1 /*
2 * zcrypt 2.1.0
3 *
4 * Copyright IBM Corp. 2001, 2012
5 * Author(s): Robert Burroughs
6 * Eric Rossman (edrossma@us.ibm.com)
7 * Cornelia Huck <cornelia.huck@de.ibm.com>
8 *
9 * Hotplug & misc device support: Jochen Roehrig (roehrig@de.ibm.com)
10 * Major cleanup & driver split: Martin Schwidefsky <schwidefsky@de.ibm.com>
11 * Ralph Wuerthner <rwuerthn@de.ibm.com>
12 * MSGTYPE restruct: Holger Dengler <hd@linux.vnet.ibm.com>
13 *
14 * This program is free software; you can redistribute it and/or modify
15 * it under the terms of the GNU General Public License as published by
16 * the Free Software Foundation; either version 2, or (at your option)
17 * any later version.
18 *
19 * This program is distributed in the hope that it will be useful,
20 * but WITHOUT ANY WARRANTY; without even the implied warranty of
21 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
22 * GNU General Public License for more details.
23 *
24 * You should have received a copy of the GNU General Public License
25 * along with this program; if not, write to the Free Software
26 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
27 */
28
29 #include <linux/module.h>
30 #include <linux/init.h>
31 #include <linux/interrupt.h>
32 #include <linux/miscdevice.h>
33 #include <linux/fs.h>
34 #include <linux/proc_fs.h>
35 #include <linux/seq_file.h>
36 #include <linux/compat.h>
37 #include <linux/slab.h>
38 #include <linux/atomic.h>
39 #include <asm/uaccess.h>
40 #include <linux/hw_random.h>
41 #include <linux/debugfs.h>
42 #include <asm/debug.h>
43
44 #include "zcrypt_debug.h"
45 #include "zcrypt_api.h"
46
47 #include "zcrypt_msgtype6.h"
48
49 /*
50 * Module description.
51 */
52 MODULE_AUTHOR("IBM Corporation");
53 MODULE_DESCRIPTION("Cryptographic Coprocessor interface, " \
54 "Copyright IBM Corp. 2001, 2012");
55 MODULE_LICENSE("GPL");
56
57 static DEFINE_SPINLOCK(zcrypt_device_lock);
58 static LIST_HEAD(zcrypt_device_list);
59 static int zcrypt_device_count = 0;
60 static atomic_t zcrypt_open_count = ATOMIC_INIT(0);
61 static atomic_t zcrypt_rescan_count = ATOMIC_INIT(0);
62
63 atomic_t zcrypt_rescan_req = ATOMIC_INIT(0);
64 EXPORT_SYMBOL(zcrypt_rescan_req);
65
66 static int zcrypt_rng_device_add(void);
67 static void zcrypt_rng_device_remove(void);
68
69 static DEFINE_SPINLOCK(zcrypt_ops_list_lock);
70 static LIST_HEAD(zcrypt_ops_list);
71
72 static debug_info_t *zcrypt_dbf_common;
73 static debug_info_t *zcrypt_dbf_devices;
74 static struct dentry *debugfs_root;
75
76 /*
77 * Device attributes common for all crypto devices.
78 */
zcrypt_type_show(struct device * dev,struct device_attribute * attr,char * buf)79 static ssize_t zcrypt_type_show(struct device *dev,
80 struct device_attribute *attr, char *buf)
81 {
82 struct zcrypt_device *zdev = to_ap_dev(dev)->private;
83 return snprintf(buf, PAGE_SIZE, "%s\n", zdev->type_string);
84 }
85
86 static DEVICE_ATTR(type, 0444, zcrypt_type_show, NULL);
87
zcrypt_online_show(struct device * dev,struct device_attribute * attr,char * buf)88 static ssize_t zcrypt_online_show(struct device *dev,
89 struct device_attribute *attr, char *buf)
90 {
91 struct zcrypt_device *zdev = to_ap_dev(dev)->private;
92 return snprintf(buf, PAGE_SIZE, "%d\n", zdev->online);
93 }
94
zcrypt_online_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)95 static ssize_t zcrypt_online_store(struct device *dev,
96 struct device_attribute *attr,
97 const char *buf, size_t count)
98 {
99 struct zcrypt_device *zdev = to_ap_dev(dev)->private;
100 int online;
101
102 if (sscanf(buf, "%d\n", &online) != 1 || online < 0 || online > 1)
103 return -EINVAL;
104 zdev->online = online;
105 ZCRYPT_DBF_DEV(DBF_INFO, zdev, "dev%04xo%dman", zdev->ap_dev->qid,
106 zdev->online);
107 if (!online)
108 ap_flush_queue(zdev->ap_dev);
109 return count;
110 }
111
112 static DEVICE_ATTR(online, 0644, zcrypt_online_show, zcrypt_online_store);
113
114 static struct attribute * zcrypt_device_attrs[] = {
115 &dev_attr_type.attr,
116 &dev_attr_online.attr,
117 NULL,
118 };
119
120 static struct attribute_group zcrypt_device_attr_group = {
121 .attrs = zcrypt_device_attrs,
122 };
123
124 /**
125 * Process a rescan of the transport layer.
126 *
127 * Returns 1, if the rescan has been processed, otherwise 0.
128 */
zcrypt_process_rescan(void)129 static inline int zcrypt_process_rescan(void)
130 {
131 if (atomic_read(&zcrypt_rescan_req)) {
132 atomic_set(&zcrypt_rescan_req, 0);
133 atomic_inc(&zcrypt_rescan_count);
134 ap_bus_force_rescan();
135 ZCRYPT_DBF_COMMON(DBF_INFO, "rescan%07d",
136 atomic_inc_return(&zcrypt_rescan_count));
137 return 1;
138 }
139 return 0;
140 }
141
142 /**
143 * __zcrypt_increase_preference(): Increase preference of a crypto device.
144 * @zdev: Pointer the crypto device
145 *
146 * Move the device towards the head of the device list.
147 * Need to be called while holding the zcrypt device list lock.
148 * Note: cards with speed_rating of 0 are kept at the end of the list.
149 */
__zcrypt_increase_preference(struct zcrypt_device * zdev)150 static void __zcrypt_increase_preference(struct zcrypt_device *zdev)
151 {
152 struct zcrypt_device *tmp;
153 struct list_head *l;
154
155 if (zdev->speed_rating == 0)
156 return;
157 for (l = zdev->list.prev; l != &zcrypt_device_list; l = l->prev) {
158 tmp = list_entry(l, struct zcrypt_device, list);
159 if ((tmp->request_count + 1) * tmp->speed_rating <=
160 (zdev->request_count + 1) * zdev->speed_rating &&
161 tmp->speed_rating != 0)
162 break;
163 }
164 if (l == zdev->list.prev)
165 return;
166 /* Move zdev behind l */
167 list_move(&zdev->list, l);
168 }
169
170 /**
171 * __zcrypt_decrease_preference(): Decrease preference of a crypto device.
172 * @zdev: Pointer to a crypto device.
173 *
174 * Move the device towards the tail of the device list.
175 * Need to be called while holding the zcrypt device list lock.
176 * Note: cards with speed_rating of 0 are kept at the end of the list.
