xref: /linux/drivers/crypto/caam/jr.c (revision 1abd4986f4445b0280a07bc46aefa3d0d30258f9)
1 /*
2  * CAAM/SEC 4.x transport/backend driver
3  * JobR backend functionality
4  *
5  * Copyright 2008-2012 Freescale Semiconductor, Inc.
6  */
7 
8 #include <linux/of_irq.h>
9 
10 #include "compat.h"
11 #include "regs.h"
12 #include "jr.h"
13 #include "desc.h"
14 #include "intern.h"
15 
16 struct jr_driver_data {
17 	/* List of Physical JobR's with the Driver */
18 	struct list_head	jr_list;
19 	spinlock_t		jr_alloc_lock;	/* jr_list lock */
20 } ____cacheline_aligned;
21 
22 static struct jr_driver_data driver_data;
23 
24 static int caam_reset_hw_jr(struct device *dev)
25 {
26 	struct caam_drv_private_jr *jrp = dev_get_drvdata(dev);
27 	unsigned int timeout = 100000;
28 
29 	/*
30 	 * mask interrupts since we are going to poll
31 	 * for reset completion status
32 	 */
33 	setbits32(&jrp->rregs->rconfig_lo, JRCFG_IMSK);
34 
35 	/* initiate flush (required prior to reset) */
36 	wr_reg32(&jrp->rregs->jrcommand, JRCR_RESET);
37 	while (((rd_reg32(&jrp->rregs->jrintstatus) & JRINT_ERR_HALT_MASK) ==
38 		JRINT_ERR_HALT_INPROGRESS) && --timeout)
39 		cpu_relax();
40 
41 	if ((rd_reg32(&jrp->rregs->jrintstatus) & JRINT_ERR_HALT_MASK) !=
42 	    JRINT_ERR_HALT_COMPLETE || timeout == 0) {
43 		dev_err(dev, "failed to flush job ring %d\n", jrp->ridx);
44 		return -EIO;
45 	}
46 
47 	/* initiate reset */
48 	timeout = 100000;
49 	wr_reg32(&jrp->rregs->jrcommand, JRCR_RESET);
50 	while ((rd_reg32(&jrp->rregs->jrcommand) & JRCR_RESET) && --timeout)
51 		cpu_relax();
52 
53 	if (timeout == 0) {
54 		dev_err(dev, "failed to reset job ring %d\n", jrp->ridx);
55 		return -EIO;
56 	}
57 
58 	/* unmask interrupts */
59 	clrbits32(&jrp->rregs->rconfig_lo, JRCFG_IMSK);
60 
61 	return 0;
62 }
63 
64 /*
65  * Shutdown JobR independent of platform property code
66  */
67 int caam_jr_shutdown(struct device *dev)
68 {
69 	struct caam_drv_private_jr *jrp = dev_get_drvdata(dev);
70 	dma_addr_t inpbusaddr, outbusaddr;
71 	int ret;
72 
73 	ret = caam_reset_hw_jr(dev);
74 
75 	tasklet_kill(&jrp->irqtask);
76 
77 	/* Release interrupt */
78 	free_irq(jrp->irq, dev);
79 
80 	/* Free rings */
81 	inpbusaddr = rd_reg64(&jrp->rregs->inpring_base);
82 	outbusaddr = rd_reg64(&jrp->rregs->outring_base);
83 	dma_free_coherent(dev, sizeof(dma_addr_t) * JOBR_DEPTH,
84 			  jrp->inpring, inpbusaddr);
85 	dma_free_coherent(dev, sizeof(struct jr_outentry) * JOBR_DEPTH,
86 			  jrp->outring, outbusaddr);
87 	kfree(jrp->entinfo);
88 
89 	return ret;
90 }
91 
92 static int caam_jr_remove(struct platform_device *pdev)
93 {
94 	int ret;
95 	struct device *jrdev;
96 	struct caam_drv_private_jr *jrpriv;
97 
98 	jrdev = &pdev->dev;
99 	jrpriv = dev_get_drvdata(jrdev);
100 
101 	/*
102 	 * Return EBUSY if job ring already allocated.
