1 /* 2 * Copyright 2022 Advanced Micro Devices, Inc. 3 * 4 * Permission is hereby granted, free of charge, to any person obtaining a 5 * copy of this software and associated documentation files (the "Software"), 6 * to deal in the Software without restriction, including without limitation 7 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 8 * and/or sell copies of the Software, and to permit persons to whom the 9 * Software is furnished to do so, subject to the following conditions: 10 * 11 * The above copyright notice and this permission notice shall be included in 12 * all copies or substantial portions of the Software. 13 * 14 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 15 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 16 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 17 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR 18 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 19 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 20 * OTHER DEALINGS IN THE SOFTWARE. 21 * 22 */ 23 24 #include <linux/delay.h> 25 #include <linux/firmware.h> 26 #include <linux/module.h> 27 #include <linux/pci.h> 28 29 #include "amdgpu.h" 30 #include "amdgpu_xcp.h" 31 #include "amdgpu_ucode.h" 32 #include "amdgpu_trace.h" 33 #include "amdgpu_reset.h" 34 35 #include "sdma/sdma_4_4_2_offset.h" 36 #include "sdma/sdma_4_4_2_sh_mask.h" 37 38 #include "soc15_common.h" 39 #include "soc15.h" 40 #include "vega10_sdma_pkt_open.h" 41 42 #include "ivsrcid/sdma0/irqsrcs_sdma0_4_0.h" 43 #include "ivsrcid/sdma1/irqsrcs_sdma1_4_0.h" 44 45 #include "amdgpu_ras.h" 46 47 MODULE_FIRMWARE("amdgpu/sdma_4_4_2.bin"); 48 MODULE_FIRMWARE("amdgpu/sdma_4_4_5.bin"); 49 50 static const struct amdgpu_hwip_reg_entry sdma_reg_list_4_4_2[] = { 51 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_STATUS_REG), 52 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_STATUS1_REG), 53 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_STATUS2_REG), 54 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_STATUS3_REG), 55 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UCODE_CHECKSUM), 56 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RB_RPTR_FETCH_HI), 57 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RB_RPTR_FETCH), 58 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UTCL1_RD_STATUS), 59 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UTCL1_WR_STATUS), 60 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UTCL1_RD_XNACK0), 61 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UTCL1_RD_XNACK1), 62 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UTCL1_WR_XNACK0), 63 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_UTCL1_WR_XNACK1), 64 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_RB_CNTL), 65 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_RB_RPTR), 66 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_RB_RPTR_HI), 67 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_RB_WPTR), 68 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_RB_WPTR_HI), 69 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_IB_OFFSET), 70 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_IB_BASE_LO), 71 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_IB_BASE_HI), 72 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_IB_CNTL), 73 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_IB_RPTR), 74 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_IB_SUB_REMAIN), 75 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_GFX_DUMMY_REG), 76 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_RB_CNTL), 77 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_RB_RPTR), 78 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_RB_RPTR_HI), 79 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_RB_WPTR), 80 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_RB_WPTR_HI), 81 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_IB_OFFSET), 82 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_IB_BASE_LO), 83 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_IB_BASE_HI), 84 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_PAGE_DUMMY_REG), 85 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_RB_CNTL), 86 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_RB_RPTR), 87 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_RB_RPTR_HI), 88 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_RB_WPTR), 89 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_RB_WPTR_HI), 90 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_IB_OFFSET), 91 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_IB_BASE_LO), 92 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_IB_BASE_HI), 93 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_RLC0_DUMMY_REG), 94 SOC15_REG_ENTRY_STR(GC, 0, regSDMA_VM_CNTL) 95 }; 96 97 #define mmSMNAID_AID0_MCA_SMU 0x03b30400 98 99 #define WREG32_SDMA(instance, offset, value) \ 100 WREG32(sdma_v4_4_2_get_reg_offset(adev, (instance), (offset)), value) 101 #define RREG32_SDMA(instance, offset) \ 102 RREG32(sdma_v4_4_2_get_reg_offset(adev, (instance), (offset))) 103 104 static void sdma_v4_4_2_set_ring_funcs(struct amdgpu_device *adev); 105 static void sdma_v4_4_2_set_buffer_funcs(struct amdgpu_device *adev); 106 static void sdma_v4_4_2_set_vm_pte_funcs(struct amdgpu_device *adev); 107 static void sdma_v4_4_2_set_irq_funcs(struct amdgpu_device *adev); 108 static void sdma_v4_4_2_set_ras_funcs(struct amdgpu_device *adev); 109 static void sdma_v4_4_2_set_engine_reset_funcs(struct amdgpu_device *adev); 110 111 static u32 sdma_v4_4_2_get_reg_offset(struct amdgpu_device *adev, 112 u32 instance, u32 offset) 113 { 114 u32 dev_inst = GET_INST(SDMA0, instance); 115 116 return (adev->reg_offset[SDMA0_HWIP][dev_inst][0] + offset); 117 } 118 119 static unsigned sdma_v4_4_2_seq_to_irq_id(int seq_num) 120 { 121 switch (seq_num) { 122 case 0: 123 return SOC15_IH_CLIENTID_SDMA0; 124 case 1: 125 return SOC15_IH_CLIENTID_SDMA1; 126 case 2: 127 return SOC15_IH_CLIENTID_SDMA2; 128 case 3: 129 return SOC15_IH_CLIENTID_SDMA3; 130 default: 131 return -EINVAL; 132 } 133 } 134 135 static int sdma_v4_4_2_irq_id_to_seq(struct amdgpu_device *adev, unsigned client_id) 136 { 137 switch (client_id) { 138 case SOC15_IH_CLIENTID_SDMA0: 139 return 0; 140 case SOC15_IH_CLIENTID_SDMA1: 141 return 1; 142 case SOC15_IH_CLIENTID_SDMA2: 143 if (amdgpu_sriov_vf(adev) && (adev->gfx.xcc_mask == 0x1)) 144 return 0; 145 else 146 return 2; 147 case SOC15_IH_CLIENTID_SDMA3: 148 if (amdgpu_sriov_vf(adev) && (adev->gfx.xcc_mask == 0x1)) 149 return 1; 150 else 151 return 3; 152 default: 153 return -EINVAL; 154 } 155 } 156 157 static void sdma_v4_4_2_inst_init_golden_registers(struct amdgpu_device *adev, 158 uint32_t inst_mask) 159 { 160 u32 val; 161 int i; 162 163 for (i = 0; i < adev->sdma.num_instances; i++) { 164 val = RREG32_SDMA(i, regSDMA_GB_ADDR_CONFIG); 165 val = REG_SET_FIELD(val, SDMA_GB_ADDR_CONFIG, NUM_BANKS, 4); 166 val = REG_SET_FIELD(val, SDMA_GB_ADDR_CONFIG, 167 PIPE_INTERLEAVE_SIZE, 0); 168 WREG32_SDMA(i, regSDMA_GB_ADDR_CONFIG, val); 169 170 val = RREG32_SDMA(i, regSDMA_GB_ADDR_CONFIG_READ); 171 val = REG_SET_FIELD(val, SDMA_GB_ADDR_CONFIG_READ, NUM_BANKS, 172 4); 173 val = REG_SET_FIELD(val, SDMA_GB_ADDR_CONFIG_READ, 174 PIPE_INTERLEAVE_SIZE, 0); 175 WREG32_SDMA(i, regSDMA_GB_ADDR_CONFIG_READ, val); 176 } 177 } 178 179 /** 180 * sdma_v4_4_2_init_microcode - load ucode images from disk 181 * 182 * @adev: amdgpu_device pointer 183 * 184 * Use the firmware interface to load the ucode images into 185 * the driver (not loaded into hw). 186 * Returns 0 on success, error on failure. 187 */ 188 static int sdma_v4_4_2_init_microcode(struct amdgpu_device *adev) 189 { 190 int ret, i; 191 192 for (i = 0; i < adev->sdma.num_instances; i++) { 193 if (amdgpu_ip_version(adev, SDMA0_HWIP, 0) == IP_VERSION(4, 4, 2) || 194 amdgpu_ip_version(adev, SDMA0_HWIP, 0) == IP_VERSION(4, 4, 4) || 195 amdgpu_ip_version(adev, SDMA0_HWIP, 0) == IP_VERSION(4, 4, 5)) { 196 ret = amdgpu_sdma_init_microcode(adev, 0, true); 197 break; 198 } else { 199 ret = amdgpu_sdma_init_microcode(adev, i, false); 200 if (ret) 201 return ret; 202 } 203 } 204 205 return ret; 206 } 207 208 /** 209 * sdma_v4_4_2_ring_get_rptr - get the current read pointer 210 * 211 * @ring: amdgpu ring pointer 212 * 213 * Get the current rptr from the hardware. 214 */ 215 static uint64_t sdma_v4_4_2_ring_get_rptr(struct amdgpu_ring *ring) 216 { 217 u64 rptr; 218 219 /* XXX check if swapping is necessary on BE */ 220 rptr = READ_ONCE(*((u64 *)&ring->adev->wb.wb[ring->rptr_offs])); 221 222 DRM_DEBUG("rptr before shift == 0x%016llx\n", rptr); 223 return rptr >> 2; 224 } 225 226 /** 227 * sdma_v4_4_2_ring_get_wptr - get the current write pointer 228 * 229 * @ring: amdgpu ring pointer 230 * 231 * Get the current wptr from the hardware. 232 */ 233 static uint64_t sdma_v4_4_2_ring_get_wptr(struct amdgpu_ring *ring) 234 { 235 struct amdgpu_device *adev = ring->adev; 236 u64 wptr; 237 238 if (ring->use_doorbell) { 239 /* XXX check if swapping is necessary on BE */ 240 wptr = READ_ONCE(*((u64 *)&adev->wb.wb[ring->wptr_offs])); 241 DRM_DEBUG("wptr/doorbell before shift == 0x%016llx\n", wptr); 242 } else { 243 wptr = RREG32_SDMA(ring->me, regSDMA_GFX_RB_WPTR_HI); 244 wptr = wptr << 32; 245 wptr |= RREG32_SDMA(ring->me, regSDMA_GFX_RB_WPTR); 246 DRM_DEBUG("wptr before shift [%i] wptr == 0x%016llx\n", 247 ring->me, wptr); 248 } 249 250 return wptr >> 2; 251 } 252 253 /** 254 * sdma_v4_4_2_ring_set_wptr - commit the write pointer 255 * 256 * @ring: amdgpu ring pointer 257 * 258 * Write the wptr back to the hardware. 259 */ 260 static void sdma_v4_4_2_ring_set_wptr(struct amdgpu_ring *ring) 261 { 262 struct amdgpu_device *adev = ring->adev; 263 264 DRM_DEBUG("Setting write pointer\n"); 265 if (ring->use_doorbell) { 266 u64 *wb = (u64 *)&adev->wb.wb[ring->wptr_offs]; 267 268 DRM_DEBUG("Using doorbell -- " 269 "wptr_offs == 0x%08x " 270 "lower_32_bits(ring->wptr) << 2 == 0x%08x " 271 "upper_32_bits(ring->wptr) << 2 == 0x%08x\n", 272 ring->wptr_offs, 273 lower_32_bits(ring->wptr << 2), 274 upper_32_bits(ring->wptr << 2)); 275 /* XXX check if swapping is necessary on BE */ 276 WRITE_ONCE(*wb, (ring->wptr << 2)); 277 DRM_DEBUG("calling WDOORBELL64(0x%08x, 0x%016llx)\n", 278 ring->doorbell_index, ring->wptr << 2); 279 WDOORBELL64(ring->doorbell_index, ring->wptr << 2); 280 } else { 281 DRM_DEBUG("Not using doorbell -- " 282 "regSDMA%i_GFX_RB_WPTR == 0x%08x " 283 "regSDMA%i_GFX_RB_WPTR_HI == 0x%08x\n", 284 ring->me, 285 lower_32_bits(ring->wptr << 2), 286 ring->me, 287 upper_32_bits(ring->wptr << 2)); 288 WREG32_SDMA(ring->me, regSDMA_GFX_RB_WPTR, 289 lower_32_bits(ring->wptr << 2)); 290 WREG32_SDMA(ring->me, regSDMA_GFX_RB_WPTR_HI, 291 upper_32_bits(ring->wptr << 2)); 292 } 293 } 294 295 /** 296 * sdma_v4_4_2_page_ring_get_wptr - get the current write pointer 297 * 298 * @ring: amdgpu ring pointer 299 * 300 * Get the current wptr from the hardware. 