177 */
__zcrypt_decrease_preference(struct zcrypt_device * zdev)178 static void __zcrypt_decrease_preference(struct zcrypt_device *zdev)
179 {
180 struct zcrypt_device *tmp;
181 struct list_head *l;
182
183 if (zdev->speed_rating == 0)
184 return;
185 for (l = zdev->list.next; l != &zcrypt_device_list; l = l->next) {
186 tmp = list_entry(l, struct zcrypt_device, list);
187 if ((tmp->request_count + 1) * tmp->speed_rating >
188 (zdev->request_count + 1) * zdev->speed_rating ||
189 tmp->speed_rating == 0)
190 break;
191 }
192 if (l == zdev->list.next)
193 return;
194 /* Move zdev before l */
195 list_move_tail(&zdev->list, l);
196 }
197
zcrypt_device_release(struct kref * kref)198 static void zcrypt_device_release(struct kref *kref)
199 {
200 struct zcrypt_device *zdev =
201 container_of(kref, struct zcrypt_device, refcount);
202 zcrypt_device_free(zdev);
203 }
204
zcrypt_device_get(struct zcrypt_device * zdev)205 void zcrypt_device_get(struct zcrypt_device *zdev)
206 {
207 kref_get(&zdev->refcount);
208 }
209 EXPORT_SYMBOL(zcrypt_device_get);
210
zcrypt_device_put(struct zcrypt_device * zdev)211 int zcrypt_device_put(struct zcrypt_device *zdev)
212 {
213 return kref_put(&zdev->refcount, zcrypt_device_release);
214 }
215 EXPORT_SYMBOL(zcrypt_device_put);
216
zcrypt_device_alloc(size_t max_response_size)217 struct zcrypt_device *zcrypt_device_alloc(size_t max_response_size)
218 {
219 struct zcrypt_device *zdev;
220
221 zdev = kzalloc(sizeof(struct zcrypt_device), GFP_KERNEL);
222 if (!zdev)
223 return NULL;
224 zdev->reply.message = kmalloc(max_response_size, GFP_KERNEL);
225 if (!zdev->reply.message)
226 goto out_free;
227 zdev->reply.length = max_response_size;
228 spin_lock_init(&zdev->lock);
229 INIT_LIST_HEAD(&zdev->list);
230 zdev->dbf_area = zcrypt_dbf_devices;
231 return zdev;
232
233 out_free:
234 kfree(zdev);
235 return NULL;
236 }
237 EXPORT_SYMBOL(zcrypt_device_alloc);
238
zcrypt_device_free(struct zcrypt_device * zdev)239 void zcrypt_device_free(struct zcrypt_device *zdev)
240 {
241 kfree(zdev->reply.message);
242 kfree(zdev);
243 }
244 EXPORT_SYMBOL(zcrypt_device_free);
245
246 /**
247 * zcrypt_device_register() - Register a crypto device.
248 * @zdev: Pointer to a crypto device
249 *
250 * Register a crypto device. Returns 0 if successful.
251 */
zcrypt_device_register(struct zcrypt_device * zdev)252 int zcrypt_device_register(struct zcrypt_device *zdev)
253 {
254 int rc;
255
256 if (!zdev->ops)
257 return -ENODEV;
258 rc = sysfs_create_group(&zdev->ap_dev->device.kobj,
259 &zcrypt_device_attr_group);
260 if (rc)
261 goto out;
262 get_device(&zdev->ap_dev->device);
263 kref_init(&zdev->refcount);
264 spin_lock_bh(&zcrypt_device_lock);
265 zdev->online = 1; /* New devices are online by default. */
266 ZCRYPT_DBF_DEV(DBF_INFO, zdev, "dev%04xo%dreg", zdev->ap_dev->qid,
267 zdev->online);
268 list_add_tail(&zdev->list, &zcrypt_device_list);
269 __zcrypt_increase_preference(zdev);
270 zcrypt_device_count++;
271 spin_unlock_bh(&zcrypt_device_lock);
272 if (zdev->ops->rng) {
273 rc = zcrypt_rng_device_add();
274 if (rc)
275 goto out_unregister;
276 }
277 return 0;
278
279 out_unregister:
280 spin_lock_bh(&zcrypt_device_lock);
281 zcrypt_device_count--;
282 list_del_init(&zdev->list);
283 spin_unlock_bh(&zcrypt_device_lock);
284 sysfs_remove_group(&zdev->ap_dev->device.kobj,
285 &zcrypt_device_attr_group);
286 put_device(&zdev->ap_dev->device);
287 zcrypt_device_put(zdev);
288 out:
289 return rc;
290 }
291 EXPORT_SYMBOL(zcrypt_device_register);
292
293 /**
294 * zcrypt_device_unregister(): Unregister a crypto device.
295 * @zdev: Pointer to crypto device
296 *
297 * Unregister a crypto device.
298 */
zcrypt_device_unregister(struct zcrypt_device * zdev)299 void zcrypt_device_unregister(struct zcrypt_device *zdev)
300 {
301 if (zdev->ops->rng)
302 zcrypt_rng_device_remove();
303 spin_lock_bh(&zcrypt_device_lock);
304 zcrypt_device_count--;
305 list_del_init(&zdev->list);
306 spin_unlock_bh(&zcrypt_device_lock);
307 sysfs_remove_group(&zdev->ap_dev->device.kobj,
308 &zcrypt_device_attr_group);
309 put_device(&zdev->ap_dev->device);
310 zcrypt_device_put(zdev);
311 }
312 EXPORT_SYMBOL(zcrypt_device_unregister);
313
zcrypt_msgtype_register(struct zcrypt_ops * zops)314 void zcrypt_msgtype_register(struct zcrypt_ops *zops)
315 {
316 if (zops->owner) {
317 spin_lock_bh(&zcrypt_ops_list_lock);
318 list_add_tail(&zops->list, &zcrypt_ops_list);
319 spin_unlock_bh(&zcrypt_ops_list_lock);
320 }
321 }
322 EXPORT_SYMBOL(zcrypt_msgtype_register);
323
zcrypt_msgtype_unregister(struct zcrypt_ops * zops)324 void zcrypt_msgtype_unregister(struct zcrypt_ops *zops)
325 {
326 spin_lock_bh(&zcrypt_ops_list_lock);
327 list_del_init(&zops->list);
328 spin_unlock_bh(&zcrypt_ops_list_lock);
329 }
330 EXPORT_SYMBOL(zcrypt_msgtype_unregister);
331
332 static inline
__ops_lookup(unsigned char * name,int variant)333 struct zcrypt_ops *__ops_lookup(unsigned char *name, int variant)
334 {
335 struct zcrypt_ops *zops;
336 int found = 0;
337
338 spin_lock_bh(&zcrypt_ops_list_lock);
339 list_for_each_entry(zops, &zcrypt_ops_list, list) {
340 if ((zops->variant == variant) &&
341 (!strncmp(zops->owner->name, name, MODULE_NAME_LEN))) {
342 found = 1;
343 break;
344 }
345 }
346 if (!found || !try_module_get(zops->owner))
347 zops = NULL;
348
349 spin_unlock_bh(&zcrypt_ops_list_lock);
350
351 return zops;
352 }
353
zcrypt_msgtype_request(unsigned char * name,int variant)354 struct zcrypt_ops *zcrypt_msgtype_request(unsigned char *name, int variant)
355 {
356 struct zcrypt_ops *zops = NULL;
357
358 zops = __ops_lookup(name, variant);
359 if (!zops) {
360 request_module("%s", name);
361 zops = __ops_lookup(name, variant);
362 }
363 return zops;
364 }
365 EXPORT_SYMBOL(zcrypt_msgtype_request);
366
zcrypt_msgtype_release(struct zcrypt_ops * zops)367 void zcrypt_msgtype_release(struct zcrypt_ops *zops)
368 {
369 if (zops)
370 module_put(zops->owner);
371 }
372 EXPORT_SYMBOL(zcrypt_msgtype_release);
373
374 /**
375 * zcrypt_read (): Not supported beyond zcrypt 1.3.1.
376 *
377 * This function is not supported beyond zcrypt 1.3.1.
378 */
zcrypt_read(struct file * filp,char __user * buf,size_t count,loff_t * f_pos)379 static ssize_t zcrypt_read(struct file *filp, char __user *buf,
380 size_t count, loff_t *f_pos)
381 {
382 return -EPERM;
383 }
384
385 /**
386 * zcrypt_write(): Not allowed.