103 	 */
104 	if (atomic_read(&jrpriv->tfm_count)) {
105 		dev_err(jrdev, "Device is busy\n");
106 		return -EBUSY;
107 	}
108 
109 	/* Remove the node from Physical JobR list maintained by driver */
110 	spin_lock(&driver_data.jr_alloc_lock);
111 	list_del(&jrpriv->list_node);
112 	spin_unlock(&driver_data.jr_alloc_lock);
113 
114 	/* Release ring */
115 	ret = caam_jr_shutdown(jrdev);
116 	if (ret)
117 		dev_err(jrdev, "Failed to shut down job ring\n");
118 	irq_dispose_mapping(jrpriv->irq);
119 
120 	return ret;
121 }
122 
123 /* Main per-ring interrupt handler */
124 static irqreturn_t caam_jr_interrupt(int irq, void *st_dev)
125 {
126 	struct device *dev = st_dev;
127 	struct caam_drv_private_jr *jrp = dev_get_drvdata(dev);
128 	u32 irqstate;
129 
130 	/*
131 	 * Check the output ring for ready responses, kick
132 	 * tasklet if jobs done.
133 	 */
134 	irqstate = rd_reg32(&jrp->rregs->jrintstatus);
135 	if (!irqstate)
136 		return IRQ_NONE;
137 
138 	/*
139 	 * If JobR error, we got more development work to do
140 	 * Flag a bug now, but we really need to shut down and
141 	 * restart the queue (and fix code).
142 	 */
143 	if (irqstate & JRINT_JR_ERROR) {
144 		dev_err(dev, "job ring error: irqstate: %08x\n", irqstate);
145 		BUG();
146 	}
147 
148 	/* mask valid interrupts */
149 	setbits32(&jrp->rregs->rconfig_lo, JRCFG_IMSK);
150 
151 	/* Have valid interrupt at this point, just ACK and trigger */
152 	wr_reg32(&jrp->rregs->jrintstatus, irqstate);
153 
154 	preempt_disable();
155 	tasklet_schedule(&jrp->irqtask);
156 	preempt_enable();
157 
158 	return IRQ_HANDLED;
159 }
160 
161 /* Deferred service handler, run as interrupt-fired tasklet */
162 static void caam_jr_dequeue(unsigned long devarg)
163 {
164 	int hw_idx, sw_idx, i, head, tail;
165 	struct device *dev = (struct device *)devarg;
166 	struct caam_drv_private_jr *jrp = dev_get_drvdata(dev);
167 	void (*usercall)(struct device *dev, u32 *desc, u32 status, void *arg);
168 	u32 *userdesc, userstatus;
169 	void *userarg;
170 
171 	while (rd_reg32(&jrp->rregs->outring_used)) {
172 
173 		head = ACCESS_ONCE(jrp->head);
174 
175 		spin_lock(&jrp->outlock);
176 
177 		sw_idx = tail = jrp->tail;
178 		hw_idx = jrp->out_ring_read_index;
179 
180 		for (i = 0; CIRC_CNT(head, tail + i, JOBR_DEPTH) >= 1; i++) {
181 			sw_idx = (tail + i) & (JOBR_DEPTH - 1);
182 
183 			smp_read_barrier_depends();
184 
185 			if (jrp->outring[hw_idx].desc ==
186 			    jrp->entinfo[sw_idx].desc_addr_dma)
187 				break; /* found */
188 		}
189 		/* we should never fail to find a matching descriptor */
190 		BUG_ON(CIRC_CNT(head, tail + i, JOBR_DEPTH) <= 0);
191 
192 		/* Unmap just-run descriptor so we can post-process */
193 		dma_unmap_single(dev, jrp->outring[hw_idx].desc,
194 				 jrp->entinfo[sw_idx].desc_size,
195 				 DMA_TO_DEVICE);
196 
197 		/* mark completed, avoid matching on a recycled desc addr */
198 		jrp->entinfo[sw_idx].desc_addr_dma = 0;
199 
200 		/* Stash callback params for use outside of lock */
201 		usercall = jrp->entinfo[sw_idx].callbk;
202 		userarg = jrp->entinfo[sw_idx].cbkarg;
203 		userdesc = jrp->entinfo[sw_idx].desc_addr_virt;
204 		userstatus = jrp->outring[hw_idx].jrstatus;
205 
206 		/* set done */
207 		wr_reg32(&jrp->rregs->outring_rmvd, 1);
208 
209 		jrp->out_ring_read_index = (jrp->out_ring_read_index + 1) &
210 					   (JOBR_DEPTH - 1);
211 
212 		/*
213 		 * if this job completed out-of-order, do not increment
214 		 * the tail.  Otherwise, increment tail by 1 plus the
215 		 * number of subsequent jobs already completed out-of-order
216 		 */
217 		if (sw_idx == tail) {
218 			do {
219 				tail = (tail + 1) & (JOBR_DEPTH - 1);
220 				smp_read_barrier_depends();
221 			} while (CIRC_CNT(head, tail, JOBR_DEPTH) >= 1 &&
222 				 jrp->entinfo[tail].desc_addr_dma == 0);
223 
224 			jrp->tail = tail;
225 		}
226 
227 		spin_unlock(&jrp->outlock);
228 
229 		/* Finally, execute user's callback */
230 		usercall(dev, userdesc, userstatus, userarg);
231 	}
232 
233 	/* reenable / unmask IRQs */
234 	clrbits32(&jrp->rregs->rconfig_lo, JRCFG_IMSK);
235 }
236 
237 /**
238  * caam_jr_alloc() - Alloc a job ring for someone to use as needed.