301 */ 302 static uint64_t sdma_v4_4_2_page_ring_get_wptr(struct amdgpu_ring *ring) 303 { 304 struct amdgpu_device *adev = ring->adev; 305 u64 wptr; 306 307 if (ring->use_doorbell) { 308 /* XXX check if swapping is necessary on BE */ 309 wptr = READ_ONCE(*((u64 *)&adev->wb.wb[ring->wptr_offs])); 310 } else { 311 wptr = RREG32_SDMA(ring->me, regSDMA_PAGE_RB_WPTR_HI); 312 wptr = wptr << 32; 313 wptr |= RREG32_SDMA(ring->me, regSDMA_PAGE_RB_WPTR); 314 } 315 316 return wptr >> 2; 317 } 318 319 /** 320 * sdma_v4_4_2_page_ring_set_wptr - commit the write pointer 321 * 322 * @ring: amdgpu ring pointer 323 * 324 * Write the wptr back to the hardware. 325 */ 326 static void sdma_v4_4_2_page_ring_set_wptr(struct amdgpu_ring *ring) 327 { 328 struct amdgpu_device *adev = ring->adev; 329 330 if (ring->use_doorbell) { 331 u64 *wb = (u64 *)&adev->wb.wb[ring->wptr_offs]; 332 333 /* XXX check if swapping is necessary on BE */ 334 WRITE_ONCE(*wb, (ring->wptr << 2)); 335 WDOORBELL64(ring->doorbell_index, ring->wptr << 2); 336 } else { 337 uint64_t wptr = ring->wptr << 2; 338 339 WREG32_SDMA(ring->me, regSDMA_PAGE_RB_WPTR, 340 lower_32_bits(wptr)); 341 WREG32_SDMA(ring->me, regSDMA_PAGE_RB_WPTR_HI, 342 upper_32_bits(wptr)); 343 } 344 } 345 346 static void sdma_v4_4_2_ring_insert_nop(struct amdgpu_ring *ring, uint32_t count) 347 { 348 struct amdgpu_sdma_instance *sdma = amdgpu_sdma_get_instance_from_ring(ring); 349 int i; 350 351 for (i = 0; i < count; i++) 352 if (sdma && sdma->burst_nop && (i == 0)) 353 amdgpu_ring_write(ring, ring->funcs->nop | 354 SDMA_PKT_NOP_HEADER_COUNT(count - 1)); 355 else 356 amdgpu_ring_write(ring, ring->funcs->nop); 357 } 358 359 /** 360 * sdma_v4_4_2_ring_emit_ib - Schedule an IB on the DMA engine 361 * 362 * @ring: amdgpu ring pointer 363 * @job: job to retrieve vmid from 364 * @ib: IB object to schedule 365 * @flags: unused 366 * 367 * Schedule an IB in the DMA ring. 368 */ 369 static void sdma_v4_4_2_ring_emit_ib(struct amdgpu_ring *ring, 370 struct amdgpu_job *job, 371 struct amdgpu_ib *ib, 372 uint32_t flags) 373 { 374 unsigned vmid = AMDGPU_JOB_GET_VMID(job); 375 376 /* IB packet must end on a 8 DW boundary */ 377 sdma_v4_4_2_ring_insert_nop(ring, (2 - lower_32_bits(ring->wptr)) & 7); 378 379 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_INDIRECT) | 380 SDMA_PKT_INDIRECT_HEADER_VMID(vmid & 0xf)); 381 /* base must be 32 byte aligned */ 382 amdgpu_ring_write(ring, lower_32_bits(ib->gpu_addr) & 0xffffffe0); 383 amdgpu_ring_write(ring, upper_32_bits(ib->gpu_addr)); 384 amdgpu_ring_write(ring, ib->length_dw); 385 amdgpu_ring_write(ring, 0); 386 amdgpu_ring_write(ring, 0); 387 388 } 389 390 static void sdma_v4_4_2_wait_reg_mem(struct amdgpu_ring *ring, 391 int mem_space, int hdp, 392 uint32_t addr0, uint32_t addr1, 393 uint32_t ref, uint32_t mask, 394 uint32_t inv) 395 { 396 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_POLL_REGMEM) | 397 SDMA_PKT_POLL_REGMEM_HEADER_HDP_FLUSH(hdp) | 398 SDMA_PKT_POLL_REGMEM_HEADER_MEM_POLL(mem_space) | 399 SDMA_PKT_POLL_REGMEM_HEADER_FUNC(3)); /* == */ 400 if (mem_space) { 401 /* memory */ 402 amdgpu_ring_write(ring, addr0); 403 amdgpu_ring_write(ring, addr1); 404 } else { 405 /* registers */ 406 amdgpu_ring_write(ring, addr0 << 2); 407 amdgpu_ring_write(ring, addr1 << 2); 408 } 409 amdgpu_ring_write(ring, ref); /* reference */ 410 amdgpu_ring_write(ring, mask); /* mask */ 411 amdgpu_ring_write(ring, SDMA_PKT_POLL_REGMEM_DW5_RETRY_COUNT(0xfff) | 412 SDMA_PKT_POLL_REGMEM_DW5_INTERVAL(inv)); /* retry count, poll interval */ 413 } 414 415 /** 416 * sdma_v4_4_2_ring_emit_hdp_flush - emit an hdp flush on the DMA ring 417 * 418 * @ring: amdgpu ring pointer 419 * 420 * Emit an hdp flush packet on the requested DMA ring. 421 */ 422 static void sdma_v4_4_2_ring_emit_hdp_flush(struct amdgpu_ring *ring) 423 { 424 struct amdgpu_device *adev = ring->adev; 425 u32 ref_and_mask = 0; 426 const struct nbio_hdp_flush_reg *nbio_hf_reg = adev->nbio.hdp_flush_reg; 427 428 ref_and_mask = nbio_hf_reg->ref_and_mask_sdma0 429 << (ring->me % adev->sdma.num_inst_per_aid); 430 431 sdma_v4_4_2_wait_reg_mem(ring, 0, 1, 432 adev->nbio.funcs->get_hdp_flush_done_offset(adev), 433 adev->nbio.funcs->get_hdp_flush_req_offset(adev), 434 ref_and_mask, ref_and_mask, 10); 435 } 436 437 /** 438 * sdma_v4_4_2_ring_emit_fence - emit a fence on the DMA ring 439 * 440 * @ring: amdgpu ring pointer 441 * @addr: address 442 * @seq: sequence number 443 * @flags: fence related flags 444 * 445 * Add a DMA fence packet to the ring to write 446 * the fence seq number and DMA trap packet to generate 447 * an interrupt if needed. 448 */ 449 static void sdma_v4_4_2_ring_emit_fence(struct amdgpu_ring *ring, u64 addr, u64 seq, 450 unsigned flags) 451 { 452 bool write64bit = flags & AMDGPU_FENCE_FLAG_64BIT; 453 /* write the fence */ 454 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_FENCE)); 455 /* zero in first two bits */ 456 BUG_ON(addr & 0x3); 457 amdgpu_ring_write(ring, lower_32_bits(addr)); 458 amdgpu_ring_write(ring, upper_32_bits(addr)); 459 amdgpu_ring_write(ring, lower_32_bits(seq)); 460 461 /* optionally write high bits as well */ 462 if (write64bit) { 463 addr += 4; 464 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_FENCE)); 465 /* zero in first two bits */ 466 BUG_ON(addr & 0x3); 467 amdgpu_ring_write(ring, lower_32_bits(addr)); 468 amdgpu_ring_write(ring, upper_32_bits(addr)); 469 amdgpu_ring_write(ring, upper_32_bits(seq)); 470 } 471 472 /* generate an interrupt */ 473 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_TRAP)); 474 amdgpu_ring_write(ring, SDMA_PKT_TRAP_INT_CONTEXT_INT_CONTEXT(0)); 475 } 476 477 478 /** 479 * sdma_v4_4_2_inst_gfx_stop - stop the gfx async dma engines 480 * 481 * @adev: amdgpu_device pointer 482 * @inst_mask: mask of dma engine instances to be disabled 483 * 484 * Stop the gfx async dma ring buffers. 485 */ 486 static void sdma_v4_4_2_inst_gfx_stop(struct amdgpu_device *adev, 487 uint32_t inst_mask) 488 { 489 struct amdgpu_ring *sdma[AMDGPU_MAX_SDMA_INSTANCES]; 490 u32 doorbell_offset, doorbell; 491 u32 rb_cntl, ib_cntl; 492 int i; 493 494 for_each_inst(i, inst_mask) { 495 sdma[i] = &adev->sdma.instance[i].ring; 496 497 rb_cntl = RREG32_SDMA(i, regSDMA_GFX_RB_CNTL); 498 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_GFX_RB_CNTL, RB_ENABLE, 0); 499 WREG32_SDMA(i, regSDMA_GFX_RB_CNTL, rb_cntl); 500 ib_cntl = RREG32_SDMA(i, regSDMA_GFX_IB_CNTL); 501 ib_cntl = REG_SET_FIELD(ib_cntl, SDMA_GFX_IB_CNTL, IB_ENABLE, 0); 502 WREG32_SDMA(i, regSDMA_GFX_IB_CNTL, ib_cntl); 503 504 if (sdma[i]->use_doorbell) { 505 doorbell = RREG32_SDMA(i, regSDMA_GFX_DOORBELL); 506 doorbell_offset = RREG32_SDMA(i, regSDMA_GFX_DOORBELL_OFFSET); 507 508 doorbell = REG_SET_FIELD(doorbell, SDMA_GFX_DOORBELL, ENABLE, 0); 509 doorbell_offset = REG_SET_FIELD(doorbell_offset, 510 SDMA_GFX_DOORBELL_OFFSET, 511 OFFSET, 0); 512 WREG32_SDMA(i, regSDMA_GFX_DOORBELL, doorbell); 513 WREG32_SDMA(i, regSDMA_GFX_DOORBELL_OFFSET, doorbell_offset); 514 } 515 } 516 } 517 518 /** 519 * sdma_v4_4_2_inst_rlc_stop - stop the compute async dma engines 520 * 521 * @adev: amdgpu_device pointer 522 * @inst_mask: mask of dma engine instances to be disabled 523 * 524 * Stop the compute async dma queues. 525 */ 526 static void sdma_v4_4_2_inst_rlc_stop(struct amdgpu_device *adev, 527 uint32_t inst_mask) 528 { 529 /* XXX todo */ 530 } 531 532 /** 533 * sdma_v4_4_2_inst_page_stop - stop the page async dma engines 534 * 535 * @adev: amdgpu_device pointer 536 * @inst_mask: mask of dma engine instances to be disabled 537 * 538 * Stop the page async dma ring buffers. 539 */ 540 static void sdma_v4_4_2_inst_page_stop(struct amdgpu_device *adev, 541 uint32_t inst_mask) 542 { 543 u32 rb_cntl, ib_cntl; 544 int i; 545 546 for_each_inst(i, inst_mask) { 547 rb_cntl = RREG32_SDMA(i, regSDMA_PAGE_RB_CNTL); 548 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_PAGE_RB_CNTL, 549 RB_ENABLE, 0); 550 WREG32_SDMA(i, regSDMA_PAGE_RB_CNTL, rb_cntl); 551 ib_cntl = RREG32_SDMA(i, regSDMA_PAGE_IB_CNTL); 552 ib_cntl = REG_SET_FIELD(ib_cntl, SDMA_PAGE_IB_CNTL, 553 IB_ENABLE, 0); 554 WREG32_SDMA(i, regSDMA_PAGE_IB_CNTL, ib_cntl); 555 } 556 } 557 558 /** 559 * sdma_v4_4_2_inst_ctx_switch_enable - stop the async dma engines context switch 560 * 561 * @adev: amdgpu_device pointer 562 * @enable: enable/disable the DMA MEs context switch. 563 * @inst_mask: mask of dma engine instances to be enabled 564 * 565 * Halt or unhalt the async dma engines context switch. 566 */ 567 static void sdma_v4_4_2_inst_ctx_switch_enable(struct amdgpu_device *adev, 568 bool enable, uint32_t inst_mask) 569 { 570 u32 f32_cntl, phase_quantum = 0; 571 int i; 572 573 if (amdgpu_sdma_phase_quantum) { 574 unsigned value = amdgpu_sdma_phase_quantum; 575 unsigned unit = 0; 576 577 while (value > (SDMA_PHASE0_QUANTUM__VALUE_MASK >> 578 SDMA_PHASE0_QUANTUM__VALUE__SHIFT)) { 579 value = (value + 1) >> 1; 580 unit++; 581 } 582 if (unit > (SDMA_PHASE0_QUANTUM__UNIT_MASK >> 583 SDMA_PHASE0_QUANTUM__UNIT__SHIFT)) { 584 value = (SDMA_PHASE0_QUANTUM__VALUE_MASK >> 585 SDMA_PHASE0_QUANTUM__VALUE__SHIFT); 586 unit = (SDMA_PHASE0_QUANTUM__UNIT_MASK >> 587 SDMA_PHASE0_QUANTUM__UNIT__SHIFT); 588 WARN_ONCE(1, 589 "clamping sdma_phase_quantum to %uK clock cycles\n", 590 value << unit); 591 } 592 phase_quantum = 593 value << SDMA_PHASE0_QUANTUM__VALUE__SHIFT | 594 unit << SDMA_PHASE0_QUANTUM__UNIT__SHIFT; 595 } 596 597 for_each_inst(i, inst_mask) { 598 f32_cntl = RREG32_SDMA(i, regSDMA_CNTL); 599 f32_cntl = REG_SET_FIELD(f32_cntl, SDMA_CNTL, 600 AUTO_CTXSW_ENABLE, enable ? 1 : 0); 601 if (enable && amdgpu_sdma_phase_quantum) { 602 WREG32_SDMA(i, regSDMA_PHASE0_QUANTUM, phase_quantum); 603 WREG32_SDMA(i, regSDMA_PHASE1_QUANTUM, phase_quantum); 604 WREG32_SDMA(i, regSDMA_PHASE2_QUANTUM, phase_quantum); 605 } 606 WREG32_SDMA(i, regSDMA_CNTL, f32_cntl); 607 608 /* Extend page fault timeout to avoid interrupt storm */ 609 WREG32_SDMA(i, regSDMA_UTCL1_TIMEOUT, 0x00800080); 610 } 611 } 612 613 /** 614 * sdma_v4_4_2_inst_enable - stop the async dma engines 615 * 616 * @adev: amdgpu_device pointer 617 * @enable: enable/disable the DMA MEs. 618 * @inst_mask: mask of dma engine instances to be enabled 619 * 620 * Halt or unhalt the async dma engines. 621 */ 622 static void sdma_v4_4_2_inst_enable(struct amdgpu_device *adev, bool enable, 623 uint32_t inst_mask) 624 { 625 u32 f32_cntl; 626 int i; 627 628 if (!enable) { 629 sdma_v4_4_2_inst_gfx_stop(adev, inst_mask); 630 sdma_v4_4_2_inst_rlc_stop(adev, inst_mask); 631 if (adev->sdma.has_page_queue) 632 sdma_v4_4_2_inst_page_stop(adev, inst_mask); 633 634 /* SDMA FW needs to respond to FREEZE requests during reset. 