1 // SPDX-License-Identifier: GPL-2.0
2 
3 /*
4  * Copyright 2016-2019 HabanaLabs, Ltd.
5  * All Rights Reserved.
6  */
7 
8 #include "habanalabs.h"
9 #include "../include/hw_ip/mmu/mmu_general.h"
10 
11 #include <linux/pci.h>
12 #include <linux/debugfs.h>
13 #include <linux/uaccess.h>
14 
15 #define MMU_ADDR_BUF_SIZE	40
16 #define MMU_ASID_BUF_SIZE	10
17 #define MMU_KBUF_SIZE		(MMU_ADDR_BUF_SIZE + MMU_ASID_BUF_SIZE)
18 
19 static struct dentry *hl_debug_root;
20 
hl_debugfs_i2c_read(struct hl_device * hdev,u8 i2c_bus,u8 i2c_addr,u8 i2c_reg,long * val)21 static int hl_debugfs_i2c_read(struct hl_device *hdev, u8 i2c_bus, u8 i2c_addr,
22 				u8 i2c_reg, long *val)
23 {
24 	struct cpucp_packet pkt;
25 	int rc;
26 
27 	if (hl_device_disabled_or_in_reset(hdev))
28 		return -EBUSY;
29 
30 	memset(&pkt, 0, sizeof(pkt));
31 
32 	pkt.ctl = cpu_to_le32(CPUCP_PACKET_I2C_RD <<
33 				CPUCP_PKT_CTL_OPCODE_SHIFT);
34 	pkt.i2c_bus = i2c_bus;
35 	pkt.i2c_addr = i2c_addr;
36 	pkt.i2c_reg = i2c_reg;
37 
38 	rc = hdev->asic_funcs->send_cpu_message(hdev, (u32 *) &pkt, sizeof(pkt),
39 						0, val);
40 
41 	if (rc)
42 		dev_err(hdev->dev, "Failed to read from I2C, error %d\n", rc);
43 
44 	return rc;
45 }
46 
hl_debugfs_i2c_write(struct hl_device * hdev,u8 i2c_bus,u8 i2c_addr,u8 i2c_reg,u32 val)47 static int hl_debugfs_i2c_write(struct hl_device *hdev, u8 i2c_bus, u8 i2c_addr,
48 				u8 i2c_reg, u32 val)
49 {
50 	struct cpucp_packet pkt;
51 	int rc;
52 
53 	if (hl_device_disabled_or_in_reset(hdev))
54 		return -EBUSY;
55 
56 	memset(&pkt, 0, sizeof(pkt));
57 
58 	pkt.ctl = cpu_to_le32(CPUCP_PACKET_I2C_WR <<
59 				CPUCP_PKT_CTL_OPCODE_SHIFT);
60 	pkt.i2c_bus = i2c_bus;
61 	pkt.i2c_addr = i2c_addr;
62 	pkt.i2c_reg = i2c_reg;
63 	pkt.value = cpu_to_le64(val);
64 
65 	rc = hdev->asic_funcs->send_cpu_message(hdev, (u32 *) &pkt, sizeof(pkt),
66 						0, NULL);
67 
68 	if (rc)
69 		dev_err(hdev->dev, "Failed to write to I2C, error %d\n", rc);
70 
71 	return rc;
72 }
73 
hl_debugfs_led_set(struct hl_device * hdev,u8 led,u8 state)74 static void hl_debugfs_led_set(struct hl_device *hdev, u8 led, u8 state)
75 {
76 	struct cpucp_packet pkt;
77 	int rc;
78 
79 	if (hl_device_disabled_or_in_reset(hdev))
80 		return;
81 
82 	memset(&pkt, 0, sizeof(pkt));
83 
84 	pkt.ctl = cpu_to_le32(CPUCP_PACKET_LED_SET <<
85 				CPUCP_PKT_CTL_OPCODE_SHIFT);
86 	pkt.led_index = cpu_to_le32(led);
87 	pkt.value = cpu_to_le64(state);
88 
89 	rc = hdev->asic_funcs->send_cpu_message(hdev, (u32 *) &pkt, sizeof(pkt),
90 						0, NULL);
91 
92 	if (rc)
93 		dev_err(hdev->dev, "Failed to set LED %d, error %d\n", led, rc);
94 }
95 
command_buffers_show(struct seq_file * s,void * data)96 static int command_buffers_show(struct seq_file *s, void *data)
97 {
98 	struct hl_debugfs_entry *entry = s->private;
99 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
100 	struct hl_cb *cb;
101 	bool first = true;
102 
103 	spin_lock(&dev_entry->cb_spinlock);
104 
105 	list_for_each_entry(cb, &dev_entry->cb_list, debugfs_list) {
106 		if (first) {
107 			first = false;
108 			seq_puts(s, "\n");
109 			seq_puts(s, " CB ID   CTX ID   CB size    CB RefCnt    mmap?   CS counter\n");
110 			seq_puts(s, "---------------------------------------------------------------\n");
111 		}
112 		seq_printf(s,
113 			"   %03llu        %d    0x%08x      %d          %d          %d\n",
114 			cb->id, cb->ctx->asid, cb->size,
115 			kref_read(&cb->refcount),
116 			cb->mmap, cb->cs_cnt);
117 	}
118 
119 	spin_unlock(&dev_entry->cb_spinlock);
120 
121 	if (!first)
122 		seq_puts(s, "\n");
123 
124 	return 0;
125 }
126 
command_submission_show(struct seq_file * s,void * data)127 static int command_submission_show(struct seq_file *s, void *data)
128 {
129 	struct hl_debugfs_entry *entry = s->private;
130 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
131 	struct hl_cs *cs;
132 	bool first = true;
133 
134 	spin_lock(&dev_entry->cs_spinlock);
135 
136 	list_for_each_entry(cs, &dev_entry->cs_list, debugfs_list) {
137 		if (first) {
138 			first = false;
139 			seq_puts(s, "\n");
140 			seq_puts(s, " CS ID   CTX ASID   CS RefCnt   Submitted    Completed\n");
141 			seq_puts(s, "------------------------------------------------------\n");
142 		}
143 		seq_printf(s,
144 			"   %llu       %d          %d           %d            %d\n",
145 			cs->sequence, cs->ctx->asid,
146 			kref_read(&cs->refcount),
147 			cs->submitted, cs->completed);
148 	}
149 
150 	spin_unlock(&dev_entry->cs_spinlock);
151 
152 	if (!first)
153 		seq_puts(s, "\n");
154 
155 	return 0;
156 }
157 
command_submission_jobs_show(struct seq_file * s,void * data)158 static int command_submission_jobs_show(struct seq_file *s, void *data)
159 {
160 	struct hl_debugfs_entry *entry = s->private;
161 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
162 	struct hl_cs_job *job;
163 	bool first = true;
164 
165 	spin_lock(&dev_entry->cs_job_spinlock);
166 
167 	list_for_each_entry(job, &dev_entry->cs_job_list, debugfs_list) {
168 		if (first) {
169 			first = false;
170 			seq_puts(s, "\n");
171 			seq_puts(s, " JOB ID   CS ID    CTX ASID   H/W Queue\n");
172 			seq_puts(s, "---------------------------------------\n");
173 		}
174 		if (job->cs)
175 			seq_printf(s,
176 				"    %02d       %llu         %d         %d\n",
177 				job->id, job->cs->sequence, job->cs->ctx->asid,
178 				job->hw_queue_id);
179 		else
180 			seq_printf(s,
181 				"    %02d       0         %d         %d\n",
182 				job->id, HL_KERNEL_ASID_ID, job->hw_queue_id);
183 	}
184 
185 	spin_unlock(&dev_entry->cs_job_spinlock);
186 
187 	if (!first)
188 		seq_puts(s, "\n");
189 
190 	return 0;
191 }
192 
userptr_show(struct seq_file * s,void * data)193 static int userptr_show(struct seq_file *s, void *data)
