xref: /openbmc/linux/drivers/misc/cxl/native.c (revision 799a545b)
1 /*
2  * Copyright 2014 IBM Corp.
3  *
4  * This program is free software; you can redistribute it and/or
5  * modify it under the terms of the GNU General Public License
6  * as published by the Free Software Foundation; either version
7  * 2 of the License, or (at your option) any later version.
8  */
9 
10 #include <linux/spinlock.h>
11 #include <linux/sched.h>
12 #include <linux/slab.h>
13 #include <linux/sched.h>
14 #include <linux/mutex.h>
15 #include <linux/mm.h>
16 #include <linux/uaccess.h>
17 #include <linux/delay.h>
18 #include <asm/synch.h>
19 #include <misc/cxl-base.h>
20 
21 #include "cxl.h"
22 #include "trace.h"
23 
24 static int afu_control(struct cxl_afu *afu, u64 command, u64 clear,
25 		       u64 result, u64 mask, bool enabled)
26 {
27 	u64 AFU_Cntl;
28 	unsigned long timeout = jiffies + (HZ * CXL_TIMEOUT);
29 	int rc = 0;
30 
31 	spin_lock(&afu->afu_cntl_lock);
32 	pr_devel("AFU command starting: %llx\n", command);
33 
34 	trace_cxl_afu_ctrl(afu, command);
35 
36 	AFU_Cntl = cxl_p2n_read(afu, CXL_AFU_Cntl_An);
37 	cxl_p2n_write(afu, CXL_AFU_Cntl_An, (AFU_Cntl & ~clear) | command);
38 
39 	AFU_Cntl = cxl_p2n_read(afu, CXL_AFU_Cntl_An);
40 	while ((AFU_Cntl & mask) != result) {
41 		if (time_after_eq(jiffies, timeout)) {
42 			dev_warn(&afu->dev, "WARNING: AFU control timed out!\n");
43 			rc = -EBUSY;
44 			goto out;
45 		}
46 
47 		if (!cxl_ops->link_ok(afu->adapter, afu)) {
48 			afu->enabled = enabled;
49 			rc = -EIO;
50 			goto out;
51 		}
52 
53 		pr_devel_ratelimited("AFU control... (0x%016llx)\n",
54 				     AFU_Cntl | command);
55 		cpu_relax();
56 		AFU_Cntl = cxl_p2n_read(afu, CXL_AFU_Cntl_An);
57 	};
58 
59 	if (AFU_Cntl & CXL_AFU_Cntl_An_RA) {
60 		/*
61 		 * Workaround for a bug in the XSL used in the Mellanox CX4
62 		 * that fails to clear the RA bit after an AFU reset,
63 		 * preventing subsequent AFU resets from working.
64 		 */
65 		cxl_p2n_write(afu, CXL_AFU_Cntl_An, AFU_Cntl & ~CXL_AFU_Cntl_An_RA);
66 	}
67 
68 	pr_devel("AFU command complete: %llx\n", command);
69 	afu->enabled = enabled;
70 out:
71 	trace_cxl_afu_ctrl_done(afu, command, rc);
72 	spin_unlock(&afu->afu_cntl_lock);
73 
74 	return rc;
75 }
76 
77 static int afu_enable(struct cxl_afu *afu)
78 {
79 	pr_devel("AFU enable request\n");
80 
81 	return afu_control(afu, CXL_AFU_Cntl_An_E, 0,
82 			   CXL_AFU_Cntl_An_ES_Enabled,
83 			   CXL_AFU_Cntl_An_ES_MASK, true);
84 }
85 
86 int cxl_afu_disable(struct cxl_afu *afu)
87 {
88 	pr_devel("AFU disable request\n");
89 
90 	return afu_control(afu, 0, CXL_AFU_Cntl_An_E,
91 			   CXL_AFU_Cntl_An_ES_Disabled,
92 			   CXL_AFU_Cntl_An_ES_MASK, false);
93 }
94 
95 /* This will disable as well as reset */
96 static int native_afu_reset(struct cxl_afu *afu)
97 {
98 	pr_devel("AFU reset request\n");
99 
100 	return afu_control(afu, CXL_AFU_Cntl_An_RA, 0,
101 			   CXL_AFU_Cntl_An_RS_Complete | CXL_AFU_Cntl_An_ES_Disabled,
102 			   CXL_AFU_Cntl_An_RS_MASK | CXL_AFU_Cntl_An_ES_MASK,
103 			   false);
104 }
105 
106 static int native_afu_check_and_enable(struct cxl_afu *afu)
107 {
108 	if (!cxl_ops->link_ok(afu->adapter, afu)) {
109 		WARN(1, "Refusing to enable afu while link down!\n");
110 		return -EIO;
111 	}
112 	if (afu->enabled)
113 		return 0;
114 	return afu_enable(afu);
115 }
116 
117 int cxl_psl_purge(struct cxl_afu *afu)
118 {
119 	u64 PSL_CNTL = cxl_p1n_read(afu, CXL_PSL_SCNTL_An);
120 	u64 AFU_Cntl = cxl_p2n_read(afu, CXL_AFU_Cntl_An);
121 	u64 dsisr, dar;
122 	u64 start, end;
123 	unsigned long timeout = jiffies + (HZ * CXL_TIMEOUT);
124 	int rc = 0;
125 
126 	trace_cxl_psl_ctrl(afu, CXL_PSL_SCNTL_An_Pc);
127 
128 	pr_devel("PSL purge request\n");
129 
130 	if (!cxl_ops->link_ok(afu->adapter, afu)) {
131 		dev_warn(&afu->dev, "PSL Purge called with link down, ignoring\n");
132 		rc = -EIO;
133 		goto out;
134 	}
135 
136 	if ((AFU_Cntl & CXL_AFU_Cntl_An_ES_MASK) != CXL_AFU_Cntl_An_ES_Disabled) {
137 		WARN(1, "psl_purge request while AFU not disabled!\n");
138 		cxl_afu_disable(afu);
139 	}
140 
141 	cxl_p1n_write(afu, CXL_PSL_SCNTL_An,
142 		       PSL_CNTL | CXL_PSL_SCNTL_An_Pc);
143 	start = local_clock();
144 	PSL_CNTL = cxl_p1n_read(afu, CXL_PSL_SCNTL_An);
145 	while ((PSL_CNTL &  CXL_PSL_SCNTL_An_Ps_MASK)
146 			== CXL_PSL_SCNTL_An_Ps_Pending) {
147 		if (time_after_eq(jiffies, timeout)) {
148 			dev_warn(&afu->dev, "WARNING: PSL Purge timed out!\n");
149 			rc = -EBUSY;
150 			goto out;
151 		}
152 		if (!cxl_ops->link_ok(afu->adapter, afu)) {
153 			rc = -EIO;
154 			goto out;
155 		}
156 
157 		dsisr = cxl_p2n_read(afu, CXL_PSL_DSISR_An);