635 * Keep it running during reset */ 636 if (!amdgpu_sriov_vf(adev) && amdgpu_in_reset(adev)) 637 return; 638 } 639 640 if (adev->firmware.load_type == AMDGPU_FW_LOAD_PSP) 641 return; 642 643 for_each_inst(i, inst_mask) { 644 f32_cntl = RREG32_SDMA(i, regSDMA_F32_CNTL); 645 f32_cntl = REG_SET_FIELD(f32_cntl, SDMA_F32_CNTL, HALT, enable ? 0 : 1); 646 WREG32_SDMA(i, regSDMA_F32_CNTL, f32_cntl); 647 } 648 } 649 650 /* 651 * sdma_v4_4_2_rb_cntl - get parameters for rb_cntl 652 */ 653 static uint32_t sdma_v4_4_2_rb_cntl(struct amdgpu_ring *ring, uint32_t rb_cntl) 654 { 655 /* Set ring buffer size in dwords */ 656 uint32_t rb_bufsz = order_base_2(ring->ring_size / 4); 657 658 barrier(); /* work around https://llvm.org/pr42576 */ 659 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_GFX_RB_CNTL, RB_SIZE, rb_bufsz); 660 #ifdef __BIG_ENDIAN 661 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_GFX_RB_CNTL, RB_SWAP_ENABLE, 1); 662 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_GFX_RB_CNTL, 663 RPTR_WRITEBACK_SWAP_ENABLE, 1); 664 #endif 665 return rb_cntl; 666 } 667 668 /** 669 * sdma_v4_4_2_gfx_resume - setup and start the async dma engines 670 * 671 * @adev: amdgpu_device pointer 672 * @i: instance to resume 673 * @restore: used to restore wptr when restart 674 * @guilty: boolean indicating whether this queue is the guilty one (caused the timeout/error) 675 * 676 * Set up the gfx DMA ring buffers and enable them. 677 * Returns 0 for success, error for failure. 678 */ 679 static void sdma_v4_4_2_gfx_resume(struct amdgpu_device *adev, unsigned int i, bool restore, bool guilty) 680 { 681 struct amdgpu_ring *ring = &adev->sdma.instance[i].ring; 682 u32 rb_cntl, ib_cntl, wptr_poll_cntl; 683 u32 wb_offset; 684 u32 doorbell; 685 u32 doorbell_offset; 686 u64 wptr_gpu_addr; 687 u64 rwptr; 688 689 wb_offset = (ring->rptr_offs * 4); 690 691 rb_cntl = RREG32_SDMA(i, regSDMA_GFX_RB_CNTL); 692 rb_cntl = sdma_v4_4_2_rb_cntl(ring, rb_cntl); 693 WREG32_SDMA(i, regSDMA_GFX_RB_CNTL, rb_cntl); 694 695 /* set the wb address whether it's enabled or not */ 696 WREG32_SDMA(i, regSDMA_GFX_RB_RPTR_ADDR_HI, 697 upper_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFF); 698 WREG32_SDMA(i, regSDMA_GFX_RB_RPTR_ADDR_LO, 699 lower_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFC); 700 701 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_GFX_RB_CNTL, 702 RPTR_WRITEBACK_ENABLE, 1); 703 704 WREG32_SDMA(i, regSDMA_GFX_RB_BASE, ring->gpu_addr >> 8); 705 WREG32_SDMA(i, regSDMA_GFX_RB_BASE_HI, ring->gpu_addr >> 40); 706 707 if (!restore) 708 ring->wptr = 0; 709 710 /* before programing wptr to a less value, need set minor_ptr_update first */ 711 WREG32_SDMA(i, regSDMA_GFX_MINOR_PTR_UPDATE, 1); 712 713 /* For the guilty queue, set RPTR to the current wptr to skip bad commands, 714 * It is not a guilty queue, restore cache_rptr and continue execution. 715 */ 716 if (guilty) 717 rwptr = ring->wptr; 718 else 719 rwptr = ring->cached_rptr; 720 721 /* Initialize the ring buffer's read and write pointers */ 722 if (restore) { 723 WREG32_SDMA(i, regSDMA_GFX_RB_RPTR, lower_32_bits(rwptr << 2)); 724 WREG32_SDMA(i, regSDMA_GFX_RB_RPTR_HI, upper_32_bits(rwptr << 2)); 725 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR, lower_32_bits(rwptr << 2)); 726 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR_HI, upper_32_bits(rwptr << 2)); 727 } else { 728 WREG32_SDMA(i, regSDMA_GFX_RB_RPTR, 0); 729 WREG32_SDMA(i, regSDMA_GFX_RB_RPTR_HI, 0); 730 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR, 0); 731 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR_HI, 0); 732 } 733 734 doorbell = RREG32_SDMA(i, regSDMA_GFX_DOORBELL); 735 doorbell_offset = RREG32_SDMA(i, regSDMA_GFX_DOORBELL_OFFSET); 736 737 doorbell = REG_SET_FIELD(doorbell, SDMA_GFX_DOORBELL, ENABLE, 738 ring->use_doorbell); 739 doorbell_offset = REG_SET_FIELD(doorbell_offset, 740 SDMA_GFX_DOORBELL_OFFSET, 741 OFFSET, ring->doorbell_index); 742 WREG32_SDMA(i, regSDMA_GFX_DOORBELL, doorbell); 743 WREG32_SDMA(i, regSDMA_GFX_DOORBELL_OFFSET, doorbell_offset); 744 745 sdma_v4_4_2_ring_set_wptr(ring); 746 747 /* set minor_ptr_update to 0 after wptr programed */ 748 WREG32_SDMA(i, regSDMA_GFX_MINOR_PTR_UPDATE, 0); 749 750 /* setup the wptr shadow polling */ 751 wptr_gpu_addr = adev->wb.gpu_addr + (ring->wptr_offs * 4); 752 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR_POLL_ADDR_LO, 753 lower_32_bits(wptr_gpu_addr)); 754 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR_POLL_ADDR_HI, 755 upper_32_bits(wptr_gpu_addr)); 756 wptr_poll_cntl = RREG32_SDMA(i, regSDMA_GFX_RB_WPTR_POLL_CNTL); 757 wptr_poll_cntl = REG_SET_FIELD(wptr_poll_cntl, 758 SDMA_GFX_RB_WPTR_POLL_CNTL, 759 F32_POLL_ENABLE, amdgpu_sriov_vf(adev)? 1 : 0); 760 WREG32_SDMA(i, regSDMA_GFX_RB_WPTR_POLL_CNTL, wptr_poll_cntl); 761 762 /* enable DMA RB */ 763 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_GFX_RB_CNTL, RB_ENABLE, 1); 764 WREG32_SDMA(i, regSDMA_GFX_RB_CNTL, rb_cntl); 765 766 ib_cntl = RREG32_SDMA(i, regSDMA_GFX_IB_CNTL); 767 ib_cntl = REG_SET_FIELD(ib_cntl, SDMA_GFX_IB_CNTL, IB_ENABLE, 1); 768 #ifdef __BIG_ENDIAN 769 ib_cntl = REG_SET_FIELD(ib_cntl, SDMA_GFX_IB_CNTL, IB_SWAP_ENABLE, 1); 770 #endif 771 /* enable DMA IBs */ 772 WREG32_SDMA(i, regSDMA_GFX_IB_CNTL, ib_cntl); 773 } 774 775 /** 776 * sdma_v4_4_2_page_resume - setup and start the async dma engines 777 * 778 * @adev: amdgpu_device pointer 779 * @i: instance to resume 780 * @restore: boolean to say restore needed or not 781 * @guilty: boolean indicating whether this queue is the guilty one (caused the timeout/error) 782 * 783 * Set up the page DMA ring buffers and enable them. 784 * Returns 0 for success, error for failure. 785 */ 786 static void sdma_v4_4_2_page_resume(struct amdgpu_device *adev, unsigned int i, bool restore, bool guilty) 787 { 788 struct amdgpu_ring *ring = &adev->sdma.instance[i].page; 789 u32 rb_cntl, ib_cntl, wptr_poll_cntl; 790 u32 wb_offset; 791 u32 doorbell; 792 u32 doorbell_offset; 793 u64 wptr_gpu_addr; 794 u64 rwptr; 795 796 wb_offset = (ring->rptr_offs * 4); 797 798 rb_cntl = RREG32_SDMA(i, regSDMA_PAGE_RB_CNTL); 799 rb_cntl = sdma_v4_4_2_rb_cntl(ring, rb_cntl); 800 WREG32_SDMA(i, regSDMA_PAGE_RB_CNTL, rb_cntl); 801 802 /* For the guilty queue, set RPTR to the current wptr to skip bad commands, 803 * It is not a guilty queue, restore cache_rptr and continue execution. 804 */ 805 if (guilty) 806 rwptr = ring->wptr; 807 else 808 rwptr = ring->cached_rptr; 809 810 /* Initialize the ring buffer's read and write pointers */ 811 if (restore) { 812 WREG32_SDMA(i, regSDMA_PAGE_RB_RPTR, lower_32_bits(rwptr << 2)); 813 WREG32_SDMA(i, regSDMA_PAGE_RB_RPTR_HI, upper_32_bits(rwptr << 2)); 814 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR, lower_32_bits(rwptr << 2)); 815 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR_HI, upper_32_bits(rwptr << 2)); 816 } else { 817 WREG32_SDMA(i, regSDMA_PAGE_RB_RPTR, 0); 818 WREG32_SDMA(i, regSDMA_PAGE_RB_RPTR_HI, 0); 819 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR, 0); 820 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR_HI, 0); 821 } 822 823 /* set the wb address whether it's enabled or not */ 824 WREG32_SDMA(i, regSDMA_PAGE_RB_RPTR_ADDR_HI, 825 upper_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFF); 826 WREG32_SDMA(i, regSDMA_PAGE_RB_RPTR_ADDR_LO, 827 lower_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFC); 828 829 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_PAGE_RB_CNTL, 830 RPTR_WRITEBACK_ENABLE, 1); 831 832 WREG32_SDMA(i, regSDMA_PAGE_RB_BASE, ring->gpu_addr >> 8); 833 WREG32_SDMA(i, regSDMA_PAGE_RB_BASE_HI, ring->gpu_addr >> 40); 834 835 if (!restore) 836 ring->wptr = 0; 837 838 /* before programing wptr to a less value, need set minor_ptr_update first */ 839 WREG32_SDMA(i, regSDMA_PAGE_MINOR_PTR_UPDATE, 1); 840 841 doorbell = RREG32_SDMA(i, regSDMA_PAGE_DOORBELL); 842 doorbell_offset = RREG32_SDMA(i, regSDMA_PAGE_DOORBELL_OFFSET); 843 844 doorbell = REG_SET_FIELD(doorbell, SDMA_PAGE_DOORBELL, ENABLE, 845 ring->use_doorbell); 846 doorbell_offset = REG_SET_FIELD(doorbell_offset, 847 SDMA_PAGE_DOORBELL_OFFSET, 848 OFFSET, ring->doorbell_index); 849 WREG32_SDMA(i, regSDMA_PAGE_DOORBELL, doorbell); 850 WREG32_SDMA(i, regSDMA_PAGE_DOORBELL_OFFSET, doorbell_offset); 851 852 /* paging queue doorbell range is setup at sdma_v4_4_2_gfx_resume */ 853 sdma_v4_4_2_page_ring_set_wptr(ring); 854 855 /* set minor_ptr_update to 0 after wptr programed */ 856 WREG32_SDMA(i, regSDMA_PAGE_MINOR_PTR_UPDATE, 0); 857 858 /* setup the wptr shadow polling */ 859 wptr_gpu_addr = adev->wb.gpu_addr + (ring->wptr_offs * 4); 860 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR_POLL_ADDR_LO, 861 lower_32_bits(wptr_gpu_addr)); 862 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR_POLL_ADDR_HI, 863 upper_32_bits(wptr_gpu_addr)); 864 wptr_poll_cntl = RREG32_SDMA(i, regSDMA_PAGE_RB_WPTR_POLL_CNTL); 865 wptr_poll_cntl = REG_SET_FIELD(wptr_poll_cntl, 866 SDMA_PAGE_RB_WPTR_POLL_CNTL, 867 F32_POLL_ENABLE, amdgpu_sriov_vf(adev)? 1 : 0); 868 WREG32_SDMA(i, regSDMA_PAGE_RB_WPTR_POLL_CNTL, wptr_poll_cntl); 869 870 /* enable DMA RB */ 871 rb_cntl = REG_SET_FIELD(rb_cntl, SDMA_PAGE_RB_CNTL, RB_ENABLE, 1); 872 WREG32_SDMA(i, regSDMA_PAGE_RB_CNTL, rb_cntl); 873 874 ib_cntl = RREG32_SDMA(i, regSDMA_PAGE_IB_CNTL); 875 ib_cntl = REG_SET_FIELD(ib_cntl, SDMA_PAGE_IB_CNTL, IB_ENABLE, 1); 876 #ifdef __BIG_ENDIAN 877 ib_cntl = REG_SET_FIELD(ib_cntl, SDMA_PAGE_IB_CNTL, IB_SWAP_ENABLE, 1); 878 #endif 879 /* enable DMA IBs */ 880 WREG32_SDMA(i, regSDMA_PAGE_IB_CNTL, ib_cntl); 881 } 882 883 static void sdma_v4_4_2_init_pg(struct amdgpu_device *adev) 884 { 885 886 } 887 888 /** 889 * sdma_v4_4_2_inst_rlc_resume - setup and start the async dma engines 890 * 891 * @adev: amdgpu_device pointer 892 * @inst_mask: mask of dma engine instances to be enabled 893 * 894 * Set up the compute DMA queues and enable them. 895 * Returns 0 for success, error for failure. 896 */ 897 static int sdma_v4_4_2_inst_rlc_resume(struct amdgpu_device *adev, 898 uint32_t inst_mask) 899 { 900 sdma_v4_4_2_init_pg(adev); 901 902 return 0; 903 } 904 905 /** 906 * sdma_v4_4_2_inst_load_microcode - load the sDMA ME ucode 907 * 908 * @adev: amdgpu_device pointer 909 * @inst_mask: mask of dma engine instances to be enabled 910 * 911 * Loads the sDMA0/1 ucode. 912 * Returns 0 for success, -EINVAL if the ucode is not available. 