23:03 +01003183
3184This function is called by PSCI implementation in response to a ``SYSTEM_OFF``
3185call. It performs the platform-specific system poweroff sequence after
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003186notifying the Secure Payload Dispatcher. The caller will call ``wfi`` if this
Boyan Karatotevdb5fe4f2024-10-08 17:34:45 +01003187function returns, similar to `plat_psci_ops.pwr_domain_pwr_down()`_.
Douglas Raillard6f625742017-06-28 15:23:03 +01003188
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003189plat_psci_ops.system_reset()
3190............................
Douglas Raillard6f625742017-06-28 15:23:03 +01003191
3192This function is called by PSCI implementation in response to a ``SYSTEM_RESET``
3193call. It performs the platform-specific system reset sequence after
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003194notifying the Secure Payload Dispatcher. The caller will call ``wfi`` if this
Boyan Karatotevdb5fe4f2024-10-08 17:34:45 +01003195function returns, similar to `plat_psci_ops.pwr_domain_pwr_down()`_.
Douglas Raillard6f625742017-06-28 15:23:03 +01003196
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003197plat_psci_ops.validate_power_state()
3198....................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003199
3200This function is called by the PSCI implementation during the ``CPU_SUSPEND``
3201call to validate the ``power_state`` parameter of the PSCI API and if valid,
3202populate it in ``req_state`` (second argument) array as power domain level
3203specific local states. If the ``power_state`` is invalid, the platform must
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003204return PSCI_E_INVALID_PARAMS as error, which is propagated back to the
Douglas Raillard6f625742017-06-28 15:23:03 +01003205normal world PSCI client.
3206
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003207plat_psci_ops.validate_ns_entrypoint()
3208......................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003209
3210This function is called by the PSCI implementation during the ``CPU_SUSPEND``,
3211``SYSTEM_SUSPEND`` and ``CPU_ON`` calls to validate the non-secure ``entry_point``
3212parameter passed by the normal world. If the ``entry_point`` is invalid,
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003213the platform must return PSCI_E_INVALID_ADDRESS as error, which is
Douglas Raillard6f625742017-06-28 15:23:03 +01003214propagated back to the normal world PSCI client.
3215
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003216plat_psci_ops.get_sys_suspend_power_state()
3217...........................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003218
3219This function is called by the PSCI implementation during the ``SYSTEM_SUSPEND``
3220call to get the ``req_state`` parameter from platform which encodes the power
3221domain level specific local states to suspend to system affinity level. The
3222``req_state`` will be utilized to do the PSCI state coordination and
3223``pwr_domain_suspend()`` will be invoked with the coordinated target state to
3224enter system suspend.
3225
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003226plat_psci_ops.get_pwr_lvl_state_idx()
3227.....................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003228
3229This is an optional function and, if implemented, is invoked by the PSCI
3230implementation to convert the ``local_state`` (first argument) at a specified
3231``pwr_lvl`` (second argument) to an index between 0 and
3232``PLAT_MAX_PWR_LVL_STATES`` - 1. This function is only needed if the platform
3233supports more than two local power states at each power domain level, that is
3234``PLAT_MAX_PWR_LVL_STATES`` is greater than 2, and needs to account for these
3235local power states.
3236
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003237plat_psci_ops.translate_power_state_by_mpidr()
3238..............................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003239
3240This is an optional function and, if implemented, verifies the ``power_state``
3241(second argument) parameter of the PSCI API corresponding to a target power
3242domain. The target power domain is identified by using both ``MPIDR`` (first
3243argument) and the power domain level encoded in ``power_state``. The power domain
3244level specific local states are to be extracted from ``power_state`` and be
3245populated in the ``output_state`` (third argument) array. The functionality
3246is similar to the ``validate_power_state`` function described above and is
3247envisaged to be used in case the validity of ``power_state`` depend on the
3248targeted power domain. If the ``power_state`` is invalid for the targeted power
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003249domain, the platform must return PSCI_E_INVALID_PARAMS as error. If this
Douglas Raillard6f625742017-06-28 15:23:03 +01003250function is not implemented, then the generic implementation relies on
3251``validate_power_state`` function to translate the ``power_state``.
3252
3253This function can also be used in case the platform wants to support local
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003254power state encoding for ``power_state`` parameter of PSCI_STAT_COUNT/RESIDENCY
Douglas Raillard6f625742017-06-28 15:23:03 +01003255APIs as described in Section 5.18 of `PSCI`_.
3256
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003257plat_psci_ops.get_node_hw_state()
3258.................................
Douglas Raillard6f625742017-06-28 15:23:03 +01003259
3260This is an optional function. If implemented this function is intended to return
3261the power state of a node (identified by the first parameter, the ``MPIDR``) in
3262the power domain topology (identified by the second parameter, ``power_level``),
3263as retrieved from a power controller or equivalent component on the platform.
3264Upon successful completion, the implementation must map and return the final
3265status among ``HW_ON``, ``HW_OFF`` or ``HW_STANDBY``. Upon encountering failures, it
3266must return either ``PSCI_E_INVALID_PARAMS`` or ``PSCI_E_NOT_SUPPORTED`` as
3267appropriate.
3268
3269Implementations are not expected to handle ``power_levels`` greater than
3270``PLAT_MAX_PWR_LVL``.
3271
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003272plat_psci_ops.system_reset2()
3273.............................