239  *
240  * returns :  pointer to the newly allocated physical
241  *	      JobR dev can be written to if successful.
242  **/
243 struct device *caam_jr_alloc(void)
244 {
245 	struct caam_drv_private_jr *jrpriv, *min_jrpriv = NULL;
246 	struct device *dev = NULL;
247 	int min_tfm_cnt	= INT_MAX;
248 	int tfm_cnt;
249 
250 	spin_lock(&driver_data.jr_alloc_lock);
251 
252 	if (list_empty(&driver_data.jr_list)) {
253 		spin_unlock(&driver_data.jr_alloc_lock);
254 		return ERR_PTR(-ENODEV);
255 	}
256 
257 	list_for_each_entry(jrpriv, &driver_data.jr_list, list_node) {
258 		tfm_cnt = atomic_read(&jrpriv->tfm_count);
259 		if (tfm_cnt < min_tfm_cnt) {
260 			min_tfm_cnt = tfm_cnt;
261 			min_jrpriv = jrpriv;
262 		}
263 		if (!min_tfm_cnt)
264 			break;
265 	}
266 
267 	if (min_jrpriv) {
268 		atomic_inc(&min_jrpriv->tfm_count);
269 		dev = min_jrpriv->dev;
270 	}
271 	spin_unlock(&driver_data.jr_alloc_lock);
272 
273 	return dev;
274 }
275 EXPORT_SYMBOL(caam_jr_alloc);
276 
277 /**
278  * caam_jr_free() - Free the Job Ring
279  * @rdev     - points to the dev that identifies the Job ring to
280  *             be released.
281  **/
282 void caam_jr_free(struct device *rdev)
283 {
284 	struct caam_drv_private_jr *jrpriv = dev_get_drvdata(rdev);
285 
286 	atomic_dec(&jrpriv->tfm_count);
287 }
288 EXPORT_SYMBOL(caam_jr_free);
289 
290 /**
291  * caam_jr_enqueue() - Enqueue a job descriptor head. Returns 0 if OK,
292  * -EBUSY if the queue is full, -EIO if it cannot map the caller's
293  * descriptor.
294  * @dev:  device of the job ring to be used. This device should have
295  *        been assigned prior by caam_jr_register().
296  * @desc: points to a job descriptor that execute our request. All
297  *        descriptors (and all referenced data) must be in a DMAable
298  *        region, and all data references must be physical addresses
299  *        accessible to CAAM (i.e. within a PAMU window granted
300  *        to it).
301  * @cbk:  pointer to a callback function to be invoked upon completion
302  *        of this request. This has the form:
303  *        callback(struct device *dev, u32 *desc, u32 stat, void *arg)
304  *        where:
305  *        @dev:    contains the job ring device that processed this
306  *                 response.
307  *        @desc:   descriptor that initiated the request, same as
308  *                 "desc" being argued to caam_jr_enqueue().
309  *        @status: untranslated status received from CAAM. See the
310  *                 reference manual for a detailed description of
311  *                 error meaning, or see the JRSTA definitions in the
312  *                 register header file
313  *        @areq:   optional pointer to an argument passed with the
314  *                 original request
315  * @areq: optional pointer to a user argument for use at callback
316  *        time.