158 		pr_devel_ratelimited("PSL purging... PSL_CNTL: 0x%016llx  PSL_DSISR: 0x%016llx\n", PSL_CNTL, dsisr);
159 		if (dsisr & CXL_PSL_DSISR_TRANS) {
160 			dar = cxl_p2n_read(afu, CXL_PSL_DAR_An);
161 			dev_notice(&afu->dev, "PSL purge terminating pending translation, DSISR: 0x%016llx, DAR: 0x%016llx\n", dsisr, dar);
162 			cxl_p2n_write(afu, CXL_PSL_TFC_An, CXL_PSL_TFC_An_AE);
163 		} else if (dsisr) {
164 			dev_notice(&afu->dev, "PSL purge acknowledging pending non-translation fault, DSISR: 0x%016llx\n", dsisr);
165 			cxl_p2n_write(afu, CXL_PSL_TFC_An, CXL_PSL_TFC_An_A);
166 		} else {
167 			cpu_relax();
168 		}
169 		PSL_CNTL = cxl_p1n_read(afu, CXL_PSL_SCNTL_An);
170 	};
171 	end = local_clock();
172 	pr_devel("PSL purged in %lld ns\n", end - start);
173 
174 	cxl_p1n_write(afu, CXL_PSL_SCNTL_An,
175 		       PSL_CNTL & ~CXL_PSL_SCNTL_An_Pc);
176 out:
177 	trace_cxl_psl_ctrl_done(afu, CXL_PSL_SCNTL_An_Pc, rc);
178 	return rc;
179 }
180 
181 static int spa_max_procs(int spa_size)
182 {
183 	/*
184 	 * From the CAIA:
185 	 *    end_of_SPA_area = SPA_Base + ((n+4) * 128) + (( ((n*8) + 127) >> 7) * 128) + 255
186 	 * Most of that junk is really just an overly-complicated way of saying
187 	 * the last 256 bytes are __aligned(128), so it's really:
188 	 *    end_of_SPA_area = end_of_PSL_queue_area + __aligned(128) 255
189 	 * and
190 	 *    end_of_PSL_queue_area = SPA_Base + ((n+4) * 128) + (n*8) - 1
191 	 * so
192 	 *    sizeof(SPA) = ((n+4) * 128) + (n*8) + __aligned(128) 256
193 	 * Ignore the alignment (which is safe in this case as long as we are
194 	 * careful with our rounding) and solve for n:
195 	 */
196 	return ((spa_size / 8) - 96) / 17;
197 }
198 
199 int cxl_alloc_spa(struct cxl_afu *afu)
200 {
201 	unsigned spa_size;
202 
203 	/* Work out how many pages to allocate */
204 	afu->native->spa_order = -1;
205 	do {
206 		afu->native->spa_order++;
207 		spa_size = (1 << afu->native->spa_order) * PAGE_SIZE;
208 
209 		if (spa_size > 0x100000) {
210 			dev_warn(&afu->dev, "num_of_processes too large for the SPA, limiting to %i (0x%x)\n",
211 					afu->native->spa_max_procs, afu->native->spa_size);
212 			afu->num_procs = afu->native->spa_max_procs;
213 			break;
214 		}
215 
216 		afu->native->spa_size = spa_size;
217 		afu->native->spa_max_procs = spa_max_procs(afu->native->spa_size);
218 	} while (afu->native->spa_max_procs < afu->num_procs);
219 
220 	if (!(afu->native->spa = (struct cxl_process_element *)
221 	      __get_free_pages(GFP_KERNEL | __GFP_ZERO, afu->native->spa_order))) {
222 		pr_err("cxl_alloc_spa: Unable to allocate scheduled process area\n");
223 		return -ENOMEM;
224 	}
225 	pr_devel("spa pages: %i afu->spa_max_procs: %i   afu->num_procs: %i\n",
226 		 1<<afu->native->spa_order, afu->native->spa_max_procs, afu->num_procs);
227 
228 	return 0;
229 }
230 
231 static void attach_spa(struct cxl_afu *afu)
232 {
233 	u64 spap;
234 
235 	afu->native->sw_command_status = (__be64 *)((char *)afu->native->spa +
236 					    ((afu->native->spa_max_procs + 3) * 128));
237 
238 	spap = virt_to_phys(afu->native->spa) & CXL_PSL_SPAP_Addr;
239 	spap |= ((afu->native->spa_size >> (12 - CXL_PSL_SPAP_Size_Shift)) - 1) & CXL_PSL_SPAP_Size;
240 	spap |= CXL_PSL_SPAP_V;
241 	pr_devel("cxl: SPA allocated at 0x%p. Max processes: %i, sw_command_status: 0x%p CXL_PSL_SPAP_An=0x%016llx\n",
242 		afu->native->spa, afu->native->spa_max_procs,
243 		afu->native->sw_command_status, spap);
244 	cxl_p1n_write(afu, CXL_PSL_SPAP_An, spap);
245 }
246 
247 static inline void detach_spa(struct cxl_afu *afu)
248 {
249 	cxl_p1n_write(afu, CXL_PSL_SPAP_An, 0);
250 }
251 
252 void cxl_release_spa(struct cxl_afu *afu)
253 {
254 	if (afu->native->spa) {
255 		free_pages((unsigned long) afu->native->spa,
256 			afu->native->spa_order);
257 		afu->native->spa = NULL;
258 	}
259 }
260 
261 int cxl_tlb_slb_invalidate(struct cxl *adapter)
262 {
263 	unsigned long timeout = jiffies + (HZ * CXL_TIMEOUT);
264 
265 	pr_devel("CXL adapter wide TLBIA & SLBIA\n");
266 
267 	cxl_p1_write(adapter, CXL_PSL_AFUSEL, CXL_PSL_AFUSEL_A);
268 
269 	cxl_p1_write(adapter, CXL_PSL_TLBIA, CXL_TLB_SLB_IQ_ALL);
270 	while (cxl_p1_read(adapter, CXL_PSL_TLBIA) & CXL_TLB_SLB_P) {
271 		if (time_after_eq(jiffies, timeout)) {
272 			dev_warn(&adapter->dev, "WARNING: CXL adapter wide TLBIA timed out!\n");
273 			return -EBUSY;
274 		}
275 		if (!cxl_ops->link_ok(adapter, NULL))
276 			return -EIO;
277 		cpu_relax();
278 	}
279 
280 	cxl_p1_write(adapter, CXL_PSL_SLBIA, CXL_TLB_SLB_IQ_ALL);
281 	while (cxl_p1_read(adapter, CXL_PSL_SLBIA) & CXL_TLB_SLB_P) {
282 		if (time_after_eq(jiffies, timeout)) {
283 			dev_warn(&adapter->dev, "WARNING: CXL adapter wide SLBIA timed out!\n");