194 {
195 	struct hl_debugfs_entry *entry = s->private;
196 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
197 	struct hl_userptr *userptr;
198 	char dma_dir[4][30] = {"DMA_BIDIRECTIONAL", "DMA_TO_DEVICE",
199 				"DMA_FROM_DEVICE", "DMA_NONE"};
200 	bool first = true;
201 
202 	spin_lock(&dev_entry->userptr_spinlock);
203 
204 	list_for_each_entry(userptr, &dev_entry->userptr_list, debugfs_list) {
205 		if (first) {
206 			first = false;
207 			seq_puts(s, "\n");
208 			seq_puts(s, " user virtual address     size             dma dir\n");
209 			seq_puts(s, "----------------------------------------------------------\n");
210 		}
211 		seq_printf(s,
212 			"    0x%-14llx      %-10u    %-30s\n",
213 			userptr->addr, userptr->size, dma_dir[userptr->dir]);
214 	}
215 
216 	spin_unlock(&dev_entry->userptr_spinlock);
217 
218 	if (!first)
219 		seq_puts(s, "\n");
220 
221 	return 0;
222 }
223 
vm_show(struct seq_file * s,void * data)224 static int vm_show(struct seq_file *s, void *data)
225 {
226 	struct hl_debugfs_entry *entry = s->private;
227 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
228 	struct hl_ctx *ctx;
229 	struct hl_vm *vm;
230 	struct hl_vm_hash_node *hnode;
231 	struct hl_userptr *userptr;
232 	struct hl_vm_phys_pg_pack *phys_pg_pack = NULL;
233 	enum vm_type_t *vm_type;
234 	bool once = true;
235 	u64 j;
236 	int i;
237 
238 	if (!dev_entry->hdev->mmu_enable)
239 		return 0;
240 
241 	spin_lock(&dev_entry->ctx_mem_hash_spinlock);
242 
243 	list_for_each_entry(ctx, &dev_entry->ctx_mem_hash_list, debugfs_list) {
244 		once = false;
245 		seq_puts(s, "\n\n----------------------------------------------------");
246 		seq_puts(s, "\n----------------------------------------------------\n\n");
247 		seq_printf(s, "ctx asid: %u\n", ctx->asid);
248 
249 		seq_puts(s, "\nmappings:\n\n");
250 		seq_puts(s, "    virtual address        size          handle\n");
251 		seq_puts(s, "----------------------------------------------------\n");
252 		mutex_lock(&ctx->mem_hash_lock);
253 		hash_for_each(ctx->mem_hash, i, hnode, node) {
254 			vm_type = hnode->ptr;
255 
256 			if (*vm_type == VM_TYPE_USERPTR) {
257 				userptr = hnode->ptr;
258 				seq_printf(s,
259 					"    0x%-14llx      %-10u\n",
260 					hnode->vaddr, userptr->size);
261 			} else {
262 				phys_pg_pack = hnode->ptr;
263 				seq_printf(s,
264 					"    0x%-14llx      %-10llu       %-4u\n",
265 					hnode->vaddr, phys_pg_pack->total_size,
266 					phys_pg_pack->handle);
267 			}
268 		}
269 		mutex_unlock(&ctx->mem_hash_lock);
270 
271 		vm = &ctx->hdev->vm;
272 		spin_lock(&vm->idr_lock);
273 
274 		if (!idr_is_empty(&vm->phys_pg_pack_handles))
275 			seq_puts(s, "\n\nallocations:\n");
276 
277 		idr_for_each_entry(&vm->phys_pg_pack_handles, phys_pg_pack, i) {
278 			if (phys_pg_pack->asid != ctx->asid)
279 				continue;
280 
281 			seq_printf(s, "\nhandle: %u\n", phys_pg_pack->handle);
282 			seq_printf(s, "page size: %u\n\n",
283 						phys_pg_pack->page_size);
284 			seq_puts(s, "   physical address\n");
285 			seq_puts(s, "---------------------\n");
286 			for (j = 0 ; j < phys_pg_pack->npages ; j++) {
287 				seq_printf(s, "    0x%-14llx\n",
288 						phys_pg_pack->pages[j]);
289 			}
290 		}
291 		spin_unlock(&vm->idr_lock);
292 
293 	}
294 
295 	spin_unlock(&dev_entry->ctx_mem_hash_spinlock);
296 
297 	if (!once)
298 		seq_puts(s, "\n");
299 
300 	return 0;
301 }
302 
303 /* these inline functions are copied from mmu.c */
get_hop0_addr(struct hl_ctx * ctx)304 static inline u64 get_hop0_addr(struct hl_ctx *ctx)
305 {
306 	return ctx->hdev->asic_prop.mmu_pgt_addr +
307 			(ctx->asid * ctx->hdev->asic_prop.mmu_hop_table_size);
308 }
309 
get_hopN_pte_addr(struct hl_ctx * ctx,u64 hop_addr,u64 virt_addr,u64 mask,u64 shift)310 static inline u64 get_hopN_pte_addr(struct hl_ctx *ctx, u64 hop_addr,
311 					u64 virt_addr, u64 mask, u64 shift)
312 {
313 	return hop_addr + ctx->hdev->asic_prop.mmu_pte_size *
314 			((virt_addr & mask) >> shift);
315 }
316 
get_hop0_pte_addr(struct hl_ctx * ctx,struct hl_mmu_properties * mmu_specs,u64 hop_addr,u64 vaddr)317 static inline u64 get_hop0_pte_addr(struct hl_ctx *ctx,
318 					struct hl_mmu_properties *mmu_specs,
319 					u64 hop_addr, u64 vaddr)
320 {
321 	return get_hopN_pte_addr(ctx, hop_addr, vaddr, mmu_specs->hop0_mask,
322 					mmu_specs->hop0_shift);
323 }
324 
get_hop1_pte_addr(struct hl_ctx * ctx,struct hl_mmu_properties * mmu_specs,u64 hop_addr,u64 vaddr)325 static inline u64 get_hop1_pte_addr(struct hl_ctx *ctx,
326 					struct hl_mmu_properties *mmu_specs,
327 					u64 hop_addr, u64 vaddr)
328 {
329 	return get_hopN_pte_addr(ctx, hop_addr, vaddr, mmu_specs->hop1_mask,
330 					mmu_specs->hop1_shift);
331 }
332 
get_hop2_pte_addr(struct hl_ctx * ctx,struct hl_mmu_properties * mmu_specs,u64 hop_addr,u64 vaddr)333 static inline u64 get_hop2_pte_addr(struct hl_ctx *ctx,
334 					struct hl_mmu_properties *mmu_specs,
335 					u64 hop_addr, u64 vaddr)
336 {
337 	return get_hopN_pte_addr(ctx, hop_addr, vaddr, mmu_specs->hop2_mask,
338 					mmu_specs->hop2_shift);
339 }
340 
get_hop3_pte_addr(struct hl_ctx * ctx,struct hl_mmu_properties * mmu_specs,u64 hop_addr,u64 vaddr)341 static inline u64 get_hop3_pte_addr(struct hl_ctx *ctx,
342 					struct hl_mmu_properties *mmu_specs,
343 					u64 hop_addr, u64 vaddr)
344 {
345 	return get_hopN_pte_addr(ctx, hop_addr, vaddr, mmu_specs->hop3_mask,
346 					mmu_specs->hop3_shift);
347 }
348 
get_hop4_pte_addr(struct hl_ctx * ctx,struct hl_mmu_properties * mmu_specs,u64 hop_addr,u64 vaddr)349 static inline u64 get_hop4_pte_addr(struct hl_ctx *ctx,
350 					struct hl_mmu_properties *mmu_specs,
351 					u64 hop_addr, u64 vaddr)
352 {
353 	return get_hopN_pte_addr(ctx, hop_addr, vaddr, mmu_specs->hop4_mask,