913 */ 914 static int sdma_v4_4_2_inst_load_microcode(struct amdgpu_device *adev, 915 uint32_t inst_mask) 916 { 917 const struct sdma_firmware_header_v1_0 *hdr; 918 const __le32 *fw_data; 919 u32 fw_size; 920 int i, j; 921 922 /* halt the MEs */ 923 sdma_v4_4_2_inst_enable(adev, false, inst_mask); 924 925 for_each_inst(i, inst_mask) { 926 if (!adev->sdma.instance[i].fw) 927 return -EINVAL; 928 929 hdr = (const struct sdma_firmware_header_v1_0 *)adev->sdma.instance[i].fw->data; 930 amdgpu_ucode_print_sdma_hdr(&hdr->header); 931 fw_size = le32_to_cpu(hdr->header.ucode_size_bytes) / 4; 932 933 fw_data = (const __le32 *) 934 (adev->sdma.instance[i].fw->data + 935 le32_to_cpu(hdr->header.ucode_array_offset_bytes)); 936 937 WREG32_SDMA(i, regSDMA_UCODE_ADDR, 0); 938 939 for (j = 0; j < fw_size; j++) 940 WREG32_SDMA(i, regSDMA_UCODE_DATA, 941 le32_to_cpup(fw_data++)); 942 943 WREG32_SDMA(i, regSDMA_UCODE_ADDR, 944 adev->sdma.instance[i].fw_version); 945 } 946 947 return 0; 948 } 949 950 /** 951 * sdma_v4_4_2_inst_start - setup and start the async dma engines 952 * 953 * @adev: amdgpu_device pointer 954 * @inst_mask: mask of dma engine instances to be enabled 955 * @restore: boolean to say restore needed or not 956 * 957 * Set up the DMA engines and enable them. 958 * Returns 0 for success, error for failure. 959 */ 960 static int sdma_v4_4_2_inst_start(struct amdgpu_device *adev, 961 uint32_t inst_mask, bool restore) 962 { 963 struct amdgpu_ring *ring; 964 uint32_t tmp_mask; 965 int i, r = 0; 966 967 if (amdgpu_sriov_vf(adev)) { 968 sdma_v4_4_2_inst_ctx_switch_enable(adev, false, inst_mask); 969 sdma_v4_4_2_inst_enable(adev, false, inst_mask); 970 } else { 971 /* bypass sdma microcode loading on Gopher */ 972 if (!restore && adev->firmware.load_type != AMDGPU_FW_LOAD_PSP && 973 adev->sdma.instance[0].fw) { 974 r = sdma_v4_4_2_inst_load_microcode(adev, inst_mask); 975 if (r) 976 return r; 977 } 978 979 /* unhalt the MEs */ 980 sdma_v4_4_2_inst_enable(adev, true, inst_mask); 981 /* enable sdma ring preemption */ 982 sdma_v4_4_2_inst_ctx_switch_enable(adev, true, inst_mask); 983 } 984 985 /* start the gfx rings and rlc compute queues */ 986 tmp_mask = inst_mask; 987 for_each_inst(i, tmp_mask) { 988 uint32_t temp; 989 990 WREG32_SDMA(i, regSDMA_SEM_WAIT_FAIL_TIMER_CNTL, 0); 991 sdma_v4_4_2_gfx_resume(adev, i, restore, adev->sdma.gfx_guilty); 992 if (adev->sdma.has_page_queue) 993 sdma_v4_4_2_page_resume(adev, i, restore, adev->sdma.page_guilty); 994 995 /* set utc l1 enable flag always to 1 */ 996 temp = RREG32_SDMA(i, regSDMA_CNTL); 997 temp = REG_SET_FIELD(temp, SDMA_CNTL, UTC_L1_ENABLE, 1); 998 999 if (amdgpu_ip_version(adev, SDMA0_HWIP, 0) < IP_VERSION(4, 4, 5)) { 1000 /* enable context empty interrupt during initialization */ 1001 temp = REG_SET_FIELD(temp, SDMA_CNTL, CTXEMPTY_INT_ENABLE, 1); 1002 WREG32_SDMA(i, regSDMA_CNTL, temp); 1003 } 1004 if (!amdgpu_sriov_vf(adev)) { 1005 if (adev->firmware.load_type != AMDGPU_FW_LOAD_PSP) { 1006 /* unhalt engine */ 1007 temp = RREG32_SDMA(i, regSDMA_F32_CNTL); 1008 temp = REG_SET_FIELD(temp, SDMA_F32_CNTL, HALT, 0); 1009 WREG32_SDMA(i, regSDMA_F32_CNTL, temp); 1010 } 1011 } 1012 } 1013 1014 if (amdgpu_sriov_vf(adev)) { 1015 sdma_v4_4_2_inst_ctx_switch_enable(adev, true, inst_mask); 1016 sdma_v4_4_2_inst_enable(adev, true, inst_mask); 1017 } else { 1018 r = sdma_v4_4_2_inst_rlc_resume(adev, inst_mask); 1019 if (r) 1020 return r; 1021 } 1022 1023 tmp_mask = inst_mask; 1024 for_each_inst(i, tmp_mask) { 1025 ring = &adev->sdma.instance[i].ring; 1026 1027 r = amdgpu_ring_test_helper(ring); 1028 if (r) 1029 return r; 1030 1031 if (adev->sdma.has_page_queue) { 1032 struct amdgpu_ring *page = &adev->sdma.instance[i].page; 1033 1034 r = amdgpu_ring_test_helper(page); 1035 if (r) 1036 return r; 1037 } 1038 } 1039 1040 return r; 1041 } 1042 1043 /** 1044 * sdma_v4_4_2_ring_test_ring - simple async dma engine test 1045 * 1046 * @ring: amdgpu_ring structure holding ring information 1047 * 1048 * Test the DMA engine by writing using it to write an 1049 * value to memory. 1050 * Returns 0 for success, error for failure. 1051 */ 1052 static int sdma_v4_4_2_ring_test_ring(struct amdgpu_ring *ring) 1053 { 1054 struct amdgpu_device *adev = ring->adev; 1055 unsigned i; 1056 unsigned index; 1057 int r; 1058 u32 tmp; 1059 u64 gpu_addr; 1060 1061 r = amdgpu_device_wb_get(adev, &index); 1062 if (r) 1063 return r; 1064 1065 gpu_addr = adev->wb.gpu_addr + (index * 4); 1066 tmp = 0xCAFEDEAD; 1067 adev->wb.wb[index] = cpu_to_le32(tmp); 1068 1069 r = amdgpu_ring_alloc(ring, 5); 1070 if (r) 1071 goto error_free_wb; 1072 1073 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_WRITE) | 1074 SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_WRITE_LINEAR)); 1075 amdgpu_ring_write(ring, lower_32_bits(gpu_addr)); 1076 amdgpu_ring_write(ring, upper_32_bits(gpu_addr)); 1077 amdgpu_ring_write(ring, SDMA_PKT_WRITE_UNTILED_DW_3_COUNT(0)); 1078 amdgpu_ring_write(ring, 0xDEADBEEF); 1079 amdgpu_ring_commit(ring); 1080 1081 for (i = 0; i < adev->usec_timeout; i++) { 1082 tmp = le32_to_cpu(adev->wb.wb[index]); 1083 if (tmp == 0xDEADBEEF) 1084 break; 1085 udelay(1); 1086 } 1087 1088 if (i >= adev->usec_timeout) 1089 r = -ETIMEDOUT; 1090 1091 error_free_wb: 1092 amdgpu_device_wb_free(adev, index); 1093 return r; 1094 } 1095 1096 /** 1097 * sdma_v4_4_2_ring_test_ib - test an IB on the DMA engine 1098 * 1099 * @ring: amdgpu_ring structure holding ring information 1100 * @timeout: timeout value in jiffies, or MAX_SCHEDULE_TIMEOUT 1101 * 1102 * Test a simple IB in the DMA ring. 1103 * Returns 0 on success, error on failure. 1104 */ 1105 static int sdma_v4_4_2_ring_test_ib(struct amdgpu_ring *ring, long timeout) 1106 { 1107 struct amdgpu_device *adev = ring->adev; 1108 struct amdgpu_ib ib; 1109 struct dma_fence *f = NULL; 1110 unsigned index; 1111 long r; 1112 u32 tmp = 0; 1113 u64 gpu_addr; 1114 1115 r = amdgpu_device_wb_get(adev, &index); 1116 if (r) 1117 return r; 1118 1119 gpu_addr = adev->wb.gpu_addr + (index * 4); 1120 tmp = 0xCAFEDEAD; 1121 adev->wb.wb[index] = cpu_to_le32(tmp); 1122 memset(&ib, 0, sizeof(ib)); 1123 r = amdgpu_ib_get(adev, NULL, 256, 1124 AMDGPU_IB_POOL_DIRECT, &ib); 1125 if (r) 1126 goto err0; 1127 1128 ib.ptr[0] = SDMA_PKT_HEADER_OP(SDMA_OP_WRITE) | 1129 SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_WRITE_LINEAR); 1130 ib.ptr[1] = lower_32_bits(gpu_addr); 1131 ib.ptr[2] = upper_32_bits(gpu_addr); 1132 ib.ptr[3] = SDMA_PKT_WRITE_UNTILED_DW_3_COUNT(0); 1133 ib.ptr[4] = 0xDEADBEEF; 1134 ib.ptr[5] = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP); 1135 ib.ptr[6] = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP); 1136 ib.ptr[7] = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP); 1137 ib.length_dw = 8; 1138 1139 r = amdgpu_ib_schedule(ring, 1, &ib, NULL, &f); 1140 if (r) 1141 goto err1; 1142 1143 r = dma_fence_wait_timeout(f, false, timeout); 1144 if (r == 0) { 1145 r = -ETIMEDOUT; 1146 goto err1; 1147 } else if (r < 0) { 1148 goto err1; 1149 } 1150 tmp = le32_to_cpu(adev->wb.wb[index]); 1151 if (tmp == 0xDEADBEEF) 1152 r = 0; 1153 else 1154 r = -EINVAL; 1155 1156 err1: 1157 amdgpu_ib_free(&ib, NULL); 1158 dma_fence_put(f); 1159 err0: 1160 amdgpu_device_wb_free(adev, index); 1161 return r; 1162 } 1163 1164 1165 /** 1166 * sdma_v4_4_2_vm_copy_pte - update PTEs by copying them from the GART 1167 * 1168 * @ib: indirect buffer to fill with commands 1169 * @pe: addr of the page entry 1170 * @src: src addr to copy from 1171 * @count: number of page entries to update 1172 * 1173 * Update PTEs by copying them from the GART using sDMA. 1174 */ 1175 static void sdma_v4_4_2_vm_copy_pte(struct amdgpu_ib *ib, 1176 uint64_t pe, uint64_t src, 1177 unsigned count) 1178 { 1179 unsigned bytes = count * 8; 1180 1181 ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_COPY) | 1182 SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_COPY_LINEAR); 1183 ib->ptr[ib->length_dw++] = bytes - 1; 1184 ib->ptr[ib->length_dw++] = 0; /* src/dst endian swap */ 1185 ib->ptr[ib->length_dw++] = lower_32_bits(src); 1186 ib->ptr[ib->length_dw++] = upper_32_bits(src); 1187 ib->ptr[ib->length_dw++] = lower_32_bits(pe); 1188 ib->ptr[ib->length_dw++] = upper_32_bits(pe); 1189 1190 } 1191 1192 /** 1193 * sdma_v4_4_2_vm_write_pte - update PTEs by writing them manually 1194 * 1195 * @ib: indirect buffer to fill with commands 1196 * @pe: addr of the page entry 1197 * @value: dst addr to write into pe 1198 * @count: number of page entries to update 1199 * @incr: increase next addr by incr bytes 1200 * 1201 * Update PTEs by writing them manually using sDMA. 1202 */ 1203 static void sdma_v4_4_2_vm_write_pte(struct amdgpu_ib *ib, uint64_t pe, 1204 uint64_t value, unsigned count, 1205 uint32_t incr) 1206 { 1207 unsigned ndw = count * 2; 1208 1209 ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_WRITE) | 1210 SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_WRITE_LINEAR); 1211 ib->ptr[ib->length_dw++] = lower_32_bits(pe); 1212 ib->ptr[ib->length_dw++] = upper_32_bits(pe); 1213 ib->ptr[ib->length_dw++] = ndw - 1; 1214 for (; ndw > 0; ndw -= 2) { 1215 ib->ptr[ib->length_dw++] = lower_32_bits(value); 1216 ib->ptr[ib->length_dw++] = upper_32_bits(value); 1217 value += incr; 1218 } 1219 } 1220 1221 /** 1222 * sdma_v4_4_2_vm_set_pte_pde - update the page tables using sDMA 1223 * 1224 * @ib: indirect buffer to fill with commands 1225 * @pe: addr of the page entry 1226 * @addr: dst addr to write into pe 1227 * @count: number of page entries to update 1228 * @incr: increase next addr by incr bytes 1229 * @flags: access flags 1230 * 1231 * Update the page tables using sDMA. 1232 */ 1233 static void sdma_v4_4_2_vm_set_pte_pde(struct amdgpu_ib *ib, 1234 uint64_t pe, 1235 uint64_t addr, unsigned count, 1236 uint32_t incr, uint64_t flags) 1237 { 1238 /* for physically contiguous pages (vram) */ 1239 ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_PTEPDE); 1240 ib->ptr[ib->length_dw++] = lower_32_bits(pe); /* dst addr */ 1241 ib->ptr[ib->length_dw++] = upper_32_bits(pe); 1242 ib->ptr[ib->length_dw++] = lower_32_bits(flags); /* mask */ 1243 ib->ptr[ib->length_dw++] = upper_32_bits(flags); 1244 ib->ptr[ib->length_dw++] = lower_32_bits(addr); /* value */ 1245 ib->ptr[ib->length_dw++] = upper_32_bits(addr); 1246 ib->ptr[ib->length_dw++] = incr; /* increment size */ 1247 ib->ptr[ib->length_dw++] = 0; 1248 ib->ptr[ib->length_dw++] = count - 1; /* number of entries */ 1249 } 1250 1251 /** 1252 * sdma_v4_4_2_ring_pad_ib - pad the IB to the required number of dw 1253 * 1254 * @ring: amdgpu_ring structure holding ring information 1255 * @ib: indirect buffer to fill with padding 1256 */ 1257 static void sdma_v4_4_2_ring_pad_ib(struct amdgpu_ring *ring, struct amdgpu_ib *ib) 1258 { 1259 struct amdgpu_sdma_instance *sdma = amdgpu_sdma_get_instance_from_ring(ring); 1260 u32 pad_count; 1261 int i; 1262 1263 pad_count = (-ib->length_dw) & 7; 1264 for (i = 0; i < pad_count; i++) 1265 if (sdma && sdma->burst_nop && (i == 0)) 1266 ib->ptr[ib->length_dw++] = 1267 SDMA_PKT_HEADER_OP(SDMA_OP_NOP) | 1268 SDMA_PKT_NOP_HEADER_COUNT(pad_count - 1); 1269 else 1270 ib->ptr[ib->length_dw++] = 1271 SDMA_PKT_HEADER_OP(SDMA_OP_NOP); 1272 } 1273 1274 1275 /** 1276 * sdma_v4_4_2_ring_emit_pipeline_sync - sync the pipeline 1277 * 1278 * @ring: amdgpu_ring pointer 1279 * 1280 * Make sure all previous operations are completed (CIK). 