1 /* 2 * Copyright (c) 2021-2022, ARM Limited and Contributors. All rights reserved. 3 * 4 * SPDX-License-Identifier: BSD-3-Clause 5 */ 6 7 #include <assert.h> 8 #include <errno.h> 9 #include <inttypes.h> 10 #include <stdint.h> 11 #include <string.h> 12 13 #include <arch_helpers.h> 14 #include <arch_features.h> 15 #include <bl31/bl31.h> 16 #include <common/debug.h> 17 #include <common/runtime_svc.h> 18 #include <context.h> 19 #include <lib/el3_runtime/context_mgmt.h> 20 #include <lib/el3_runtime/pubsub.h> 21 #include <lib/gpt_rme/gpt_rme.h> 22 23 #include <lib/spinlock.h> 24 #include <lib/utils.h> 25 #include <lib/xlat_tables/xlat_tables_v2.h> 26 #include <plat/common/common_def.h> 27 #include <plat/common/platform.h> 28 #include <platform_def.h> 29 #include <services/rmmd_svc.h> 30 #include <smccc_helpers.h> 31 #include <lib/extensions/sve.h> 32 #include "rmmd_initial_context.h" 33 #include "rmmd_private.h" 34 35 /******************************************************************************* 36 * RMM boot failure flag 37 ******************************************************************************/ 38 static bool rmm_boot_failed; 39 40 /******************************************************************************* 41 * RMM context information. 42 ******************************************************************************/ 43 rmmd_rmm_context_t rmm_context[PLATFORM_CORE_COUNT]; 44 45 /******************************************************************************* 46 * RMM entry point information. Discovered on the primary core and reused 47 * on secondary cores. 48 ******************************************************************************/ 49 static entry_point_info_t *rmm_ep_info; 50 51 /******************************************************************************* 52 * Static function declaration. 53 ******************************************************************************/ 54 static int32_t rmm_init(void); 55 56 /******************************************************************************* 57 * This function takes an RMM context pointer and performs a synchronous entry 58 * into it. 59 ******************************************************************************/ 60 uint64_t rmmd_rmm_sync_entry(rmmd_rmm_context_t *rmm_ctx) 61 { 62 uint64_t rc; 63 64 assert(rmm_ctx != NULL); 65 66 cm_set_context(&(rmm_ctx->cpu_ctx), REALM); 67 68 /* Restore the realm context assigned above */ 69 cm_el1_sysregs_context_restore(REALM); 70 cm_el2_sysregs_context_restore(REALM); 71 cm_set_next_eret_context(REALM); 72 73 /* Enter RMM */ 74 rc = rmmd_rmm_enter(&rmm_ctx->c_rt_ctx); 75 76 /* 77 * Save realm context. EL1 and EL2 Non-secure 78 * contexts will be restored before exiting to 79 * Non-secure world, therefore there is no need 80 * to clear EL1 and EL2 context registers. 81 */ 82 cm_el1_sysregs_context_save(REALM); 83 cm_el2_sysregs_context_save(REALM); 84 85 return rc; 86 } 87 88 /******************************************************************************* 89 * This function returns to the place where rmmd_rmm_sync_entry() was 90 * called originally. 91 ******************************************************************************/ 92 __dead2 void rmmd_rmm_sync_exit(uint64_t rc) 93 { 94 rmmd_rmm_context_t *ctx = &rmm_context[plat_my_core_pos()]; 95 96 /* Get context of the RMM in use by this CPU. */ 97 assert(cm_get_context(REALM) == &(ctx->cpu_ctx)); 98 99 /* 100 * The RMMD must have initiated the original request through a 101 * synchronous entry into RMM. Jump back to the original C runtime 102 * context with the value of rc in x0; 103 */ 104 rmmd_rmm_exit(ctx->c_rt_ctx, rc); 105 106 panic(); 107 } 108 109 static void rmm_el2_context_init(el2_sysregs_t *regs) 110 { 111 regs->ctx_regs[CTX_SPSR_EL2 >> 3] = REALM_SPSR_EL2; 112 regs->ctx_regs[CTX_SCTLR_EL2 >> 3] = SCTLR_EL2_RES1; 113 } 114 115 /******************************************************************************* 116 * Enable architecture extensions on first entry to Realm world. 