354 					mmu_specs->hop4_shift);
355 }
356 
get_hop5_pte_addr(struct hl_ctx * ctx,struct hl_mmu_properties * mmu_specs,u64 hop_addr,u64 vaddr)357 static inline u64 get_hop5_pte_addr(struct hl_ctx *ctx,
358 					struct hl_mmu_properties *mmu_specs,
359 					u64 hop_addr, u64 vaddr)
360 {
361 	return get_hopN_pte_addr(ctx, hop_addr, vaddr, mmu_specs->hop5_mask,
362 					mmu_specs->hop5_shift);
363 }
364 
get_next_hop_addr(u64 curr_pte)365 static inline u64 get_next_hop_addr(u64 curr_pte)
366 {
367 	if (curr_pte & PAGE_PRESENT_MASK)
368 		return curr_pte & HOP_PHYS_ADDR_MASK;
369 	else
370 		return ULLONG_MAX;
371 }
372 
mmu_show(struct seq_file * s,void * data)373 static int mmu_show(struct seq_file *s, void *data)
374 {
375 	struct hl_debugfs_entry *entry = s->private;
376 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
377 	struct hl_device *hdev = dev_entry->hdev;
378 	struct asic_fixed_properties *prop = &hdev->asic_prop;
379 	struct hl_mmu_properties *mmu_prop;
380 	struct hl_ctx *ctx;
381 	bool is_dram_addr;
382 
383 	u64 hop0_addr = 0, hop0_pte_addr = 0, hop0_pte = 0,
384 		hop1_addr = 0, hop1_pte_addr = 0, hop1_pte = 0,
385 		hop2_addr = 0, hop2_pte_addr = 0, hop2_pte = 0,
386 		hop3_addr = 0, hop3_pte_addr = 0, hop3_pte = 0,
387 		hop4_addr = 0, hop4_pte_addr = 0, hop4_pte = 0,
388 		hop5_addr = 0, hop5_pte_addr = 0, hop5_pte = 0,
389 		virt_addr = dev_entry->mmu_addr;
390 
391 	if (!hdev->mmu_enable)
392 		return 0;
393 
394 	if (dev_entry->mmu_asid == HL_KERNEL_ASID_ID)
395 		ctx = hdev->kernel_ctx;
396 	else
397 		ctx = hdev->compute_ctx;
398 
399 	if (!ctx) {
400 		dev_err(hdev->dev, "no ctx available\n");
401 		return 0;
402 	}
403 
404 	is_dram_addr = hl_mem_area_inside_range(virt_addr, prop->dmmu.page_size,
405 						prop->dmmu.start_addr,
406 						prop->dmmu.end_addr);
407 
408 	/* shifts and masks are the same in PMMU and HPMMU, use one of them */
409 	mmu_prop = is_dram_addr ? &prop->dmmu : &prop->pmmu;
410 
411 	mutex_lock(&ctx->mmu_lock);
412 
413 	/* the following lookup is copied from unmap() in mmu.c */
414 
415 	hop0_addr = get_hop0_addr(ctx);
416 	hop0_pte_addr = get_hop0_pte_addr(ctx, mmu_prop, hop0_addr, virt_addr);
417 	hop0_pte = hdev->asic_funcs->read_pte(hdev, hop0_pte_addr);
418 	hop1_addr = get_next_hop_addr(hop0_pte);
419 
420 	if (hop1_addr == ULLONG_MAX)
421 		goto not_mapped;
422 
423 	hop1_pte_addr = get_hop1_pte_addr(ctx, mmu_prop, hop1_addr, virt_addr);
424 	hop1_pte = hdev->asic_funcs->read_pte(hdev, hop1_pte_addr);
425 	hop2_addr = get_next_hop_addr(hop1_pte);
426 
427 	if (hop2_addr == ULLONG_MAX)
428 		goto not_mapped;
429 
430 	hop2_pte_addr = get_hop2_pte_addr(ctx, mmu_prop, hop2_addr, virt_addr);
431 	hop2_pte = hdev->asic_funcs->read_pte(hdev, hop2_pte_addr);
432 	hop3_addr = get_next_hop_addr(hop2_pte);
433 
434 	if (hop3_addr == ULLONG_MAX)
435 		goto not_mapped;
436 
437 	hop3_pte_addr = get_hop3_pte_addr(ctx, mmu_prop, hop3_addr, virt_addr);
438 	hop3_pte = hdev->asic_funcs->read_pte(hdev, hop3_pte_addr);
439 
440 	if (mmu_prop->num_hops == MMU_ARCH_5_HOPS) {
441 		if (!(hop3_pte & LAST_MASK)) {
442 			hop4_addr = get_next_hop_addr(hop3_pte);
443 
444 			if (hop4_addr == ULLONG_MAX)
445 				goto not_mapped;
446 
447 			hop4_pte_addr = get_hop4_pte_addr(ctx, mmu_prop,
448 							hop4_addr, virt_addr);
449 			hop4_pte = hdev->asic_funcs->read_pte(hdev,
450 								hop4_pte_addr);
451 			if (!(hop4_pte & PAGE_PRESENT_MASK))
452 				goto not_mapped;
453 		} else {
454 			if (!(hop3_pte & PAGE_PRESENT_MASK))
455 				goto not_mapped;
456 		}
457 	} else {
458 		hop4_addr = get_next_hop_addr(hop3_pte);
459 
460 		if (hop4_addr == ULLONG_MAX)
461 			goto not_mapped;
462 
463 		hop4_pte_addr = get_hop4_pte_addr(ctx, mmu_prop,
464 						hop4_addr, virt_addr);
465 		hop4_pte = hdev->asic_funcs->read_pte(hdev,
466 							hop4_pte_addr);
467 		if (!(hop4_pte & LAST_MASK)) {
468 			hop5_addr = get_next_hop_addr(hop4_pte);
469 
470 			if (hop5_addr == ULLONG_MAX)
471 				goto not_mapped;
472 
473 			hop5_pte_addr = get_hop5_pte_addr(ctx, mmu_prop,
474 							hop5_addr, virt_addr);
475 			hop5_pte = hdev->asic_funcs->read_pte(hdev,
476 								hop5_pte_addr);
477 			if (!(hop5_pte & PAGE_PRESENT_MASK))
478 				goto not_mapped;
479 		} else {
480 			if (!(hop4_pte & PAGE_PRESENT_MASK))
481 				goto not_mapped;
482 		}
483 	}
484 
485 	seq_printf(s, "asid: %u, virt_addr: 0x%llx\n",
486 			dev_entry->mmu_asid, dev_entry->mmu_addr);
487 
488 	seq_printf(s, "hop0_addr: 0x%llx\n", hop0_addr);
489 	seq_printf(s, "hop0_pte_addr: 0x%llx\n", hop0_pte_addr);
490 	seq_printf(s, "hop0_pte: 0x%llx\n", hop0_pte);
491 
492 	seq_printf(s, "hop1_addr: 0x%llx\n", hop1_addr);
493 	seq_printf(s, "hop1_pte_addr: 0x%llx\n", hop1_pte_addr);
494 	seq_printf(s, "hop1_pte: 0x%llx\n", hop1_pte);
495 
496 	seq_printf(s, "hop2_addr: 0x%llx\n", hop2_addr);
497 	seq_printf(s, "hop2_pte_addr: 0x%llx\n", hop2_pte_addr);
498 	seq_printf(s, "hop2_pte: 0x%llx\n", hop2_pte);
499 
500 	seq_printf(s, "hop3_addr: 0x%llx\n", hop3_addr);
501 	seq_printf(s, "hop3_pte_addr: 0x%llx\n", hop3_pte_addr);
502 	seq_printf(s, "hop3_pte: 0x%llx\n", hop3_pte);
503 
504 	if (mmu_prop->num_hops == MMU_ARCH_5_HOPS) {
505 		if (!(hop3_pte & LAST_MASK)) {
506 			seq_printf(s, "hop4_addr: 0x%llx\n", hop4_addr);
507 			seq_printf(s, "hop4_pte_addr: 0x%llx\n", hop4_pte_addr);
508 			seq_printf(s, "hop4_pte: 0x%llx\n", hop4_pte);
509 		}
510 	} else {
511 		seq_printf(s, "hop4_addr: 0x%llx\n", hop4_addr);
512 		seq_printf(s, "hop4_pte_addr: 0x%llx\n", hop4_pte_addr);
513 		seq_printf(s, "hop4_pte: 0x%llx\n", hop4_pte);
514 
515 		if (!(hop4_pte & LAST_MASK)) {
516 			seq_printf(s, "hop5_addr: 0x%llx\n", hop5_addr);