Roberto Vargasfe3e40e2017-09-12 10:28:35 +01003274
3275This is an optional function. If implemented this function is
3276called during the ``SYSTEM_RESET2`` call to perform a reset
3277based on the first parameter ``reset_type`` as specified in
3278`PSCI`_. The parameter ``cookie`` can be used to pass additional
3279reset information. If the ``reset_type`` is not supported, the
3280function must return ``PSCI_E_NOT_SUPPORTED``. For architectural
3281resets, all failures must return ``PSCI_E_INVALID_PARAMETERS``
3282and vendor reset can return other PSCI error codes as defined
Boyan Karatotev2b5e00d2024-12-19 16:07:29 +00003283in `PSCI`_. If this function returns success, the caller will call
Boyan Karatotevdb5fe4f2024-10-08 17:34:45 +01003284``wfi`` similar to `plat_psci_ops.pwr_domain_pwr_down()`_.
Roberto Vargasfe3e40e2017-09-12 10:28:35 +01003285
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003286plat_psci_ops.write_mem_protect()
3287.................................
Roberto Vargasfe3e40e2017-09-12 10:28:35 +01003288
3289This is an optional function. If implemented it enables or disables the
3290``MEM_PROTECT`` functionality based on the value of ``val``.
3291A non-zero value enables ``MEM_PROTECT`` and a value of zero
3292disables it. Upon encountering failures it must return a negative value
3293and on success it must return 0.
3294
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003295plat_psci_ops.read_mem_protect()
3296................................
Roberto Vargasfe3e40e2017-09-12 10:28:35 +01003297
3298This is an optional function. If implemented it returns the current
3299state of ``MEM_PROTECT`` via the ``val`` parameter. Upon encountering
3300failures it must return a negative value and on success it must
3301return 0.
3302
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003303plat_psci_ops.mem_protect_chk()
3304...............................
Roberto Vargasfe3e40e2017-09-12 10:28:35 +01003305
3306This is an optional function. If implemented it checks if a memory
3307region defined by a base address ``base`` and with a size of ``length``
3308bytes is protected by ``MEM_PROTECT``. If the region is protected
3309then it must return 0, otherwise it must return a negative number.
3310
Paul Beesley34760952019-04-12 14:19:42 +01003311.. _porting_guide_imf_in_bl31:
3312
Douglas Raillard6f625742017-06-28 15:23:03 +01003313Interrupt Management framework (in BL31)
3314----------------------------------------
3315
3316BL31 implements an Interrupt Management Framework (IMF) to manage interrupts
3317generated in either security state and targeted to EL1 or EL2 in the non-secure
3318state or EL3/S-EL1 in the secure state. The design of this framework is
Paul Beesley34760952019-04-12 14:19:42 +01003319described in the :ref:`Interrupt Management Framework`
Douglas Raillard6f625742017-06-28 15:23:03 +01003320
3321A platform should export the following APIs to support the IMF. The following
Paul Beesley8aabea32019-01-11 18:26:51 +00003322text briefly describes each API and its implementation in Arm standard
Douglas Raillard6f625742017-06-28 15:23:03 +01003323platforms. The API implementation depends upon the type of interrupt controller
Dan Handley4def07d2018-03-01 18:44:00 +00003324present in the platform. Arm standard platform layer supports both
3325`Arm Generic Interrupt Controller version 2.0 (GICv2)`_
3326and `3.0 (GICv3)`_. Juno builds the Arm platform layer to use GICv2 and the
3327FVP can be configured to use either GICv2 or GICv3 depending on the build flag
Paul Beesley43f35ef2019-05-29 13:59:40 +01003328``FVP_USE_GIC_DRIVER`` (See :ref:`build_options_arm_fvp_platform` for more
3329details).
Douglas Raillard6f625742017-06-28 15:23:03 +01003330
Madhukar Pappireddy6844c342020-07-29 09:37:25 -05003331See also: :ref:`Interrupt Controller Abstraction APIs<Platform Interrupt Controller API>`.
Jeenu Viswambharaneb68ea92017-09-22 08:32:09 +01003332
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003333Function : plat_interrupt_type_to_line() [mandatory]
3334~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003335
3336::
3337
3338 Argument : uint32_t, uint32_t
3339 Return : uint32_t
3340
Dan Handley4def07d2018-03-01 18:44:00 +00003341The Arm processor signals an interrupt exception either through the IRQ or FIQ
Douglas Raillard6f625742017-06-28 15:23:03 +01003342interrupt line. The specific line that is signaled depends on how the interrupt
3343controller (IC) reports different interrupt types from an execution context in
3344either security state. The IMF uses this API to determine which interrupt line
3345the platform IC uses to signal each type of interrupt supported by the framework
3346from a given security state. This API must be invoked at EL3.
3347
3348The first parameter will be one of the ``INTR_TYPE_*`` values (see
Paul Beesley34760952019-04-12 14:19:42 +01003349:ref:`Interrupt Management Framework`) indicating the target type of the
3350interrupt, the second parameter is the security state of the originating
3351execution context. The return result is the bit position in the ``SCR_EL3``
3352register of the respective interrupt trap: IRQ=1, FIQ=2.
Douglas Raillard6f625742017-06-28 15:23:03 +01003353
Dan Handley4def07d2018-03-01 18:44:00 +00003354In the case of Arm standard platforms using GICv2, S-EL1 interrupts are
Douglas Raillard6f625742017-06-28 15:23:03 +01003355configured as FIQs and Non-secure interrupts as IRQs from either security
3356state.
3357
Dan Handley4def07d2018-03-01 18:44:00 +00003358In the case of Arm standard platforms using GICv3, the interrupt line to be
Douglas Raillard6f625742017-06-28 15:23:03 +01003359configured depends on the security state of the execution context when the
3360interrupt is signalled and are as follows:
3361
3362- The S-EL1 interrupts are signaled as IRQ in S-EL0/1 context and as FIQ in
3363 NS-EL0/1/2 context.
3364- The Non secure interrupts are signaled as FIQ in S-EL0/1 context and as IRQ
3365 in the NS-EL0/1/2 context.