1281 */ 1282 static void sdma_v4_4_2_ring_emit_pipeline_sync(struct amdgpu_ring *ring) 1283 { 1284 uint32_t seq = ring->fence_drv.sync_seq; 1285 uint64_t addr = ring->fence_drv.gpu_addr; 1286 1287 /* wait for idle */ 1288 sdma_v4_4_2_wait_reg_mem(ring, 1, 0, 1289 addr & 0xfffffffc, 1290 upper_32_bits(addr) & 0xffffffff, 1291 seq, 0xffffffff, 4); 1292 } 1293 1294 1295 /** 1296 * sdma_v4_4_2_ring_emit_vm_flush - vm flush using sDMA 1297 * 1298 * @ring: amdgpu_ring pointer 1299 * @vmid: vmid number to use 1300 * @pd_addr: address 1301 * 1302 * Update the page table base and flush the VM TLB 1303 * using sDMA. 1304 */ 1305 static void sdma_v4_4_2_ring_emit_vm_flush(struct amdgpu_ring *ring, 1306 unsigned vmid, uint64_t pd_addr) 1307 { 1308 amdgpu_gmc_emit_flush_gpu_tlb(ring, vmid, pd_addr); 1309 } 1310 1311 static void sdma_v4_4_2_ring_emit_wreg(struct amdgpu_ring *ring, 1312 uint32_t reg, uint32_t val) 1313 { 1314 amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_SRBM_WRITE) | 1315 SDMA_PKT_SRBM_WRITE_HEADER_BYTE_EN(0xf)); 1316 amdgpu_ring_write(ring, reg); 1317 amdgpu_ring_write(ring, val); 1318 } 1319 1320 static void sdma_v4_4_2_ring_emit_reg_wait(struct amdgpu_ring *ring, uint32_t reg, 1321 uint32_t val, uint32_t mask) 1322 { 1323 sdma_v4_4_2_wait_reg_mem(ring, 0, 0, reg, 0, val, mask, 10); 1324 } 1325 1326 static bool sdma_v4_4_2_fw_support_paging_queue(struct amdgpu_device *adev) 1327 { 1328 switch (amdgpu_ip_version(adev, SDMA0_HWIP, 0)) { 1329 case IP_VERSION(4, 4, 2): 1330 case IP_VERSION(4, 4, 5): 1331 return false; 1332 default: 1333 return false; 1334 } 1335 } 1336 1337 static int sdma_v4_4_2_early_init(struct amdgpu_ip_block *ip_block) 1338 { 1339 struct amdgpu_device *adev = ip_block->adev; 1340 int r; 1341 1342 r = sdma_v4_4_2_init_microcode(adev); 1343 if (r) 1344 return r; 1345 1346 /* TODO: Page queue breaks driver reload under SRIOV */ 1347 if (sdma_v4_4_2_fw_support_paging_queue(adev)) 1348 adev->sdma.has_page_queue = true; 1349 1350 sdma_v4_4_2_set_ring_funcs(adev); 1351 sdma_v4_4_2_set_buffer_funcs(adev); 1352 sdma_v4_4_2_set_vm_pte_funcs(adev); 1353 sdma_v4_4_2_set_irq_funcs(adev); 1354 sdma_v4_4_2_set_ras_funcs(adev); 1355 sdma_v4_4_2_set_engine_reset_funcs(adev); 1356 1357 return 0; 1358 } 1359 1360 #if 0 1361 static int sdma_v4_4_2_process_ras_data_cb(struct amdgpu_device *adev, 1362 void *err_data, 1363 struct amdgpu_iv_entry *entry); 1364 #endif 1365 1366 static int sdma_v4_4_2_late_init(struct amdgpu_ip_block *ip_block) 1367 { 1368 struct amdgpu_device *adev = ip_block->adev; 1369 #if 0 1370 struct ras_ih_if ih_info = { 1371 .cb = sdma_v4_4_2_process_ras_data_cb, 1372 }; 1373 #endif 1374 if (!amdgpu_persistent_edc_harvesting_supported(adev)) 1375 amdgpu_ras_reset_error_count(adev, AMDGPU_RAS_BLOCK__SDMA); 1376 1377 return 0; 1378 } 1379 1380 static int sdma_v4_4_2_sw_init(struct amdgpu_ip_block *ip_block) 1381 { 1382 struct amdgpu_ring *ring; 1383 int r, i; 1384 struct amdgpu_device *adev = ip_block->adev; 1385 u32 aid_id; 1386 uint32_t reg_count = ARRAY_SIZE(sdma_reg_list_4_4_2); 1387 uint32_t *ptr; 1388 1389 /* SDMA trap event */ 1390 for (i = 0; i < adev->sdma.num_inst_per_aid; i++) { 1391 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1392 SDMA0_4_0__SRCID__SDMA_TRAP, 1393 &adev->sdma.trap_irq); 1394 if (r) 1395 return r; 1396 } 1397 1398 /* SDMA SRAM ECC event */ 1399 for (i = 0; i < adev->sdma.num_inst_per_aid; i++) { 1400 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1401 SDMA0_4_0__SRCID__SDMA_SRAM_ECC, 1402 &adev->sdma.ecc_irq); 1403 if (r) 1404 return r; 1405 } 1406 1407 /* SDMA VM_HOLE/DOORBELL_INV/POLL_TIMEOUT/SRBM_WRITE_PROTECTION event*/ 1408 for (i = 0; i < adev->sdma.num_inst_per_aid; i++) { 1409 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1410 SDMA0_4_0__SRCID__SDMA_VM_HOLE, 1411 &adev->sdma.vm_hole_irq); 1412 if (r) 1413 return r; 1414 1415 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1416 SDMA0_4_0__SRCID__SDMA_DOORBELL_INVALID, 1417 &adev->sdma.doorbell_invalid_irq); 1418 if (r) 1419 return r; 1420 1421 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1422 SDMA0_4_0__SRCID__SDMA_POLL_TIMEOUT, 1423 &adev->sdma.pool_timeout_irq); 1424 if (r) 1425 return r; 1426 1427 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1428 SDMA0_4_0__SRCID__SDMA_SRBMWRITE, 1429 &adev->sdma.srbm_write_irq); 1430 if (r) 1431 return r; 1432 1433 r = amdgpu_irq_add_id(adev, sdma_v4_4_2_seq_to_irq_id(i), 1434 SDMA0_4_0__SRCID__SDMA_CTXEMPTY, 1435 &adev->sdma.ctxt_empty_irq); 1436 if (r) 1437 return r; 1438 } 1439 1440 for (i = 0; i < adev->sdma.num_instances; i++) { 1441 ring = &adev->sdma.instance[i].ring; 1442 ring->ring_obj = NULL; 1443 ring->use_doorbell = true; 1444 aid_id = adev->sdma.instance[i].aid_id; 1445 1446 DRM_DEBUG("SDMA %d use_doorbell being set to: [%s]\n", i, 1447 ring->use_doorbell?"true":"false"); 1448 1449 /* doorbell size is 2 dwords, get DWORD offset */ 1450 ring->doorbell_index = adev->doorbell_index.sdma_engine[i] << 1; 1451 ring->vm_hub = AMDGPU_MMHUB0(aid_id); 1452 1453 sprintf(ring->name, "sdma%d.%d", aid_id, 1454 i % adev->sdma.num_inst_per_aid); 1455 r = amdgpu_ring_init(adev, ring, 1024, &adev->sdma.trap_irq, 1456 AMDGPU_SDMA_IRQ_INSTANCE0 + i, 1457 AMDGPU_RING_PRIO_DEFAULT, NULL); 1458 if (r) 1459 return r; 1460 1461 if (adev->sdma.has_page_queue) { 1462 ring = &adev->sdma.instance[i].page; 1463 ring->ring_obj = NULL; 1464 ring->use_doorbell = true; 1465 1466 /* doorbell index of page queue is assigned right after 1467 * gfx queue on the same instance 1468 */ 1469 ring->doorbell_index = 1470 (adev->doorbell_index.sdma_engine[i] + 1) << 1; 1471 ring->vm_hub = AMDGPU_MMHUB0(aid_id); 1472 1473 sprintf(ring->name, "page%d.%d", aid_id, 1474 i % adev->sdma.num_inst_per_aid); 1475 r = amdgpu_ring_init(adev, ring, 1024, 1476 &adev->sdma.trap_irq, 1477 AMDGPU_SDMA_IRQ_INSTANCE0 + i, 1478 AMDGPU_RING_PRIO_DEFAULT, NULL); 1479 if (r) 1480 return r; 1481 } 1482 } 1483 1484 /* TODO: Add queue reset mask when FW fully supports it */ 1485 adev->sdma.supported_reset = 1486 amdgpu_get_soft_full_reset_mask(&adev->sdma.instance[0].ring); 1487 1488 if (amdgpu_sdma_ras_sw_init(adev)) { 1489 dev_err(adev->dev, "fail to initialize sdma ras block\n"); 1490 return -EINVAL; 1491 } 1492 1493 /* Allocate memory for SDMA IP Dump buffer */ 1494 ptr = kcalloc(adev->sdma.num_instances * reg_count, sizeof(uint32_t), GFP_KERNEL); 1495 if (ptr) 1496 adev->sdma.ip_dump = ptr; 1497 else 1498 DRM_ERROR("Failed to allocated memory for SDMA IP Dump\n"); 1499 1500 r = amdgpu_sdma_sysfs_reset_mask_init(adev); 1501 if (r) 1502 return r; 1503 /* Initialize guilty flags for GFX and PAGE queues */ 1504 adev->sdma.gfx_guilty = false; 1505 adev->sdma.page_guilty = false; 1506 1507 return r; 1508 } 1509 1510 static int sdma_v4_4_2_sw_fini(struct amdgpu_ip_block *ip_block) 1511 { 1512 struct amdgpu_device *adev = ip_block->adev; 1513 int i; 1514 1515 for (i = 0; i < adev->sdma.num_instances; i++) { 1516 amdgpu_ring_fini(&adev->sdma.instance[i].ring); 1517 if (adev->sdma.has_page_queue) 1518 amdgpu_ring_fini(&adev->sdma.instance[i].page); 1519 } 1520 1521 amdgpu_sdma_sysfs_reset_mask_fini(adev); 1522 if (amdgpu_ip_version(adev, SDMA0_HWIP, 0) == IP_VERSION(4, 4, 2) || 1523 amdgpu_ip_version(adev, SDMA0_HWIP, 0) == IP_VERSION(4, 4, 4) || 1524 amdgpu_ip_version(adev, SDMA0_HWIP, 0) == IP_VERSION(4, 4, 5)) 1525 amdgpu_sdma_destroy_inst_ctx(adev, true); 1526 else 1527 amdgpu_sdma_destroy_inst_ctx(adev, false); 1528 1529 kfree(adev->sdma.ip_dump); 1530 1531 return 0; 1532 } 1533 1534 static int sdma_v4_4_2_hw_init(struct amdgpu_ip_block *ip_block) 1535 { 1536 int r; 1537 struct amdgpu_device *adev = ip_block->adev; 1538 uint32_t inst_mask; 1539 1540 inst_mask = GENMASK(adev->sdma.num_instances - 1, 0); 1541 if (!amdgpu_sriov_vf(adev)) 1542 sdma_v4_4_2_inst_init_golden_registers(adev, inst_mask); 1543 1544 r = sdma_v4_4_2_inst_start(adev, inst_mask, false); 1545 1546 return r; 1547 } 1548 1549 static int sdma_v4_4_2_hw_fini(struct amdgpu_ip_block *ip_block) 1550 { 1551 struct amdgpu_device *adev = ip_block->adev; 1552 uint32_t inst_mask; 1553 int i; 1554 1555 if (amdgpu_sriov_vf(adev)) 1556 return 0; 1557 1558 inst_mask = GENMASK(adev->sdma.num_instances - 1, 0); 1559 if (amdgpu_ras_is_supported(adev, AMDGPU_RAS_BLOCK__SDMA)) { 1560 for (i = 0; i < adev->sdma.num_instances; i++) { 1561 amdgpu_irq_put(adev, &adev->sdma.ecc_irq, 1562 AMDGPU_SDMA_IRQ_INSTANCE0 + i); 1563 } 1564 } 1565 1566 sdma_v4_4_2_inst_ctx_switch_enable(adev, false, inst_mask); 1567 sdma_v4_4_2_inst_enable(adev, false, inst_mask); 1568 1569 return 0; 1570 } 1571 1572 static int sdma_v4_4_2_set_clockgating_state(struct amdgpu_ip_block *ip_block, 1573 enum amd_clockgating_state state); 1574 1575 static int sdma_v4_4_2_suspend(struct amdgpu_ip_block *ip_block) 1576 { 1577 struct amdgpu_device *adev = ip_block->adev; 1578 1579 if (amdgpu_in_reset(adev)) 1580 sdma_v4_4_2_set_clockgating_state(ip_block, AMD_CG_STATE_UNGATE); 1581 1582 return sdma_v4_4_2_hw_fini(ip_block); 1583 } 1584 1585 static int sdma_v4_4_2_resume(struct amdgpu_ip_block *ip_block) 1586 { 1587 return sdma_v4_4_2_hw_init(ip_block); 1588 } 1589 1590 static bool sdma_v4_4_2_is_idle(struct amdgpu_ip_block *ip_block) 1591 { 1592 struct amdgpu_device *adev = ip_block->adev; 1593 u32 i; 1594 1595 for (i = 0; i < adev->sdma.num_instances; i++) { 1596 u32 tmp = RREG32_SDMA(i, regSDMA_STATUS_REG); 1597 1598 if (!(tmp & SDMA_STATUS_REG__IDLE_MASK)) 1599 return false; 1600 } 1601 1602 return true; 1603 } 1604 1605 static int sdma_v4_4_2_wait_for_idle(struct amdgpu_ip_block *ip_block) 1606 { 1607 unsigned i, j; 1608 u32 sdma[AMDGPU_MAX_SDMA_INSTANCES]; 1609 struct amdgpu_device *adev = ip_block->adev; 1610 1611 for (i = 0; i < adev->usec_timeout; i++) { 1612 for (j = 0; j < adev->sdma.num_instances; j++) { 1613 sdma[j] = RREG32_SDMA(j, regSDMA_STATUS_REG); 1614 if (!