517 			seq_printf(s, "hop5_pte_addr: 0x%llx\n", hop5_pte_addr);
518 			seq_printf(s, "hop5_pte: 0x%llx\n", hop5_pte);
519 		}
520 	}
521 
522 	goto out;
523 
524 not_mapped:
525 	dev_err(hdev->dev, "virt addr 0x%llx is not mapped to phys addr\n",
526 			virt_addr);
527 out:
528 	mutex_unlock(&ctx->mmu_lock);
529 
530 	return 0;
531 }
532 
mmu_asid_va_write(struct file * file,const char __user * buf,size_t count,loff_t * f_pos)533 static ssize_t mmu_asid_va_write(struct file *file, const char __user *buf,
534 		size_t count, loff_t *f_pos)
535 {
536 	struct seq_file *s = file->private_data;
537 	struct hl_debugfs_entry *entry = s->private;
538 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
539 	struct hl_device *hdev = dev_entry->hdev;
540 	char kbuf[MMU_KBUF_SIZE];
541 	char *c;
542 	ssize_t rc;
543 
544 	if (!hdev->mmu_enable)
545 		return count;
546 
547 	if (count > sizeof(kbuf) - 1)
548 		goto err;
549 	if (copy_from_user(kbuf, buf, count))
550 		goto err;
551 	kbuf[count] = 0;
552 
553 	c = strchr(kbuf, ' ');
554 	if (!c)
555 		goto err;
556 	*c = '\0';
557 
558 	rc = kstrtouint(kbuf, 10, &dev_entry->mmu_asid);
559 	if (rc)
560 		goto err;
561 
562 	if (strncmp(c+1, "0x", 2))
563 		goto err;
564 	rc = kstrtoull(c+3, 16, &dev_entry->mmu_addr);
565 	if (rc)
566 		goto err;
567 
568 	return count;
569 
570 err:
571 	dev_err(hdev->dev, "usage: echo <asid> <0xaddr> > mmu\n");
572 
573 	return -EINVAL;
574 }
575 
engines_show(struct seq_file * s,void * data)576 static int engines_show(struct seq_file *s, void *data)
577 {
578 	struct hl_debugfs_entry *entry = s->private;
579 	struct hl_dbg_device_entry *dev_entry = entry->dev_entry;
580 	struct hl_device *hdev = dev_entry->hdev;
581 
582 	if (atomic_read(&hdev->in_reset)) {
583 		dev_warn_ratelimited(hdev->dev,
584 				"Can't check device idle during reset\n");
585 		return 0;
586 	}
587 
588 	hdev->asic_funcs->is_device_idle(hdev, NULL, s);
589 
590 	return 0;
591 }
592 
hl_is_device_va(struct hl_device * hdev,u64 addr)593 static bool hl_is_device_va(struct hl_device *hdev, u64 addr)
594 {
595 	struct asic_fixed_properties *prop = &hdev->asic_prop;
596 
597 	if (!hdev->mmu_enable)
598 		goto out;
599 
600 	if (hdev->dram_supports_virtual_memory &&
601 		(addr >= prop->dmmu.start_addr && addr < prop->dmmu.end_addr))
602 		return true;
603 
604 	if (addr >= prop->pmmu.start_addr &&
605 		addr < prop->pmmu.end_addr)
606 		return true;
607 
608 	if (addr >= prop->pmmu_huge.start_addr &&
609 		addr < prop->pmmu_huge.end_addr)
610 		return true;
611 out:
612 	return false;
613 }
614 
device_va_to_pa(struct hl_device * hdev,u64 virt_addr,u64 * phys_addr)615 static int device_va_to_pa(struct hl_device *hdev, u64 virt_addr,
616 				u64 *phys_addr)
617 {
618 	struct hl_ctx *ctx = hdev->compute_ctx;
619 	struct asic_fixed_properties *prop = &hdev->asic_prop;
620 	struct hl_mmu_properties *mmu_prop;
621 	u64 hop_addr, hop_pte_addr, hop_pte;
622 	u64 offset_mask = HOP4_MASK | FLAGS_MASK;
623 	int rc = 0;
624 	bool is_dram_addr;
625 
626 	if (!ctx) {
627 		dev_err(hdev->dev, "no ctx available\n");
628 		return -EINVAL;
629 	}
630 
631 	is_dram_addr = hl_mem_area_inside_range(virt_addr, prop->dmmu.page_size,
632 						prop->dmmu.start_addr,
633 						prop->dmmu.end_addr);
634 
635 	/* shifts and masks are the same in PMMU and HPMMU, use one of them */
636 	mmu_prop = is_dram_addr ? &prop->dmmu : &prop->pmmu;
637 
638 	mutex_lock(&ctx->mmu_lock);
639 
640 	/* hop 0 */
641 	hop_addr = get_hop0_addr(ctx);
642 	hop_pte_addr = get_hop0_pte_addr(ctx, mmu_prop, hop_addr, virt_addr);
643 	hop_pte = hdev->asic_funcs->read_pte(hdev, hop_pte_addr);
644 
645 	/* hop 1 */
646 	hop_addr = get_next_hop_addr(hop_pte);
647 	if (hop_addr == ULLONG_MAX)
648 		goto not_mapped;
649 	hop_pte_addr = get_hop1_pte_addr(ctx, mmu_prop, hop_addr, virt_addr);
650 	hop_pte = hdev->asic_funcs->read_pte(hdev, hop_pte_addr);
651 
652 	/* hop 2 */
653 	hop_addr = get_next_hop_addr(hop_pte);
654 	if (hop_addr == ULLONG_MAX)
655 		goto not_mapped;
656 	hop_pte_addr = get_hop2_pte_addr(ctx, mmu_prop, hop_addr, virt_addr);
657 	hop_pte = hdev->asic_funcs->read_pte(hdev, hop_pte_addr);
658 
659 	/* hop 3 */
660 	hop_addr = get_next_hop_addr(hop_pte);
661 	if (hop_addr == ULLONG_MAX)
662 		goto not_mapped;
663 	hop_pte_addr = get_hop3_pte_addr(ctx, mmu_prop, hop_addr, virt_addr);
664 	hop_pte = hdev->asic_funcs->read_pte(hdev, hop_pte_addr);
665 
666 	if (!(hop_pte & LAST_MASK)) {
667 		/* hop 4 */
668 		hop_addr = get_next_hop_addr(hop_pte);
669 		if (hop_addr == ULLONG_MAX)
670 			goto not_mapped;
671 		hop_pte_addr = get_hop4_pte_addr(ctx, mmu_prop, hop_addr,
672 							virt_addr);
673 		hop_pte = hdev->asic_funcs->read_pte(hdev, hop_pte_addr);
674 
675 		offset_mask = FLAGS_MASK;
676 	}
677 
678 	if (!(hop_pte & PAGE_PRESENT_MASK))
679 		goto not_mapped;
680 
681 	*phys_addr = (hop_pte & ~offset_mask) | (virt_addr & offset_mask);
682 
683 	goto out;
684 
685 not_mapped:
686 	dev_err(hdev->dev, "virt addr 0x%llx is not mapped to phys addr\n",
687 			virt_addr);
688 	rc = -EINVAL;
689 out:
690 	mutex_unlock(&ctx->mmu_lock);
691 	return rc;
692 }
693 
hl_data_read32(struct file * f,char __user * buf,size_t count,loff_t * ppos)694 static ssize_t hl_data_read32(struct file *f, char __user *buf,
695 					size_t count, loff_t *ppos)
696 {
697 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
698 	struct hl_device *hdev = entry->hdev;
699 	char tmp_buf[32];
700 	u64 addr = entry->addr;
701 	u32 val;
702 	ssize_t rc;
703 
704 	if (atomic_read(&hdev->in_reset)) {
705 		dev_warn_ratelimited(hdev->dev, "Can't read during reset\n");
706 		return 0;
707 	}
708 
709 	if (*ppos)
710 		return 0;
711 
712 	if (hl_is_device_va(hdev, addr)) {
713 		rc = device_va_to_pa(hdev, addr, &addr);