284 			return -EBUSY;
285 		}
286 		if (!cxl_ops->link_ok(adapter, NULL))
287 			return -EIO;
288 		cpu_relax();
289 	}
290 	return 0;
291 }
292 
293 static int cxl_write_sstp(struct cxl_afu *afu, u64 sstp0, u64 sstp1)
294 {
295 	int rc;
296 
297 	/* 1. Disable SSTP by writing 0 to SSTP1[V] */
298 	cxl_p2n_write(afu, CXL_SSTP1_An, 0);
299 
300 	/* 2. Invalidate all SLB entries */
301 	if ((rc = cxl_afu_slbia(afu)))
302 		return rc;
303 
304 	/* 3. Set SSTP0_An */
305 	cxl_p2n_write(afu, CXL_SSTP0_An, sstp0);
306 
307 	/* 4. Set SSTP1_An */
308 	cxl_p2n_write(afu, CXL_SSTP1_An, sstp1);
309 
310 	return 0;
311 }
312 
313 /* Using per slice version may improve performance here. (ie. SLBIA_An) */
314 static void slb_invalid(struct cxl_context *ctx)
315 {
316 	struct cxl *adapter = ctx->afu->adapter;
317 	u64 slbia;
318 
319 	WARN_ON(!mutex_is_locked(&ctx->afu->native->spa_mutex));
320 
321 	cxl_p1_write(adapter, CXL_PSL_LBISEL,
322 			((u64)be32_to_cpu(ctx->elem->common.pid) << 32) |
323 			be32_to_cpu(ctx->elem->lpid));
324 	cxl_p1_write(adapter, CXL_PSL_SLBIA, CXL_TLB_SLB_IQ_LPIDPID);
325 
326 	while (1) {
327 		if (!cxl_ops->link_ok(adapter, NULL))
328 			break;
329 		slbia = cxl_p1_read(adapter, CXL_PSL_SLBIA);
330 		if (!(slbia & CXL_TLB_SLB_P))
331 			break;
332 		cpu_relax();
333 	}
334 }
335 
336 static int do_process_element_cmd(struct cxl_context *ctx,
337 				  u64 cmd, u64 pe_state)
338 {
339 	u64 state;
340 	unsigned long timeout = jiffies + (HZ * CXL_TIMEOUT);
341 	int rc = 0;
342 
343 	trace_cxl_llcmd(ctx, cmd);
344 
345 	WARN_ON(!ctx->afu->enabled);
346 
347 	ctx->elem->software_state = cpu_to_be32(pe_state);
348 	smp_wmb();
349 	*(ctx->afu->native->sw_command_status) = cpu_to_be64(cmd | 0 | ctx->pe);
350 	smp_mb();
351 	cxl_p1n_write(ctx->afu, CXL_PSL_LLCMD_An, cmd | ctx->pe);
352 	while (1) {
353 		if (time_after_eq(jiffies, timeout)) {
354 			dev_warn(&ctx->afu->dev, "WARNING: Process Element Command timed out!\n");
355 			rc = -EBUSY;
356 			goto out;
357 		}
358 		if (!cxl_ops->link_ok(ctx->afu->adapter, ctx->afu)) {
359 			dev_warn(&ctx->afu->dev, "WARNING: Device link down, aborting Process Element Command!\n");
360 			rc = -EIO;
361 			goto out;
362 		}
363 		state = be64_to_cpup(ctx->afu->native->sw_command_status);
364 		if (state == ~0ULL) {
365 			pr_err("cxl: Error adding process element to AFU\n");
366 			rc = -1;
367 			goto out;
368 		}
369 		if ((state & (CXL_SPA_SW_CMD_MASK | CXL_SPA_SW_STATE_MASK  | CXL_SPA_SW_LINK_MASK)) ==
370 		    (cmd | (cmd >> 16) | ctx->pe))
371 			break;
372 		/*
373 		 * The command won't finish in the PSL if there are
374 		 * outstanding DSIs.  Hence we need to yield here in
375 		 * case there are outstanding DSIs that we need to
376 		 * service.  Tuning possiblity: we could wait for a
377 		 * while before sched
378 		 */
379 		schedule();
380 
381 	}
382 out:
383 	trace_cxl_llcmd_done(ctx, cmd, rc);
384 	return rc;
385 }
386 
387 static int add_process_element(struct cxl_context *ctx)
388 {
389 	int rc = 0;
390 
391 	mutex_lock(&ctx->afu->native->spa_mutex);
392 	pr_devel("%s Adding pe: %i started\n", __func__, ctx->pe);
393 	if (!(rc = do_process_element_cmd(ctx, CXL_SPA_SW_CMD_ADD, CXL_PE_SOFTWARE_STATE_V)))
394 		ctx->pe_inserted = true;
395 	pr_devel("%s Adding pe: %i finished\n", __func__, ctx->pe);
396 	mutex_unlock(&ctx->afu->native->spa_mutex);
397 	return rc;
398 }
399 
400 static int terminate_process_element(struct cxl_context *ctx)
401 {
402 	int rc = 0;
403 
404 	/* fast path terminate if it's already invalid */
405 	if (!(ctx->elem->software_state & cpu_to_be32(CXL_PE_SOFTWARE_STATE_V)))
406 		return rc;
407 
408 	mutex_lock(&ctx->afu->native->spa_mutex);
409 	pr_devel("%s Terminate pe: %i started\n", __func__, ctx->pe);
410 	/* We could be asked to terminate when the hw is down. That
411 	 * should always succeed: it's not running if the hw has gone
412 	 * away and is being reset.
413 	 */
414 	if (cxl_ops->link_ok(ctx->afu->adapter, ctx->afu))
415 		rc = do_process_element_cmd(ctx, CXL_SPA_SW_CMD_TERMINATE,
416 					    CXL_PE_SOFTWARE_STATE_V | CXL_PE_SOFTWARE_STATE_T);
417 	ctx->elem->software_state = 0;	/* Remove Valid bit */
418 	pr_devel("%s Terminate pe: %i finished\n", __func__, ctx->pe);
419 	mutex_unlock(&ctx->afu->native->spa_mutex);
420 	return rc;
421 }
422 
423 static int remove_process_element(struct cxl_context *ctx)
424 {
425 	int rc = 0;
426 
427 	mutex_lock(&ctx->afu->native->spa_mutex);
428 	pr_devel("%s Remove pe: %i started\n", __func__, ctx->pe);
429 
430 	/* We could be asked to remove when the hw is down. Again, if
431 	 * the hw is down, the PE is gone, so we succeed.