(sdma[j] & SDMA_STATUS_REG__IDLE_MASK)) 1615 break; 1616 } 1617 if (j == adev->sdma.num_instances) 1618 return 0; 1619 udelay(1); 1620 } 1621 return -ETIMEDOUT; 1622 } 1623 1624 static int sdma_v4_4_2_soft_reset(struct amdgpu_ip_block *ip_block) 1625 { 1626 /* todo */ 1627 1628 return 0; 1629 } 1630 1631 static bool sdma_v4_4_2_is_queue_selected(struct amdgpu_device *adev, uint32_t instance_id, bool is_page_queue) 1632 { 1633 uint32_t reg_offset = is_page_queue ? regSDMA_PAGE_CONTEXT_STATUS : regSDMA_GFX_CONTEXT_STATUS; 1634 uint32_t context_status = RREG32(sdma_v4_4_2_get_reg_offset(adev, instance_id, reg_offset)); 1635 1636 /* Check if the SELECTED bit is set */ 1637 return (context_status & SDMA_GFX_CONTEXT_STATUS__SELECTED_MASK) != 0; 1638 } 1639 1640 static bool sdma_v4_4_2_ring_is_guilty(struct amdgpu_ring *ring) 1641 { 1642 struct amdgpu_device *adev = ring->adev; 1643 uint32_t instance_id = ring->me; 1644 1645 return sdma_v4_4_2_is_queue_selected(adev, instance_id, false); 1646 } 1647 1648 static bool sdma_v4_4_2_page_ring_is_guilty(struct amdgpu_ring *ring) 1649 { 1650 struct amdgpu_device *adev = ring->adev; 1651 uint32_t instance_id = ring->me; 1652 1653 if (!adev->sdma.has_page_queue) 1654 return false; 1655 1656 return sdma_v4_4_2_is_queue_selected(adev, instance_id, true); 1657 } 1658 1659 static int sdma_v4_4_2_reset_queue(struct amdgpu_ring *ring, unsigned int vmid) 1660 { 1661 struct amdgpu_device *adev = ring->adev; 1662 u32 id = GET_INST(SDMA0, ring->me); 1663 return amdgpu_sdma_reset_engine(adev, id, true); 1664 } 1665 1666 static int sdma_v4_4_2_stop_queue(struct amdgpu_device *adev, uint32_t instance_id) 1667 { 1668 u32 inst_mask; 1669 uint64_t rptr; 1670 struct amdgpu_ring *ring = &adev->sdma.instance[instance_id].ring; 1671 1672 if (amdgpu_sriov_vf(adev)) 1673 return -EINVAL; 1674 1675 /* Check if this queue is the guilty one */ 1676 adev->sdma.gfx_guilty = sdma_v4_4_2_is_queue_selected(adev, instance_id, false); 1677 if (adev->sdma.has_page_queue) 1678 adev->sdma.page_guilty = sdma_v4_4_2_is_queue_selected(adev, instance_id, true); 1679 1680 /* Cache the rptr before reset, after the reset, 1681 * all of the registers will be reset to 0 1682 */ 1683 rptr = amdgpu_ring_get_rptr(ring); 1684 ring->cached_rptr = rptr; 1685 /* Cache the rptr for the page queue if it exists */ 1686 if (adev->sdma.has_page_queue) { 1687 struct amdgpu_ring *page_ring = &adev->sdma.instance[instance_id].page; 1688 rptr = amdgpu_ring_get_rptr(page_ring); 1689 page_ring->cached_rptr = rptr; 1690 } 1691 1692 /* stop queue */ 1693 inst_mask = 1 << ring->me; 1694 sdma_v4_4_2_inst_gfx_stop(adev, inst_mask); 1695 if (adev->sdma.has_page_queue) 1696 sdma_v4_4_2_inst_page_stop(adev, inst_mask); 1697 1698 return 0; 1699 } 1700 1701 static int sdma_v4_4_2_restore_queue(struct amdgpu_device *adev, uint32_t instance_id) 1702 { 1703 int i; 1704 u32 inst_mask; 1705 struct amdgpu_ring *ring = &adev->sdma.instance[instance_id].ring; 1706 1707 inst_mask = 1 << ring->me; 1708 udelay(50); 1709 1710 for (i = 0; i < adev->usec_timeout; i++) { 1711 if (!REG_GET_FIELD(RREG32_SDMA(ring->me, regSDMA_F32_CNTL), SDMA_F32_CNTL, HALT)) 1712 break; 1713 udelay(1); 1714 } 1715 1716 if (i == adev->usec_timeout) { 1717 dev_err(adev->dev, "timed out waiting for SDMA%d unhalt after reset\n", 1718 ring->me); 1719 return -ETIMEDOUT; 1720 } 1721 1722 return sdma_v4_4_2_inst_start(adev, inst_mask, true); 1723 } 1724 1725 static struct sdma_on_reset_funcs sdma_v4_4_2_engine_reset_funcs = { 1726 .pre_reset = sdma_v4_4_2_stop_queue, 1727 .post_reset = sdma_v4_4_2_restore_queue, 1728 }; 1729 1730 static void sdma_v4_4_2_set_engine_reset_funcs(struct amdgpu_device *adev) 1731 { 1732 amdgpu_sdma_register_on_reset_callbacks(adev, &sdma_v4_4_2_engine_reset_funcs); 1733 } 1734 1735 static int sdma_v4_4_2_set_trap_irq_state(struct amdgpu_device *adev, 1736 struct amdgpu_irq_src *source, 1737 unsigned type, 1738 enum amdgpu_interrupt_state state) 1739 { 1740 u32 sdma_cntl; 1741 1742 sdma_cntl = RREG32_SDMA(type, regSDMA_CNTL); 1743 sdma_cntl = REG_SET_FIELD(sdma_cntl, SDMA_CNTL, TRAP_ENABLE, 1744 state == AMDGPU_IRQ_STATE_ENABLE ? 1 : 0); 1745 WREG32_SDMA(type, regSDMA_CNTL, sdma_cntl); 1746 1747 return 0; 1748 } 1749 1750 static int sdma_v4_4_2_process_trap_irq(struct amdgpu_device *adev, 1751 struct amdgpu_irq_src *source, 1752 struct amdgpu_iv_entry *entry) 1753 { 1754 uint32_t instance, i; 1755 1756 DRM_DEBUG("IH: SDMA trap\n"); 1757 instance = sdma_v4_4_2_irq_id_to_seq(adev, entry->client_id); 1758 1759 /* Client id gives the SDMA instance in AID. To know the exact SDMA 1760 * instance, interrupt entry gives the node id which corresponds to the AID instance. 1761 * Match node id with the AID id associated with the SDMA instance. */ 1762 for (i = instance; i < adev->sdma.num_instances; 1763 i += adev->sdma.num_inst_per_aid) { 1764 if (adev->sdma.instance[i].aid_id == 1765 node_id_to_phys_map[entry->node_id]) 1766 break; 1767 } 1768 1769 if (i >= adev->sdma.num_instances) { 1770 dev_WARN_ONCE( 1771 adev->dev, 1, 1772 "Couldn't find the right sdma instance in trap handler"); 1773 return 0; 1774 } 1775 1776 switch (entry->ring_id) { 1777 case 0: 1778 amdgpu_fence_process(&adev->sdma.instance[i].ring); 1779 break; 1780 default: 1781 break; 1782 } 1783 return 0; 1784 } 1785 1786 #if 0 1787 static int sdma_v4_4_2_process_ras_data_cb(struct amdgpu_device *adev, 1788 void *err_data, 1789 struct amdgpu_iv_entry *entry) 1790 { 1791 int instance; 1792 1793 /* When “Full RAS” is enabled, the per-IP interrupt sources should 1794 * be disabled and the driver should only look for the aggregated 1795 * interrupt via sync flood 1796 */ 1797 if (amdgpu_ras_is_supported(adev, AMDGPU_RAS_BLOCK__SDMA)) 1798 goto out; 1799 1800 instance = sdma_v4_4_2_irq_id_to_seq(adev, entry->client_id); 1801 if (instance < 0) 1802 goto out; 1803 1804 amdgpu_sdma_process_ras_data_cb(adev, err_data, entry); 1805 1806 out: 1807 return AMDGPU_RAS_SUCCESS; 1808 } 1809 #endif 1810 1811 static int sdma_v4_4_2_process_illegal_inst_irq(struct amdgpu_device *adev, 1812 struct amdgpu_irq_src *source, 1813 struct amdgpu_iv_entry *entry) 1814 { 1815 int instance; 1816 1817 DRM_ERROR("Illegal instruction in SDMA command stream\n"); 1818 1819 instance = sdma_v4_4_2_irq_id_to_seq(adev, entry->client_id); 1820 if (instance < 0) 1821 return 0; 1822 1823 switch (entry->ring_id) { 1824 case 0: 1825 drm_sched_fault(&adev->sdma.instance[instance].ring.sched); 1826 break; 1827 } 1828 return 0; 1829 } 1830 1831 static int sdma_v4_4_2_set_ecc_irq_state(struct amdgpu_device *adev, 1832 struct amdgpu_irq_src *source, 1833 unsigned type, 1834 enum amdgpu_interrupt_state state) 1835 { 1836 u32 sdma_cntl; 1837 1838 sdma_cntl = RREG32_SDMA(type, regSDMA_CNTL); 1839 sdma_cntl = REG_SET_FIELD(sdma_cntl, SDMA_CNTL, DRAM_ECC_INT_ENABLE, 1840 state == AMDGPU_IRQ_STATE_ENABLE ? 1 : 0); 1841 WREG32_SDMA(type, regSDMA_CNTL, sdma_cntl); 1842 1843 return 0; 1844 } 1845 1846 static int sdma_v4_4_2_print_iv_entry(struct amdgpu_device *adev, 1847 struct amdgpu_iv_entry *entry) 1848 { 1849 int instance; 1850 struct amdgpu_task_info *task_info; 1851 u64 addr; 1852 1853 instance = sdma_v4_4_2_irq_id_to_seq(adev, entry->client_id); 1854 if (instance < 0 || instance >= adev->sdma.num_instances) { 1855 dev_err(adev->dev, "sdma instance invalid %d\n", instance); 1856 return -EINVAL; 1857 } 1858 1859 addr = (u64)entry->src_data[0] << 12; 1860 addr |= ((u64)entry->src_data[1] & 0xf) << 44; 1861 1862 dev_dbg_ratelimited(adev->dev, 1863 "[sdma%d] address:0x%016llx src_id:%u ring:%u vmid:%u pasid:%u\n", 1864 instance, addr, entry->src_id, entry->ring_id, entry->vmid, 1865 entry->pasid); 1866 1867 task_info = amdgpu_vm_get_task_info_pasid(adev, entry->pasid); 1868 if (task_info) { 1869 dev_dbg_ratelimited(adev->dev, " for process %s pid %d thread %s pid %d\n", 1870 task_info->process_name, task_info->tgid, 1871 task_info->task_name, task_info->pid); 1872 amdgpu_vm_put_task_info(task_info); 1873 } 1874 1875 return 0; 1876 } 1877 1878 static int sdma_v4_4_2_process_vm_hole_irq(struct amdgpu_device *adev, 1879 struct amdgpu_irq_src *source, 1880 struct amdgpu_iv_entry *entry) 1881 { 1882 dev_dbg_ratelimited(adev->dev, "MC or SEM address in VM hole\n"); 1883 sdma_v4_4_2_print_iv_entry(adev, entry); 1884 return 0; 1885 } 1886 1887 static int sdma_v4_4_2_process_doorbell_invalid_irq(struct amdgpu_device *adev, 1888 struct amdgpu_irq_src *source, 1889 struct amdgpu_iv_entry *entry) 1890 { 1891 1892 dev_dbg_ratelimited(adev->dev, "SDMA received a doorbell from BIF with byte_enable !=0xff\n"); 1893 sdma_v4_4_2_print_iv_entry(adev, entry); 1894 return 0; 1895 } 1896 1897 static int sdma_v4_4_2_process_pool_timeout_irq(struct amdgpu_device *adev, 1898 struct amdgpu_irq_src *source, 1899 struct amdgpu_iv_entry *entry) 1900 { 1901 dev_dbg_ratelimited(adev->dev, 1902 "Polling register/memory timeout executing POLL_REG/MEM with finite timer\n"); 1903 sdma_v4_4_2_print_iv_entry(adev, entry); 1904 return 0; 1905 } 1906 1907 static int sdma_v4_4_2_process_srbm_write_irq(struct amdgpu_device *adev, 1908 struct amdgpu_irq_src *source, 1909 struct amdgpu_iv_entry *entry) 1910 { 1911 dev_dbg_ratelimited(adev->dev, 1912 "SDMA gets an Register Write SRBM_WRITE command in non-privilege command buffer\n"); 1913 sdma_v4_4_2_print_iv_entry(adev, entry); 1914 return 0; 1915 } 1916 1917 static int sdma_v4_4_2_process_ctxt_empty_irq(struct amdgpu_device *adev, 1918 struct amdgpu_irq_src *source, 1919 struct amdgpu_iv_entry *entry) 1920 { 1921 /* There is nothing useful to be done here, only kept for debug */ 1922 dev_dbg_ratelimited(adev->dev, "SDMA context empty interrupt"); 1923 sdma_v4_4_2_print_iv_entry(adev, entry); 1924 return 0; 1925 } 1926 1927 static void sdma_v4_4_2_inst_update_medium_grain_light_sleep( 1928 struct amdgpu_device *adev, bool enable, uint32_t inst_mask) 1929 { 1930 uint32_t data, def; 1931 int i; 1932 1933 /* leave as default if it is not driver controlled */ 1934 if (!(adev->cg_flags & AMD_CG_SUPPORT_SDMA_LS)) 1935 return; 1936 1937 if (enable) { 1938 for_each_inst(i, inst_mask) { 1939 /* 1-not override: enable sdma mem light sleep */ 1940 def = data = RREG32_SDMA(i, regSDMA_POWER_CNTL); 1941 data |= SDMA_POWER_CNTL__MEM_POWER_OVERRIDE_MASK; 1942 if (def != data) 1943 WREG32_SDMA(i, regSDMA_POWER_CNTL, data); 1944 } 1945 } else { 1946 for_each_inst(i, inst_mask) { 1947 /* 0-override:disable sdma mem light sleep */ 1948 def = data = RREG32_SDMA(i, regSDMA_POWER_CNTL); 1949 data &= ~SDMA_POWER_CNTL__MEM_POWER_OVERRIDE_MASK; 1950 if (def != data) 1951 WREG32_SDMA(i, regSDMA_POWER_CNTL, data); 1952 } 1953 } 1954 } 1955 1956 static void sdma_v4_4_2_inst_update_medium_grain_clock_gating( 1957 struct amdgpu_device *adev, bool enable, uint32_t inst_mask) 1958 { 1959 uint32_t data, def; 1960 int i; 1961 1962 /* leave as default if it is not driver controlled */ 1963 if (!