3366- The EL3 interrupts are signaled as FIQ in both S-EL0/1 and NS-EL0/1/2
3367 context.
3368
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003369Function : plat_ic_get_pending_interrupt_type() [mandatory]
3370~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003371
3372::
3373
3374 Argument : void
3375 Return : uint32_t
3376
3377This API returns the type of the highest priority pending interrupt at the
3378platform IC. The IMF uses the interrupt type to retrieve the corresponding
3379handler function. ``INTR_TYPE_INVAL`` is returned when there is no interrupt
3380pending. The valid interrupt types that can be returned are ``INTR_TYPE_EL3``,
3381``INTR_TYPE_S_EL1`` and ``INTR_TYPE_NS``. This API must be invoked at EL3.
3382
Dan Handley4def07d2018-03-01 18:44:00 +00003383In the case of Arm standard platforms using GICv2, the *Highest Priority
Douglas Raillard6f625742017-06-28 15:23:03 +01003384Pending Interrupt Register* (``GICC_HPPIR``) is read to determine the id of
3385the pending interrupt. The type of interrupt depends upon the id value as
3386follows.
3387
3388#. id < 1022 is reported as a S-EL1 interrupt
3389#. id = 1022 is reported as a Non-secure interrupt.
3390#. id = 1023 is reported as an invalid interrupt type.
3391
Dan Handley4def07d2018-03-01 18:44:00 +00003392In the case of Arm standard platforms using GICv3, the system register
Douglas Raillard6f625742017-06-28 15:23:03 +01003393``ICC_HPPIR0_EL1``, *Highest Priority Pending group 0 Interrupt Register*,
3394is read to determine the id of the pending interrupt. The type of interrupt
3395depends upon the id value as follows.
3396
3397#. id = ``PENDING_G1S_INTID`` (1020) is reported as a S-EL1 interrupt
3398#. id = ``PENDING_G1NS_INTID`` (1021) is reported as a Non-secure interrupt.
3399#. id = ``GIC_SPURIOUS_INTERRUPT`` (1023) is reported as an invalid interrupt type.
3400#. All other interrupt id's are reported as EL3 interrupt.
3401
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003402Function : plat_ic_get_pending_interrupt_id() [mandatory]
3403~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003404
3405::
3406
3407 Argument : void
3408 Return : uint32_t
3409
3410This API returns the id of the highest priority pending interrupt at the
3411platform IC. ``INTR_ID_UNAVAILABLE`` is returned when there is no interrupt
3412pending.
3413
Dan Handley4def07d2018-03-01 18:44:00 +00003414In the case of Arm standard platforms using GICv2, the *Highest Priority
Douglas Raillard6f625742017-06-28 15:23:03 +01003415Pending Interrupt Register* (``GICC_HPPIR``) is read to determine the id of the
3416pending interrupt. The id that is returned by API depends upon the value of
3417the id read from the interrupt controller as follows.
3418
3419#. id < 1022. id is returned as is.
3420#. id = 1022. The *Aliased Highest Priority Pending Interrupt Register*
3421 (``GICC_AHPPIR``) is read to determine the id of the non-secure interrupt.
3422 This id is returned by the API.
3423#. id = 1023. ``INTR_ID_UNAVAILABLE`` is returned.
3424
Dan Handley4def07d2018-03-01 18:44:00 +00003425In the case of Arm standard platforms using GICv3, if the API is invoked from
Douglas Raillard6f625742017-06-28 15:23:03 +01003426EL3, the system register ``ICC_HPPIR0_EL1``, *Highest Priority Pending Interrupt
3427group 0 Register*, is read to determine the id of the pending interrupt. The id
3428that is returned by API depends upon the value of the id read from the
3429interrupt controller as follows.
3430
3431#. id < ``PENDING_G1S_INTID`` (1020). id is returned as is.
3432#. id = ``PENDING_G1S_INTID`` (1020) or ``PENDING_G1NS_INTID`` (1021). The system
3433 register ``ICC_HPPIR1_EL1``, *Highest Priority Pending Interrupt group 1
3434 Register* is read to determine the id of the group 1 interrupt. This id
3435 is returned by the API as long as it is a valid interrupt id
3436#. If the id is any of the special interrupt identifiers,
3437 ``INTR_ID_UNAVAILABLE`` is returned.
3438
3439When the API invoked from S-EL1 for GICv3 systems, the id read from system
3440register ``ICC_HPPIR1_EL1``, *Highest Priority Pending group 1 Interrupt
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003441Register*, is returned if is not equal to GIC_SPURIOUS_INTERRUPT (1023) else
Douglas Raillard6f625742017-06-28 15:23:03 +01003442``INTR_ID_UNAVAILABLE`` is returned.
3443
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003444Function : plat_ic_acknowledge_interrupt() [mandatory]
3445~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003446
3447::
3448
3449 Argument : void
3450 Return : uint32_t
3451
3452This API is used by the CPU to indicate to the platform IC that processing of
Jeenu Viswambharan4ee8d0b2017-10-24 15:13:59 +01003453the highest pending interrupt has begun. It should return the raw, unmodified
3454value obtained from the interrupt controller when acknowledging an interrupt.
3455The actual interrupt number shall be extracted from this raw value using the API
Madhukar Pappireddy6844c342020-07-29 09:37:25 -05003456`plat_ic_get_interrupt_id()<plat_ic_get_interrupt_id>`.
Douglas Raillard6f625742017-06-28 15:23:03 +01003457
Dan Handley4def07d2018-03-01 18:44:00 +00003458This function in Arm standard platforms using GICv2, reads the *Interrupt
Douglas Raillard6f625742017-06-28 15:23:03 +01003459Acknowledge Register* (``GICC_IAR``). This changes the state of the highest
3460priority pending interrupt from pending to active in the interrupt controller.