432 	 */
433 	if (cxl_ops->link_ok(ctx->afu->adapter, ctx->afu))
434 		rc = do_process_element_cmd(ctx, CXL_SPA_SW_CMD_REMOVE, 0);
435 
436 	if (!rc)
437 		ctx->pe_inserted = false;
438 	slb_invalid(ctx);
439 	pr_devel("%s Remove pe: %i finished\n", __func__, ctx->pe);
440 	mutex_unlock(&ctx->afu->native->spa_mutex);
441 
442 	return rc;
443 }
444 
445 void cxl_assign_psn_space(struct cxl_context *ctx)
446 {
447 	if (!ctx->afu->pp_size || ctx->master) {
448 		ctx->psn_phys = ctx->afu->psn_phys;
449 		ctx->psn_size = ctx->afu->adapter->ps_size;
450 	} else {
451 		ctx->psn_phys = ctx->afu->psn_phys +
452 			(ctx->afu->native->pp_offset + ctx->afu->pp_size * ctx->pe);
453 		ctx->psn_size = ctx->afu->pp_size;
454 	}
455 }
456 
457 static int activate_afu_directed(struct cxl_afu *afu)
458 {
459 	int rc;
460 
461 	dev_info(&afu->dev, "Activating AFU directed mode\n");
462 
463 	afu->num_procs = afu->max_procs_virtualised;
464 	if (afu->native->spa == NULL) {
465 		if (cxl_alloc_spa(afu))
466 			return -ENOMEM;
467 	}
468 	attach_spa(afu);
469 
470 	cxl_p1n_write(afu, CXL_PSL_SCNTL_An, CXL_PSL_SCNTL_An_PM_AFU);
471 	cxl_p1n_write(afu, CXL_PSL_AMOR_An, 0xFFFFFFFFFFFFFFFFULL);
472 	cxl_p1n_write(afu, CXL_PSL_ID_An, CXL_PSL_ID_An_F | CXL_PSL_ID_An_L);
473 
474 	afu->current_mode = CXL_MODE_DIRECTED;
475 
476 	if ((rc = cxl_chardev_m_afu_add(afu)))
477 		return rc;
478 
479 	if ((rc = cxl_sysfs_afu_m_add(afu)))
480 		goto err;
481 
482 	if ((rc = cxl_chardev_s_afu_add(afu)))
483 		goto err1;
484 
485 	return 0;
486 err1:
487 	cxl_sysfs_afu_m_remove(afu);
488 err:
489 	cxl_chardev_afu_remove(afu);
490 	return rc;
491 }
492 
493 #ifdef CONFIG_CPU_LITTLE_ENDIAN
494 #define set_endian(sr) ((sr) |= CXL_PSL_SR_An_LE)
495 #else
496 #define set_endian(sr) ((sr) &= ~(CXL_PSL_SR_An_LE))
497 #endif
498 
499 static u64 calculate_sr(struct cxl_context *ctx)
500 {
501 	u64 sr = 0;
502 
503 	set_endian(sr);
504 	if (ctx->master)
505 		sr |= CXL_PSL_SR_An_MP;
506 	if (mfspr(SPRN_LPCR) & LPCR_TC)
507 		sr |= CXL_PSL_SR_An_TC;
508 	if (ctx->kernel) {
509 		if (!ctx->real_mode)
510 			sr |= CXL_PSL_SR_An_R;
511 		sr |= (mfmsr() & MSR_SF) | CXL_PSL_SR_An_HV;
512 	} else {
513 		sr |= CXL_PSL_SR_An_PR | CXL_PSL_SR_An_R;
514 		sr &= ~(CXL_PSL_SR_An_HV);
515 		if (!test_tsk_thread_flag(current, TIF_32BIT))
516 			sr |= CXL_PSL_SR_An_SF;
517 	}
518 	return sr;
519 }
520 
521 static void update_ivtes_directed(struct cxl_context *ctx)
522 {
523 	bool need_update = (ctx->status == STARTED);
524 	int r;
525 
526 	if (need_update) {
527 		WARN_ON(terminate_process_element(ctx));
528 		WARN_ON(remove_process_element(ctx));
529 	}
530 
531 	for (r = 0; r < CXL_IRQ_RANGES; r++) {
532 		ctx->elem->ivte_offsets[r] = cpu_to_be16(ctx->irqs.offset[r]);
533 		ctx->elem->ivte_ranges[r] = cpu_to_be16(ctx->irqs.range[r]);
534 	}
535 
536 	/*
537 	 * Theoretically we could use the update llcmd, instead of a
538 	 * terminate/remove/add (or if an atomic update was required we could
539 	 * do a suspend/update/resume), however it seems there might be issues
540 	 * with the update llcmd on some cards (including those using an XSL on
541 	 * an ASIC) so for now it's safest to go with the commands that are
542 	 * known to work. In the future if we come across a situation where the
543 	 * card may be performing transactions using the same PE while we are
544 	 * doing this update we might need to revisit this.
545 	 */
546 	if (need_update)
547 		WARN_ON(add_process_element(ctx));
548 }
549 
550 static int attach_afu_directed(struct cxl_context *ctx, u64 wed, u64 amr)
551 {
552 	u32 pid;
553 	int result;
554 
555 	cxl_assign_psn_space(ctx);
556 
557 	ctx->elem->ctxtime = 0; /* disable */
558 	ctx->elem->lpid = cpu_to_be32(mfspr(SPRN_LPID));
559 	ctx->elem->haurp = 0; /* disable */
560 	ctx->elem->sdr = cpu_to_be64(mfspr(SPRN_SDR1));
561 
562 	pid = current->pid;
563 	if (ctx->kernel)
564 		pid = 0;
565 	ctx->elem->common.tid = 0;
566 	ctx->elem->common.pid = cpu_to_be32(pid);
567 
568 	ctx->elem->sr = cpu_to_be64(calculate_sr(ctx));
569 
570 	ctx->elem->common.csrp = 0; /* disable */
571 	ctx->elem->common.aurp0 = 0; /* disable */
572 	ctx->elem->common.aurp1 = 0; /* disable */
573 
574 	cxl_prefault(ctx, wed);
575 
576 	ctx->elem->common.sstp0 = cpu_to_be64(ctx->sstp0);
577 	ctx->elem->common.sstp1 = cpu_to_be64(ctx->sstp1);
578 
579 	/*
580 	 * Ensure we have the multiplexed PSL interrupt set up to take faults
581 	 * for kernel contexts that may not have allocated any AFU IRQs at all:
582 	 */
583 	if (ctx->irqs.range[0] == 0) {
584 		ctx->irqs.offset[0] = ctx->afu->native->psl_hwirq;
585 		ctx->irqs.range[0] = 1;
586 	}
587 
588 	update_ivtes_directed(ctx);
589 
590 	ctx->elem->common.amr = cpu_to_be64(amr);
591 	ctx->elem->common.wed = cpu_to_be64(wed);
592 
593 	/* first guy needs to enable */
594 	if ((result = cxl_ops->afu_check_and_enable(ctx->afu)))
595 		return result;
596 
597 	return add_process_element(ctx);
598 }
599 
600 static int deactivate_afu_directed(struct cxl_afu *afu)
601 {
602 	dev_info(&afu->dev, "Deactivating AFU directed mode\n");
603 
604 	afu->current_mode = 0;
605 	afu->num_procs = 0;
606 
607 	cxl_sysfs_afu_m_remove(afu);
608 	cxl_chardev_afu_remove(afu);
609 
610 	/*
611 	 * The CAIA section 2.2.1 indicates that the procedure for starting and
612 	 * stopping an AFU in AFU directed mode is AFU specific, which is not
613 	 * ideal since this code is generic and with one exception has no
614 	 * knowledge of the AFU. This is in contrast to the procedure for
615 	 * disabling a dedicated process AFU, which is documented to just
616 	 * require a reset. The architecture does indicate that both an AFU
617 	 * reset and an AFU disable should result in the AFU being disabled and
618 	 * we do both followed by a PSL purge for safety.
619 	 *
620 	 * Notably we used to have some issues with the disable sequence on PSL
621 	 * cards, which is why we ended up using this heavy weight procedure in
622 	 * the first place, however a bug was discovered that had rendered the
623 	 * disable operation ineffective, so it is conceivable that was the
624 	 * sole explanation for those difficulties. Careful regression testing
625 	 * is recommended if anyone attempts to remove or reorder these
626 	 * operations.
627 	 *
628 	 * The XSL on the Mellanox CX4 behaves a little differently from the
629 	 * PSL based cards and will time out an AFU reset if the AFU is still
630 	 * enabled. That card is special in that we do have a means to identify
631 	 * it from this code, so in that case we skip the reset and just use a
632 	 * disable/purge to avoid the timeout and corresponding noise in the
633 	 * kernel log.