714 		if (rc)
715 			return rc;
716 	}
717 
718 	rc = hdev->asic_funcs->debugfs_read32(hdev, addr, &val);
719 	if (rc) {
720 		dev_err(hdev->dev, "Failed to read from 0x%010llx\n", addr);
721 		return rc;
722 	}
723 
724 	sprintf(tmp_buf, "0x%08x\n", val);
725 	return simple_read_from_buffer(buf, count, ppos, tmp_buf,
726 			strlen(tmp_buf));
727 }
728 
hl_data_write32(struct file * f,const char __user * buf,size_t count,loff_t * ppos)729 static ssize_t hl_data_write32(struct file *f, const char __user *buf,
730 					size_t count, loff_t *ppos)
731 {
732 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
733 	struct hl_device *hdev = entry->hdev;
734 	u64 addr = entry->addr;
735 	u32 value;
736 	ssize_t rc;
737 
738 	if (atomic_read(&hdev->in_reset)) {
739 		dev_warn_ratelimited(hdev->dev, "Can't write during reset\n");
740 		return 0;
741 	}
742 
743 	rc = kstrtouint_from_user(buf, count, 16, &value);
744 	if (rc)
745 		return rc;
746 
747 	if (hl_is_device_va(hdev, addr)) {
748 		rc = device_va_to_pa(hdev, addr, &addr);
749 		if (rc)
750 			return rc;
751 	}
752 
753 	rc = hdev->asic_funcs->debugfs_write32(hdev, addr, value);
754 	if (rc) {
755 		dev_err(hdev->dev, "Failed to write 0x%08x to 0x%010llx\n",
756 			value, addr);
757 		return rc;
758 	}
759 
760 	return count;
761 }
762 
hl_data_read64(struct file * f,char __user * buf,size_t count,loff_t * ppos)763 static ssize_t hl_data_read64(struct file *f, char __user *buf,
764 					size_t count, loff_t *ppos)
765 {
766 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
767 	struct hl_device *hdev = entry->hdev;
768 	char tmp_buf[32];
769 	u64 addr = entry->addr;
770 	u64 val;
771 	ssize_t rc;
772 
773 	if (*ppos)
774 		return 0;
775 
776 	if (hl_is_device_va(hdev, addr)) {
777 		rc = device_va_to_pa(hdev, addr, &addr);
778 		if (rc)
779 			return rc;
780 	}
781 
782 	rc = hdev->asic_funcs->debugfs_read64(hdev, addr, &val);
783 	if (rc) {
784 		dev_err(hdev->dev, "Failed to read from 0x%010llx\n", addr);
785 		return rc;
786 	}
787 
788 	sprintf(tmp_buf, "0x%016llx\n", val);
789 	return simple_read_from_buffer(buf, count, ppos, tmp_buf,
790 			strlen(tmp_buf));
791 }
792 
hl_data_write64(struct file * f,const char __user * buf,size_t count,loff_t * ppos)793 static ssize_t hl_data_write64(struct file *f, const char __user *buf,
794 					size_t count, loff_t *ppos)
795 {
796 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
797 	struct hl_device *hdev = entry->hdev;
798 	u64 addr = entry->addr;
799 	u64 value;
800 	ssize_t rc;
801 
802 	rc = kstrtoull_from_user(buf, count, 16, &value);
803 	if (rc)
804 		return rc;
805 
806 	if (hl_is_device_va(hdev, addr)) {
807 		rc = device_va_to_pa(hdev, addr, &addr);
808 		if (rc)
809 			return rc;
810 	}
811 
812 	rc = hdev->asic_funcs->debugfs_write64(hdev, addr, value);
813 	if (rc) {
814 		dev_err(hdev->dev, "Failed to write 0x%016llx to 0x%010llx\n",
815 			value, addr);
816 		return rc;
817 	}
818 
819 	return count;
820 }
821 
hl_get_power_state(struct file * f,char __user * buf,size_t count,loff_t * ppos)822 static ssize_t hl_get_power_state(struct file *f, char __user *buf,
823 		size_t count, loff_t *ppos)
824 {
825 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
826 	struct hl_device *hdev = entry->hdev;
827 	char tmp_buf[200];
828 	int i;
829 
830 	if (*ppos)
831 		return 0;
832 
833 	if (hdev->pdev->current_state == PCI_D0)
834 		i = 1;
835 	else if (hdev->pdev->current_state == PCI_D3hot)
836 		i = 2;
837 	else
838 		i = 3;
839 
840 	sprintf(tmp_buf,
841 		"current power state: %d\n1 - D0\n2 - D3hot\n3 - Unknown\n", i);
842 	return simple_read_from_buffer(buf, count, ppos, tmp_buf,
843 			strlen(tmp_buf));
844 }
845 
hl_set_power_state(struct file * f,const char __user * buf,size_t count,loff_t * ppos)846 static ssize_t hl_set_power_state(struct file *f, const char __user *buf,
847 					size_t count, loff_t *ppos)
848 {
849 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
850 	struct hl_device *hdev = entry->hdev;
851 	u32 value;
852 	ssize_t rc;
853 
854 	rc = kstrtouint_from_user(buf, count, 10, &value);
855 	if (rc)
856 		return rc;
857 
858 	if (value == 1) {
859 		pci_set_power_state(hdev->pdev, PCI_D0);
860 		pci_restore_state(hdev->pdev);
861 		rc = pci_enable_device(hdev->pdev);
862 	} else if (value == 2) {
863 		pci_save_state(hdev->pdev);
864 		pci_disable_device(hdev->pdev);
865 		pci_set_power_state(hdev->pdev, PCI_D3hot);
866 	} else {
867 		dev_dbg(hdev->dev, "invalid power state value %u\n", value);
868 		return -EINVAL;
869 	}
870 
871 	return count;
872 }
873 
hl_i2c_data_read(struct file * f,char __user * buf,size_t count,loff_t * ppos)874 static ssize_t hl_i2c_data_read(struct file *f, char __user *buf,
875 					size_t count, loff_t *ppos)
876 {
877 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
878 	struct hl_device *hdev = entry->hdev;
879 	char tmp_buf[32];
880 	long val;
881 	ssize_t rc;
882 
883 	if (*ppos)
884 		return 0;
885 
886 	rc = hl_debugfs_i2c_read(hdev, entry->i2c_bus, entry->i2c_addr,
887 			entry->i2c_reg, &val);
888 	if (rc) {
889 		dev_err(hdev->dev,
890 			"Failed to read from I2C bus %d, addr %d, reg %d\n",
891 			entry->i2c_bus, entry->i2c_addr, entry->i2c_reg);
892 		return rc;
893 	}
894 
895 	sprintf(tmp_buf, "0x%02lx\n", val);
896 	rc = simple_read_from_buffer(buf, count, ppos, tmp_buf,
897 			strlen(tmp_buf));
898 
899 	return rc;
900 }
901 
hl_i2c_data_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)902 static ssize_t hl_i2c_data_write(struct file *f, const char __user *buf,
903 					size_t count, loff_t *ppos)
904 {
905 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
906 	struct hl_device *hdev = entry->hdev;
907 	u32 value;
908 	ssize_t rc;