317  **/
318 int caam_jr_enqueue(struct device *dev, u32 *desc,
319 		    void (*cbk)(struct device *dev, u32 *desc,
320 				u32 status, void *areq),
321 		    void *areq)
322 {
323 	struct caam_drv_private_jr *jrp = dev_get_drvdata(dev);
324 	struct caam_jrentry_info *head_entry;
325 	int head, tail, desc_size;
326 	dma_addr_t desc_dma;
327 
328 	desc_size = (*desc & HDR_JD_LENGTH_MASK) * sizeof(u32);
329 	desc_dma = dma_map_single(dev, desc, desc_size, DMA_TO_DEVICE);
330 	if (dma_mapping_error(dev, desc_dma)) {
331 		dev_err(dev, "caam_jr_enqueue(): can't map jobdesc\n");
332 		return -EIO;
333 	}
334 
335 	spin_lock_bh(&jrp->inplock);
336 
337 	head = jrp->head;
338 	tail = ACCESS_ONCE(jrp->tail);
339 
340 	if (!rd_reg32(&jrp->rregs->inpring_avail) ||
341 	    CIRC_SPACE(head, tail, JOBR_DEPTH) <= 0) {
342 		spin_unlock_bh(&jrp->inplock);
343 		dma_unmap_single(dev, desc_dma, desc_size, DMA_TO_DEVICE);
344 		return -EBUSY;
345 	}
346 
347 	head_entry = &jrp->entinfo[head];
348 	head_entry->desc_addr_virt = desc;
349 	head_entry->desc_size = desc_size;
350 	head_entry->callbk = (void *)cbk;
351 	head_entry->cbkarg = areq;
352 	head_entry->desc_addr_dma = desc_dma;
353 
354 	jrp->inpring[jrp->inp_ring_write_index] = desc_dma;
355 
356 	smp_wmb();
357 
358 	jrp->inp_ring_write_index = (jrp->inp_ring_write_index + 1) &
359 				    (JOBR_DEPTH - 1);
360 	jrp->head = (head + 1) & (JOBR_DEPTH - 1);
361 
362 	wr_reg32(&jrp->rregs->inpring_jobadd, 1);
363 
364 	spin_unlock_bh(&jrp->inplock);
365 
366 	return 0;
367 }
368 EXPORT_SYMBOL(caam_jr_enqueue);
369 
370 /*
371  * Init JobR independent of platform property detection
372  */
373 static int caam_jr_init(struct device *dev)
374 {
375 	struct caam_drv_private_jr *jrp;
376 	dma_addr_t inpbusaddr, outbusaddr;
377 	int i, error;
378 
379 	jrp = dev_get_drvdata(dev);
380 
381 	tasklet_init(&jrp->irqtask, caam_jr_dequeue, (unsigned long)dev);
382 
383 	/* Connect job ring interrupt handler. */
384 	error = request_irq(jrp->irq, caam_jr_interrupt, IRQF_SHARED,
385 			    dev_name(dev), dev);
386 	if (error) {
387 		dev_err(dev, "can't connect JobR %d interrupt (%d)\n",
388 			jrp->ridx, jrp->irq);
389 		irq_dispose_mapping(jrp->irq);
390 		jrp->irq = 0;
391 		return -EINVAL;
392 	}
393 
394 	error = caam_reset_hw_jr(dev);
395 	if (error)
396 		return error;
397 
398 	jrp->inpring = dma_alloc_coherent(dev, sizeof(dma_addr_t) * JOBR_DEPTH,
399 					  &inpbusaddr, GFP_KERNEL);
400 
401 	jrp->outring = dma_alloc_coherent(dev, sizeof(struct jr_outentry) *
402 					  JOBR_DEPTH, &outbusaddr, GFP_KERNEL);
403 
404 	jrp->entinfo = kzalloc(sizeof(struct caam_jrentry_info) * JOBR_DEPTH,
405 			       GFP_KERNEL);
406 
407 	if ((jrp->inpring == NULL) || (jrp->outring == NULL) ||
408 	    (jrp->entinfo == NULL)) {
409 		dev_err(dev, "can't allocate job rings for %d\n",
410 			jrp->ridx);
411 		return -ENOMEM;
412 	}
413 
414 	for (i = 0; i < JOBR_DEPTH; i++)
415 		jrp->entinfo[i].desc_addr_dma = !0;
416 
417 	/* Setup rings */
418 	jrp->inp_ring_write_index = 0;
419 	jrp->out_ring_read_index = 0;
420 	jrp->head = 0;
421 	jrp->tail = 0;
422 
423 	wr_reg64(&jrp->rregs->inpring_base, inpbusaddr);
424 	wr_reg64(&jrp->rregs->outring_base, outbusaddr);
425 	wr_reg32(&jrp->rregs->inpring_size, JOBR_DEPTH);
426 	wr_reg32(&jrp->rregs->outring_size, JOBR_DEPTH);
427 
428 	jrp->ringsize = JOBR_DEPTH;
429 
430 	spin_lock_init(&jrp->inplock);
431 	spin_lock_init(&jrp->outlock);
432 
433 	/* Select interrupt coalescing parameters */
434 	setbits32(&jrp->rregs->rconfig_lo, JOBR_INTC |
435 		  (JOBR_INTC_COUNT_THLD << JRCFG_ICDCT_SHIFT) |
436 		  (JOBR_INTC_TIME_THLD << JRCFG_ICTT_SHIFT));
437 
438 	return 0;
439 }
440 
441 
442 /*
443  * Probe routine for each detected JobR subsystem.
