xref: /linux/drivers/net/ethernet/broadcom/bnxt/bnxt_ulp.c (revision 7110f24f9e33979fd704f7a4a595a9d3e9bdacb7)
1 /* Broadcom NetXtreme-C/E network driver.
2  *
3  * Copyright (c) 2016-2018 Broadcom Limited
4  *
5  * This program is free software; you can redistribute it and/or modify
6  * it under the terms of the GNU General Public License as published by
7  * the Free Software Foundation.
8  */
9 
10 #include <linux/module.h>
11 
12 #include <linux/kernel.h>
13 #include <linux/errno.h>
14 #include <linux/interrupt.h>
15 #include <linux/pci.h>
16 #include <linux/netdevice.h>
17 #include <linux/rtnetlink.h>
18 #include <linux/bitops.h>
19 #include <linux/irq.h>
20 #include <asm/byteorder.h>
21 #include <linux/bitmap.h>
22 #include <linux/auxiliary_bus.h>
23 
24 #include "bnxt_hsi.h"
25 #include "bnxt.h"
26 #include "bnxt_hwrm.h"
27 #include "bnxt_ulp.h"
28 
29 static DEFINE_IDA(bnxt_aux_dev_ids);
30 
31 static void bnxt_fill_msix_vecs(struct bnxt *bp, struct bnxt_msix_entry *ent)
32 {
33 	struct bnxt_en_dev *edev = bp->edev;
34 	int num_msix, i;
35 
36 	if (!edev->ulp_tbl->msix_requested) {
37 		netdev_warn(bp->dev, "Requested MSI-X vectors insufficient\n");
38 		return;
39 	}
40 	num_msix = edev->ulp_tbl->msix_requested;
41 	for (i = 0; i < num_msix; i++) {
42 		ent[i].vector = bp->irq_tbl[i].vector;
43 		ent[i].ring_idx = i;
44 		if (bp->flags & BNXT_FLAG_CHIP_P5_PLUS)
45 			ent[i].db_offset = bp->db_offset;
46 		else
47 			ent[i].db_offset = i * 0x80;
48 	}
49 }
50 
51 int bnxt_get_ulp_msix_num(struct bnxt *bp)
52 {
53 	if (bp->edev)
54 		return bp->edev->ulp_num_msix_vec;
55 	return 0;
56 }
57 
58 void bnxt_set_ulp_msix_num(struct bnxt *bp, int num)
59 {
60 	if (bp->edev)
61 		bp->edev->ulp_num_msix_vec = num;
62 }
63 
64 int bnxt_get_ulp_msix_num_in_use(struct bnxt *bp)
65 {
66 	if (bnxt_ulp_registered(bp->edev))
67 		return bp->edev->ulp_num_msix_vec;
68 	return 0;
69 }
70 
71 int bnxt_get_ulp_stat_ctxs(struct bnxt *bp)
72 {
73 	if (bp->edev)
74 		return bp->edev->ulp_num_ctxs;
75 	return 0;
76 }
77 
78 void bnxt_set_ulp_stat_ctxs(struct bnxt *bp, int num_ulp_ctx)
79 {
80 	if (bp->edev)
81 		bp->edev->ulp_num_ctxs = num_ulp_ctx;
82 }
83 
84 int bnxt_get_ulp_stat_ctxs_in_use(struct bnxt *bp)
85 {
86 	if (bnxt_ulp_registered(bp->edev))
87 		return bp->edev->ulp_num_ctxs;
88 	return 0;
89 }
90 
91 void bnxt_set_dflt_ulp_stat_ctxs(struct bnxt *bp)
92 {
93 	if (bp->edev) {
94 		bp->edev->ulp_num_ctxs = BNXT_MIN_ROCE_STAT_CTXS;
95 		/* Reserve one additional stat_ctx for PF0 (except
96 		 * on 1-port NICs) as it also creates one stat_ctx
97 		 * for PF1 in case of RoCE bonding.