387 *
388 * Write is is not allowed
389 */
zcrypt_write(struct file * filp,const char __user * buf,size_t count,loff_t * f_pos)390 static ssize_t zcrypt_write(struct file *filp, const char __user *buf,
391 size_t count, loff_t *f_pos)
392 {
393 return -EPERM;
394 }
395
396 /**
397 * zcrypt_open(): Count number of users.
398 *
399 * Device open function to count number of users.
400 */
zcrypt_open(struct inode * inode,struct file * filp)401 static int zcrypt_open(struct inode *inode, struct file *filp)
402 {
403 atomic_inc(&zcrypt_open_count);
404 return nonseekable_open(inode, filp);
405 }
406
407 /**
408 * zcrypt_release(): Count number of users.
409 *
410 * Device close function to count number of users.
411 */
zcrypt_release(struct inode * inode,struct file * filp)412 static int zcrypt_release(struct inode *inode, struct file *filp)
413 {
414 atomic_dec(&zcrypt_open_count);
415 return 0;
416 }
417
418 /*
419 * zcrypt ioctls.
420 */
zcrypt_rsa_modexpo(struct ica_rsa_modexpo * mex)421 static long zcrypt_rsa_modexpo(struct ica_rsa_modexpo *mex)
422 {
423 struct zcrypt_device *zdev;
424 int rc;
425
426 if (mex->outputdatalength < mex->inputdatalength)
427 return -EINVAL;
428 /*
429 * As long as outputdatalength is big enough, we can set the
430 * outputdatalength equal to the inputdatalength, since that is the
431 * number of bytes we will copy in any case
432 */
433 mex->outputdatalength = mex->inputdatalength;
434
435 spin_lock_bh(&zcrypt_device_lock);
436 list_for_each_entry(zdev, &zcrypt_device_list, list) {
437 if (!zdev->online ||
438 !zdev->ops->rsa_modexpo ||
439 zdev->min_mod_size > mex->inputdatalength ||
440 zdev->max_mod_size < mex->inputdatalength)
441 continue;
442 zcrypt_device_get(zdev);
443 get_device(&zdev->ap_dev->device);
444 zdev->request_count++;
445 __zcrypt_decrease_preference(zdev);
446 if (try_module_get(zdev->ap_dev->drv->driver.owner)) {
447 spin_unlock_bh(&zcrypt_device_lock);
448 rc = zdev->ops->rsa_modexpo(zdev, mex);
449 spin_lock_bh(&zcrypt_device_lock);
450 module_put(zdev->ap_dev->drv->driver.owner);
451 }
452 else
453 rc = -EAGAIN;
454 zdev->request_count--;
455 __zcrypt_increase_preference(zdev);
456 put_device(&zdev->ap_dev->device);
457 zcrypt_device_put(zdev);
458 spin_unlock_bh(&zcrypt_device_lock);
459 return rc;
460 }
461 spin_unlock_bh(&zcrypt_device_lock);
462 return -ENODEV;
463 }
464
zcrypt_rsa_crt(struct ica_rsa_modexpo_crt * crt)465 static long zcrypt_rsa_crt(struct ica_rsa_modexpo_crt *crt)
466 {
467 struct zcrypt_device *zdev;
468 unsigned long long z1, z2, z3;
469 int rc, copied;
470
471 if (crt->outputdatalength < crt->inputdatalength ||
472 (crt->inputdatalength & 1))
473 return -EINVAL;
474 /*
475 * As long as outputdatalength is big enough, we can set the
476 * outputdatalength equal to the inputdatalength, since that is the
477 * number of bytes we will copy in any case
478 */
479 crt->outputdatalength = crt->inputdatalength;
480
481 copied = 0;
482 restart:
483 spin_lock_bh(&zcrypt_device_lock);
484 list_for_each_entry(zdev, &zcrypt_device_list, list) {
485 if (!zdev->online ||
486 !zdev->ops->rsa_modexpo_crt ||
487 zdev->min_mod_size > crt->inputdatalength ||
488 zdev->max_mod_size < crt->inputdatalength)
489 continue;
490 if (zdev->short_crt && crt->inputdatalength > 240) {
491 /*
492 * Check inputdata for leading zeros for cards
493 * that can't handle np_prime, bp_key, or
494 * u_mult_inv > 128 bytes.
495 */
496 if (copied == 0) {
497 unsigned int len;
498 spin_unlock_bh(&zcrypt_device_lock);
499 /* len is max 256 / 2 - 120 = 8
500 * For bigger device just assume len of leading
501 * 0s is 8 as stated in the requirements for
502 * ica_rsa_modexpo_crt struct in zcrypt.h.
503 */
504 if (crt->inputdatalength <= 256)
505 len = crt->inputdatalength / 2 - 120;
506 else
507 len = 8;
508 if (len > sizeof(z1))
509 return -EFAULT;
510 z1 = z2 = z3 = 0;
511 if (copy_from_user(&z1, crt->np_prime, len) ||
512 copy_from_user(&z2, crt->bp_key, len) ||
513 copy_from_user(&z3, crt->u_mult_inv, len))
514 return -EFAULT;
515 z1 = z2 = z3 = 0;
516 copied = 1;
517 /*
518 * We have to restart device lookup -
519 * the device list may have changed by now.
520 */
521 goto restart;
522 }
523 if (z1 != 0ULL || z2 != 0ULL || z3 != 0ULL)
524 /* The device can't handle this request. */
525 continue;
526 }
527 zcrypt_device_get(zdev);
528 get_device(&zdev->ap_dev->device);
529 zdev->request_count++;
530 __zcrypt_decrease_preference(zdev);
531 if (try_module_get(zdev->ap_dev->drv->driver.owner)) {
532 spin_unlock_bh(&zcrypt_device_lock);
533 rc = zdev->ops->rsa_modexpo_crt(zdev, crt);
534 spin_lock_bh(&zcrypt_device_lock);
535 module_put(zdev->ap_dev->drv->driver.owner);
536 }
537 else
538 rc = -EAGAIN;
539 zdev->request_count--;
540 __zcrypt_increase_preference(zdev);
541 put_device(&zdev->ap_dev->device);
542 zcrypt_device_put(zdev);
543 spin_unlock_bh(&zcrypt_device_lock);
544 return rc;
545 }
546 spin_unlock_bh(&zcrypt_device_lock);
547 return -ENODEV;
548 }
549
zcrypt_send_cprb(struct ica_xcRB * xcRB)550 static long zcrypt_send_cprb(struct ica_xcRB *xcRB)
551 {
552 struct zcrypt_device *zdev;
553 int rc;
554
555 spin_lock_bh(&zcrypt_device_lock);
556 list_for_each_entry(zdev, &zcrypt_device_list, list) {
557 if (!zdev->online || !zdev->ops->send_cprb ||
558 (zdev->ops->variant == MSGTYPE06_VARIANT_EP11) ||
559 (xcRB->user_defined != AUTOSELECT &&
560 AP_QID_DEVICE(zdev->ap_dev->qid) != xcRB->user_defined))
561 continue;
562 zcrypt_device_get(zdev);
563 get_device(&zdev->ap_dev->device);
564 zdev->request_count++;
565 __zcrypt_decrease_preference(zdev);
566 if (try_module_get(zdev->ap_dev->drv->driver.owner)) {
567 spin_unlock_bh(&zcrypt_device_lock);
568 rc = zdev->ops->send_cprb(zdev, xcRB);
569 spin_lock_bh(&zcrypt_device_lock);
570 module_put(zdev->ap_dev->drv->driver.owner);
571 }
572 else
573 rc = -EAGAIN;
574 zdev->request_count--;
575 __zcrypt_increase_preference(zdev);
576 put_device(&zdev->ap_dev->device);
577 zcrypt_device_put(zdev);
578 spin_unlock_bh(&zcrypt_device_lock);
579 return rc;
580 }
581 spin_unlock_bh(&zcrypt_device_lock);
582 return -ENODEV;
583 }
584
585 struct ep11_target_dev_list {
586 unsigned short targets_num;
