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