634 	 */
635 	if (afu->adapter->native->sl_ops->needs_reset_before_disable)
636 		cxl_ops->afu_reset(afu);
637 	cxl_afu_disable(afu);
638 	cxl_psl_purge(afu);
639 
640 	return 0;
641 }
642 
643 static int activate_dedicated_process(struct cxl_afu *afu)
644 {
645 	dev_info(&afu->dev, "Activating dedicated process mode\n");
646 
647 	cxl_p1n_write(afu, CXL_PSL_SCNTL_An, CXL_PSL_SCNTL_An_PM_Process);
648 
649 	cxl_p1n_write(afu, CXL_PSL_CtxTime_An, 0); /* disable */
650 	cxl_p1n_write(afu, CXL_PSL_SPAP_An, 0);    /* disable */
651 	cxl_p1n_write(afu, CXL_PSL_AMOR_An, 0xFFFFFFFFFFFFFFFFULL);
652 	cxl_p1n_write(afu, CXL_PSL_LPID_An, mfspr(SPRN_LPID));
653 	cxl_p1n_write(afu, CXL_HAURP_An, 0);       /* disable */
654 	cxl_p1n_write(afu, CXL_PSL_SDR_An, mfspr(SPRN_SDR1));
655 
656 	cxl_p2n_write(afu, CXL_CSRP_An, 0);        /* disable */
657 	cxl_p2n_write(afu, CXL_AURP0_An, 0);       /* disable */
658 	cxl_p2n_write(afu, CXL_AURP1_An, 0);       /* disable */
659 
660 	afu->current_mode = CXL_MODE_DEDICATED;
661 	afu->num_procs = 1;
662 
663 	return cxl_chardev_d_afu_add(afu);
664 }
665 
666 static void update_ivtes_dedicated(struct cxl_context *ctx)
667 {
668 	struct cxl_afu *afu = ctx->afu;
669 
670 	cxl_p1n_write(afu, CXL_PSL_IVTE_Offset_An,
671 		       (((u64)ctx->irqs.offset[0] & 0xffff) << 48) |
672 		       (((u64)ctx->irqs.offset[1] & 0xffff) << 32) |
673 		       (((u64)ctx->irqs.offset[2] & 0xffff) << 16) |
674 			((u64)ctx->irqs.offset[3] & 0xffff));
675 	cxl_p1n_write(afu, CXL_PSL_IVTE_Limit_An, (u64)
676 		       (((u64)ctx->irqs.range[0] & 0xffff) << 48) |
677 		       (((u64)ctx->irqs.range[1] & 0xffff) << 32) |
678 		       (((u64)ctx->irqs.range[2] & 0xffff) << 16) |
679 			((u64)ctx->irqs.range[3] & 0xffff));
680 }
681 
682 static int attach_dedicated(struct cxl_context *ctx, u64 wed, u64 amr)
683 {
684 	struct cxl_afu *afu = ctx->afu;
685 	u64 pid;
686 	int rc;
687 
688 	pid = (u64)current->pid << 32;
689 	if (ctx->kernel)
690 		pid = 0;
691 	cxl_p2n_write(afu, CXL_PSL_PID_TID_An, pid);
692 
693 	cxl_p1n_write(afu, CXL_PSL_SR_An, calculate_sr(ctx));
694 
695 	if ((rc = cxl_write_sstp(afu, ctx->sstp0, ctx->sstp1)))
696 		return rc;
697 
698 	cxl_prefault(ctx, wed);
699 
700 	update_ivtes_dedicated(ctx);
701 
702 	cxl_p2n_write(afu, CXL_PSL_AMR_An, amr);
703 
704 	/* master only context for dedicated */
705 	cxl_assign_psn_space(ctx);
706 
707 	if ((rc = cxl_ops->afu_reset(afu)))
708 		return rc;
709 
710 	cxl_p2n_write(afu, CXL_PSL_WED_An, wed);
711 
712 	return afu_enable(afu);
713 }
714 
715 static int deactivate_dedicated_process(struct cxl_afu *afu)
716 {
717 	dev_info(&afu->dev, "Deactivating dedicated process mode\n");
718 
719 	afu->current_mode = 0;
720 	afu->num_procs = 0;
721 
722 	cxl_chardev_afu_remove(afu);
723 
724 	return 0;
725 }
726 
727 static int native_afu_deactivate_mode(struct cxl_afu *afu, int mode)
728 {
729 	if (mode == CXL_MODE_DIRECTED)
730 		return deactivate_afu_directed(afu);
731 	if (mode == CXL_MODE_DEDICATED)
732 		return deactivate_dedicated_process(afu);
733 	return 0;
734 }
735 
736 static int native_afu_activate_mode(struct cxl_afu *afu, int mode)
737 {
738 	if (!mode)
739 		return 0;
740 	if (!(mode & afu->modes_supported))
741 		return -EINVAL;
742 
743 	if (!cxl_ops->link_ok(afu->adapter, afu)) {
744 		WARN(1, "Device link is down, refusing to activate!\n");
745 		return -EIO;
746 	}
747 
748 	if (mode == CXL_MODE_DIRECTED)
749 		return activate_afu_directed(afu);
750 	if (mode == CXL_MODE_DEDICATED)
751 		return activate_dedicated_process(afu);
752 
753 	return -EINVAL;
754 }
755 
756 static int native_attach_process(struct cxl_context *ctx, bool kernel,
757 				u64 wed, u64 amr)
758 {
759 	if (!cxl_ops->link_ok(ctx->afu->adapter, ctx->afu)) {
760 		WARN(1, "Device link is down, refusing to attach process!\n");
761 		return -EIO;
762 	}
763 
764 	ctx->kernel = kernel;
765 	if (ctx->afu->current_mode == CXL_MODE_DIRECTED)
766 		return attach_afu_directed(ctx, wed, amr);
767 
768 	if (ctx->afu->current_mode == CXL_MODE_DEDICATED)
769 		return attach_dedicated(ctx, wed, amr);
770 
771 	return -EINVAL;
772 }
773 
774 static inline int detach_process_native_dedicated(struct cxl_context *ctx)
775 {
776 	/*
777 	 * The CAIA section 2.1.1 indicates that we need to do an AFU reset to
778 	 * stop the AFU in dedicated mode (we therefore do not make that
779 	 * optional like we do in the afu directed path). It does not indicate
780 	 * that we need to do an explicit disable (which should occur
781 	 * implicitly as part of the reset) or purge, but we do these as well
782 	 * to be on the safe side.
783 	 *
784 	 * Notably we used to have some issues with the disable sequence
785 	 * (before the sequence was spelled out in the architecture) which is
786 	 * why we were so heavy weight in the first place, however a bug was
787 	 * discovered that had rendered the disable operation ineffective, so
788 	 * it is conceivable that was the sole explanation for those
789 	 * difficulties. Point is, we should be careful and do some regression
790 	 * testing if we ever attempt to remove any part of this procedure.