Jeenu Viswambharan4ee8d0b2017-10-24 15:13:59 +01003461It returns the value read from the ``GICC_IAR``, unmodified.
Douglas Raillard6f625742017-06-28 15:23:03 +01003462
Dan Handley4def07d2018-03-01 18:44:00 +00003463In the case of Arm standard platforms using GICv3, if the API is invoked
Douglas Raillard6f625742017-06-28 15:23:03 +01003464from EL3, the function reads the system register ``ICC_IAR0_EL1``, *Interrupt
3465Acknowledge Register group 0*. If the API is invoked from S-EL1, the function
3466reads the system register ``ICC_IAR1_EL1``, *Interrupt Acknowledge Register
3467group 1*. The read changes the state of the highest pending interrupt from
3468pending to active in the interrupt controller. The value read is returned
Jeenu Viswambharan4ee8d0b2017-10-24 15:13:59 +01003469unmodified.
Douglas Raillard6f625742017-06-28 15:23:03 +01003470
3471The TSP uses this API to start processing of the secure physical timer
3472interrupt.
3473
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003474Function : plat_ic_end_of_interrupt() [mandatory]
3475~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003476
3477::
3478
3479 Argument : uint32_t
3480 Return : void
3481
3482This API is used by the CPU to indicate to the platform IC that processing of
3483the interrupt corresponding to the id (passed as the parameter) has
3484finished. The id should be the same as the id returned by the
3485``plat_ic_acknowledge_interrupt()`` API.
3486
Dan Handley4def07d2018-03-01 18:44:00 +00003487Arm standard platforms write the id to the *End of Interrupt Register*
Douglas Raillard6f625742017-06-28 15:23:03 +01003488(``GICC_EOIR``) in case of GICv2, and to ``ICC_EOIR0_EL1`` or ``ICC_EOIR1_EL1``
3489system register in case of GICv3 depending on where the API is invoked from,
3490EL3 or S-EL1. This deactivates the corresponding interrupt in the interrupt
3491controller.
3492
3493The TSP uses this API to finish processing of the secure physical timer
3494interrupt.
3495
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003496Function : plat_ic_get_interrupt_type() [mandatory]
3497~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003498
3499::
3500
3501 Argument : uint32_t
3502 Return : uint32_t
3503
3504This API returns the type of the interrupt id passed as the parameter.
3505``INTR_TYPE_INVAL`` is returned if the id is invalid. If the id is valid, a valid
3506interrupt type (one of ``INTR_TYPE_EL3``, ``INTR_TYPE_S_EL1`` and ``INTR_TYPE_NS``) is
3507returned depending upon how the interrupt has been configured by the platform
3508IC. This API must be invoked at EL3.
3509
Dan Handley4def07d2018-03-01 18:44:00 +00003510Arm standard platforms using GICv2 configures S-EL1 interrupts as Group0 interrupts
Douglas Raillard6f625742017-06-28 15:23:03 +01003511and Non-secure interrupts as Group1 interrupts. It reads the group value
3512corresponding to the interrupt id from the relevant *Interrupt Group Register*
3513(``GICD_IGROUPRn``). It uses the group value to determine the type of interrupt.
3514
Dan Handley4def07d2018-03-01 18:44:00 +00003515In the case of Arm standard platforms using GICv3, both the *Interrupt Group
Douglas Raillard6f625742017-06-28 15:23:03 +01003516Register* (``GICD_IGROUPRn``) and *Interrupt Group Modifier Register*
3517(``GICD_IGRPMODRn``) is read to figure out whether the interrupt is configured
3518as Group 0 secure interrupt, Group 1 secure interrupt or Group 1 NS interrupt.
3519
Salman Nabi31edc202024-02-01 15:28:43 +00003520Registering a console
3521---------------------
3522
3523Platforms will need to implement the TF-A console framework to register and use
3524a console for visual data output in TF-A. These can be used for data output during
3525the different stages of the firmware boot process and also for debugging purposes.
3526
3527The console framework can be used to output data on to a console using a number of
3528TF-A supported UARTs. Multiple consoles can be registered at the same time with
3529different output scopes (BOOT, RUNTIME, CRASH) so that data can be displayed on
3530their respective consoles without unnecessary cluttering of a single console.
3531
3532Information for registering a console can be found in the :ref:`Console Framework` section
3533of the :ref:`System Design` documentation.
3534
Manish Pandey5988a802022-11-02 16:30:09 +00003535Common helper functions
3536-----------------------
Govindraj Raja17d07a52023-02-21 17:43:55 +00003537Function : elx_panic()
3538~~~~~~~~~~~~~~~~~~~~~~
Manish Pandey5988a802022-11-02 16:30:09 +00003539
Govindraj Raja17d07a52023-02-21 17:43:55 +00003540::
3541
3542 Argument : void
3543 Return : void
3544
3545This API is called from assembly files when reporting a critical failure
3546that has occured in lower EL and is been trapped in EL3. This call
3547**must not** return.
Manish Pandey5988a802022-11-02 16:30:09 +00003548
Govindraj Rajabd62ce92023-01-16 17:35:07 +00003549Function : el3_panic()
3550~~~~~~~~~~~~~~~~~~~~~~
Manish Pandey5988a802022-11-02 16:30:09 +00003551
3552::
3553
3554 Argument : void
3555 Return : void
3556
3557This API is called from assembly files when encountering a critical failure that
Govindraj Rajabd62ce92023-01-16 17:35:07 +00003558cannot be recovered from. This function assumes that it is invoked from a C
3559runtime environment i.e. valid stack exists. This call **must not** return.