98 		 */
99 		if (BNXT_PF(bp) && !bp->pf.port_id &&
100 		    bp->port_count > 1)
101 			bp->edev->ulp_num_ctxs++;
102 	}
103 }
104 
105 int bnxt_register_dev(struct bnxt_en_dev *edev,
106 		      struct bnxt_ulp_ops *ulp_ops,
107 		      void *handle)
108 {
109 	struct net_device *dev = edev->net;
110 	struct bnxt *bp = netdev_priv(dev);
111 	unsigned int max_stat_ctxs;
112 	struct bnxt_ulp *ulp;
113 	int rc = 0;
114 
115 	rtnl_lock();
116 	mutex_lock(&edev->en_dev_lock);
117 	if (!bp->irq_tbl) {
118 		rc = -ENODEV;
119 		goto exit;
120 	}
121 	max_stat_ctxs = bnxt_get_max_func_stat_ctxs(bp);
122 	if (max_stat_ctxs <= BNXT_MIN_ROCE_STAT_CTXS ||
123 	    bp->cp_nr_rings == max_stat_ctxs) {
124 		rc = -ENOMEM;
125 		goto exit;
126 	}
127 
128 	ulp = edev->ulp_tbl;
129 	ulp->handle = handle;
130 	rcu_assign_pointer(ulp->ulp_ops, ulp_ops);
131 
132 	if (test_bit(BNXT_STATE_OPEN, &bp->state))
133 		bnxt_hwrm_vnic_cfg(bp, &bp->vnic_info[BNXT_VNIC_DEFAULT]);
134 
135 	edev->ulp_tbl->msix_requested = bnxt_get_ulp_msix_num(bp);
136 
137 	bnxt_fill_msix_vecs(bp, bp->edev->msix_entries);
138 	edev->flags |= BNXT_EN_FLAG_MSIX_REQUESTED;
139 exit:
140 	mutex_unlock(&edev->en_dev_lock);
141 	rtnl_unlock();
142 	return rc;
143 }
144 EXPORT_SYMBOL(bnxt_register_dev);
145 
146 void bnxt_unregister_dev(struct bnxt_en_dev *edev)
147 {
148 	struct net_device *dev = edev->net;
149 	struct bnxt *bp = netdev_priv(dev);
150 	struct bnxt_ulp *ulp;
151 	int i = 0;
152 
153 	ulp = edev->ulp_tbl;
154 	rtnl_lock();
155 	mutex_lock(&edev->en_dev_lock);
156 	if (ulp->msix_requested)
157 		edev->flags &= ~BNXT_EN_FLAG_MSIX_REQUESTED;
158 	edev->ulp_tbl->msix_requested = 0;
159 
160 	if (ulp->max_async_event_id)
161 		bnxt_hwrm_func_drv_rgtr(bp, NULL, 0, true);
162 
163 	RCU_INIT_POINTER(ulp->ulp_ops, NULL);
164 	synchronize_rcu();
165 	ulp->max_async_event_id = 0;
166 	ulp->async_events_bmap = NULL;
167 	while (atomic_read(&ulp->ref_count) != 0 && i < 10) {
168 		msleep(100);
169 		i++;
170 	}
171 	mutex_unlock(&edev->en_dev_lock);
172 	rtnl_unlock();
173 	return;
174 }
175 EXPORT_SYMBOL(bnxt_unregister_dev);
176 
177 static int bnxt_set_dflt_ulp_msix(struct bnxt *bp)
178 {
179 	int roce_msix = BNXT_MAX_ROCE_MSIX;
180 
181 	if (BNXT_VF(bp))
182 		roce_msix = BNXT_MAX_ROCE_MSIX_VF;
183 	else if (bp->port_partition_type)
184 		roce_msix = BNXT_MAX_ROCE_MSIX_NPAR_PF;
185 
186 	/* NQ MSIX vectors should match the number of CPUs plus 1 more for
187 	 * the CREQ MSIX, up to the default.