791 	 */
792 	cxl_ops->afu_reset(ctx->afu);
793 	cxl_afu_disable(ctx->afu);
794 	cxl_psl_purge(ctx->afu);
795 	return 0;
796 }
797 
798 static void native_update_ivtes(struct cxl_context *ctx)
799 {
800 	if (ctx->afu->current_mode == CXL_MODE_DIRECTED)
801 		return update_ivtes_directed(ctx);
802 	if (ctx->afu->current_mode == CXL_MODE_DEDICATED)
803 		return update_ivtes_dedicated(ctx);
804 	WARN(1, "native_update_ivtes: Bad mode\n");
805 }
806 
807 static inline int detach_process_native_afu_directed(struct cxl_context *ctx)
808 {
809 	if (!ctx->pe_inserted)
810 		return 0;
811 	if (terminate_process_element(ctx))
812 		return -1;
813 	if (remove_process_element(ctx))
814 		return -1;
815 
816 	return 0;
817 }
818 
819 static int native_detach_process(struct cxl_context *ctx)
820 {
821 	trace_cxl_detach(ctx);
822 
823 	if (ctx->afu->current_mode == CXL_MODE_DEDICATED)
824 		return detach_process_native_dedicated(ctx);
825 
826 	return detach_process_native_afu_directed(ctx);
827 }
828 
829 static int native_get_irq_info(struct cxl_afu *afu, struct cxl_irq_info *info)
830 {
831 	u64 pidtid;
832 
833 	/* If the adapter has gone away, we can't get any meaningful
834 	 * information.
835 	 */
836 	if (!cxl_ops->link_ok(afu->adapter, afu))
837 		return -EIO;
838 
839 	info->dsisr = cxl_p2n_read(afu, CXL_PSL_DSISR_An);
840 	info->dar = cxl_p2n_read(afu, CXL_PSL_DAR_An);
841 	info->dsr = cxl_p2n_read(afu, CXL_PSL_DSR_An);
842 	pidtid = cxl_p2n_read(afu, CXL_PSL_PID_TID_An);
843 	info->pid = pidtid >> 32;
844 	info->tid = pidtid & 0xffffffff;
845 	info->afu_err = cxl_p2n_read(afu, CXL_AFU_ERR_An);
846 	info->errstat = cxl_p2n_read(afu, CXL_PSL_ErrStat_An);
847 	info->proc_handle = 0;
848 
849 	return 0;
850 }
851 
852 void cxl_native_psl_irq_dump_regs(struct cxl_context *ctx)
853 {
854 	u64 fir1, fir2, fir_slice, serr, afu_debug;
855 
856 	fir1 = cxl_p1_read(ctx->afu->adapter, CXL_PSL_FIR1);
857 	fir2 = cxl_p1_read(ctx->afu->adapter, CXL_PSL_FIR2);
858 	fir_slice = cxl_p1n_read(ctx->afu, CXL_PSL_FIR_SLICE_An);
859 	afu_debug = cxl_p1n_read(ctx->afu, CXL_AFU_DEBUG_An);
860 
861 	dev_crit(&ctx->afu->dev, "PSL_FIR1: 0x%016llx\n", fir1);
862 	dev_crit(&ctx->afu->dev, "PSL_FIR2: 0x%016llx\n", fir2);
863 	if (ctx->afu->adapter->native->sl_ops->register_serr_irq) {
864 		serr = cxl_p1n_read(ctx->afu, CXL_PSL_SERR_An);
865 		cxl_afu_decode_psl_serr(ctx->afu, serr);
866 	}
867 	dev_crit(&ctx->afu->dev, "PSL_FIR_SLICE_An: 0x%016llx\n", fir_slice);
868 	dev_crit(&ctx->afu->dev, "CXL_PSL_AFU_DEBUG_An: 0x%016llx\n", afu_debug);
869 }
870 
871 static irqreturn_t native_handle_psl_slice_error(struct cxl_context *ctx,
872 						u64 dsisr, u64 errstat)
873 {
874 
875 	dev_crit(&ctx->afu->dev, "PSL ERROR STATUS: 0x%016llx\n", errstat);
876 
877 	if (ctx->afu->adapter->native->sl_ops->psl_irq_dump_registers)
878 		ctx->afu->adapter->native->sl_ops->psl_irq_dump_registers(ctx);
879 
880 	if (ctx->afu->adapter->native->sl_ops->debugfs_stop_trace) {
881 		dev_crit(&ctx->afu->dev, "STOPPING CXL TRACE\n");
882 		ctx->afu->adapter->native->sl_ops->debugfs_stop_trace(ctx->afu->adapter);
883 	}
884 
885 	return cxl_ops->ack_irq(ctx, 0, errstat);
886 }
887 
888 static irqreturn_t fail_psl_irq(struct cxl_afu *afu, struct cxl_irq_info *irq_info)
889 {
890 	if (irq_info->dsisr & CXL_PSL_DSISR_TRANS)
891 		cxl_p2n_write(afu, CXL_PSL_TFC_An, CXL_PSL_TFC_An_AE);
892 	else
893 		cxl_p2n_write(afu, CXL_PSL_TFC_An, CXL_PSL_TFC_An_A);
894 
895 	return IRQ_HANDLED;
896 }
897 
898 static irqreturn_t native_irq_multiplexed(int irq, void *data)
899 {
900 	struct cxl_afu *afu = data;
901 	struct cxl_context *ctx;
902 	struct cxl_irq_info irq_info;
903 	int ph = cxl_p2n_read(afu, CXL_PSL_PEHandle_An) & 0xffff;
904 	int ret;
905 
906 	if ((ret = native_get_irq_info(afu, &irq_info))) {
907 		WARN(1, "Unable to get CXL IRQ Info: %i\n", ret);
908 		return fail_psl_irq(afu, &irq_info);
909 	}
910 
911 	rcu_read_lock();
912 	ctx = idr_find(&afu->contexts_idr, ph);
913 	if (ctx) {
914 		ret = cxl_irq(irq, ctx, &irq_info);
915 		rcu_read_unlock();
916 		return ret;
917 	}
918 	rcu_read_unlock();
919 
920 	WARN(1, "Unable to demultiplex CXL PSL IRQ for PE %i DSISR %016llx DAR"
921 		" %016llx\n(Possible AFU HW issue - was a term/remove acked"
922 		" with outstanding transactions?)\n", ph, irq_info.dsisr,
923 		irq_info.dar);
924 	return fail_psl_irq(afu, &irq_info);
925 }
926 
927 static void native_irq_wait(struct cxl_context *ctx)
928 {
929 	u64 dsisr;
930 	int timeout = 1000;
931 	int ph;
932 
933 	/*
934 	 * Wait until no further interrupts are presented by the PSL
935 	 * for this context.
936 	 */
937 	while (timeout--) {
938 		ph = cxl_p2n_read(ctx->afu, CXL_PSL_PEHandle_An) & 0xffff;
939 		if (ph != ctx->pe)
940 			return;
941 		dsisr = cxl_p2n_read(ctx->afu, CXL_PSL_DSISR_An);
942 		if ((dsisr & CXL_PSL_DSISR_PENDING) == 0)
943 			return;
944 		/*
945 		 * We are waiting for the workqueue to process our
946 		 * irq, so need to let that run here.