Manish Pandey5988a802022-11-02 16:30:09 +00003560
3561Function : panic()
3562~~~~~~~~~~~~~~~~~~
3563
3564::
3565
3566 Argument : void
3567 Return : void
3568
3569This API called from C files when encountering a critical failure that cannot
3570be recovered from. This function in turn prints backtrace (if enabled) and calls
Govindraj Rajabd62ce92023-01-16 17:35:07 +00003571el3_panic(). This call **must not** return.
Manish Pandey5988a802022-11-02 16:30:09 +00003572
Douglas Raillard6f625742017-06-28 15:23:03 +01003573Crash Reporting mechanism (in BL31)
3574-----------------------------------
3575
Julius Werner17cd67d2017-09-18 16:49:48 -07003576BL31 implements a crash reporting mechanism which prints the various registers
Antonio Nino Diaz6c9ada32018-10-16 14:32:34 +01003577of the CPU to enable quick crash analysis and debugging. This mechanism relies
Paul Beesley8aabea32019-01-11 18:26:51 +00003578on the platform implementing ``plat_crash_console_init``,
Antonio Nino Diaz6c9ada32018-10-16 14:32:34 +01003579``plat_crash_console_putc`` and ``plat_crash_console_flush``.
3580
3581The file ``plat/common/aarch64/crash_console_helpers.S`` contains sample
3582implementation of all of them. Platforms may include this file to their
3583makefiles in order to benefit from them. By default, they will cause the crash
Julius Werner17cd67d2017-09-18 16:49:48 -07003584output to be routed over the normal console infrastructure and get printed on
3585consoles configured to output in crash state. ``console_set_scope()`` can be
3586used to control whether a console is used for crash output.
Paul Beesleye1c50262019-03-13 16:20:44 +00003587
3588.. note::
3589 Platforms are responsible for making sure that they only mark consoles for
3590 use in the crash scope that are able to support this, i.e. that are written
3591 in assembly and conform with the register clobber rules for putc()
3592 (x0-x2, x16-x17) and flush() (x0-x3, x16-x17) crash callbacks.
Julius Werner17cd67d2017-09-18 16:49:48 -07003593
3594In some cases (such as debugging very early crashes that happen before the
3595normal boot console can be set up), platforms may want to control crash output
Julius Werner63c52d02018-11-19 14:25:55 -08003596more explicitly. These platforms may instead provide custom implementations for
3597these. They are executed outside of a C environment and without a stack. Many
3598console drivers provide functions named ``console_xxx_core_init/putc/flush``
3599that are designed to be used by these functions. See Arm platforms (like juno)
3600for an example of this.
Antonio Nino Diaz6c9ada32018-10-16 14:32:34 +01003601
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003602Function : plat_crash_console_init [mandatory]
3603~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003604
3605::
3606
3607 Argument : void
3608 Return : int
3609
3610This API is used by the crash reporting mechanism to initialize the crash
Julius Werner17cd67d2017-09-18 16:49:48 -07003611console. It must only use the general purpose registers x0 through x7 to do the
Douglas Raillard6f625742017-06-28 15:23:03 +01003612initialization and returns 1 on success.
3613
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003614Function : plat_crash_console_putc [mandatory]
3615~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003616
3617::
3618
3619 Argument : int
3620 Return : int
3621
3622This API is used by the crash reporting mechanism to print a character on the
3623designated crash console. It must only use general purpose registers x1 and
3624x2 to do its work. The parameter and the return value are in general purpose
3625register x0.
3626
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003627Function : plat_crash_console_flush [mandatory]
3628~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Douglas Raillard6f625742017-06-28 15:23:03 +01003629
3630::
3631
3632 Argument : void
Jimmy Brisson831b0e92020-08-05 13:44:05 -05003633 Return : void
Douglas Raillard6f625742017-06-28 15:23:03 +01003634
3635This API is used by the crash reporting mechanism to force write of all buffered
3636data on the designated crash console. It should only use general purpose
Jimmy Brisson831b0e92020-08-05 13:44:05 -05003637registers x0 through x5 to do its work.
Douglas Raillard6f625742017-06-28 15:23:03 +01003638
Yann Gautierae770fe2024-01-16 19:39:31 +01003639Function : plat_setup_early_console [optional]
3640~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3641
3642::
3643
3644 Argument : void
3645 Return : void
3646
3647This API is used to setup the early console, it is required only if the flag
3648``EARLY_CONSOLE`` is enabled.
3649
Manish Pandeyc3233c12020-06-30 00:46:08 +01003650.. _External Abort handling and RAS Support:
3651
Jeenu Viswambharan63eb2412018-10-12 08:48:36 +01003652External Abort handling and RAS Support
3653---------------------------------------
Jeenu Viswambharan4431aae2018-07-12 10:00:01 +01003654
Boyan Karatotev04c39e42025-03-24 14:49:00 +00003655If any cores on the platform support powerdown abandon (check the "Core powerup
3656and powerdown sequence" in their TRMs), then
Boyan Karatotev839739e2024-10-21 14:18:46 +01003657these functions should be able to handle being called with power domains off and
3658after the powerdown ``wfi``. In other words it may run after a call to
3659``pwr_domain_suspend()`` and before a call to ``pwr_domain_suspend_finish()``
3660(and their power off counterparts).
3661
3662Should this not be desirable, or if there is no powerdown abandon support, then
3663RAS errors should be masked by writing any relevant error records in any
3664powerdown hooks to prevent deadlocks due to a RAS error after the point of no
3665return. See the core's TRM for further information.