587 struct ep11_target_dev *targets;
588 };
589
is_desired_ep11dev(unsigned int dev_qid,struct ep11_target_dev_list dev_list)590 static bool is_desired_ep11dev(unsigned int dev_qid,
591 struct ep11_target_dev_list dev_list)
592 {
593 int n;
594
595 for (n = 0; n < dev_list.targets_num; n++, dev_list.targets++) {
596 if ((AP_QID_DEVICE(dev_qid) == dev_list.targets->ap_id) &&
597 (AP_QID_QUEUE(dev_qid) == dev_list.targets->dom_id)) {
598 return true;
599 }
600 }
601 return false;
602 }
603
zcrypt_send_ep11_cprb(struct ep11_urb * xcrb)604 static long zcrypt_send_ep11_cprb(struct ep11_urb *xcrb)
605 {
606 struct zcrypt_device *zdev;
607 bool autoselect = false;
608 int rc;
609 struct ep11_target_dev_list ep11_dev_list = {
610 .targets_num = 0x00,
611 .targets = NULL,
612 };
613
614 ep11_dev_list.targets_num = (unsigned short) xcrb->targets_num;
615
616 /* empty list indicates autoselect (all available targets) */
617 if (ep11_dev_list.targets_num == 0)
618 autoselect = true;
619 else {
620 ep11_dev_list.targets = kcalloc((unsigned short)
621 xcrb->targets_num,
622 sizeof(struct ep11_target_dev),
623 GFP_KERNEL);
624 if (!ep11_dev_list.targets)
625 return -ENOMEM;
626
627 if (copy_from_user(ep11_dev_list.targets,
628 (struct ep11_target_dev __force __user *)
629 xcrb->targets, xcrb->targets_num *
630 sizeof(struct ep11_target_dev)))
631 return -EFAULT;
632 }
633
634 spin_lock_bh(&zcrypt_device_lock);
635 list_for_each_entry(zdev, &zcrypt_device_list, list) {
636 /* check if device is eligible */
637 if (!zdev->online ||
638 zdev->ops->variant != MSGTYPE06_VARIANT_EP11)
639 continue;
640
641 /* check if device is selected as valid target */
642 if (!is_desired_ep11dev(zdev->ap_dev->qid, ep11_dev_list) &&
643 !autoselect)
644 continue;
645
646 zcrypt_device_get(zdev);
647 get_device(&zdev->ap_dev->device);
648 zdev->request_count++;
649 __zcrypt_decrease_preference(zdev);
650 if (try_module_get(zdev->ap_dev->drv->driver.owner)) {
651 spin_unlock_bh(&zcrypt_device_lock);
652 rc = zdev->ops->send_ep11_cprb(zdev, xcrb);
653 spin_lock_bh(&zcrypt_device_lock);
654 module_put(zdev->ap_dev->drv->driver.owner);
655 } else {
656 rc = -EAGAIN;
657 }
658 zdev->request_count--;
659 __zcrypt_increase_preference(zdev);
660 put_device(&zdev->ap_dev->device);
661 zcrypt_device_put(zdev);
662 spin_unlock_bh(&zcrypt_device_lock);
663 return rc;
664 }
665 spin_unlock_bh(&zcrypt_device_lock);
666 return -ENODEV;
667 }
668
zcrypt_rng(char * buffer)669 static long zcrypt_rng(char *buffer)
670 {
671 struct zcrypt_device *zdev;
672 int rc;
673
674 spin_lock_bh(&zcrypt_device_lock);
675 list_for_each_entry(zdev, &zcrypt_device_list, list) {
676 if (!zdev->online || !zdev->ops->rng)
677 continue;
678 zcrypt_device_get(zdev);
679 get_device(&zdev->ap_dev->device);
680 zdev->request_count++;
681 __zcrypt_decrease_preference(zdev);
682 if (try_module_get(zdev->ap_dev->drv->driver.owner)) {
683 spin_unlock_bh(&zcrypt_device_lock);
684 rc = zdev->ops->rng(zdev, buffer);
685 spin_lock_bh(&zcrypt_device_lock);
686 module_put(zdev->ap_dev->drv->driver.owner);
687 } else
688 rc = -EAGAIN;
689 zdev->request_count--;
690 __zcrypt_increase_preference(zdev);
691 put_device(&zdev->ap_dev->device);
692 zcrypt_device_put(zdev);
693 spin_unlock_bh(&zcrypt_device_lock);
694 return rc;
695 }
696 spin_unlock_bh(&zcrypt_device_lock);
697 return -ENODEV;
698 }
699
zcrypt_status_mask(char status[AP_DEVICES])700 static void zcrypt_status_mask(char status[AP_DEVICES])
701 {
702 struct zcrypt_device *zdev;
703
704 memset(status, 0, sizeof(char) * AP_DEVICES);
705 spin_lock_bh(&zcrypt_device_lock);
706 list_for_each_entry(zdev, &zcrypt_device_list, list)
707 status[AP_QID_DEVICE(zdev->ap_dev->qid)] =
708 zdev->online ? zdev->user_space_type : 0x0d;
709 spin_unlock_bh(&zcrypt_device_lock);
710 }
711
zcrypt_qdepth_mask(char qdepth[AP_DEVICES])712 static void zcrypt_qdepth_mask(char qdepth[AP_DEVICES])
713 {
714 struct zcrypt_device *zdev;
715
716 memset(qdepth, 0, sizeof(char) * AP_DEVICES);
717 spin_lock_bh(&zcrypt_device_lock);
718 list_for_each_entry(zdev, &zcrypt_device_list, list) {
719 spin_lock(&zdev->ap_dev->lock);
720 qdepth[AP_QID_DEVICE(zdev->ap_dev->qid)] =
721 zdev->ap_dev->pendingq_count +
722 zdev->ap_dev->requestq_count;
723 spin_unlock(&zdev->ap_dev->lock);
724 }
725 spin_unlock_bh(&zcrypt_device_lock);
726 }
727
zcrypt_perdev_reqcnt(int reqcnt[AP_DEVICES])728 static void zcrypt_perdev_reqcnt(int reqcnt[AP_DEVICES])
729 {
730 struct zcrypt_device *zdev;
731
732 memset(reqcnt, 0, sizeof(int) * AP_DEVICES);
733 spin_lock_bh(&zcrypt_device_lock);
734 list_for_each_entry(zdev, &zcrypt_device_list, list) {
735 spin_lock(&zdev->ap_dev->lock);
736 reqcnt[AP_QID_DEVICE(zdev->ap_dev->qid)] =
737 zdev->ap_dev->total_request_count;
738 spin_unlock(&zdev->ap_dev->lock);
739 }
740 spin_unlock_bh(&zcrypt_device_lock);
741 }
742
zcrypt_pendingq_count(void)743 static int zcrypt_pendingq_count(void)
744 {
745 struct zcrypt_device *zdev;
746 int pendingq_count = 0;
747
748 spin_lock_bh(&zcrypt_device_lock);
749 list_for_each_entry(zdev, &zcrypt_device_list, list) {
750 spin_lock(&zdev->ap_dev->lock);
751 pendingq_count += zdev->ap_dev->pendingq_count;
752 spin_unlock(&zdev->ap_dev->lock);
753 }
754 spin_unlock_bh(&zcrypt_device_lock);
755 return pendingq_count;
756 }
757
zcrypt_requestq_count(void)758 static int zcrypt_requestq_count(void)
759 {
760 struct zcrypt_device *zdev;
761 int requestq_count = 0;
762
763 spin_lock_bh(&zcrypt_device_lock);
764 list_for_each_entry(zdev, &zcrypt_device_list, list) {
765 spin_lock(&zdev->ap_dev->lock);
766 requestq_count += zdev->ap_dev->requestq_count;
767 spin_unlock(&zdev->ap_dev->lock);
768 }
769 spin_unlock_bh(&zcrypt_device_lock);
770 return requestq_count;
771 }
772
zcrypt_count_type(int type)773 static int zcrypt_count_type(int type)
774 {
775 struct zcrypt_device *zdev;
776 int device_count = 0;
777
778 spin_lock_bh(&zcrypt_device_lock);
779 list_for_each_entry(zdev, &zcrypt_device_list, list)
780 if (zdev->user_space_type == type)
781 device_count++;
782 spin_unlock_bh(&zcrypt_device_lock);
783 return device_count;
784 }
785
786 /**
787 * zcrypt_ica_status(): Old, depracted combi status call.