909 
910 	rc = kstrtouint_from_user(buf, count, 16, &value);
911 	if (rc)
912 		return rc;
913 
914 	rc = hl_debugfs_i2c_write(hdev, entry->i2c_bus, entry->i2c_addr,
915 			entry->i2c_reg, value);
916 	if (rc) {
917 		dev_err(hdev->dev,
918 			"Failed to write 0x%02x to I2C bus %d, addr %d, reg %d\n",
919 			value, entry->i2c_bus, entry->i2c_addr, entry->i2c_reg);
920 		return rc;
921 	}
922 
923 	return count;
924 }
925 
hl_led0_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)926 static ssize_t hl_led0_write(struct file *f, const char __user *buf,
927 					size_t count, loff_t *ppos)
928 {
929 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
930 	struct hl_device *hdev = entry->hdev;
931 	u32 value;
932 	ssize_t rc;
933 
934 	rc = kstrtouint_from_user(buf, count, 10, &value);
935 	if (rc)
936 		return rc;
937 
938 	value = value ? 1 : 0;
939 
940 	hl_debugfs_led_set(hdev, 0, value);
941 
942 	return count;
943 }
944 
hl_led1_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)945 static ssize_t hl_led1_write(struct file *f, const char __user *buf,
946 					size_t count, loff_t *ppos)
947 {
948 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
949 	struct hl_device *hdev = entry->hdev;
950 	u32 value;
951 	ssize_t rc;
952 
953 	rc = kstrtouint_from_user(buf, count, 10, &value);
954 	if (rc)
955 		return rc;
956 
957 	value = value ? 1 : 0;
958 
959 	hl_debugfs_led_set(hdev, 1, value);
960 
961 	return count;
962 }
963 
hl_led2_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)964 static ssize_t hl_led2_write(struct file *f, const char __user *buf,
965 					size_t count, loff_t *ppos)
966 {
967 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
968 	struct hl_device *hdev = entry->hdev;
969 	u32 value;
970 	ssize_t rc;
971 
972 	rc = kstrtouint_from_user(buf, count, 10, &value);
973 	if (rc)
974 		return rc;
975 
976 	value = value ? 1 : 0;
977 
978 	hl_debugfs_led_set(hdev, 2, value);
979 
980 	return count;
981 }
982 
hl_device_read(struct file * f,char __user * buf,size_t count,loff_t * ppos)983 static ssize_t hl_device_read(struct file *f, char __user *buf,
984 					size_t count, loff_t *ppos)
985 {
986 	static const char *help =
987 		"Valid values: disable, enable, suspend, resume, cpu_timeout\n";
988 	return simple_read_from_buffer(buf, count, ppos, help, strlen(help));
989 }
990 
hl_device_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)991 static ssize_t hl_device_write(struct file *f, const char __user *buf,
992 				     size_t count, loff_t *ppos)
993 {
994 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
995 	struct hl_device *hdev = entry->hdev;
996 	char data[30] = {0};
997 
998 	/* don't allow partial writes */
999 	if (*ppos != 0)
1000 		return 0;
1001 
1002 	simple_write_to_buffer(data, 29, ppos, buf, count);
1003 
1004 	if (strncmp("disable", data, strlen("disable")) == 0) {
1005 		hdev->disabled = true;
1006 	} else if (strncmp("enable", data, strlen("enable")) == 0) {
1007 		hdev->disabled = false;
1008 	} else if (strncmp("suspend", data, strlen("suspend")) == 0) {
1009 		hdev->asic_funcs->suspend(hdev);
1010 	} else if (strncmp("resume", data, strlen("resume")) == 0) {
1011 		hdev->asic_funcs->resume(hdev);
1012 	} else if (strncmp("cpu_timeout", data, strlen("cpu_timeout")) == 0) {
1013 		hdev->device_cpu_disabled = true;
1014 	} else {
1015 		dev_err(hdev->dev,
1016 			"Valid values: disable, enable, suspend, resume, cpu_timeout\n");
1017 		count = -EINVAL;
1018 	}
1019 
1020 	return count;
1021 }
1022 
hl_clk_gate_read(struct file * f,char __user * buf,size_t count,loff_t * ppos)1023 static ssize_t hl_clk_gate_read(struct file *f, char __user *buf,
1024 					size_t count, loff_t *ppos)
1025 {
1026 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
1027 	struct hl_device *hdev = entry->hdev;
1028 	char tmp_buf[200];
1029 	ssize_t rc;
1030 
1031 	if (*ppos)
1032 		return 0;
1033 
1034 	sprintf(tmp_buf, "0x%llx\n", hdev->clock_gating_mask);
1035 	rc = simple_read_from_buffer(buf, count, ppos, tmp_buf,
1036 			strlen(tmp_buf) + 1);
1037 
1038 	return rc;
1039 }
1040 
hl_clk_gate_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)1041 static ssize_t hl_clk_gate_write(struct file *f, const char __user *buf,
1042 				     size_t count, loff_t *ppos)
1043 {
1044 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
1045 	struct hl_device *hdev = entry->hdev;
1046 	u64 value;
1047 	ssize_t rc;
1048 
1049 	if (atomic_read(&hdev->in_reset)) {
1050 		dev_warn_ratelimited(hdev->dev,
1051 				"Can't change clock gating during reset\n");
1052 		return 0;
1053 	}
1054 
1055 	rc = kstrtoull_from_user(buf, count, 16, &value);
1056 	if (rc)
1057 		return rc;
1058 
1059 	hdev->clock_gating_mask = value;
1060 	hdev->asic_funcs->set_clock_gating(hdev);
1061 
1062 	return count;
1063 }
1064 
hl_stop_on_err_read(struct file * f,char __user * buf,size_t count,loff_t * ppos)1065 static ssize_t hl_stop_on_err_read(struct file *f, char __user *buf,
1066 					size_t count, loff_t *ppos)
1067 {
1068 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
1069 	struct hl_device *hdev = entry->hdev;
1070 	char tmp_buf[200];
1071 	ssize_t rc;
1072 
1073 	if (*ppos)
1074 		return 0;
1075 
1076 	sprintf(tmp_buf, "%d\n", hdev->stop_on_err);
1077 	rc = simple_read_from_buffer(buf, strlen(tmp_buf) + 1, ppos, tmp_buf,
1078 			strlen(tmp_buf) + 1);
1079 
1080 	return rc;
1081 }
1082 
hl_stop_on_err_write(struct file * f,const char __user * buf,size_t count,loff_t * ppos)1083 static ssize_t hl_stop_on_err_write(struct file *f, const char __user *buf,
1084 				     size_t count, loff_t *ppos)
1085 {
1086 	struct hl_dbg_device_entry *entry = file_inode(f)->i_private;
1087 	struct hl_device *hdev = entry->hdev;