3666
Jeenu Viswambharan4431aae2018-07-12 10:00:01 +01003667Function : plat_ea_handler
3668~~~~~~~~~~~~~~~~~~~~~~~~~~
3669
3670::
3671
3672 Argument : int
3673 Argument : uint64_t
3674 Argument : void *
3675 Argument : void *
3676 Argument : uint64_t
3677 Return : void
3678
Manish Pandeyf87e54f2023-10-10 15:42:19 +01003679This function is invoked by the runtime exception handling framework for the
3680platform to handle an External Abort received at EL3. The intention of the
3681function is to attempt to resolve the cause of External Abort and return;
3682if that's not possible then an orderly shutdown of the system is initiated.
Jeenu Viswambharan4431aae2018-07-12 10:00:01 +01003683
3684The first parameter (``int ea_reason``) indicates the reason for External Abort.
3685Its value is one of ``ERROR_EA_*`` constants defined in ``ea_handle.h``.
3686
3687The second parameter (``uint64_t syndrome``) is the respective syndrome
3688presented to EL3 after having received the External Abort. Depending on the
3689nature of the abort (as can be inferred from the ``ea_reason`` parameter), this
3690can be the content of either ``ESR_EL3`` or ``DISR_EL1``.
3691
3692The third parameter (``void *cookie``) is unused for now. The fourth parameter
3693(``void *handle``) is a pointer to the preempted context. The fifth parameter
3694(``uint64_t flags``) indicates the preempted security state. These parameters
3695are received from the top-level exception handler.
3696
Manish Pandeyf87e54f2023-10-10 15:42:19 +01003697This function must be implemented if a platform expects Firmware First handling
3698of External Aborts.
Jeenu Viswambharan4431aae2018-07-12 10:00:01 +01003699
3700Function : plat_handle_uncontainable_ea
3701~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3702
3703::
3704
3705 Argument : int
3706 Argument : uint64_t
3707 Return : void
3708
3709This function is invoked by the RAS framework when an External Abort of
3710Uncontainable type is received at EL3. Due to the critical nature of
3711Uncontainable errors, the intention of this function is to initiate orderly
3712shutdown of the system, and is not expected to return.
3713
3714This function must be implemented in assembly.
3715
3716The first and second parameters are the same as that of ``plat_ea_handler``.
3717
3718The default implementation of this function calls
3719``report_unhandled_exception``.
3720
3721Function : plat_handle_double_fault
3722~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3723
3724::
3725
3726 Argument : int
3727 Argument : uint64_t
3728 Return : void
3729
3730This function is invoked by the RAS framework when another External Abort is
3731received at EL3 while one is already being handled. I.e., a call to
3732``plat_ea_handler`` is outstanding. Due to its critical nature, the intention of
3733this function is to initiate orderly shutdown of the system, and is not expected
3734recover or return.
3735
3736This function must be implemented in assembly.
3737
3738The first and second parameters are the same as that of ``plat_ea_handler``.
3739
3740The default implementation of this function calls
3741``report_unhandled_exception``.
3742
3743Function : plat_handle_el3_ea
3744~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3745
3746::
3747
3748 Return : void
3749
3750This function is invoked when an External Abort is received while executing in
3751EL3. Due to its critical nature, the intention of this function is to initiate
3752orderly shutdown of the system, and is not expected recover or return.
3753
3754This function must be implemented in assembly.
3755
3756The default implementation of this function calls
3757``report_unhandled_exception``.
3758
Andre Przywara1ae75522022-11-21 17:07:25 +00003759Function : plat_handle_rng_trap
3760~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3761
3762::
3763
3764 Argument : uint64_t
3765 Argument : cpu_context_t *
3766 Return : int
3767
3768This function is invoked by BL31's exception handler when there is a synchronous
3769system register trap caused by access to the RNDR or RNDRRS registers. It allows
3770platforms implementing ``FEAT_RNG_TRAP`` and enabling ``ENABLE_FEAT_RNG_TRAP`` to
3771emulate those system registers by returing back some entropy to the lower EL.
3772
3773The first parameter (``uint64_t esr_el3``) contains the content of the ESR_EL3
3774syndrome register, which encodes the instruction that was trapped. The interesting
3775information in there is the target register (``get_sysreg_iss_rt()``).
3776
3777The second parameter (``cpu_context_t *ctx``) represents the CPU state in the
3778lower exception level, at the time when the execution of the ``mrs`` instruction
3779was trapped. Its content can be changed, to put the entropy into the target
3780register.
3781
3782The return value indicates how to proceed:
3783
3784- When returning ``TRAP_RET_UNHANDLED`` (-1), the machine will panic.
3785- When returning ``TRAP_RET_REPEAT`` (0), the exception handler will return
3786 to the same instruction, so its execution will be repeated.
3787- When returning ``TRAP_RET_CONTINUE`` (1), the exception handler will return
3788 to the next instruction.
3789
3790This function needs to be implemented by a platform if it enables FEAT_RNG_TRAP.
3791
Varun Wadekar0ed3be62023-04-13 21:06:18 +01003792Function : plat_handle_impdef_trap
3793~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3794
3795::
3796
3797 Argument : uint64_t
3798 Argument : cpu_context_t *
3799 Return : int
3800
3801This function is invoked by BL31's exception handler when there is a synchronous
3802system register trap caused by access to the implementation defined registers.
3803It allows platforms enabling ``IMPDEF_SYSREG_TRAP`` to emulate those system
Boyan Karatotev8db17052024-10-25 11:38:41 +01003804registers choosing to program bits of their choice. If using in combination with
3805``ARCH_FEATURE_AVAILABILITY``, the macros
3806{SCR,MDCR,CPTR}_PLAT_{BITS,IGNORED,FLIPPED} should be defined to report correct
3807results.
Varun Wadekar0ed3be62023-04-13 21:06:18 +01003808
3809The first parameter (``uint64_t esr_el3``) contains the content of the ESR_EL3
3810syndrome register, which encodes the instruction that was trapped.