444  */
445 static int caam_jr_probe(struct platform_device *pdev)
446 {
447 	struct device *jrdev;
448 	struct device_node *nprop;
449 	struct caam_job_ring __iomem *ctrl;
450 	struct caam_drv_private_jr *jrpriv;
451 	static int total_jobrs;
452 	int error;
453 
454 	jrdev = &pdev->dev;
455 	jrpriv = kmalloc(sizeof(struct caam_drv_private_jr),
456 			 GFP_KERNEL);
457 	if (!jrpriv)
458 		return -ENOMEM;
459 
460 	dev_set_drvdata(jrdev, jrpriv);
461 
462 	/* save ring identity relative to detection */
463 	jrpriv->ridx = total_jobrs++;
464 
465 	nprop = pdev->dev.of_node;
466 	/* Get configuration properties from device tree */
467 	/* First, get register page */
468 	ctrl = of_iomap(nprop, 0);
469 	if (!ctrl) {
470 		dev_err(jrdev, "of_iomap() failed\n");
471 		return -ENOMEM;
472 	}
473 
474 	jrpriv->rregs = (struct caam_job_ring __force *)ctrl;
475 
476 	if (sizeof(dma_addr_t) == sizeof(u64))
477 		if (of_device_is_compatible(nprop, "fsl,sec-v5.0-job-ring"))
478 			dma_set_mask(jrdev, DMA_BIT_MASK(40));
479 		else
480 			dma_set_mask(jrdev, DMA_BIT_MASK(36));
481 	else
482 		dma_set_mask(jrdev, DMA_BIT_MASK(32));
483 
484 	/* Identify the interrupt */
485 	jrpriv->irq = irq_of_parse_and_map(nprop, 0);
486 
487 	/* Now do the platform independent part */
488 	error = caam_jr_init(jrdev); /* now turn on hardware */
489 	if (error) {
490 		kfree(jrpriv);
491 		return error;
492 	}
493 
494 	jrpriv->dev = jrdev;
495 	spin_lock(&driver_data.jr_alloc_lock);
496 	list_add_tail(&jrpriv->list_node, &driver_data.jr_list);
497 	spin_unlock(&driver_data.jr_alloc_lock);
498 
499 	atomic_set(&jrpriv->tfm_count, 0);
500 
501 	return 0;
502 }
503 
504 static struct of_device_id caam_jr_match[] = {
505 	{
506 		.compatible = "fsl,sec-v4.0-job-ring",
507 	},
508 	{
509 		.compatible = "fsl,sec4.0-job-ring",
510 	},
511 	{},
512 };
513 MODULE_DEVICE_TABLE(of, caam_jr_match);
514 
515 static struct platform_driver caam_jr_driver = {
516 	.driver = {
517 		.name = "caam_jr",
518 		.owner = THIS_MODULE,
519 		.of_match_table = caam_jr_match,
520 	},
521 	.probe       = caam_jr_probe,
522 	.remove      = caam_jr_remove,
523 };
524 
525 static int __init jr_driver_init(void)
526 {
527 	spin_lock_init(&driver_data.jr_alloc_lock);
528 	INIT_LIST_HEAD(&driver_data.jr_list);
529 	return platform_driver_register(&caam_jr_driver);
530 }
531 
532 static void __exit jr_driver_exit(void)
533 {
534 	platform_driver_unregister(&caam_jr_driver);
535 }
536 
537 module_init(jr_driver_init);
538 module_exit(jr_driver_exit);
539 
540 MODULE_LICENSE("GPL");
541 MODULE_DESCRIPTION("FSL CAAM JR request backend");
542 MODULE_AUTHOR("Freescale Semiconductor - NMG/STC");
543