788 *
789 * Old, deprecated combi status call.
790 */
zcrypt_ica_status(struct file * filp,unsigned long arg)791 static long zcrypt_ica_status(struct file *filp, unsigned long arg)
792 {
793 struct ica_z90_status *pstat;
794 int ret;
795
796 pstat = kzalloc(sizeof(*pstat), GFP_KERNEL);
797 if (!pstat)
798 return -ENOMEM;
799 pstat->totalcount = zcrypt_device_count;
800 pstat->leedslitecount = zcrypt_count_type(ZCRYPT_PCICA);
801 pstat->leeds2count = zcrypt_count_type(ZCRYPT_PCICC);
802 pstat->requestqWaitCount = zcrypt_requestq_count();
803 pstat->pendingqWaitCount = zcrypt_pendingq_count();
804 pstat->totalOpenCount = atomic_read(&zcrypt_open_count);
805 pstat->cryptoDomain = ap_domain_index;
806 zcrypt_status_mask(pstat->status);
807 zcrypt_qdepth_mask(pstat->qdepth);
808 ret = 0;
809 if (copy_to_user((void __user *) arg, pstat, sizeof(*pstat)))
810 ret = -EFAULT;
811 kfree(pstat);
812 return ret;
813 }
814
zcrypt_unlocked_ioctl(struct file * filp,unsigned int cmd,unsigned long arg)815 static long zcrypt_unlocked_ioctl(struct file *filp, unsigned int cmd,
816 unsigned long arg)
817 {
818 int rc;
819
820 switch (cmd) {
821 case ICARSAMODEXPO: {
822 struct ica_rsa_modexpo __user *umex = (void __user *) arg;
823 struct ica_rsa_modexpo mex;
824 if (copy_from_user(&mex, umex, sizeof(mex)))
825 return -EFAULT;
826 do {
827 rc = zcrypt_rsa_modexpo(&mex);
828 } while (rc == -EAGAIN);
829 /* on failure: retry once again after a requested rescan */
830 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
831 do {
832 rc = zcrypt_rsa_modexpo(&mex);
833 } while (rc == -EAGAIN);
834 if (rc)
835 return rc;
836 return put_user(mex.outputdatalength, &umex->outputdatalength);
837 }
838 case ICARSACRT: {
839 struct ica_rsa_modexpo_crt __user *ucrt = (void __user *) arg;
840 struct ica_rsa_modexpo_crt crt;
841 if (copy_from_user(&crt, ucrt, sizeof(crt)))
842 return -EFAULT;
843 do {
844 rc = zcrypt_rsa_crt(&crt);
845 } while (rc == -EAGAIN);
846 /* on failure: retry once again after a requested rescan */
847 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
848 do {
849 rc = zcrypt_rsa_crt(&crt);
850 } while (rc == -EAGAIN);
851 if (rc)
852 return rc;
853 return put_user(crt.outputdatalength, &ucrt->outputdatalength);
854 }
855 case ZSECSENDCPRB: {
856 struct ica_xcRB __user *uxcRB = (void __user *) arg;
857 struct ica_xcRB xcRB;
858 if (copy_from_user(&xcRB, uxcRB, sizeof(xcRB)))
859 return -EFAULT;
860 do {
861 rc = zcrypt_send_cprb(&xcRB);
862 } while (rc == -EAGAIN);
863 /* on failure: retry once again after a requested rescan */
864 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
865 do {
866 rc = zcrypt_send_cprb(&xcRB);
867 } while (rc == -EAGAIN);
868 if (copy_to_user(uxcRB, &xcRB, sizeof(xcRB)))
869 return -EFAULT;
870 return rc;
871 }
872 case ZSENDEP11CPRB: {
873 struct ep11_urb __user *uxcrb = (void __user *)arg;
874 struct ep11_urb xcrb;
875 if (copy_from_user(&xcrb, uxcrb, sizeof(xcrb)))
876 return -EFAULT;
877 do {
878 rc = zcrypt_send_ep11_cprb(&xcrb);
879 } while (rc == -EAGAIN);
880 /* on failure: retry once again after a requested rescan */
881 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
882 do {
883 rc = zcrypt_send_ep11_cprb(&xcrb);
884 } while (rc == -EAGAIN);
885 if (copy_to_user(uxcrb, &xcrb, sizeof(xcrb)))
886 return -EFAULT;
887 return rc;
888 }
889 case Z90STAT_STATUS_MASK: {
890 char status[AP_DEVICES];
891 zcrypt_status_mask(status);
892 if (copy_to_user((char __user *) arg, status,
893 sizeof(char) * AP_DEVICES))
894 return -EFAULT;
895 return 0;
896 }
897 case Z90STAT_QDEPTH_MASK: {
898 char qdepth[AP_DEVICES];
899 zcrypt_qdepth_mask(qdepth);
900 if (copy_to_user((char __user *) arg, qdepth,
901 sizeof(char) * AP_DEVICES))
902 return -EFAULT;
903 return 0;
904 }
905 case Z90STAT_PERDEV_REQCNT: {
906 int reqcnt[AP_DEVICES];
907 zcrypt_perdev_reqcnt(reqcnt);
908 if (copy_to_user((int __user *) arg, reqcnt,
909 sizeof(int) * AP_DEVICES))
910 return -EFAULT;
911 return 0;
912 }
913 case Z90STAT_REQUESTQ_COUNT:
914 return put_user(zcrypt_requestq_count(), (int __user *) arg);
915 case Z90STAT_PENDINGQ_COUNT:
916 return put_user(zcrypt_pendingq_count(), (int __user *) arg);
917 case Z90STAT_TOTALOPEN_COUNT:
918 return put_user(atomic_read(&zcrypt_open_count),
919 (int __user *) arg);
920 case Z90STAT_DOMAIN_INDEX:
921 return put_user(ap_domain_index, (int __user *) arg);
922 /*
923 * Deprecated ioctls. Don't add another device count ioctl,
924 * you can count them yourself in the user space with the
925 * output of the Z90STAT_STATUS_MASK ioctl.