188 	 */
189 	return min_t(int, roce_msix, num_online_cpus() + 1);
190 }
191 
192 int bnxt_send_msg(struct bnxt_en_dev *edev,
193 			 struct bnxt_fw_msg *fw_msg)
194 {
195 	struct net_device *dev = edev->net;
196 	struct bnxt *bp = netdev_priv(dev);
197 	struct output *resp;
198 	struct input *req;
199 	u32 resp_len;
200 	int rc;
201 
202 	if (bp->fw_reset_state)
203 		return -EBUSY;
204 
205 	rc = hwrm_req_init(bp, req, 0 /* don't care */);
206 	if (rc)
207 		return rc;
208 
209 	rc = hwrm_req_replace(bp, req, fw_msg->msg, fw_msg->msg_len);
210 	if (rc)
211 		goto drop_req;
212 
213 	hwrm_req_timeout(bp, req, fw_msg->timeout);
214 	resp = hwrm_req_hold(bp, req);
215 	rc = hwrm_req_send(bp, req);
216 	resp_len = le16_to_cpu(resp->resp_len);
217 	if (resp_len) {
218 		if (fw_msg->resp_max_len < resp_len)
219 			resp_len = fw_msg->resp_max_len;
220 
221 		memcpy(fw_msg->resp, resp, resp_len);
222 	}
223 drop_req:
224 	hwrm_req_drop(bp, req);
225 	return rc;
226 }
227 EXPORT_SYMBOL(bnxt_send_msg);
228 
229 void bnxt_ulp_stop(struct bnxt *bp)
230 {
231 	struct bnxt_aux_priv *aux_priv = bp->aux_priv;
232 	struct bnxt_en_dev *edev = bp->edev;
233 
234 	if (!edev)
235 		return;
236 
237 	mutex_lock(&edev->en_dev_lock);
238 	if (!bnxt_ulp_registered(edev)) {
239 		mutex_unlock(&edev->en_dev_lock);
240 		return;
241 	}
242 
243 	edev->flags |= BNXT_EN_FLAG_ULP_STOPPED;
244 	if (aux_priv) {
245 		struct auxiliary_device *adev;
246 
247 		adev = &aux_priv->aux_dev;
248 		if (adev->dev.driver) {
249 			const struct auxiliary_driver *adrv;
250 			pm_message_t pm = {};
251 
252 			adrv = to_auxiliary_drv(adev->dev.driver);
253 			edev->en_state = bp->state;
254 			adrv->suspend(adev, pm);
255 		}
256 	}
257 	mutex_unlock(&edev->en_dev_lock);
258 }
259 
260 void bnxt_ulp_start(struct bnxt *bp, int err)
261 {
262 	struct bnxt_aux_priv *aux_priv = bp->aux_priv;
263 	struct bnxt_en_dev *edev = bp->edev;
264 
265 	if (!edev)
266 		return;
267 
268 	edev->flags &= ~BNXT_EN_FLAG_ULP_STOPPED;
269 
270 	if (err)
271 		return;
272 
273 	mutex_lock(&edev->en_dev_lock);
274 	if (!bnxt_ulp_registered(edev)) {
275 		mutex_unlock(&edev->en_dev_lock);
276 		return;
277 	}
278 
279 	if (edev->ulp_tbl->msix_requested)
280 		bnxt_fill_msix_vecs(bp, edev->msix_entries);
281 
282 	if (aux_priv) {
283 		struct auxiliary_device *adev;
284 
285 		adev = &aux_priv->aux_dev;
286 		if (adev->dev.driver) {
287 			const struct auxiliary_driver *adrv;
288 
289 			adrv = to_auxiliary_drv(adev->dev.driver);
290 			edev->en_state = bp->state;
291 			adrv->resume(adev);
292 		}
293 	}
294 	mutex_unlock(&edev->en_dev_lock);
295 }
296 
297 void bnxt_ulp_irq_stop(struct bnxt *bp)
298 {
299 	struct bnxt_en_dev *edev = bp->edev;
300 	struct bnxt_ulp_ops *ops;
301 