947 		 */
948 		msleep(1);
949 	}
950 
951 	dev_warn(&ctx->afu->dev, "WARNING: waiting on DSI for PE %i"
952 		 " DSISR %016llx!\n", ph, dsisr);
953 	return;
954 }
955 
956 static irqreturn_t native_slice_irq_err(int irq, void *data)
957 {
958 	struct cxl_afu *afu = data;
959 	u64 fir_slice, errstat, serr, afu_debug, afu_error, dsisr;
960 
961 	/*
962 	 * slice err interrupt is only used with full PSL (no XSL)
963 	 */
964 	serr = cxl_p1n_read(afu, CXL_PSL_SERR_An);
965 	fir_slice = cxl_p1n_read(afu, CXL_PSL_FIR_SLICE_An);
966 	errstat = cxl_p2n_read(afu, CXL_PSL_ErrStat_An);
967 	afu_debug = cxl_p1n_read(afu, CXL_AFU_DEBUG_An);
968 	afu_error = cxl_p2n_read(afu, CXL_AFU_ERR_An);
969 	dsisr = cxl_p2n_read(afu, CXL_PSL_DSISR_An);
970 	cxl_afu_decode_psl_serr(afu, serr);
971 	dev_crit(&afu->dev, "PSL_FIR_SLICE_An: 0x%016llx\n", fir_slice);
972 	dev_crit(&afu->dev, "CXL_PSL_ErrStat_An: 0x%016llx\n", errstat);
973 	dev_crit(&afu->dev, "CXL_PSL_AFU_DEBUG_An: 0x%016llx\n", afu_debug);
974 	dev_crit(&afu->dev, "AFU_ERR_An: 0x%.16llx\n", afu_error);
975 	dev_crit(&afu->dev, "PSL_DSISR_An: 0x%.16llx\n", dsisr);
976 
977 	cxl_p1n_write(afu, CXL_PSL_SERR_An, serr);
978 
979 	return IRQ_HANDLED;
980 }
981 
982 void cxl_native_err_irq_dump_regs(struct cxl *adapter)
983 {
984 	u64 fir1, fir2;
985 
986 	fir1 = cxl_p1_read(adapter, CXL_PSL_FIR1);
987 	fir2 = cxl_p1_read(adapter, CXL_PSL_FIR2);
988 
989 	dev_crit(&adapter->dev, "PSL_FIR1: 0x%016llx\nPSL_FIR2: 0x%016llx\n", fir1, fir2);
990 }
991 
992 static irqreturn_t native_irq_err(int irq, void *data)
993 {
994 	struct cxl *adapter = data;
995 	u64 err_ivte;
996 
997 	WARN(1, "CXL ERROR interrupt %i\n", irq);
998 
999 	err_ivte = cxl_p1_read(adapter, CXL_PSL_ErrIVTE);
1000 	dev_crit(&adapter->dev, "PSL_ErrIVTE: 0x%016llx\n", err_ivte);
1001 
1002 	if (adapter->native->sl_ops->debugfs_stop_trace) {
1003 		dev_crit(&adapter->dev, "STOPPING CXL TRACE\n");
1004 		adapter->native->sl_ops->debugfs_stop_trace(adapter);
1005 	}
1006 
1007 	if (adapter->native->sl_ops->err_irq_dump_registers)
1008 		adapter->native->sl_ops->err_irq_dump_registers(adapter);
1009 
1010 	return IRQ_HANDLED;
1011 }
1012 
1013 int cxl_native_register_psl_err_irq(struct cxl *adapter)
1014 {
1015 	int rc;
1016 
1017 	adapter->irq_name = kasprintf(GFP_KERNEL, "cxl-%s-err",
1018 				      dev_name(&adapter->dev));
1019 	if (!adapter->irq_name)
1020 		return -ENOMEM;
1021 
1022 	if ((rc = cxl_register_one_irq(adapter, native_irq_err, adapter,
1023 				       &adapter->native->err_hwirq,
1024 				       &adapter->native->err_virq,
1025 				       adapter->irq_name))) {
1026 		kfree(adapter->irq_name);
1027 		adapter->irq_name = NULL;
1028 		return rc;
1029 	}
1030 
1031 	cxl_p1_write(adapter, CXL_PSL_ErrIVTE, adapter->native->err_hwirq & 0xffff);
1032 
1033 	return 0;
1034 }
1035 
1036 void cxl_native_release_psl_err_irq(struct cxl *adapter)
1037 {
1038 	if (adapter->native->err_virq != irq_find_mapping(NULL, adapter->native->err_hwirq))
1039 		return;
1040 
1041 	cxl_p1_write(adapter, CXL_PSL_ErrIVTE, 0x0000000000000000);
1042 	cxl_unmap_irq(adapter->native->err_virq, adapter);
1043 	cxl_ops->release_one_irq(adapter, adapter->native->err_hwirq);
1044 	kfree(adapter->irq_name);
1045 }
1046 
1047 int cxl_native_register_serr_irq(struct cxl_afu *afu)
1048 {
1049 	u64 serr;
1050 	int rc;
1051 
1052 	afu->err_irq_name = kasprintf(GFP_KERNEL, "cxl-%s-err",
1053 				      dev_name(&afu->dev));
1054 	if (!afu->err_irq_name)
1055 		return -ENOMEM;
1056 
1057 	if ((rc = cxl_register_one_irq(afu->adapter, native_slice_irq_err, afu,
1058 				       &afu->serr_hwirq,
1059 				       &afu->serr_virq, afu->err_irq_name))) {
1060 		kfree(afu->err_irq_name);
1061 		afu->err_irq_name = NULL;
1062 		return rc;
1063 	}
1064 
1065 	serr = cxl_p1n_read(afu, CXL_PSL_SERR_An);
1066 	serr = (serr & 0x00ffffffffff0000ULL) | (afu->serr_hwirq & 0xffff);
1067 	cxl_p1n_write(afu, CXL_PSL_SERR_An, serr);
1068 
1069 	return 0;
1070 }
1071 
1072 void cxl_native_release_serr_irq(struct cxl_afu *afu)
1073 {
1074 	if (afu->serr_virq != irq_find_mapping(NULL, afu->serr_hwirq))
1075 		return;
1076 
1077 	cxl_p1n_write(afu, CXL_PSL_SERR_An, 0x0000000000000000);
1078 	cxl_unmap_irq(afu->serr_virq, afu);
1079 	cxl_ops->release_one_irq(afu->adapter, afu->serr_hwirq);
1080 	kfree(afu->err_irq_name);
1081 }
1082 
1083 int cxl_native_register_psl_irq(struct cxl_afu *afu)
1084 {
1085 	int rc;
1086 
1087 	afu->psl_irq_name = kasprintf(GFP_KERNEL, "cxl-%s",
1088 				      dev_name(&afu->dev));
1089 	if (!afu->psl_irq_name)
1090 		return -ENOMEM;
1091 
1092 	if ((rc = cxl_register_one_irq(afu->adapter, native_irq_multiplexed,
1093 				    afu, &afu->native->psl_hwirq, &afu->native->psl_virq,
1094 				    afu->psl_irq_name))) {
1095 		kfree(afu->psl_irq_name);
1096 		afu->psl_irq_name = NULL;
1097 	}
1098 	return rc;
1099 }
1100 
1101 void cxl_native_release_psl_irq(struct cxl_afu *afu)
1102 {
1103 	if (afu->native->psl_virq != irq_find_mapping(NULL, afu->native->psl_hwirq))
1104 		return;
1105 
1106 	cxl_unmap_irq(afu->native->psl_virq, afu);
1107 	cxl_ops->release_one_irq(afu->adapter, afu->native->psl_hwirq);
1108 	kfree(afu->psl_irq_name);