926 */
927 case ICAZ90STATUS:
928 return zcrypt_ica_status(filp, arg);
929 case Z90STAT_TOTALCOUNT:
930 return put_user(zcrypt_device_count, (int __user *) arg);
931 case Z90STAT_PCICACOUNT:
932 return put_user(zcrypt_count_type(ZCRYPT_PCICA),
933 (int __user *) arg);
934 case Z90STAT_PCICCCOUNT:
935 return put_user(zcrypt_count_type(ZCRYPT_PCICC),
936 (int __user *) arg);
937 case Z90STAT_PCIXCCMCL2COUNT:
938 return put_user(zcrypt_count_type(ZCRYPT_PCIXCC_MCL2),
939 (int __user *) arg);
940 case Z90STAT_PCIXCCMCL3COUNT:
941 return put_user(zcrypt_count_type(ZCRYPT_PCIXCC_MCL3),
942 (int __user *) arg);
943 case Z90STAT_PCIXCCCOUNT:
944 return put_user(zcrypt_count_type(ZCRYPT_PCIXCC_MCL2) +
945 zcrypt_count_type(ZCRYPT_PCIXCC_MCL3),
946 (int __user *) arg);
947 case Z90STAT_CEX2CCOUNT:
948 return put_user(zcrypt_count_type(ZCRYPT_CEX2C),
949 (int __user *) arg);
950 case Z90STAT_CEX2ACOUNT:
951 return put_user(zcrypt_count_type(ZCRYPT_CEX2A),
952 (int __user *) arg);
953 default:
954 /* unknown ioctl number */
955 return -ENOIOCTLCMD;
956 }
957 }
958
959 #ifdef CONFIG_COMPAT
960 /*
961 * ioctl32 conversion routines
962 */
963 struct compat_ica_rsa_modexpo {
964 compat_uptr_t inputdata;
965 unsigned int inputdatalength;
966 compat_uptr_t outputdata;
967 unsigned int outputdatalength;
968 compat_uptr_t b_key;
969 compat_uptr_t n_modulus;
970 };
971
trans_modexpo32(struct file * filp,unsigned int cmd,unsigned long arg)972 static long trans_modexpo32(struct file *filp, unsigned int cmd,
973 unsigned long arg)
974 {
975 struct compat_ica_rsa_modexpo __user *umex32 = compat_ptr(arg);
976 struct compat_ica_rsa_modexpo mex32;
977 struct ica_rsa_modexpo mex64;
978 long rc;
979
980 if (copy_from_user(&mex32, umex32, sizeof(mex32)))
981 return -EFAULT;
982 mex64.inputdata = compat_ptr(mex32.inputdata);
983 mex64.inputdatalength = mex32.inputdatalength;
984 mex64.outputdata = compat_ptr(mex32.outputdata);
985 mex64.outputdatalength = mex32.outputdatalength;
986 mex64.b_key = compat_ptr(mex32.b_key);
987 mex64.n_modulus = compat_ptr(mex32.n_modulus);
988 do {
989 rc = zcrypt_rsa_modexpo(&mex64);
990 } while (rc == -EAGAIN);
991 /* on failure: retry once again after a requested rescan */
992 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
993 do {
994 rc = zcrypt_rsa_modexpo(&mex64);
995 } while (rc == -EAGAIN);
996 if (rc)
997 return rc;
998 return put_user(mex64.outputdatalength,
999 &umex32->outputdatalength);
1000 }
1001
1002 struct compat_ica_rsa_modexpo_crt {
1003 compat_uptr_t inputdata;
1004 unsigned int inputdatalength;
1005 compat_uptr_t outputdata;
1006 unsigned int outputdatalength;
1007 compat_uptr_t bp_key;
1008 compat_uptr_t bq_key;
1009 compat_uptr_t np_prime;
1010 compat_uptr_t nq_prime;
1011 compat_uptr_t u_mult_inv;
1012 };
1013
trans_modexpo_crt32(struct file * filp,unsigned int cmd,unsigned long arg)1014 static long trans_modexpo_crt32(struct file *filp, unsigned int cmd,
1015 unsigned long arg)
1016 {
1017 struct compat_ica_rsa_modexpo_crt __user *ucrt32 = compat_ptr(arg);
1018 struct compat_ica_rsa_modexpo_crt crt32;
1019 struct ica_rsa_modexpo_crt crt64;
1020 long rc;
1021
1022 if (copy_from_user(&crt32, ucrt32, sizeof(crt32)))
1023 return -EFAULT;
1024 crt64.inputdata = compat_ptr(crt32.inputdata);
1025 crt64.inputdatalength = crt32.inputdatalength;
1026 crt64.outputdata= compat_ptr(crt32.outputdata);
1027 crt64.outputdatalength = crt32.outputdatalength;
1028 crt64.bp_key = compat_ptr(crt32.bp_key);
1029 crt64.bq_key = compat_ptr(crt32.bq_key);
1030 crt64.np_prime = compat_ptr(crt32.np_prime);
1031 crt64.nq_prime = compat_ptr(crt32.nq_prime);
1032 crt64.u_mult_inv = compat_ptr(crt32.u_mult_inv);
1033 do {
1034 rc = zcrypt_rsa_crt(&crt64);
1035 } while (rc == -EAGAIN);
1036 /* on failure: retry once again after a requested rescan */
1037 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
1038 do {
1039 rc = zcrypt_rsa_crt(&crt64);
1040 } while (rc == -EAGAIN);
1041 if (rc)
1042 return rc;
1043 return put_user(crt64.outputdatalength,
1044 &ucrt32->outputdatalength);
1045 }
1046
1047 struct compat_ica_xcRB {
1048 unsigned short agent_ID;
1049 unsigned int user_defined;
1050 unsigned short request_ID;
1051 unsigned int request_control_blk_length;
1052 unsigned char padding1[16 - sizeof (compat_uptr_t)];
1053 compat_uptr_t request_control_blk_addr;
1054 unsigned int request_data_length;
1055 char padding2[16 - sizeof (compat_uptr_t)];
1056 compat_uptr_t request_data_address;
1057 unsigned int reply_control_blk_length;
1058 char padding3[16 - sizeof (compat_uptr_t)];
1059 compat_uptr_t reply_control_blk_addr;
1060 unsigned int reply_data_length;
1061 char padding4[16 - sizeof (compat_uptr_t)];
1062 compat_uptr_t reply_data_addr;
1063 unsigned short priority_window;
1064 unsigned int status;
1065 } __attribute__((packed));
1066
trans_xcRB32(struct file * filp,unsigned int cmd,unsigned long arg)1067 static long trans_xcRB32(struct file *filp, unsigned int cmd,
1068 unsigned long arg)
1069 {
1070 struct compat_ica_xcRB __user *uxcRB32 = compat_ptr(arg);
1071 struct compat_ica_xcRB xcRB32;
1072 struct ica_xcRB xcRB64;
1073 long rc;
1074
1075 if (copy_from_user(&xcRB32, uxcRB32, sizeof(xcRB32)))
1076 return -EFAULT;
1077 xcRB64.agent_ID = xcRB32.agent_ID;
1078 xcRB64.user_defined = xcRB32.user_defined;
1079 xcRB64.request_ID = xcRB32.request_ID;
1080 xcRB64.request_control_blk_length =
1081 xcRB32.request_control_blk_length;
1082 xcRB64.request_control_blk_addr =
1083 compat_ptr(xcRB32.request_control_blk_addr);
1084 xcRB64.request_data_length =
1085 xcRB32.request_data_length;
1086 xcRB64.request_data_address =
1087 compat_ptr(xcRB32.request_data_address);
1088 xcRB64.reply_control_blk_length =
1089 xcRB32.reply_control_blk_length;
1090 xcRB64.reply_control_blk_addr =
1091 compat_ptr(xcRB32.reply_control_blk_addr);
1092 xcRB64.reply_data_length = xcRB32.reply_data_length;
1093 xcRB64.reply_data_addr =
1094 compat_ptr(xcRB32.reply_data_addr);
1095 xcRB64.priority_window = xcRB32.priority_window;
1096 xcRB64.status = xcRB32.status;
1097 do {
1098 rc = zcrypt_send_cprb(&xcRB64);
1099 } while (rc == -EAGAIN);
1100 /* on failure: retry once again after a requested rescan */
1101 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
1102 do {
1103 rc = zcrypt_send_cprb(&xcRB64);
1104 } while (rc == -EAGAIN);
1105 xcRB32.reply_control_blk_length = xcRB64.reply_control_blk_length;
1106 xcRB32.reply_data_length = xcRB64.reply_data_length;
1107 xcRB32.status = xcRB64.status;
1108 if (copy_to_user(uxcRB32, &xcRB32, sizeof(xcRB32)))
1109 return -EFAULT;
1110 return rc;
1111 }
1112
zcrypt_compat_ioctl(struct file * filp,unsigned int cmd,unsigned long arg)1113 static long zcrypt_compat_ioctl(struct file *filp, unsigned int cmd,
1114 unsigned long arg)
1115 {
1116 if (cmd == ICARSAMODEXPO)
1117 return trans_modexpo32(filp, cmd, arg);
1118 if (cmd == ICARSACRT)
1119 return trans_modexpo_crt32(filp, cmd, arg);
1120 if (cmd == ZSECSENDCPRB)
1121 return trans_xcRB32(filp, cmd, arg);
1122 return zcrypt_unlocked_ioctl(filp, cmd, arg);
1123 }
1124 #endif
1125
1126 /*
1127 * Misc device file operations.