302 	if (!edev || !(edev->flags & BNXT_EN_FLAG_MSIX_REQUESTED))
303 		return;
304 
305 	if (bnxt_ulp_registered(bp->edev)) {
306 		struct bnxt_ulp *ulp = edev->ulp_tbl;
307 
308 		if (!ulp->msix_requested)
309 			return;
310 
311 		ops = rtnl_dereference(ulp->ulp_ops);
312 		if (!ops || !ops->ulp_irq_stop)
313 			return;
314 		ops->ulp_irq_stop(ulp->handle);
315 	}
316 }
317 
318 void bnxt_ulp_irq_restart(struct bnxt *bp, int err)
319 {
320 	struct bnxt_en_dev *edev = bp->edev;
321 	struct bnxt_ulp_ops *ops;
322 
323 	if (!edev || !(edev->flags & BNXT_EN_FLAG_MSIX_REQUESTED))
324 		return;
325 
326 	if (bnxt_ulp_registered(bp->edev)) {
327 		struct bnxt_ulp *ulp = edev->ulp_tbl;
328 		struct bnxt_msix_entry *ent = NULL;
329 
330 		if (!ulp->msix_requested)
331 			return;
332 
333 		ops = rtnl_dereference(ulp->ulp_ops);
334 		if (!ops || !ops->ulp_irq_restart)
335 			return;
336 
337 		if (!err) {
338 			ent = kcalloc(ulp->msix_requested, sizeof(*ent),
339 				      GFP_KERNEL);
340 			if (!ent)
341 				return;
342 			bnxt_fill_msix_vecs(bp, ent);
343 		}
344 		ops->ulp_irq_restart(ulp->handle, ent);
345 		kfree(ent);
346 	}
347 }
348 
349 int bnxt_register_async_events(struct bnxt_en_dev *edev,
350 			       unsigned long *events_bmap,
351 			       u16 max_id)
352 {
353 	struct net_device *dev = edev->net;
354 	struct bnxt *bp = netdev_priv(dev);
355 	struct bnxt_ulp *ulp;
356 
357 	ulp = edev->ulp_tbl;
358 	ulp->async_events_bmap = events_bmap;
359 	/* Make sure bnxt_ulp_async_events() sees this order */
360 	smp_wmb();
361 	ulp->max_async_event_id = max_id;
362 	bnxt_hwrm_func_drv_rgtr(bp, events_bmap, max_id + 1, true);
363 	return 0;
364 }
365 EXPORT_SYMBOL(bnxt_register_async_events);
366 
367 void bnxt_rdma_aux_device_uninit(struct bnxt *bp)
368 {
369 	struct bnxt_aux_priv *aux_priv;
370 	struct auxiliary_device *adev;
371 
372 	/* Skip if no auxiliary device init was done. */
373 	if (!bp->aux_priv)
374 		return;
375 
376 	aux_priv = bp->aux_priv;
377 	adev = &aux_priv->aux_dev;
378 	auxiliary_device_uninit(adev);
379 }
380 
381 static void bnxt_aux_dev_release(struct device *dev)
382 {
383 	struct bnxt_aux_priv *aux_priv =
384 		container_of(dev, struct bnxt_aux_priv, aux_dev.dev);
385 	struct bnxt *bp = netdev_priv(aux_priv->edev->net);
386 
387 	ida_free(&bnxt_aux_dev_ids, aux_priv->id);
388 	kfree(aux_priv->edev->ulp_tbl);
389 	bp->edev = NULL;
390 	kfree(aux_priv->edev);
391 	kfree(aux_priv);
392 	bp->aux_priv = NULL;
393 }
394 
395 void bnxt_rdma_aux_device_del(struct bnxt *bp)
396 {
397 	if (!bp->edev)
398 		return;
399 
400 	auxiliary_device_delete(&bp->aux_priv->aux_dev);
401 }
402 
403 static void bnxt_set_edev_info(struct bnxt_en_dev *edev, struct bnxt *bp)
404 {
405 	edev->net = bp->dev;
406 	edev->pdev = bp->pdev;