3811
3812The second parameter (``cpu_context_t *ctx``) represents the CPU state in the
3813lower exception level, at the time when the execution of the ``mrs`` instruction
3814was trapped.
3815
3816The return value indicates how to proceed:
3817
3818- When returning ``TRAP_RET_UNHANDLED`` (-1), the machine will panic.
3819- When returning ``TRAP_RET_REPEAT`` (0), the exception handler will return
3820 to the same instruction, so its execution will be repeated.
3821- When returning ``TRAP_RET_CONTINUE`` (1), the exception handler will return
3822 to the next instruction.
3823
3824This function needs to be implemented by a platform if it enables
3825IMPDEF_SYSREG_TRAP.
3826
Douglas Raillard6f625742017-06-28 15:23:03 +01003827Build flags
3828-----------
3829
Douglas Raillard6f625742017-06-28 15:23:03 +01003830There are some build flags which can be defined by the platform to control
3831inclusion or exclusion of certain BL stages from the FIP image. These flags
3832need to be defined in the platform makefile which will get included by the
3833build system.
3834
Sandrine Bailleuxab4a90c2019-02-08 14:44:53 +01003835- **NEED_BL33**
Douglas Raillard6f625742017-06-28 15:23:03 +01003836 By default, this flag is defined ``yes`` by the build system and ``BL33``
3837 build option should be supplied as a build option. The platform has the
3838 option of excluding the BL33 image in the ``fip`` image by defining this flag
3839 to ``no``. If any of the options ``EL3_PAYLOAD_BASE`` or ``PRELOADED_BL33_BASE``
3840 are used, this flag will be set to ``no`` automatically.
3841
Govindraj Rajaf5211422023-08-17 10:41:48 -05003842- **ARM_ARCH_MAJOR and ARM_ARCH_MINOR**
3843 By default, ARM_ARCH_MAJOR.ARM_ARCH_MINOR is set to 8.0 in ``defaults.mk``,
3844 if the platform makefile/build defines or uses the correct ARM_ARCH_MAJOR and
3845 ARM_ARCH_MINOR then mandatory Architectural features available for that Arch
3846 version will be enabled by default and any optional Arch feature supported by
3847 the Architecture and available in TF-A can be enabled from platform specific
3848 makefile. Look up to ``arch_features.mk`` for details pertaining to mandatory
3849 and optional Arch specific features.
3850
Paul Beesleye63f5d12019-05-16 13:33:18 +01003851Platform include paths
3852----------------------
3853
3854Platforms are allowed to add more include paths to be passed to the compiler.
3855The ``PLAT_INCLUDES`` variable is used for this purpose. This is needed in
3856particular for the file ``platform_def.h``.
3857
3858Example:
3859
3860.. code:: c
3861
3862 PLAT_INCLUDES += -Iinclude/plat/myplat/include
3863
Douglas Raillard6f625742017-06-28 15:23:03 +01003864C Library
3865---------
3866
3867To avoid subtle toolchain behavioral dependencies, the header files provided
3868by the compiler are not used. The software is built with the ``-nostdinc`` flag
3869to ensure no headers are included from the toolchain inadvertently. Instead the
Dan Handley4def07d2018-03-01 18:44:00 +00003870required headers are included in the TF-A source tree. The library only
3871contains those C library definitions required by the local implementation. If
3872more functionality is required, the needed library functions will need to be
3873added to the local implementation.
Douglas Raillard6f625742017-06-28 15:23:03 +01003874
Antonio Nino Diaz27989a82018-08-17 10:45:47 +01003875Some C headers have been obtained from `FreeBSD`_ and `SCC`_, while others have
Paul Beesleybe653a62019-10-04 16:17:46 +00003876been written specifically for TF-A. Some implementation files have been obtained
Antonio Nino Diaz27989a82018-08-17 10:45:47 +01003877from `FreeBSD`_, others have been written specifically for TF-A as well. The
3878files can be found in ``include/lib/libc`` and ``lib/libc``.
Douglas Raillard6f625742017-06-28 15:23:03 +01003879
Sandrine Bailleux9aa6b632019-02-08 14:46:42 +01003880SCC can be found in http://www.simple-cc.org/. A copy of the `FreeBSD`_ sources
3881can be obtained from http://github.com/freebsd/freebsd.
Douglas Raillard6f625742017-06-28 15:23:03 +01003882
3883Storage abstraction layer
3884-------------------------
3885
Louis Mayencourtdbeace12019-07-15 13:56:03 +01003886In order to improve platform independence and portability a storage abstraction
3887layer is used to load data from non-volatile platform storage. Currently
3888storage access is only required by BL1 and BL2 phases and performed inside the
3889``load_image()`` function in ``bl_common.c``.
Douglas Raillard6f625742017-06-28 15:23:03 +01003890
Sandrine Bailleux292585b2023-02-08 14:07:29 +01003891.. uml:: resources/diagrams/plantuml/io_framework_usage_overview.puml
Douglas Raillard6f625742017-06-28 15:23:03 +01003892
Dan Handley4def07d2018-03-01 18:44:00 +00003893It is mandatory to implement at least one storage driver. For the Arm
Douglas Raillard6f625742017-06-28 15:23:03 +01003894development platforms the Firmware Image Package (FIP) driver is provided as
Paul Beesley43f35ef2019-05-29 13:59:40 +01003895the default means to load data from storage (see :ref:`firmware_design_fip`).
3896The storage layer is described in the header file
3897``include/drivers/io/io_storage.h``. The implementation of the common library is
3898in ``drivers/io/io_storage.c`` and the driver files are located in
Douglas Raillard6f625742017-06-28 15:23:03 +01003899``drivers/io/``.