(adev->cg_flags & AMD_CG_SUPPORT_SDMA_MGCG)) 1964 return; 1965 1966 if (enable) { 1967 for_each_inst(i, inst_mask) { 1968 def = data = RREG32_SDMA(i, regSDMA_CLK_CTRL); 1969 data &= ~(SDMA_CLK_CTRL__SOFT_OVERRIDE5_MASK | 1970 SDMA_CLK_CTRL__SOFT_OVERRIDE4_MASK | 1971 SDMA_CLK_CTRL__SOFT_OVERRIDE3_MASK | 1972 SDMA_CLK_CTRL__SOFT_OVERRIDE2_MASK | 1973 SDMA_CLK_CTRL__SOFT_OVERRIDE1_MASK | 1974 SDMA_CLK_CTRL__SOFT_OVERRIDE0_MASK); 1975 if (def != data) 1976 WREG32_SDMA(i, regSDMA_CLK_CTRL, data); 1977 } 1978 } else { 1979 for_each_inst(i, inst_mask) { 1980 def = data = RREG32_SDMA(i, regSDMA_CLK_CTRL); 1981 data |= (SDMA_CLK_CTRL__SOFT_OVERRIDE5_MASK | 1982 SDMA_CLK_CTRL__SOFT_OVERRIDE4_MASK | 1983 SDMA_CLK_CTRL__SOFT_OVERRIDE3_MASK | 1984 SDMA_CLK_CTRL__SOFT_OVERRIDE2_MASK | 1985 SDMA_CLK_CTRL__SOFT_OVERRIDE1_MASK | 1986 SDMA_CLK_CTRL__SOFT_OVERRIDE0_MASK); 1987 if (def != data) 1988 WREG32_SDMA(i, regSDMA_CLK_CTRL, data); 1989 } 1990 } 1991 } 1992 1993 static int sdma_v4_4_2_set_clockgating_state(struct amdgpu_ip_block *ip_block, 1994 enum amd_clockgating_state state) 1995 { 1996 struct amdgpu_device *adev = ip_block->adev; 1997 uint32_t inst_mask; 1998 1999 if (amdgpu_sriov_vf(adev)) 2000 return 0; 2001 2002 inst_mask = GENMASK(adev->sdma.num_instances - 1, 0); 2003 2004 sdma_v4_4_2_inst_update_medium_grain_clock_gating( 2005 adev, state == AMD_CG_STATE_GATE, inst_mask); 2006 sdma_v4_4_2_inst_update_medium_grain_light_sleep( 2007 adev, state == AMD_CG_STATE_GATE, inst_mask); 2008 return 0; 2009 } 2010 2011 static int sdma_v4_4_2_set_powergating_state(struct amdgpu_ip_block *ip_block, 2012 enum amd_powergating_state state) 2013 { 2014 return 0; 2015 } 2016 2017 static void sdma_v4_4_2_get_clockgating_state(struct amdgpu_ip_block *ip_block, u64 *flags) 2018 { 2019 struct amdgpu_device *adev = ip_block->adev; 2020 int data; 2021 2022 if (amdgpu_sriov_vf(adev)) 2023 *flags = 0; 2024 2025 /* AMD_CG_SUPPORT_SDMA_MGCG */ 2026 data = RREG32(SOC15_REG_OFFSET(SDMA0, GET_INST(SDMA0, 0), regSDMA_CLK_CTRL)); 2027 if (!(data & SDMA_CLK_CTRL__SOFT_OVERRIDE5_MASK)) 2028 *flags |= AMD_CG_SUPPORT_SDMA_MGCG; 2029 2030 /* AMD_CG_SUPPORT_SDMA_LS */ 2031 data = RREG32(SOC15_REG_OFFSET(SDMA0, GET_INST(SDMA0, 0), regSDMA_POWER_CNTL)); 2032 if (data & SDMA_POWER_CNTL__MEM_POWER_OVERRIDE_MASK) 2033 *flags |= AMD_CG_SUPPORT_SDMA_LS; 2034 } 2035 2036 static void sdma_v4_4_2_print_ip_state(struct amdgpu_ip_block *ip_block, struct drm_printer *p) 2037 { 2038 struct amdgpu_device *adev = ip_block->adev; 2039 int i, j; 2040 uint32_t reg_count = ARRAY_SIZE(sdma_reg_list_4_4_2); 2041 uint32_t instance_offset; 2042 2043 if (!adev->sdma.ip_dump) 2044 return; 2045 2046 drm_printf(p, "num_instances:%d\n", adev->sdma.num_instances); 2047 for (i = 0; i < adev->sdma.num_instances; i++) { 2048 instance_offset = i * reg_count; 2049 drm_printf(p, "\nInstance:%d\n", i); 2050 2051 for (j = 0; j < reg_count; j++) 2052 drm_printf(p, "%-50s \t 0x%08x\n", sdma_reg_list_4_4_2[j].reg_name, 2053 adev->sdma.ip_dump[instance_offset + j]); 2054 } 2055 } 2056 2057 static void sdma_v4_4_2_dump_ip_state(struct amdgpu_ip_block *ip_block) 2058 { 2059 struct amdgpu_device *adev = ip_block->adev; 2060 int i, j; 2061 uint32_t instance_offset; 2062 uint32_t reg_count = ARRAY_SIZE(sdma_reg_list_4_4_2); 2063 2064 if (!adev->sdma.ip_dump) 2065 return; 2066 2067 for (i = 0; i < adev->sdma.num_instances; i++) { 2068 instance_offset = i * reg_count; 2069 for (j = 0; j < reg_count; j++) 2070 adev->sdma.ip_dump[instance_offset + j] = 2071 RREG32(sdma_v4_4_2_get_reg_offset(adev, i, 2072 sdma_reg_list_4_4_2[j].reg_offset)); 2073 } 2074 } 2075 2076 const struct amd_ip_funcs sdma_v4_4_2_ip_funcs = { 2077 .name = "sdma_v4_4_2", 2078 .early_init = sdma_v4_4_2_early_init, 2079 .late_init = sdma_v4_4_2_late_init, 2080 .sw_init = sdma_v4_4_2_sw_init, 2081 .sw_fini = sdma_v4_4_2_sw_fini, 2082 .hw_init = sdma_v4_4_2_hw_init, 2083 .hw_fini = sdma_v4_4_2_hw_fini, 2084 .suspend = sdma_v4_4_2_suspend, 2085 .resume = sdma_v4_4_2_resume, 2086 .is_idle = sdma_v4_4_2_is_idle, 2087 .wait_for_idle = sdma_v4_4_2_wait_for_idle, 2088 .soft_reset = sdma_v4_4_2_soft_reset, 2089 .set_clockgating_state = sdma_v4_4_2_set_clockgating_state, 2090 .set_powergating_state = sdma_v4_4_2_set_powergating_state, 2091 .get_clockgating_state = sdma_v4_4_2_get_clockgating_state, 2092 .dump_ip_state = sdma_v4_4_2_dump_ip_state, 2093 .print_ip_state = sdma_v4_4_2_print_ip_state, 2094 }; 2095 2096 static const struct amdgpu_ring_funcs sdma_v4_4_2_ring_funcs = { 2097 .type = AMDGPU_RING_TYPE_SDMA, 2098 .align_mask = 0xff, 2099 .nop = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP), 2100 .support_64bit_ptrs = true, 2101 .get_rptr = sdma_v4_4_2_ring_get_rptr, 2102 .get_wptr = sdma_v4_4_2_ring_get_wptr, 2103 .set_wptr = sdma_v4_4_2_ring_set_wptr, 2104 .emit_frame_size = 2105 6 + /* sdma_v4_4_2_ring_emit_hdp_flush */ 2106 3 + /* hdp invalidate */ 2107 6 + /* sdma_v4_4_2_ring_emit_pipeline_sync */ 2108 /* sdma_v4_4_2_ring_emit_vm_flush */ 2109 SOC15_FLUSH_GPU_TLB_NUM_WREG * 3 + 2110 SOC15_FLUSH_GPU_TLB_NUM_REG_WAIT * 6 + 2111 10 + 10 + 10, /* sdma_v4_4_2_ring_emit_fence x3 for user fence, vm fence */ 2112 .emit_ib_size = 7 + 6, /* sdma_v4_4_2_ring_emit_ib */ 2113 .emit_ib = sdma_v4_4_2_ring_emit_ib, 2114 .emit_fence = sdma_v4_4_2_ring_emit_fence, 2115 .emit_pipeline_sync = sdma_v4_4_2_ring_emit_pipeline_sync, 2116 .emit_vm_flush = sdma_v4_4_2_ring_emit_vm_flush, 2117 .emit_hdp_flush = sdma_v4_4_2_ring_emit_hdp_flush, 2118 .test_ring = sdma_v4_4_2_ring_test_ring, 2119 .test_ib = sdma_v4_4_2_ring_test_ib, 2120 .insert_nop = sdma_v4_4_2_ring_insert_nop, 2121 .pad_ib = sdma_v4_4_2_ring_pad_ib, 2122 .emit_wreg = sdma_v4_4_2_ring_emit_wreg, 2123 .emit_reg_wait = sdma_v4_4_2_ring_emit_reg_wait, 2124 .emit_reg_write_reg_wait = amdgpu_ring_emit_reg_write_reg_wait_helper, 2125 .reset = sdma_v4_4_2_reset_queue, 2126 .is_guilty = sdma_v4_4_2_ring_is_guilty, 2127 }; 2128 2129 static const struct amdgpu_ring_funcs sdma_v4_4_2_page_ring_funcs = { 2130 .type = AMDGPU_RING_TYPE_SDMA, 2131 .align_mask = 0xff, 2132 .nop = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP), 2133 .support_64bit_ptrs = true, 2134 .get_rptr = sdma_v4_4_2_ring_get_rptr, 2135 .get_wptr = sdma_v4_4_2_page_ring_get_wptr, 2136 .set_wptr = sdma_v4_4_2_page_ring_set_wptr, 2137 .emit_frame_size = 2138 6 + /* sdma_v4_4_2_ring_emit_hdp_flush */ 2139 3 + /* hdp invalidate */ 2140 6 + /* sdma_v4_4_2_ring_emit_pipeline_sync */ 2141 /* sdma_v4_4_2_ring_emit_vm_flush */ 2142 SOC15_FLUSH_GPU_TLB_NUM_WREG * 3 + 2143 SOC15_FLUSH_GPU_TLB_NUM_REG_WAIT * 6 + 2144 10 + 10 + 10, /* sdma_v4_4_2_ring_emit_fence x3 for user fence, vm fence */ 2145 .emit_ib_size = 7 + 6, /* sdma_v4_4_2_ring_emit_ib */ 2146 .emit_ib = sdma_v4_4_2_ring_emit_ib, 2147 .emit_fence = sdma_v4_4_2_ring_emit_fence, 2148 .emit_pipeline_sync = sdma_v4_4_2_ring_emit_pipeline_sync, 2149 .emit_vm_flush = sdma_v4_4_2_ring_emit_vm_flush, 2150 .emit_hdp_flush = sdma_v4_4_2_ring_emit_hdp_flush, 2151 .test_ring = sdma_v4_4_2_ring_test_ring, 2152 .test_ib = sdma_v4_4_2_ring_test_ib, 2153 .insert_nop = sdma_v4_4_2_ring_insert_nop, 2154 .pad_ib = sdma_v4_4_2_ring_pad_ib, 2155 .emit_wreg = sdma_v4_4_2_ring_emit_wreg, 2156 .emit_reg_wait = sdma_v4_4_2_ring_emit_reg_wait, 2157 .emit_reg_write_reg_wait = amdgpu_ring_emit_reg_write_reg_wait_helper, 2158 .reset = sdma_v4_4_2_reset_queue, 2159 .is_guilty = sdma_v4_4_2_page_ring_is_guilty, 2160 }; 2161 2162 static void sdma_v4_4_2_set_ring_funcs(struct amdgpu_device *adev) 2163 { 2164 int i, dev_inst; 2165 2166 for (i = 0; i < adev->sdma.num_instances; i++) { 2167 adev->sdma.instance[i].ring.funcs = &sdma_v4_4_2_ring_funcs; 2168 adev->sdma.instance[i].ring.me = i; 2169 if (adev->sdma.has_page_queue) { 2170 adev->sdma.instance[i].page.funcs = 2171 &sdma_v4_4_2_page_ring_funcs; 2172 adev->sdma.instance[i].page.me = i; 2173 } 2174 2175 dev_inst = GET_INST(SDMA0, i); 2176 /* AID to which SDMA belongs depends on physical instance */ 2177 adev->sdma.instance[i].aid_id = 2178 dev_inst / adev->sdma.num_inst_per_aid; 2179 } 2180 } 2181 2182 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_trap_irq_funcs = { 2183 .set = sdma_v4_4_2_set_trap_irq_state, 2184 .process = sdma_v4_4_2_process_trap_irq, 2185 }; 2186 2187 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_illegal_inst_irq_funcs = { 2188 .process = sdma_v4_4_2_process_illegal_inst_irq, 2189 }; 2190 2191 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_ecc_irq_funcs = { 2192 .set = sdma_v4_4_2_set_ecc_irq_state, 2193 .process = amdgpu_sdma_process_ecc_irq, 2194 }; 2195 2196 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_vm_hole_irq_funcs = { 2197 .process = sdma_v4_4_2_process_vm_hole_irq, 2198 }; 2199 2200 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_doorbell_invalid_irq_funcs = { 2201 .process = sdma_v4_4_2_process_doorbell_invalid_irq, 2202 }; 2203 2204 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_pool_timeout_irq_funcs = { 2205 .process = sdma_v4_4_2_process_pool_timeout_irq, 2206 }; 2207 2208 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_srbm_write_irq_funcs = { 2209 .process = sdma_v4_4_2_process_srbm_write_irq, 2210 }; 2211 2212 static const struct amdgpu_irq_src_funcs sdma_v4_4_2_ctxt_empty_irq_funcs = { 2213 .process = sdma_v4_4_2_process_ctxt_empty_irq, 2214 }; 2215 2216 static void sdma_v4_4_2_set_irq_funcs(struct amdgpu_device *adev) 2217 { 2218 adev->sdma.trap_irq.num_types = adev->sdma.num_instances; 2219 adev->sdma.ecc_irq.num_types = adev->sdma.num_instances; 2220 adev->sdma.vm_hole_irq.num_types = adev->sdma.num_instances; 2221 adev->sdma.doorbell_invalid_irq.num_types = adev->sdma.num_instances; 2222 adev->sdma.pool_timeout_irq.num_types = adev->sdma.num_instances; 2223 adev->sdma.srbm_write_irq.num_types = adev->sdma.num_instances; 2224 adev->sdma.ctxt_empty_irq.num_types = adev->sdma.num_instances; 2225 2226 adev->sdma.trap_irq.funcs = &sdma_v4_4_2_trap_irq_funcs; 2227 adev->sdma.illegal_inst_irq.funcs = &sdma_v4_4_2_illegal_inst_irq_funcs; 2228 adev->sdma.ecc_irq.funcs = &sdma_v4_4_2_ecc_irq_funcs; 2229 adev->sdma.vm_hole_irq.funcs = &sdma_v4_4_2_vm_hole_irq_funcs; 2230 adev->sdma.doorbell_invalid_irq.funcs = &sdma_v4_4_2_doorbell_invalid_irq_funcs; 2231 adev->sdma.pool_timeout_irq.funcs = &sdma_v4_4_2_pool_timeout_irq_funcs; 2232 adev->sdma.srbm_write_irq.funcs = &sdma_v4_4_2_srbm_write_irq_funcs; 2233 adev->sdma.ctxt_empty_irq.funcs = &sdma_v4_4_2_ctxt_empty_irq_funcs; 2234 } 2235 2236 /** 2237 * sdma_v4_4_2_emit_copy_buffer - copy buffer using the sDMA engine 2238 * 2239 * @ib: indirect buffer to copy to 2240 * @src_offset: src GPU address 2241 * @dst_offset: dst GPU address 2242 * @byte_count: number of bytes to xfer 2243 * @copy_flags: copy flags for the buffers 2244 * 2245 * Copy GPU buffers using the DMA engine. 2246 * Used by the amdgpu ttm implementation to move pages if 2247 * registered as the asic copy callback. 