1088 	u32 value;
1089 	ssize_t rc;
1090 
1091 	if (atomic_read(&hdev->in_reset)) {
1092 		dev_warn_ratelimited(hdev->dev,
1093 				"Can't change stop on error during reset\n");
1094 		return 0;
1095 	}
1096 
1097 	rc = kstrtouint_from_user(buf, count, 10, &value);
1098 	if (rc)
1099 		return rc;
1100 
1101 	hdev->stop_on_err = value ? 1 : 0;
1102 
1103 	hl_device_reset(hdev, false, false);
1104 
1105 	return count;
1106 }
1107 
1108 static const struct file_operations hl_data32b_fops = {
1109 	.owner = THIS_MODULE,
1110 	.read = hl_data_read32,
1111 	.write = hl_data_write32
1112 };
1113 
1114 static const struct file_operations hl_data64b_fops = {
1115 	.owner = THIS_MODULE,
1116 	.read = hl_data_read64,
1117 	.write = hl_data_write64
1118 };
1119 
1120 static const struct file_operations hl_i2c_data_fops = {
1121 	.owner = THIS_MODULE,
1122 	.read = hl_i2c_data_read,
1123 	.write = hl_i2c_data_write
1124 };
1125 
1126 static const struct file_operations hl_power_fops = {
1127 	.owner = THIS_MODULE,
1128 	.read = hl_get_power_state,
1129 	.write = hl_set_power_state
1130 };
1131 
1132 static const struct file_operations hl_led0_fops = {
1133 	.owner = THIS_MODULE,
1134 	.write = hl_led0_write
1135 };
1136 
1137 static const struct file_operations hl_led1_fops = {
1138 	.owner = THIS_MODULE,
1139 	.write = hl_led1_write
1140 };
1141 
1142 static const struct file_operations hl_led2_fops = {
1143 	.owner = THIS_MODULE,
1144 	.write = hl_led2_write
1145 };
1146 
1147 static const struct file_operations hl_device_fops = {
1148 	.owner = THIS_MODULE,
1149 	.read = hl_device_read,
1150 	.write = hl_device_write
1151 };
1152 
1153 static const struct file_operations hl_clk_gate_fops = {
1154 	.owner = THIS_MODULE,
1155 	.read = hl_clk_gate_read,
1156 	.write = hl_clk_gate_write
1157 };
1158 
1159 static const struct file_operations hl_stop_on_err_fops = {
1160 	.owner = THIS_MODULE,
1161 	.read = hl_stop_on_err_read,
1162 	.write = hl_stop_on_err_write
1163 };
1164 
1165 static const struct hl_info_list hl_debugfs_list[] = {
1166 	{"command_buffers", command_buffers_show, NULL},
1167 	{"command_submission", command_submission_show, NULL},
1168 	{"command_submission_jobs", command_submission_jobs_show, NULL},
1169 	{"userptr", userptr_show, NULL},
1170 	{"vm", vm_show, NULL},
1171 	{"mmu", mmu_show, mmu_asid_va_write},
1172 	{"engines", engines_show, NULL}
1173 };
1174 
hl_debugfs_open(struct inode * inode,struct file * file)1175 static int hl_debugfs_open(struct inode *inode, struct file *file)
1176 {
1177 	struct hl_debugfs_entry *node = inode->i_private;
1178 
1179 	return single_open(file, node->info_ent->show, node);
1180 }
1181 
hl_debugfs_write(struct file * file,const char __user * buf,size_t count,loff_t * f_pos)1182 static ssize_t hl_debugfs_write(struct file *file, const char __user *buf,
1183 		size_t count, loff_t *f_pos)
1184 {
1185 	struct hl_debugfs_entry *node = file->f_inode->i_private;
1186 
1187 	if (node->info_ent->write)
1188 		return node->info_ent->write(file, buf, count, f_pos);
1189 	else
1190 		return -EINVAL;
1191 
1192 }
1193 
1194 static const struct file_operations hl_debugfs_fops = {
1195 	.owner = THIS_MODULE,
1196 	.open = hl_debugfs_open,
1197 	.read = seq_read,
1198 	.write = hl_debugfs_write,
1199 	.llseek = seq_lseek,
1200 	.release = single_release,
1201 };
1202 
hl_debugfs_add_device(struct hl_device * hdev)1203 void hl_debugfs_add_device(struct hl_device *hdev)
1204 {
1205 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1206 	int count = ARRAY_SIZE(hl_debugfs_list);
1207 	struct hl_debugfs_entry *entry;
1208 	struct dentry *ent;
1209 	int i;
1210 
1211 	dev_entry->hdev = hdev;
1212 	dev_entry->entry_arr = kmalloc_array(count,
1213 					sizeof(struct hl_debugfs_entry),
1214 					GFP_KERNEL);
1215 	if (!dev_entry->entry_arr)
1216 		return;
1217 
1218 	INIT_LIST_HEAD(&dev_entry->file_list);
1219 	INIT_LIST_HEAD(&dev_entry->cb_list);
1220 	INIT_LIST_HEAD(&dev_entry->cs_list);
1221 	INIT_LIST_HEAD(&dev_entry->cs_job_list);
1222 	INIT_LIST_HEAD(&dev_entry->userptr_list);
1223 	INIT_LIST_HEAD(&dev_entry->ctx_mem_hash_list);
1224 	mutex_init(&dev_entry->file_mutex);
1225 	spin_lock_init(&dev_entry->cb_spinlock);
1226 	spin_lock_init(&dev_entry->cs_spinlock);
1227 	spin_lock_init(&dev_entry->cs_job_spinlock);
1228 	spin_lock_init(&dev_entry->userptr_spinlock);
1229 	spin_lock_init(&dev_entry->ctx_mem_hash_spinlock);
1230 
1231 	dev_entry->root = debugfs_create_dir(dev_name(hdev->dev),
1232 						hl_debug_root);
1233 
1234 	debugfs_create_x64("addr",
1235 				0644,
1236 				dev_entry->root,
1237 				&dev_entry->addr);
1238 
1239 	debugfs_create_file("data32",
1240 				0644,
1241 				dev_entry->root,
1242 				dev_entry,
1243 				&hl_data32b_fops);
1244 
1245 	debugfs_create_file("data64",
1246 				0644,
1247 				dev_entry->root,
1248 				dev_entry,
1249 				&hl_data64b_fops);
1250 
1251 	debugfs_create_file("set_power_state",
1252 				0200,
1253 				dev_entry->root,
1254 				dev_entry,
1255 				&hl_power_fops);
1256 
1257 	debugfs_create_u8("i2c_bus",
1258 				0644,
1259 				dev_entry->root,
1260 				&dev_entry->i2c_bus);
1261 
1262 	debugfs_create_u8("i2c_addr",
1263 				0644,
1264 				dev_entry->root,
1265 				&dev_entry->i2c_addr);
1266 
1267 	debugfs_create_u8("i2c_reg",
1268 				0644,
1269 				dev_entry->root,
1270 				&dev_entry->i2c_reg);
1271 
1272 	debugfs_create_file("i2c_data",
1273 				0644,
1274 				dev_entry->root,
1275 				dev_entry,
1276 				&hl_i2c_data_fops);
1277 
1278 	debugfs_create_file("led0",
1279 				0200,
1280 				dev_entry->root,
1281 				dev_entry,
1282 				&hl_led0_fops);
1283 
1284 	debugfs_create_file("led1",
1285 				0200,
1286 				dev_entry->root,
1287 				dev_entry,
1288 				&hl_led1_fops);