1109 }
1110 
1111 static void recover_psl_err(struct cxl_afu *afu, u64 errstat)
1112 {
1113 	u64 dsisr;
1114 
1115 	pr_devel("RECOVERING FROM PSL ERROR... (0x%016llx)\n", errstat);
1116 
1117 	/* Clear PSL_DSISR[PE] */
1118 	dsisr = cxl_p2n_read(afu, CXL_PSL_DSISR_An);
1119 	cxl_p2n_write(afu, CXL_PSL_DSISR_An, dsisr & ~CXL_PSL_DSISR_An_PE);
1120 
1121 	/* Write 1s to clear error status bits */
1122 	cxl_p2n_write(afu, CXL_PSL_ErrStat_An, errstat);
1123 }
1124 
1125 static int native_ack_irq(struct cxl_context *ctx, u64 tfc, u64 psl_reset_mask)
1126 {
1127 	trace_cxl_psl_irq_ack(ctx, tfc);
1128 	if (tfc)
1129 		cxl_p2n_write(ctx->afu, CXL_PSL_TFC_An, tfc);
1130 	if (psl_reset_mask)
1131 		recover_psl_err(ctx->afu, psl_reset_mask);
1132 
1133 	return 0;
1134 }
1135 
1136 int cxl_check_error(struct cxl_afu *afu)
1137 {
1138 	return (cxl_p1n_read(afu, CXL_PSL_SCNTL_An) == ~0ULL);
1139 }
1140 
1141 static bool native_support_attributes(const char *attr_name,
1142 				      enum cxl_attrs type)
1143 {
1144 	return true;
1145 }
1146 
1147 static int native_afu_cr_read64(struct cxl_afu *afu, int cr, u64 off, u64 *out)
1148 {
1149 	if (unlikely(!cxl_ops->link_ok(afu->adapter, afu)))
1150 		return -EIO;
1151 	if (unlikely(off >= afu->crs_len))
1152 		return -ERANGE;
1153 	*out = in_le64(afu->native->afu_desc_mmio + afu->crs_offset +
1154 		(cr * afu->crs_len) + off);
1155 	return 0;
1156 }
1157 
1158 static int native_afu_cr_read32(struct cxl_afu *afu, int cr, u64 off, u32 *out)
1159 {
1160 	if (unlikely(!cxl_ops->link_ok(afu->adapter, afu)))
1161 		return -EIO;
1162 	if (unlikely(off >= afu->crs_len))
1163 		return -ERANGE;
1164 	*out = in_le32(afu->native->afu_desc_mmio + afu->crs_offset +
1165 		(cr * afu->crs_len) + off);
1166 	return 0;
1167 }
1168 
1169 static int native_afu_cr_read16(struct cxl_afu *afu, int cr, u64 off, u16 *out)
1170 {
1171 	u64 aligned_off = off & ~0x3L;
1172 	u32 val;
1173 	int rc;
1174 
1175 	rc = native_afu_cr_read32(afu, cr, aligned_off, &val);
1176 	if (!rc)
1177 		*out = (val >> ((off & 0x3) * 8)) & 0xffff;
1178 	return rc;
1179 }
1180 
1181 static int native_afu_cr_read8(struct cxl_afu *afu, int cr, u64 off, u8 *out)
1182 {
1183 	u64 aligned_off = off & ~0x3L;
1184 	u32 val;
1185 	int rc;
1186 
1187 	rc = native_afu_cr_read32(afu, cr, aligned_off, &val);
1188 	if (!rc)
1189 		*out = (val >> ((off & 0x3) * 8)) & 0xff;
1190 	return rc;
1191 }
1192 
1193 static int native_afu_cr_write32(struct cxl_afu *afu, int cr, u64 off, u32 in)
1194 {
1195 	if (unlikely(!cxl_ops->link_ok(afu->adapter, afu)))
1196 		return -EIO;
1197 	if (unlikely(off >= afu->crs_len))
1198 		return -ERANGE;
1199 	out_le32(afu->native->afu_desc_mmio + afu->crs_offset +
1200 		(cr * afu->crs_len) + off, in);
1201 	return 0;
1202 }
1203 
1204 static int native_afu_cr_write16(struct cxl_afu *afu, int cr, u64 off, u16 in)
1205 {
1206 	u64 aligned_off = off & ~0x3L;
1207 	u32 val32, mask, shift;
1208 	int rc;
1209 
1210 	rc = native_afu_cr_read32(afu, cr, aligned_off, &val32);
1211 	if (rc)
1212 		return rc;
1213 	shift = (off & 0x3) * 8;
1214 	WARN_ON(shift == 24);
1215 	mask = 0xffff << shift;
1216 	val32 = (val32 & ~mask) | (in << shift);
1217 
1218 	rc = native_afu_cr_write32(afu, cr, aligned_off, val32);
1219 	return rc;
1220 }
1221 
1222 static int native_afu_cr_write8(struct cxl_afu *afu, int cr, u64 off, u8 in)
1223 {
1224 	u64 aligned_off = off & ~0x3L;
1225 	u32 val32, mask, shift;
1226 	int rc;
1227 
1228 	rc = native_afu_cr_read32(afu, cr, aligned_off, &val32);
1229 	if (rc)
1230 		return rc;
1231 	shift = (off & 0x3) * 8;
1232 	mask = 0xff << shift;
1233 	val32 = (val32 & ~mask) | (in << shift);
1234 
1235 	rc = native_afu_cr_write32(afu, cr, aligned_off, val32);
1236 	return rc;
1237 }
1238 
1239 const struct cxl_backend_ops cxl_native_ops = {
1240 	.module = THIS_MODULE,
1241 	.adapter_reset = cxl_pci_reset,
1242 	.alloc_one_irq = cxl_pci_alloc_one_irq,
1243 	.release_one_irq = cxl_pci_release_one_irq,
1244 	.alloc_irq_ranges = cxl_pci_alloc_irq_ranges,
1245 	.release_irq_ranges = cxl_pci_release_irq_ranges,
1246 	.setup_irq = cxl_pci_setup_irq,
1247 	.handle_psl_slice_error = native_handle_psl_slice_error,
1248 	.psl_interrupt = NULL,
1249 	.ack_irq = native_ack_irq,
1250 	.irq_wait = native_irq_wait,
1251 	.attach_process = native_attach_process,
1252 	.detach_process = native_detach_process,
1253 	.update_ivtes = native_update_ivtes,
1254 	.support_attributes = native_support_attributes,
1255 	.link_ok = cxl_adapter_link_ok,
1256 	.release_afu = cxl_pci_release_afu,
1257 	.afu_read_err_buffer = cxl_pci_afu_read_err_buffer,
1258 	.afu_check_and_enable = native_afu_check_and_enable,
1259 	.afu_activate_mode = native_afu_activate_mode,
1260 	.afu_deactivate_mode = native_afu_deactivate_mode,
1261 	.afu_reset = native_afu_reset,
1262 	.afu_cr_read8 = native_afu_cr_read8,
1263 	.afu_cr_read16 = native_afu_cr_read16,
1264 	.afu_cr_read32 = native_afu_cr_read32,
1265 	.afu_cr_read64 = native_afu_cr_read64,
1266 	.afu_cr_write8 = native_afu_cr_write8,
1267 	.afu_cr_write16 = native_afu_cr_write16,
1268 	.afu_cr_write32 = native_afu_cr_write32,
1269 	.read_adapter_vpd = cxl_pci_read_adapter_vpd,
1270 };
1271