3900
Sandrine Bailleux292585b2023-02-08 14:07:29 +01003901.. uml:: resources/diagrams/plantuml/io_arm_class_diagram.puml
Louis Mayencourtdbeace12019-07-15 13:56:03 +01003902
Douglas Raillard6f625742017-06-28 15:23:03 +01003903Each IO driver must provide ``io_dev_*`` structures, as described in
3904``drivers/io/io_driver.h``. These are returned via a mandatory registration
3905function that is called on platform initialization. The semi-hosting driver
3906implementation in ``io_semihosting.c`` can be used as an example.
3907
Louis Mayencourtdbeace12019-07-15 13:56:03 +01003908Each platform should register devices and their drivers via the storage
3909abstraction layer. These drivers then need to be initialized by bootloader
3910phases as required in their respective ``blx_platform_setup()`` functions.
3911
Sandrine Bailleux292585b2023-02-08 14:07:29 +01003912.. uml:: resources/diagrams/plantuml/io_dev_registration.puml
Louis Mayencourtdbeace12019-07-15 13:56:03 +01003913
3914The storage abstraction layer provides mechanisms (``io_dev_init()``) to
3915initialize storage devices before IO operations are called.
3916
Sandrine Bailleux292585b2023-02-08 14:07:29 +01003917.. uml:: resources/diagrams/plantuml/io_dev_init_and_check.puml
Louis Mayencourtdbeace12019-07-15 13:56:03 +01003918
3919The basic operations supported by the layer
Douglas Raillard6f625742017-06-28 15:23:03 +01003920include ``open()``, ``close()``, ``read()``, ``write()``, ``size()`` and ``seek()``.
3921Drivers do not have to implement all operations, but each platform must
3922provide at least one driver for a device capable of supporting generic
3923operations such as loading a bootloader image.
3924
3925The current implementation only allows for known images to be loaded by the
3926firmware. These images are specified by using their identifiers, as defined in
Antonio Nino Diaz8f457da2019-02-13 14:07:38 +00003927``include/plat/common/common_def.h`` (or a separate header file included from
Douglas Raillard6f625742017-06-28 15:23:03 +01003928there). The platform layer (``plat_get_image_source()``) then returns a reference
3929to a device and a driver-specific ``spec`` which will be understood by the driver
3930to allow access to the image data.
3931
3932The layer is designed in such a way that is it possible to chain drivers with
3933other drivers. For example, file-system drivers may be implemented on top of
3934physical block devices, both represented by IO devices with corresponding
3935drivers. In such a case, the file-system "binding" with the block device may
3936be deferred until the file-system device is initialised.
3937
3938The abstraction currently depends on structures being statically allocated
3939by the drivers and callers, as the system does not yet provide a means of
3940dynamically allocating memory. This may also have the affect of limiting the
3941amount of open resources per driver.
3942
Manish V Badarkhea1c93552023-06-15 10:34:05 +01003943Measured Boot Platform Interface
3944--------------------------------
3945
3946Enabling the MEASURED_BOOT flag adds extra platform requirements. Please refer
3947to :ref:`Measured Boot Design` for more details.
3948
Manish V Badarkheb30eb042025-04-15 20:16:38 +01003949Live Firmware Activation Interface
3950----------------------------------
3951
3952Function : plat_lfa_get_components()
3953~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3954
3955::
3956
3957 Argument : plat_lfa_component_info_t **
3958 Return : int
3959
3960This platform API provides the list of LFA components available for activation.
3961It populates a pointer to an array of ``plat_lfa_component_info_t`` structures,
3962which contain information about each component (like UUID, ID, etc.). It returns
39630 on success, or a standard error code on failure.
3964
3965Function : is_plat_lfa_activation_pending()
3966~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3967
3968::
3969
3970 Argument : uint32_t
3971 Return : bool
3972
3973This platform API checks if the specified LFA component, identified
3974by its ``lfa_component_id``, is available for activation. It returns
3975true if available, otherwise false.
3976
3977Function : plat_lfa_cancel()
3978~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3979
3980::
3981
3982 Argument : uint32_t
3983 Return : int
3984
3985This platform API allows the platform to cancel an ongoing update or activation
3986process for the specified ``lfa_component_id``. It returns 0 on success or
3987a standard error code on failure.
3988
3989Function : plat_lfa_load_auth_image()
3990~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
3991
3992::
3993
3994 Argument : uint32_t
3995 Return : int
3996
3997The platform uses this API to load, authenticate and measure the component
3998specified by ``lfa_component_id``. It should return 0 on success or appropriate
3999error codes for load/authentication failures.
4000
Douglas Raillard6f625742017-06-28 15:23:03 +01004001--------------
4002
Salman Nabi31edc202024-02-01 15:28:43 +00004003*Copyright (c) 2013-2025, Arm Limited and Contributors. All rights reserved.*
Douglas Raillard6f625742017-06-28 15:23:03 +01004004
Manish V Badarkhe3be6b4f2023-06-15 09:14:33 +01004005.. _PSCI: https://developer.arm.com/documentation/den0022/latest/
Dan Handley4def07d2018-03-01 18:44:00 +00004006.. _Arm Generic Interrupt Controller version 2.0 (GICv2): http://infocenter.arm.com/help/topic/com.arm.doc.ihi0048b/index.html
Douglas Raillard6f625742017-06-28 15:23:03 +01004007.. _3.0 (GICv3): http://infocenter.arm.com/help/topic/com.arm.doc.ihi0069b/index.html
Paul Beesleydd4e9a72019-02-08 16:43:05 +00004008.. _FreeBSD: https://www.freebsd.org
Antonio Nino Diaz27989a82018-08-17 10:45:47 +01004009.. _SCC: http://www.simple-cc.org/
Lucian Paul-Trifub3b227f2022-06-22 18:45:36 +01004010.. _DRTM: https://developer.arm.com/documentation/den0113/a