1289 
1290 	debugfs_create_file("led2",
1291 				0200,
1292 				dev_entry->root,
1293 				dev_entry,
1294 				&hl_led2_fops);
1295 
1296 	debugfs_create_file("device",
1297 				0200,
1298 				dev_entry->root,
1299 				dev_entry,
1300 				&hl_device_fops);
1301 
1302 	debugfs_create_file("clk_gate",
1303 				0200,
1304 				dev_entry->root,
1305 				dev_entry,
1306 				&hl_clk_gate_fops);
1307 
1308 	debugfs_create_file("stop_on_err",
1309 				0644,
1310 				dev_entry->root,
1311 				dev_entry,
1312 				&hl_stop_on_err_fops);
1313 
1314 	for (i = 0, entry = dev_entry->entry_arr ; i < count ; i++, entry++) {
1315 
1316 		ent = debugfs_create_file(hl_debugfs_list[i].name,
1317 					0444,
1318 					dev_entry->root,
1319 					entry,
1320 					&hl_debugfs_fops);
1321 		entry->dent = ent;
1322 		entry->info_ent = &hl_debugfs_list[i];
1323 		entry->dev_entry = dev_entry;
1324 	}
1325 }
1326 
hl_debugfs_remove_device(struct hl_device * hdev)1327 void hl_debugfs_remove_device(struct hl_device *hdev)
1328 {
1329 	struct hl_dbg_device_entry *entry = &hdev->hl_debugfs;
1330 
1331 	debugfs_remove_recursive(entry->root);
1332 
1333 	mutex_destroy(&entry->file_mutex);
1334 	kfree(entry->entry_arr);
1335 }
1336 
hl_debugfs_add_file(struct hl_fpriv * hpriv)1337 void hl_debugfs_add_file(struct hl_fpriv *hpriv)
1338 {
1339 	struct hl_dbg_device_entry *dev_entry = &hpriv->hdev->hl_debugfs;
1340 
1341 	mutex_lock(&dev_entry->file_mutex);
1342 	list_add(&hpriv->debugfs_list, &dev_entry->file_list);
1343 	mutex_unlock(&dev_entry->file_mutex);
1344 }
1345 
hl_debugfs_remove_file(struct hl_fpriv * hpriv)1346 void hl_debugfs_remove_file(struct hl_fpriv *hpriv)
1347 {
1348 	struct hl_dbg_device_entry *dev_entry = &hpriv->hdev->hl_debugfs;
1349 
1350 	mutex_lock(&dev_entry->file_mutex);
1351 	list_del(&hpriv->debugfs_list);
1352 	mutex_unlock(&dev_entry->file_mutex);
1353 }
1354 
hl_debugfs_add_cb(struct hl_cb * cb)1355 void hl_debugfs_add_cb(struct hl_cb *cb)
1356 {
1357 	struct hl_dbg_device_entry *dev_entry = &cb->hdev->hl_debugfs;
1358 
1359 	spin_lock(&dev_entry->cb_spinlock);
1360 	list_add(&cb->debugfs_list, &dev_entry->cb_list);
1361 	spin_unlock(&dev_entry->cb_spinlock);
1362 }
1363 
hl_debugfs_remove_cb(struct hl_cb * cb)1364 void hl_debugfs_remove_cb(struct hl_cb *cb)
1365 {
1366 	struct hl_dbg_device_entry *dev_entry = &cb->hdev->hl_debugfs;
1367 
1368 	spin_lock(&dev_entry->cb_spinlock);
1369 	list_del(&cb->debugfs_list);
1370 	spin_unlock(&dev_entry->cb_spinlock);
1371 }
1372 
hl_debugfs_add_cs(struct hl_cs * cs)1373 void hl_debugfs_add_cs(struct hl_cs *cs)
1374 {
1375 	struct hl_dbg_device_entry *dev_entry = &cs->ctx->hdev->hl_debugfs;
1376 
1377 	spin_lock(&dev_entry->cs_spinlock);
1378 	list_add(&cs->debugfs_list, &dev_entry->cs_list);
1379 	spin_unlock(&dev_entry->cs_spinlock);
1380 }
1381 
hl_debugfs_remove_cs(struct hl_cs * cs)1382 void hl_debugfs_remove_cs(struct hl_cs *cs)
1383 {
1384 	struct hl_dbg_device_entry *dev_entry = &cs->ctx->hdev->hl_debugfs;
1385 
1386 	spin_lock(&dev_entry->cs_spinlock);
1387 	list_del(&cs->debugfs_list);
1388 	spin_unlock(&dev_entry->cs_spinlock);
1389 }
1390 
hl_debugfs_add_job(struct hl_device * hdev,struct hl_cs_job * job)1391 void hl_debugfs_add_job(struct hl_device *hdev, struct hl_cs_job *job)
1392 {
1393 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1394 
1395 	spin_lock(&dev_entry->cs_job_spinlock);
1396 	list_add(&job->debugfs_list, &dev_entry->cs_job_list);
1397 	spin_unlock(&dev_entry->cs_job_spinlock);
1398 }
1399 
hl_debugfs_remove_job(struct hl_device * hdev,struct hl_cs_job * job)1400 void hl_debugfs_remove_job(struct hl_device *hdev, struct hl_cs_job *job)
1401 {
1402 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1403 
1404 	spin_lock(&dev_entry->cs_job_spinlock);
1405 	list_del(&job->debugfs_list);
1406 	spin_unlock(&dev_entry->cs_job_spinlock);
1407 }
1408 
hl_debugfs_add_userptr(struct hl_device * hdev,struct hl_userptr * userptr)1409 void hl_debugfs_add_userptr(struct hl_device *hdev, struct hl_userptr *userptr)
1410 {
1411 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1412 
1413 	spin_lock(&dev_entry->userptr_spinlock);
1414 	list_add(&userptr->debugfs_list, &dev_entry->userptr_list);
1415 	spin_unlock(&dev_entry->userptr_spinlock);
1416 }
1417 
hl_debugfs_remove_userptr(struct hl_device * hdev,struct hl_userptr * userptr)1418 void hl_debugfs_remove_userptr(struct hl_device *hdev,
1419 				struct hl_userptr *userptr)
1420 {
1421 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1422 
1423 	spin_lock(&dev_entry->userptr_spinlock);
1424 	list_del(&userptr->debugfs_list);
1425 	spin_unlock(&dev_entry->userptr_spinlock);
1426 }
1427 
hl_debugfs_add_ctx_mem_hash(struct hl_device * hdev,struct hl_ctx * ctx)1428 void hl_debugfs_add_ctx_mem_hash(struct hl_device *hdev, struct hl_ctx *ctx)
1429 {
1430 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1431 
1432 	spin_lock(&dev_entry->ctx_mem_hash_spinlock);
1433 	list_add(&ctx->debugfs_list, &dev_entry->ctx_mem_hash_list);
1434 	spin_unlock(&dev_entry->ctx_mem_hash_spinlock);
1435 }
1436 
hl_debugfs_remove_ctx_mem_hash(struct hl_device * hdev,struct hl_ctx * ctx)1437 void hl_debugfs_remove_ctx_mem_hash(struct hl_device *hdev, struct hl_ctx *ctx)
1438 {
1439 	struct hl_dbg_device_entry *dev_entry = &hdev->hl_debugfs;
1440 
1441 	spin_lock(&dev_entry->ctx_mem_hash_spinlock);
1442 	list_del(&ctx->debugfs_list);
1443 	spin_unlock(&dev_entry->ctx_mem_hash_spinlock);
1444 }
1445 
hl_debugfs_init(void)1446 void __init hl_debugfs_init(void)
1447 {
1448 	hl_debug_root = debugfs_create_dir("habanalabs", NULL);
1449 }
1450 
hl_debugfs_fini(void)1451 void hl_debugfs_fini(void)
1452 {
1453 	debugfs_remove_recursive(hl_debug_root);
1454 }
1455