1128 */
1129 static const struct file_operations zcrypt_fops = {
1130 .owner = THIS_MODULE,
1131 .read = zcrypt_read,
1132 .write = zcrypt_write,
1133 .unlocked_ioctl = zcrypt_unlocked_ioctl,
1134 #ifdef CONFIG_COMPAT
1135 .compat_ioctl = zcrypt_compat_ioctl,
1136 #endif
1137 .open = zcrypt_open,
1138 .release = zcrypt_release,
1139 .llseek = no_llseek,
1140 };
1141
1142 /*
1143 * Misc device.
1144 */
1145 static struct miscdevice zcrypt_misc_device = {
1146 .minor = MISC_DYNAMIC_MINOR,
1147 .name = "z90crypt",
1148 .fops = &zcrypt_fops,
1149 };
1150
1151 /*
1152 * Deprecated /proc entry support.
1153 */
1154 static struct proc_dir_entry *zcrypt_entry;
1155
sprintcl(struct seq_file * m,unsigned char * addr,unsigned int len)1156 static void sprintcl(struct seq_file *m, unsigned char *addr, unsigned int len)
1157 {
1158 int i;
1159
1160 for (i = 0; i < len; i++)
1161 seq_printf(m, "%01x", (unsigned int) addr[i]);
1162 seq_putc(m, ' ');
1163 }
1164
sprintrw(struct seq_file * m,unsigned char * addr,unsigned int len)1165 static void sprintrw(struct seq_file *m, unsigned char *addr, unsigned int len)
1166 {
1167 int inl, c, cx;
1168
1169 seq_printf(m, " ");
1170 inl = 0;
1171 for (c = 0; c < (len / 16); c++) {
1172 sprintcl(m, addr+inl, 16);
1173 inl += 16;
1174 }
1175 cx = len%16;
1176 if (cx) {
1177 sprintcl(m, addr+inl, cx);
1178 inl += cx;
1179 }
1180 seq_putc(m, '\n');
1181 }
1182
sprinthx(unsigned char * title,struct seq_file * m,unsigned char * addr,unsigned int len)1183 static void sprinthx(unsigned char *title, struct seq_file *m,
1184 unsigned char *addr, unsigned int len)
1185 {
1186 int inl, r, rx;
1187
1188 seq_printf(m, "\n%s\n", title);
1189 inl = 0;
1190 for (r = 0; r < (len / 64); r++) {
1191 sprintrw(m, addr+inl, 64);
1192 inl += 64;
1193 }
1194 rx = len % 64;
1195 if (rx) {
1196 sprintrw(m, addr+inl, rx);
1197 inl += rx;
1198 }
1199 seq_putc(m, '\n');
1200 }
1201
sprinthx4(unsigned char * title,struct seq_file * m,unsigned int * array,unsigned int len)1202 static void sprinthx4(unsigned char *title, struct seq_file *m,
1203 unsigned int *array, unsigned int len)
1204 {
1205 int r;
1206
1207 seq_printf(m, "\n%s\n", title);
1208 for (r = 0; r < len; r++) {
1209 if ((r % 8) == 0)
1210 seq_printf(m, " ");
1211 seq_printf(m, "%08X ", array[r]);
1212 if ((r % 8) == 7)
1213 seq_putc(m, '\n');
1214 }
1215 seq_putc(m, '\n');
1216 }
1217
zcrypt_proc_show(struct seq_file * m,void * v)1218 static int zcrypt_proc_show(struct seq_file *m, void *v)
1219 {
1220 char workarea[sizeof(int) * AP_DEVICES];
1221
1222 seq_printf(m, "\nzcrypt version: %d.%d.%d\n",
1223 ZCRYPT_VERSION, ZCRYPT_RELEASE, ZCRYPT_VARIANT);
1224 seq_printf(m, "Cryptographic domain: %d\n", ap_domain_index);
1225 seq_printf(m, "Total device count: %d\n", zcrypt_device_count);
1226 seq_printf(m, "PCICA count: %d\n", zcrypt_count_type(ZCRYPT_PCICA));
1227 seq_printf(m, "PCICC count: %d\n", zcrypt_count_type(ZCRYPT_PCICC));
1228 seq_printf(m, "PCIXCC MCL2 count: %d\n",
1229 zcrypt_count_type(ZCRYPT_PCIXCC_MCL2));
1230 seq_printf(m, "PCIXCC MCL3 count: %d\n",
1231 zcrypt_count_type(ZCRYPT_PCIXCC_MCL3));
1232 seq_printf(m, "CEX2C count: %d\n", zcrypt_count_type(ZCRYPT_CEX2C));
1233 seq_printf(m, "CEX2A count: %d\n", zcrypt_count_type(ZCRYPT_CEX2A));
1234 seq_printf(m, "CEX3C count: %d\n", zcrypt_count_type(ZCRYPT_CEX3C));
1235 seq_printf(m, "CEX3A count: %d\n", zcrypt_count_type(ZCRYPT_CEX3A));
1236 seq_printf(m, "requestq count: %d\n", zcrypt_requestq_count());
1237 seq_printf(m, "pendingq count: %d\n", zcrypt_pendingq_count());
1238 seq_printf(m, "Total open handles: %d\n\n",
1239 atomic_read(&zcrypt_open_count));
1240 zcrypt_status_mask(workarea);
1241 sprinthx("Online devices: 1=PCICA 2=PCICC 3=PCIXCC(MCL2) "
1242 "4=PCIXCC(MCL3) 5=CEX2C 6=CEX2A 7=CEX3C 8=CEX3A",
1243 m, workarea, AP_DEVICES);
1244 zcrypt_qdepth_mask(workarea);
1245 sprinthx("Waiting work element counts", m, workarea, AP_DEVICES);
1246 zcrypt_perdev_reqcnt((int *) workarea);
1247 sprinthx4("Per-device successfully completed request counts",
1248 m, (unsigned int *) workarea, AP_DEVICES);
1249 return 0;
1250 }
1251
zcrypt_proc_open(struct inode * inode,struct file * file)1252 static int zcrypt_proc_open(struct inode *inode, struct file *file)
1253 {
1254 return single_open(file, zcrypt_proc_show, NULL);
1255 }
1256
zcrypt_disable_card(int index)1257 static void zcrypt_disable_card(int index)
1258 {
1259 struct zcrypt_device *zdev;
1260
1261 spin_lock_bh(&zcrypt_device_lock);
1262 list_for_each_entry(zdev, &zcrypt_device_list, list)
1263 if (AP_QID_DEVICE(zdev->ap_dev->qid) == index) {
1264 zdev->online = 0;
1265 ap_flush_queue(zdev->ap_dev);
1266 break;
1267 }
1268 spin_unlock_bh(&zcrypt_device_lock);
1269 }
1270
zcrypt_enable_card(int index)1271 static void zcrypt_enable_card(int index)
1272 {
1273 struct zcrypt_device *zdev;
1274
1275 spin_lock_bh(&zcrypt_device_lock);
1276 list_for_each_entry(zdev, &zcrypt_device_list, list)
1277 if (AP_QID_DEVICE(zdev->ap_dev->qid) == index) {
1278 zdev->online = 1;
1279 break;
1280 }
1281 spin_unlock_bh(&zcrypt_device_lock);
1282 }
1283
zcrypt_proc_write(struct file * file,const char __user * buffer,size_t count,loff_t * pos)1284 static ssize_t zcrypt_proc_write(struct file *file, const char __user *buffer,
1285 size_t count, loff_t *pos)
1286 {
1287 unsigned char *lbuf, *ptr;