117 ******************************************************************************/ 118 static void manage_extensions_realm(cpu_context_t *ctx) 119 { 120 #if ENABLE_SVE_FOR_NS 121 /* 122 * Enable SVE and FPU in realm context when it is enabled for NS. 123 * Realm manager must ensure that the SVE and FPU register 124 * contexts are properly managed. 125 */ 126 sve_enable(ctx); 127 #else 128 /* 129 * Disable SVE and FPU in realm context when it is disabled for NS. 130 */ 131 sve_disable(ctx); 132 #endif /* ENABLE_SVE_FOR_NS */ 133 } 134 135 /******************************************************************************* 136 * Jump to the RMM for the first time. 137 ******************************************************************************/ 138 static int32_t rmm_init(void) 139 { 140 long rc; 141 rmmd_rmm_context_t *ctx = &rmm_context[plat_my_core_pos()]; 142 143 INFO("RMM init start.\n"); 144 145 /* Enable architecture extensions */ 146 manage_extensions_realm(&ctx->cpu_ctx); 147 148 /* Initialize RMM EL2 context. */ 149 rmm_el2_context_init(&ctx->cpu_ctx.el2_sysregs_ctx); 150 151 rc = rmmd_rmm_sync_entry(ctx); 152 if (rc != E_RMM_BOOT_SUCCESS) { 153 ERROR("RMM init failed: %ld\n", rc); 154 /* Mark the boot as failed for all the CPUs */ 155 rmm_boot_failed = true; 156 return 0; 157 } 158 159 INFO("RMM init end.\n"); 160 161 return 1; 162 } 163 164 /******************************************************************************* 165 * Load and read RMM manifest, setup RMM. 166 ******************************************************************************/ 167 int rmmd_setup(void) 168 { 169 size_t shared_buf_size __unused; 170 uintptr_t shared_buf_base; 171 uint32_t ep_attr; 172 unsigned int linear_id = plat_my_core_pos(); 173 rmmd_rmm_context_t *rmm_ctx = &rmm_context[linear_id]; 174 rmm_manifest_t *manifest; 175 int rc; 176 177 /* Make sure RME is supported. */ 178 assert(get_armv9_2_feat_rme_support() != 0U); 179 180 rmm_ep_info = bl31_plat_get_next_image_ep_info(REALM); 181 if (rmm_ep_info == NULL) { 182 WARN("No RMM image provided by BL2 boot loader, Booting " 183 "device without RMM initialization. SMCs destined for " 184 "RMM will return SMC_UNK\n"); 185 return -ENOENT; 186 } 187 188 /* Under no circumstances will this parameter be 0 */ 189 assert(rmm_ep_info->pc == RMM_BASE); 190 191 /* Initialise an entrypoint to set up the CPU context */ 192 ep_attr = EP_REALM; 193 if ((read_sctlr_el3() & SCTLR_EE_BIT) != 0U) { 194 ep_attr |= EP_EE_BIG; 195 } 196 197 SET_PARAM_HEAD(rmm_ep_info, PARAM_EP, VERSION_1, ep_attr); 198 rmm_ep_info->spsr = SPSR_64(MODE_EL2, 199 MODE_SP_ELX, 200 DISABLE_ALL_EXCEPTIONS); 201 202 shared_buf_size = 203 plat_rmmd_get_el3_rmm_shared_mem(&shared_buf_base); 204 205 assert((shared_buf_size == SZ_4K) && 206 ((void *)shared_buf_base != NULL)); 207 208 /* Load the boot manifest at the beginning of the shared area */ 209 manifest = (rmm_manifest_t *)shared_buf_base; 210 rc = plat_rmmd_load_manifest(manifest); 211 if (rc != 0) { 212 ERROR("Error loading RMM Boot Manifest (%i)\n", rc); 213 return rc; 214 } 215 flush_dcache_range((uintptr_t)shared_buf_base, shared_buf_size); 216 217 /* 218 * Prepare coldboot arguments for RMM: 219 * arg0: This CPUID (primary processor). 220 * arg1: Version for this Boot Interface. 221 * arg2: PLATFORM_CORE_COUNT. 