2248 */ 2249 static void sdma_v4_4_2_emit_copy_buffer(struct amdgpu_ib *ib, 2250 uint64_t src_offset, 2251 uint64_t dst_offset, 2252 uint32_t byte_count, 2253 uint32_t copy_flags) 2254 { 2255 ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_COPY) | 2256 SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_COPY_LINEAR) | 2257 SDMA_PKT_COPY_LINEAR_HEADER_TMZ((copy_flags & AMDGPU_COPY_FLAGS_TMZ) ? 1 : 0); 2258 ib->ptr[ib->length_dw++] = byte_count - 1; 2259 ib->ptr[ib->length_dw++] = 0; /* src/dst endian swap */ 2260 ib->ptr[ib->length_dw++] = lower_32_bits(src_offset); 2261 ib->ptr[ib->length_dw++] = upper_32_bits(src_offset); 2262 ib->ptr[ib->length_dw++] = lower_32_bits(dst_offset); 2263 ib->ptr[ib->length_dw++] = upper_32_bits(dst_offset); 2264 } 2265 2266 /** 2267 * sdma_v4_4_2_emit_fill_buffer - fill buffer using the sDMA engine 2268 * 2269 * @ib: indirect buffer to copy to 2270 * @src_data: value to write to buffer 2271 * @dst_offset: dst GPU address 2272 * @byte_count: number of bytes to xfer 2273 * 2274 * Fill GPU buffers using the DMA engine. 2275 */ 2276 static void sdma_v4_4_2_emit_fill_buffer(struct amdgpu_ib *ib, 2277 uint32_t src_data, 2278 uint64_t dst_offset, 2279 uint32_t byte_count) 2280 { 2281 ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_CONST_FILL); 2282 ib->ptr[ib->length_dw++] = lower_32_bits(dst_offset); 2283 ib->ptr[ib->length_dw++] = upper_32_bits(dst_offset); 2284 ib->ptr[ib->length_dw++] = src_data; 2285 ib->ptr[ib->length_dw++] = byte_count - 1; 2286 } 2287 2288 static const struct amdgpu_buffer_funcs sdma_v4_4_2_buffer_funcs = { 2289 .copy_max_bytes = 0x400000, 2290 .copy_num_dw = 7, 2291 .emit_copy_buffer = sdma_v4_4_2_emit_copy_buffer, 2292 2293 .fill_max_bytes = 0x400000, 2294 .fill_num_dw = 5, 2295 .emit_fill_buffer = sdma_v4_4_2_emit_fill_buffer, 2296 }; 2297 2298 static void sdma_v4_4_2_set_buffer_funcs(struct amdgpu_device *adev) 2299 { 2300 adev->mman.buffer_funcs = &sdma_v4_4_2_buffer_funcs; 2301 if (adev->sdma.has_page_queue) 2302 adev->mman.buffer_funcs_ring = &adev->sdma.instance[0].page; 2303 else 2304 adev->mman.buffer_funcs_ring = &adev->sdma.instance[0].ring; 2305 } 2306 2307 static const struct amdgpu_vm_pte_funcs sdma_v4_4_2_vm_pte_funcs = { 2308 .copy_pte_num_dw = 7, 2309 .copy_pte = sdma_v4_4_2_vm_copy_pte, 2310 2311 .write_pte = sdma_v4_4_2_vm_write_pte, 2312 .set_pte_pde = sdma_v4_4_2_vm_set_pte_pde, 2313 }; 2314 2315 static void sdma_v4_4_2_set_vm_pte_funcs(struct amdgpu_device *adev) 2316 { 2317 struct drm_gpu_scheduler *sched; 2318 unsigned i; 2319 2320 adev->vm_manager.vm_pte_funcs = &sdma_v4_4_2_vm_pte_funcs; 2321 for (i = 0; i < adev->sdma.num_instances; i++) { 2322 if (adev->sdma.has_page_queue) 2323 sched = &adev->sdma.instance[i].page.sched; 2324 else 2325 sched = &adev->sdma.instance[i].ring.sched; 2326 adev->vm_manager.vm_pte_scheds[i] = sched; 2327 } 2328 adev->vm_manager.vm_pte_num_scheds = adev->sdma.num_instances; 2329 } 2330 2331 const struct amdgpu_ip_block_version sdma_v4_4_2_ip_block = { 2332 .type = AMD_IP_BLOCK_TYPE_SDMA, 2333 .major = 4, 2334 .minor = 4, 2335 .rev = 2, 2336 .funcs = &sdma_v4_4_2_ip_funcs, 2337 }; 2338 2339 static int sdma_v4_4_2_xcp_resume(void *handle, uint32_t inst_mask) 2340 { 2341 struct amdgpu_device *adev = (struct amdgpu_device *)handle; 2342 int r; 2343 2344 if (!amdgpu_sriov_vf(adev)) 2345 sdma_v4_4_2_inst_init_golden_registers(adev, inst_mask); 2346 2347 r = sdma_v4_4_2_inst_start(adev, inst_mask, false); 2348 2349 return r; 2350 } 2351 2352 static int sdma_v4_4_2_xcp_suspend(void *handle, uint32_t inst_mask) 2353 { 2354 struct amdgpu_device *adev = (struct amdgpu_device *)handle; 2355 uint32_t tmp_mask = inst_mask; 2356 int i; 2357 2358 if (amdgpu_ras_is_supported(adev, AMDGPU_RAS_BLOCK__SDMA)) { 2359 for_each_inst(i, tmp_mask) { 2360 amdgpu_irq_put(adev, &adev->sdma.ecc_irq, 2361 AMDGPU_SDMA_IRQ_INSTANCE0 + i); 2362 } 2363 } 2364 2365 sdma_v4_4_2_inst_ctx_switch_enable(adev, false, inst_mask); 2366 sdma_v4_4_2_inst_enable(adev, false, inst_mask); 2367 2368 return 0; 2369 } 2370 2371 struct amdgpu_xcp_ip_funcs sdma_v4_4_2_xcp_funcs = { 2372 .suspend = &sdma_v4_4_2_xcp_suspend, 2373 .resume = &sdma_v4_4_2_xcp_resume 2374 }; 2375 2376 static const struct amdgpu_ras_err_status_reg_entry sdma_v4_2_2_ue_reg_list[] = { 2377 {AMDGPU_RAS_REG_ENTRY(SDMA0, 0, regSDMA_UE_ERR_STATUS_LO, regSDMA_UE_ERR_STATUS_HI), 2378 1, (AMDGPU_RAS_ERR_INFO_VALID | AMDGPU_RAS_ERR_STATUS_VALID), "SDMA"}, 2379 }; 2380 2381 static const struct amdgpu_ras_memory_id_entry sdma_v4_4_2_ras_memory_list[] = { 2382 {AMDGPU_SDMA_MBANK_DATA_BUF0, "SDMA_MBANK_DATA_BUF0"}, 2383 {AMDGPU_SDMA_MBANK_DATA_BUF1, "SDMA_MBANK_DATA_BUF1"}, 2384 {AMDGPU_SDMA_MBANK_DATA_BUF2, "SDMA_MBANK_DATA_BUF2"}, 2385 {AMDGPU_SDMA_MBANK_DATA_BUF3, "SDMA_MBANK_DATA_BUF3"}, 2386 {AMDGPU_SDMA_MBANK_DATA_BUF4, "SDMA_MBANK_DATA_BUF4"}, 2387 {AMDGPU_SDMA_MBANK_DATA_BUF5, "SDMA_MBANK_DATA_BUF5"}, 2388 {AMDGPU_SDMA_MBANK_DATA_BUF6, "SDMA_MBANK_DATA_BUF6"}, 2389 {AMDGPU_SDMA_MBANK_DATA_BUF7, "SDMA_MBANK_DATA_BUF7"}, 2390 {AMDGPU_SDMA_MBANK_DATA_BUF8, "SDMA_MBANK_DATA_BUF8"}, 2391 {AMDGPU_SDMA_MBANK_DATA_BUF9, "SDMA_MBANK_DATA_BUF9"}, 2392 {AMDGPU_SDMA_MBANK_DATA_BUF10, "SDMA_MBANK_DATA_BUF10"}, 2393 {AMDGPU_SDMA_MBANK_DATA_BUF11, "SDMA_MBANK_DATA_BUF11"}, 2394 {AMDGPU_SDMA_MBANK_DATA_BUF12, "SDMA_MBANK_DATA_BUF12"}, 2395 {AMDGPU_SDMA_MBANK_DATA_BUF13, "SDMA_MBANK_DATA_BUF13"}, 2396 {AMDGPU_SDMA_MBANK_DATA_BUF14, "SDMA_MBANK_DATA_BUF14"}, 2397 {AMDGPU_SDMA_MBANK_DATA_BUF15, "SDMA_MBANK_DATA_BUF15"}, 2398 {AMDGPU_SDMA_UCODE_BUF, "SDMA_UCODE_BUF"}, 2399 {AMDGPU_SDMA_RB_CMD_BUF, "SDMA_RB_CMD_BUF"}, 2400 {AMDGPU_SDMA_IB_CMD_BUF, "SDMA_IB_CMD_BUF"}, 2401 {AMDGPU_SDMA_UTCL1_RD_FIFO, "SDMA_UTCL1_RD_FIFO"}, 2402 {AMDGPU_SDMA_UTCL1_RDBST_FIFO, "SDMA_UTCL1_RDBST_FIFO"}, 2403 {AMDGPU_SDMA_UTCL1_WR_FIFO, "SDMA_UTCL1_WR_FIFO"}, 2404 {AMDGPU_SDMA_DATA_LUT_FIFO, "SDMA_DATA_LUT_FIFO"}, 2405 {AMDGPU_SDMA_SPLIT_DAT_BUF, "SDMA_SPLIT_DAT_BUF"}, 2406 }; 2407 2408 static void sdma_v4_4_2_inst_query_ras_error_count(struct amdgpu_device *adev, 2409 uint32_t sdma_inst, 2410 void *ras_err_status) 2411 { 2412 struct ras_err_data *err_data = (struct ras_err_data *)ras_err_status; 2413 uint32_t sdma_dev_inst = GET_INST(SDMA0, sdma_inst); 2414 unsigned long ue_count = 0; 2415 struct amdgpu_smuio_mcm_config_info mcm_info = { 2416 .socket_id = adev->smuio.funcs->get_socket_id(adev), 2417 .die_id = adev->sdma.instance[sdma_inst].aid_id, 2418 }; 2419 2420 /* sdma v4_4_2 doesn't support query ce counts */ 2421 amdgpu_ras_inst_query_ras_error_count(adev, 2422 sdma_v4_2_2_ue_reg_list, 2423 ARRAY_SIZE(sdma_v4_2_2_ue_reg_list), 2424 sdma_v4_4_2_ras_memory_list, 2425 ARRAY_SIZE(sdma_v4_4_2_ras_memory_list), 2426 sdma_dev_inst, 2427 AMDGPU_RAS_ERROR__MULTI_UNCORRECTABLE, 2428 &ue_count); 2429 2430 amdgpu_ras_error_statistic_ue_count(err_data, &mcm_info, ue_count); 2431 } 2432 2433 static void sdma_v4_4_2_query_ras_error_count(struct amdgpu_device *adev, 2434 void *ras_err_status) 2435 { 2436 uint32_t inst_mask; 2437 int i = 0; 2438 2439 inst_mask = GENMASK(adev->sdma.num_instances - 1, 0); 2440 if (amdgpu_ras_is_supported(adev, AMDGPU_RAS_BLOCK__SDMA)) { 2441 for_each_inst(i, inst_mask) 2442 sdma_v4_4_2_inst_query_ras_error_count(adev, i, ras_err_status); 2443 } else { 2444 dev_warn(adev->dev, "SDMA RAS is not supported\n"); 2445 } 2446 } 2447 2448 static void sdma_v4_4_2_inst_reset_ras_error_count(struct amdgpu_device *adev, 2449 uint32_t sdma_inst) 2450 { 2451 uint32_t sdma_dev_inst = GET_INST(SDMA0, sdma_inst); 2452 2453 amdgpu_ras_inst_reset_ras_error_count(adev, 2454 sdma_v4_2_2_ue_reg_list, 2455 ARRAY_SIZE(sdma_v4_2_2_ue_reg_list), 2456 sdma_dev_inst); 2457 } 2458 2459 static void sdma_v4_4_2_reset_ras_error_count(struct amdgpu_device *adev) 2460 { 2461 uint32_t inst_mask; 2462 int i = 0; 2463 2464 inst_mask = GENMASK(adev->sdma.num_instances - 1, 0); 2465 if (amdgpu_ras_is_supported(adev, AMDGPU_RAS_BLOCK__SDMA)) { 2466 for_each_inst(i, inst_mask) 2467 sdma_v4_4_2_inst_reset_ras_error_count(adev, i); 2468 } else { 2469 dev_warn(adev->dev, "SDMA RAS is not supported\n"); 2470 } 2471 } 2472 2473 static const struct amdgpu_ras_block_hw_ops sdma_v4_4_2_ras_hw_ops = { 2474 .query_ras_error_count = sdma_v4_4_2_query_ras_error_count, 2475 .reset_ras_error_count = sdma_v4_4_2_reset_ras_error_count, 2476 }; 2477 2478 static int sdma_v4_4_2_aca_bank_parser(struct aca_handle *handle, struct aca_bank *bank, 2479 enum aca_smu_type type, void *data) 2480 { 2481 struct aca_bank_info info; 2482 u64 misc0; 2483 int ret; 2484 2485 ret = aca_bank_info_decode(bank, &info); 2486 if (ret) 2487 return ret; 2488 2489 misc0 = bank->regs[ACA_REG_IDX_MISC0]; 2490 switch (type) { 2491 case ACA_SMU_TYPE_UE: 2492 bank->aca_err_type = ACA_ERROR_TYPE_UE; 2493 ret = aca_error_cache_log_bank_error(handle, &info, ACA_ERROR_TYPE_UE, 2494 1ULL); 2495 break; 2496 case ACA_SMU_TYPE_CE: 2497 bank->aca_err_type = ACA_ERROR_TYPE_CE; 2498 ret = aca_error_cache_log_bank_error(handle, &info, ACA_ERROR_TYPE_CE, 2499 ACA_REG__MISC0__ERRCNT(misc0)); 2500 break; 2501 default: 2502 return -EINVAL; 2503 } 2504 2505 return ret; 2506 } 2507 2508 /* CODE_SDMA0 - CODE_SDMA4, reference to smu driver if header file */ 2509 static int sdma_v4_4_2_err_codes[] = { 33, 34, 35, 36 }; 2510 2511 static bool sdma_v4_4_2_aca_bank_is_valid(struct aca_handle *handle, struct aca_bank *bank, 2512 enum aca_smu_type type, void *data) 2513 { 2514 u32 instlo; 2515 2516 instlo = ACA_REG__IPID__INSTANCEIDLO(bank->regs[ACA_REG_IDX_IPID]); 2517 instlo &= GENMASK(31, 1); 2518 2519 if (instlo != mmSMNAID_AID0_MCA_SMU) 2520 return false; 2521 2522 if (aca_bank_check_error_codes(handle->adev, bank, 2523 sdma_v4_4_2_err_codes, 2524 ARRAY_SIZE(sdma_v4_4_2_err_codes))) 2525 return false; 2526 2527 return true; 2528 } 2529 2530 static const struct aca_bank_ops sdma_v4_4_2_aca_bank_ops = { 2531 .aca_bank_parser = sdma_v4_4_2_aca_bank_parser, 2532 .aca_bank_is_valid = sdma_v4_4_2_aca_bank_is_valid, 2533 }; 2534 2535 static const struct aca_info sdma_v4_4_2_aca_info = { 2536 .hwip = ACA_HWIP_TYPE_SMU, 2537 .mask = ACA_ERROR_UE_MASK, 2538 .bank_ops = &sdma_v4_4_2_aca_bank_ops, 2539 }; 2540 2541 static int sdma_v4_4_2_ras_late_init(struct amdgpu_device *adev, struct ras_common_if *ras_block) 2542 { 2543 int r; 2544 2545 r = amdgpu_sdma_ras_late_init(adev, ras_block); 2546 if (r) 2547 return r; 2548 2549 return amdgpu_ras_bind_aca(adev, AMDGPU_RAS_BLOCK__SDMA, 2550 &sdma_v4_4_2_aca_info, NULL); 2551 } 2552 2553 static struct amdgpu_sdma_ras sdma_v4_4_2_ras = { 2554 .ras_block = { 2555 .hw_ops = &sdma_v4_4_2_ras_hw_ops, 2556 .ras_late_init = sdma_v4_4_2_ras_late_init, 2557 }, 2558 }; 2559 2560 static void sdma_v4_4_2_set_ras_funcs(struct amdgpu_device *adev) 2561 { 2562 adev->sdma.ras = &sdma_v4_4_2_ras; 2563 } 2564