1288 size_t local_count;
1289 int j;
1290
1291 if (count <= 0)
1292 return 0;
1293
1294 #define LBUFSIZE 1200UL
1295 lbuf = kmalloc(LBUFSIZE, GFP_KERNEL);
1296 if (!lbuf)
1297 return 0;
1298
1299 local_count = min(LBUFSIZE - 1, count);
1300 if (copy_from_user(lbuf, buffer, local_count) != 0) {
1301 kfree(lbuf);
1302 return -EFAULT;
1303 }
1304 lbuf[local_count] = '\0';
1305
1306 ptr = strstr(lbuf, "Online devices");
1307 if (!ptr)
1308 goto out;
1309 ptr = strstr(ptr, "\n");
1310 if (!ptr)
1311 goto out;
1312 ptr++;
1313
1314 if (strstr(ptr, "Waiting work element counts") == NULL)
1315 goto out;
1316
1317 for (j = 0; j < 64 && *ptr; ptr++) {
1318 /*
1319 * '0' for no device, '1' for PCICA, '2' for PCICC,
1320 * '3' for PCIXCC_MCL2, '4' for PCIXCC_MCL3,
1321 * '5' for CEX2C and '6' for CEX2A'
1322 * '7' for CEX3C and '8' for CEX3A
1323 */
1324 if (*ptr >= '0' && *ptr <= '8')
1325 j++;
1326 else if (*ptr == 'd' || *ptr == 'D')
1327 zcrypt_disable_card(j++);
1328 else if (*ptr == 'e' || *ptr == 'E')
1329 zcrypt_enable_card(j++);
1330 else if (*ptr != ' ' && *ptr != '\t')
1331 break;
1332 }
1333 out:
1334 kfree(lbuf);
1335 return count;
1336 }
1337
1338 static const struct file_operations zcrypt_proc_fops = {
1339 .owner = THIS_MODULE,
1340 .open = zcrypt_proc_open,
1341 .read = seq_read,
1342 .llseek = seq_lseek,
1343 .release = single_release,
1344 .write = zcrypt_proc_write,
1345 };
1346
1347 static int zcrypt_rng_device_count;
1348 static u32 *zcrypt_rng_buffer;
1349 static int zcrypt_rng_buffer_index;
1350 static DEFINE_MUTEX(zcrypt_rng_mutex);
1351
zcrypt_rng_data_read(struct hwrng * rng,u32 * data)1352 static int zcrypt_rng_data_read(struct hwrng *rng, u32 *data)
1353 {
1354 int rc;
1355
1356 /*
1357 * We don't need locking here because the RNG API guarantees serialized
1358 * read method calls.
1359 */
1360 if (zcrypt_rng_buffer_index == 0) {
1361 rc = zcrypt_rng((char *) zcrypt_rng_buffer);
1362 /* on failure: retry once again after a requested rescan */
1363 if ((rc == -ENODEV) && (zcrypt_process_rescan()))
1364 rc = zcrypt_rng((char *) zcrypt_rng_buffer);
1365 if (rc < 0)
1366 return -EIO;
1367 zcrypt_rng_buffer_index = rc / sizeof *data;
1368 }
1369 *data = zcrypt_rng_buffer[--zcrypt_rng_buffer_index];
1370 return sizeof *data;
1371 }
1372
1373 static struct hwrng zcrypt_rng_dev = {
1374 .name = "zcrypt",
1375 .data_read = zcrypt_rng_data_read,
1376 };
1377
zcrypt_rng_device_add(void)1378 static int zcrypt_rng_device_add(void)
1379 {
1380 int rc = 0;
1381
1382 mutex_lock(&zcrypt_rng_mutex);
1383 if (zcrypt_rng_device_count == 0) {
1384 zcrypt_rng_buffer = (u32 *) get_zeroed_page(GFP_KERNEL);
1385 if (!zcrypt_rng_buffer) {
1386 rc = -ENOMEM;
1387 goto out;
1388 }
1389 zcrypt_rng_buffer_index = 0;
1390 rc = hwrng_register(&zcrypt_rng_dev);
1391 if (rc)
1392 goto out_free;
1393 zcrypt_rng_device_count = 1;
1394 } else
1395 zcrypt_rng_device_count++;
1396 mutex_unlock(&zcrypt_rng_mutex);
1397 return 0;
1398
1399 out_free:
1400 free_page((unsigned long) zcrypt_rng_buffer);
1401 out:
1402 mutex_unlock(&zcrypt_rng_mutex);
1403 return rc;
1404 }
1405
zcrypt_rng_device_remove(void)1406 static void zcrypt_rng_device_remove(void)
1407 {
1408 mutex_lock(&zcrypt_rng_mutex);
1409 zcrypt_rng_device_count--;
1410 if (zcrypt_rng_device_count == 0) {
1411 hwrng_unregister(&zcrypt_rng_dev);
1412 free_page((unsigned long) zcrypt_rng_buffer);
1413 }
1414 mutex_unlock(&zcrypt_rng_mutex);
1415 }
1416
zcrypt_debug_init(void)1417 int __init zcrypt_debug_init(void)
1418 {
1419 debugfs_root = debugfs_create_dir("zcrypt", NULL);
1420
1421 zcrypt_dbf_common = debug_register("zcrypt_common", 1, 1, 16);
1422 debug_register_view(zcrypt_dbf_common, &debug_hex_ascii_view);
1423 debug_set_level(zcrypt_dbf_common, DBF_ERR);
1424
1425 zcrypt_dbf_devices = debug_register("zcrypt_devices", 1, 1, 16);
1426 debug_register_view(zcrypt_dbf_devices, &debug_hex_ascii_view);
1427 debug_set_level(zcrypt_dbf_devices, DBF_ERR);
1428
1429 return 0;
1430 }
1431
zcrypt_debug_exit(void)1432 void zcrypt_debug_exit(void)
1433 {
1434 debugfs_remove(debugfs_root);
1435 if (zcrypt_dbf_common)
1436 debug_unregister(zcrypt_dbf_common);
1437 if (zcrypt_dbf_devices)
1438 debug_unregister(zcrypt_dbf_devices);
1439 }
1440
1441 /**
1442 * zcrypt_api_init(): Module initialization.
1443 *
1444 * The module initialization code.
1445 */
zcrypt_api_init(void)1446 int __init zcrypt_api_init(void)
1447 {
1448 int rc;
1449
1450 rc = zcrypt_debug_init();
1451 if (rc)
1452 goto out;
1453
1454 atomic_set(&zcrypt_rescan_req, 0);
1455
1456 /* Register the request sprayer. */
1457 rc = misc_register(&zcrypt_misc_device);
1458 if (rc < 0)
1459 goto out;
1460
1461 /* Set up the proc file system */
1462 zcrypt_entry = proc_create("driver/z90crypt", 0644, NULL, &zcrypt_proc_fops);
1463 if (!zcrypt_entry) {
1464 rc = -ENOMEM;
1465 goto out_misc;
1466 }
1467
1468 return 0;
1469
1470 out_misc:
1471 misc_deregister(&zcrypt_misc_device);
1472 out:
1473 return rc;
1474 }
1475
1476 /**
1477 * zcrypt_api_exit(): Module termination.
1478 *
1479 * The module termination code.
1480 */
zcrypt_api_exit(void)1481 void zcrypt_api_exit(void)
1482 {
1483 remove_proc_entry("driver/z90crypt", NULL);
1484 misc_deregister(&zcrypt_misc_device);
1485 zcrypt_debug_exit();
1486 }
1487
1488 module_init(zcrypt_api_init);
1489 module_exit(zcrypt_api_exit);
1490