407 	edev->l2_db_size = bp->db_size;
408 	edev->l2_db_size_nc = bp->db_size;
409 	edev->l2_db_offset = bp->db_offset;
410 	mutex_init(&edev->en_dev_lock);
411 
412 	if (bp->flags & BNXT_FLAG_ROCEV1_CAP)
413 		edev->flags |= BNXT_EN_FLAG_ROCEV1_CAP;
414 	if (bp->flags & BNXT_FLAG_ROCEV2_CAP)
415 		edev->flags |= BNXT_EN_FLAG_ROCEV2_CAP;
416 	if (bp->flags & BNXT_FLAG_VF)
417 		edev->flags |= BNXT_EN_FLAG_VF;
418 	if (BNXT_ROCE_VF_RESC_CAP(bp))
419 		edev->flags |= BNXT_EN_FLAG_ROCE_VF_RES_MGMT;
420 
421 	edev->chip_num = bp->chip_num;
422 	edev->hw_ring_stats_size = bp->hw_ring_stats_size;
423 	edev->pf_port_id = bp->pf.port_id;
424 	edev->en_state = bp->state;
425 	edev->bar0 = bp->bar0;
426 }
427 
428 void bnxt_rdma_aux_device_add(struct bnxt *bp)
429 {
430 	struct auxiliary_device *aux_dev;
431 	int rc;
432 
433 	if (!bp->edev)
434 		return;
435 
436 	aux_dev = &bp->aux_priv->aux_dev;
437 	rc = auxiliary_device_add(aux_dev);
438 	if (rc) {
439 		netdev_warn(bp->dev, "Failed to add auxiliary device for ROCE\n");
440 		auxiliary_device_uninit(aux_dev);
441 		bp->flags &= ~BNXT_FLAG_ROCE_CAP;
442 	}
443 }
444 
445 void bnxt_rdma_aux_device_init(struct bnxt *bp)
446 {
447 	struct auxiliary_device *aux_dev;
448 	struct bnxt_aux_priv *aux_priv;
449 	struct bnxt_en_dev *edev;
450 	struct bnxt_ulp *ulp;
451 	int rc;
452 
453 	if (!(bp->flags & BNXT_FLAG_ROCE_CAP))
454 		return;
455 
456 	aux_priv = kzalloc(sizeof(*bp->aux_priv), GFP_KERNEL);
457 	if (!aux_priv)
458 		goto exit;
459 
460 	aux_priv->id = ida_alloc(&bnxt_aux_dev_ids, GFP_KERNEL);
461 	if (aux_priv->id < 0) {
462 		netdev_warn(bp->dev,
463 			    "ida alloc failed for ROCE auxiliary device\n");
464 		kfree(aux_priv);
465 		goto exit;
466 	}
467 
468 	aux_dev = &aux_priv->aux_dev;
469 	aux_dev->id = aux_priv->id;
470 	aux_dev->name = "rdma";
471 	aux_dev->dev.parent = &bp->pdev->dev;
472 	aux_dev->dev.release = bnxt_aux_dev_release;
473 
474 	rc = auxiliary_device_init(aux_dev);
475 	if (rc) {
476 		ida_free(&bnxt_aux_dev_ids, aux_priv->id);
477 		kfree(aux_priv);
478 		goto exit;
479 	}
480 	bp->aux_priv = aux_priv;
481 
482 	/* From this point, all cleanup will happen via the .release callback &
483 	 * any error unwinding will need to include a call to
484 	 * auxiliary_device_uninit.
485 	 */
486 	edev = kzalloc(sizeof(*edev), GFP_KERNEL);
487 	if (!edev)
488 		goto aux_dev_uninit;
489 
490 	aux_priv->edev = edev;
491 
492 	ulp = kzalloc(sizeof(*ulp), GFP_KERNEL);
493 	if (!ulp)
494 		goto aux_dev_uninit;
495 
496 	edev->ulp_tbl = ulp;
497 	bp->edev = edev;
498 	bnxt_set_edev_info(edev, bp);
499 	bp->ulp_num_msix_want = bnxt_set_dflt_ulp_msix(bp);
500 
501 	return;
502 
503 aux_dev_uninit:
504 	auxiliary_device_uninit(aux_dev);
505 exit:
506 	bp->flags &= ~BNXT_FLAG_ROCE_CAP;
507 }
508