222 * arg3: Base address for the EL3 <-> RMM shared area. The boot 223 * manifest will be stored at the beginning of this area. 224 */ 225 rmm_ep_info->args.arg0 = linear_id; 226 rmm_ep_info->args.arg1 = RMM_EL3_INTERFACE_VERSION; 227 rmm_ep_info->args.arg2 = PLATFORM_CORE_COUNT; 228 rmm_ep_info->args.arg3 = shared_buf_base; 229 230 /* Initialise RMM context with this entry point information */ 231 cm_setup_context(&rmm_ctx->cpu_ctx, rmm_ep_info); 232 233 INFO("RMM setup done.\n"); 234 235 /* Register init function for deferred init. */ 236 bl31_register_rmm_init(&rmm_init); 237 238 return 0; 239 } 240 241 /******************************************************************************* 242 * Forward SMC to the other security state 243 ******************************************************************************/ 244 static uint64_t rmmd_smc_forward(uint32_t src_sec_state, 245 uint32_t dst_sec_state, uint64_t x0, 246 uint64_t x1, uint64_t x2, uint64_t x3, 247 uint64_t x4, void *handle) 248 { 249 /* Save incoming security state */ 250 cm_el1_sysregs_context_save(src_sec_state); 251 cm_el2_sysregs_context_save(src_sec_state); 252 253 /* Restore outgoing security state */ 254 cm_el1_sysregs_context_restore(dst_sec_state); 255 cm_el2_sysregs_context_restore(dst_sec_state); 256 cm_set_next_eret_context(dst_sec_state); 257 258 /* 259 * As per SMCCCv1.1, we need to preserve x4 to x7 unless 260 * being used as return args. Hence we differentiate the 261 * onward and backward path. Support upto 8 args in the 262 * onward path and 4 args in return path. 263 */ 264 if (src_sec_state == NON_SECURE) { 265 SMC_RET8(cm_get_context(dst_sec_state), x0, x1, x2, x3, x4, 266 SMC_GET_GP(handle, CTX_GPREG_X5), 267 SMC_GET_GP(handle, CTX_GPREG_X6), 268 SMC_GET_GP(handle, CTX_GPREG_X7)); 269 } else { 270 SMC_RET4(cm_get_context(dst_sec_state), x0, x1, x2, x3); 271 } 272 } 273 274 /******************************************************************************* 275 * This function handles all SMCs in the range reserved for RMI. Each call is 276 * either forwarded to the other security state or handled by the RMM dispatcher 277 ******************************************************************************/ 278 uint64_t rmmd_rmi_handler(uint32_t smc_fid, uint64_t x1, uint64_t x2, 279 uint64_t x3, uint64_t x4, void *cookie, 280 void *handle, uint64_t flags) 281 { 282 uint32_t src_sec_state; 283 284 /* If RMM failed to boot, treat any RMI SMC as unknown */ 285 if (rmm_boot_failed) { 286 WARN("RMMD: Failed to boot up RMM. Ignoring RMI call\n"); 287 SMC_RET1(handle, SMC_UNK); 288 } 289 290 /* Determine which security state this SMC originated from */ 291 src_sec_state = caller_sec_state(flags); 292 293 /* RMI must not be invoked by the Secure world */ 294 if (src_sec_state == SMC_FROM_SECURE) { 295 WARN("RMMD: RMI invoked by secure world.\n"); 296 SMC_RET1(handle, SMC_UNK); 297 } 298 299 /* 300 * Forward an RMI call from the Normal world to the Realm world as it 301 * is. 302 */ 303 if (src_sec_state == SMC_FROM_NON_SECURE) { 304 VERBOSE("RMMD: RMI call from non-secure world.\n"); 305 return rmmd_smc_forward(NON_SECURE, REALM, smc_fid, 306 x1, x2, x3, x4, handle); 307 } 308 309 if (src_sec_state != SMC_FROM_REALM) { 310 SMC_RET1(handle, SMC_UNK); 311 } 312 313 switch (smc_fid) { 314 case RMM_RMI_REQ_COMPLETE: 315 return rmmd_smc_forward(REALM, NON_SECURE, x1, 316 x2, x3, x4, 0, handle); 317 318 default: 319 WARN("RMMD: Unsupported RMM call 0x%08x\n", smc_fid); 320 SMC_RET1(handle, SMC_UNK); 321 } 322 } 323 324 /******************************************************************************* 325 * This cpu has been turned on. Enter RMM to initialise R-EL2. Entry into RMM 326 * is done after initialising minimal architectural state that guarantees safe 327 * execution. 328 ******************************************************************************/ 329 static void *rmmd_cpu_on_finish_handler(const void *arg) 330 { 331 long rc; 332 uint32_t linear_id = plat_my_core_pos(); 333 rmmd_rmm_context_t *ctx = &rmm_context[linear_id]; 334 335 if (rmm_boot_failed) { 336 /* RMM Boot failed on a previous CPU. Abort. */ 337 ERROR("RMM Failed to initialize. Ignoring for CPU%d\n", 338 linear_id); 339 return NULL; 340 } 341 342 /* 343 * Prepare warmboot arguments for RMM: 344 * arg0: This CPUID. 345 * arg1 to arg3: Not used. 346 */ 347 rmm_ep_info->args.arg0 = linear_id; 348 rmm_ep_info->args.arg1 = 0ULL; 349 rmm_ep_info->args.arg2 = 0ULL; 350 rmm_ep_info->args.arg3 = 0ULL; 351 352 /* Initialise RMM context with this entry point information */ 353 cm_setup_context(&ctx->cpu_ctx, rmm_ep_info); 354 355 /* Enable architecture extensions */ 356 manage_extensions_realm(&ctx->cpu_ctx); 357 358 /* Initialize RMM EL2 context. */ 359 rmm_el2_context_init(&ctx->cpu_ctx.el2_sysregs_ctx); 360 361 rc = rmmd_rmm_sync_entry(ctx); 362 363 if (rc != E_RMM_BOOT_SUCCESS) { 364 ERROR("RMM init failed on CPU%d: %ld\n", linear_id, rc); 365 /* Mark the boot as failed for any other booting CPU */ 366 rmm_boot_failed = true; 367 } 368 369 return NULL; 370 } 371 372 /* Subscribe to PSCI CPU on to initialize RMM on secondary */ 373 SUBSCRIBE_TO_EVENT(psci_cpu_on_finish, rmmd_cpu_on_finish_handler); 374 375 /* Convert GPT lib error to RMMD GTS error */ 376 static int gpt_to_gts_error(int error, uint32_t smc_fid, uint64_t address) 377 { 378 int ret; 379 380 if (error == 0) { 381 return E_RMM_OK; 382 } 383 384 if (error == -EINVAL) { 385 ret = E_RMM_BAD_ADDR; 386 } else { 387 /* This is the only other error code we expect */ 388 assert(error == -EPERM); 389 ret = E_RMM_BAD_PAS; 390 } 391 392 ERROR("RMMD: PAS Transition failed. GPT ret = %d, PA: 0x%"PRIx64 ", FID = 0x%x\n", 393 error, address, smc_fid); 394 return ret; 395 } 396 397 /******************************************************************************* 398 * This function handles RMM-EL3 interface SMCs 399 ******************************************************************************/ 400 uint64_t rmmd_rmm_el3_handler(uint32_t smc_fid, uint64_t x1, uint64_t x2, 401 uint64_t x3, uint64_t x4, void *cookie, 402 void *handle, uint64_t flags) 403 { 404 uint32_t src_sec_state; 405 int ret; 406 407 /* If RMM failed to boot, treat any RMM-EL3 interface SMC as unknown */ 408 if (rmm_boot_failed) { 409 WARN("RMMD: Failed to boot up RMM. Ignoring RMM-EL3 call\n"); 410 SMC_RET1(handle, SMC_UNK); 411 } 412 413 /* Determine which security state this SMC originated from */ 414 src_sec_state = caller_sec_state(flags); 415 416 if (src_sec_state != SMC_FROM_REALM) { 417 WARN("RMMD: RMM-EL3 call originated from secure or normal world\n"); 418 SMC_RET1(handle, SMC_UNK); 419 } 420 421 switch (smc_fid) { 422 case RMM_GTSI_DELEGATE: 423 ret = gpt_delegate_pas(x1, PAGE_SIZE_4KB, SMC_FROM_REALM); 424 SMC_RET1(handle, gpt_to_gts_error(ret, smc_fid, x1)); 425 case RMM_GTSI_UNDELEGATE: 426 ret = gpt_undelegate_pas(x1, PAGE_SIZE_4KB, SMC_FROM_REALM); 427 SMC_RET1(handle, gpt_to_gts_error(ret, smc_fid, x1)); 428 case RMM_ATTEST_GET_PLAT_TOKEN: 429 ret = rmmd_attest_get_platform_token(x1, &x2, x3); 430 SMC_RET2(handle, ret, x2); 431 case RMM_ATTEST_GET_REALM_KEY: 432 ret = rmmd_attest_get_signing_key(x1, &x2, x3); 433 SMC_RET2(handle, ret, x2); 434 435 case RMM_BOOT_COMPLETE: 436 VERBOSE("RMMD: running rmmd_rmm_sync_exit\n"); 437 rmmd_rmm_sync_exit(x1); 438 439 default: 440 WARN("RMMD: Unsupported RMM-EL3 call 0x%08x\n", smc_fid); 441 SMC_RET1(handle, SMC_UNK); 442 } 443 } 444