IgH EtherCAT Master  1.5.2
ioctl.c
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1 /******************************************************************************
2  *
3  * Copyright (C) 2006-2023 Florian Pose, Ingenieurgemeinschaft IgH
4  *
5  * This file is part of the IgH EtherCAT Master.
6  *
7  * The IgH EtherCAT Master is free software; you can redistribute it and/or
8  * modify it under the terms of the GNU General Public License version 2, as
9  * published by the Free Software Foundation.
10  *
11  * The IgH EtherCAT Master is distributed in the hope that it will be useful,
12  * but WITHOUT ANY WARRANTY; without even the implied warranty of
13  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General
14  * Public License for more details.
15  *
16  * You should have received a copy of the GNU General Public License along
17  * with the IgH EtherCAT Master; if not, write to the Free Software
18  * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
19  *
20  * ---
21  *
22  * The license mentioned above concerns the source code only. Using the
23  * EtherCAT technology and brand is only permitted in compliance with the
24  * industrial property and similar rights of Beckhoff Automation GmbH.
25  *
26  *****************************************************************************/
27 
33 /*****************************************************************************/
34 
35 #include <linux/module.h>
36 #include <linux/vmalloc.h>
37 
38 #include "master.h"
39 #include "slave_config.h"
40 #include "voe_handler.h"
41 #include "ethernet.h"
42 #include "ioctl.h"
43 
48 #define DEBUG_LATENCY 0
49 
52 #if 0
53 #define ATTRIBUTES __attribute__ ((__noinline__))
54 #else
55 #define ATTRIBUTES
56 #endif
57 
58 /*****************************************************************************/
59 
62 static void ec_ioctl_strcpy(
63  char *target,
64  const char *source
65  )
66 {
67  if (source) {
68  strncpy(target, source, EC_IOCTL_STRING_SIZE);
69  target[EC_IOCTL_STRING_SIZE - 1] = 0;
70  } else {
71  target[0] = 0;
72  }
73 }
74 
75 /*****************************************************************************/
76 
82  void *arg
83  )
84 {
85  ec_ioctl_module_t data;
86 
87  data.ioctl_version_magic = EC_IOCTL_VERSION_MAGIC;
88  data.master_count = ec_master_count();
89 
90  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
91  return -EFAULT;
92 
93  return 0;
94 }
95 
96 /*****************************************************************************/
97 
104  void *arg
105  )
106 {
107  ec_ioctl_master_t io;
108  unsigned int dev_idx, j;
109 
110  if (down_interruptible(&master->master_sem)) {
111  return -EINTR;
112  }
113 
114  io.slave_count = master->slave_count;
115  io.config_count = ec_master_config_count(master);
116  io.domain_count = ec_master_domain_count(master);
117 #ifdef EC_EOE
118  io.eoe_handler_count = ec_master_eoe_handler_count(master);
119 #else
120  io.eoe_handler_count = 0;
121 #endif
122  io.phase = (uint8_t) master->phase;
123  io.active = (uint8_t) master->active;
124  io.scan_busy = master->scan_busy;
125 
126  up(&master->master_sem);
127 
128  if (down_interruptible(&master->device_sem)) {
129  return -EINTR;
130  }
131 
132  for (dev_idx = EC_DEVICE_MAIN;
133  dev_idx < ec_master_num_devices(master); dev_idx++) {
134  ec_device_t *device = &master->devices[dev_idx];
135 
136  if (device->dev) {
137  memcpy(io.devices[dev_idx].address, device->dev->dev_addr,
138  ETH_ALEN);
139  } else {
140  memcpy(io.devices[dev_idx].address, master->macs[dev_idx],
141  ETH_ALEN);
142  }
143  io.devices[dev_idx].attached = device->dev ? 1 : 0;
144  io.devices[dev_idx].link_state = device->link_state ? 1 : 0;
145  io.devices[dev_idx].tx_count = device->tx_count;
146  io.devices[dev_idx].rx_count = device->rx_count;
147  io.devices[dev_idx].tx_bytes = device->tx_bytes;
148  io.devices[dev_idx].rx_bytes = device->rx_bytes;
149  io.devices[dev_idx].tx_errors = device->tx_errors;
150  for (j = 0; j < EC_RATE_COUNT; j++) {
151  io.devices[dev_idx].tx_frame_rates[j] =
152  device->tx_frame_rates[j];
153  io.devices[dev_idx].rx_frame_rates[j] =
154  device->rx_frame_rates[j];
155  io.devices[dev_idx].tx_byte_rates[j] =
156  device->tx_byte_rates[j];
157  io.devices[dev_idx].rx_byte_rates[j] =
158  device->rx_byte_rates[j];
159  }
160  }
161  io.num_devices = ec_master_num_devices(master);
162 
163  io.tx_count = master->device_stats.tx_count;
164  io.rx_count = master->device_stats.rx_count;
165  io.tx_bytes = master->device_stats.tx_bytes;
166  io.rx_bytes = master->device_stats.rx_bytes;
167  for (j = 0; j < EC_RATE_COUNT; j++) {
168  io.tx_frame_rates[j] =
170  io.rx_frame_rates[j] =
172  io.tx_byte_rates[j] =
174  io.rx_byte_rates[j] =
176  io.loss_rates[j] =
178  }
179 
180  up(&master->device_sem);
181 
182  io.app_time = master->app_time;
183  io.dc_ref_time = master->dc_ref_time;
184  io.ref_clock =
186 
187  if (copy_to_user((void __user *) arg, &io, sizeof(io))) {
188  return -EFAULT;
189  }
190 
191  return 0;
192 }
193 
194 /*****************************************************************************/
195 
202  void *arg
203  )
204 {
205  ec_ioctl_slave_t data;
206  const ec_slave_t *slave;
207  int i;
208 
209  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
210  return -EFAULT;
211  }
212 
213  if (down_interruptible(&master->master_sem))
214  return -EINTR;
215 
216  if (!(slave = ec_master_find_slave_const(
217  master, 0, data.position))) {
218  up(&master->master_sem);
219  EC_MASTER_ERR(master, "Slave %u does not exist!\n", data.position);
220  return -EINVAL;
221  }
222 
223  data.device_index = slave->device_index;
224  data.vendor_id = slave->sii.vendor_id;
225  data.product_code = slave->sii.product_code;
226  data.revision_number = slave->sii.revision_number;
227  data.serial_number = slave->sii.serial_number;
228  data.alias = slave->effective_alias;
229  data.boot_rx_mailbox_offset = slave->sii.boot_rx_mailbox_offset;
230  data.boot_rx_mailbox_size = slave->sii.boot_rx_mailbox_size;
231  data.boot_tx_mailbox_offset = slave->sii.boot_tx_mailbox_offset;
232  data.boot_tx_mailbox_size = slave->sii.boot_tx_mailbox_size;
233  data.std_rx_mailbox_offset = slave->sii.std_rx_mailbox_offset;
234  data.std_rx_mailbox_size = slave->sii.std_rx_mailbox_size;
235  data.std_tx_mailbox_offset = slave->sii.std_tx_mailbox_offset;
236  data.std_tx_mailbox_size = slave->sii.std_tx_mailbox_size;
237  data.mailbox_protocols = slave->sii.mailbox_protocols;
238  data.has_general_category = slave->sii.has_general;
239  data.coe_details = slave->sii.coe_details;
240  data.general_flags = slave->sii.general_flags;
241  data.current_on_ebus = slave->sii.current_on_ebus;
242  for (i = 0; i < EC_MAX_PORTS; i++) {
243  data.ports[i].desc = slave->ports[i].desc;
244  data.ports[i].link.link_up = slave->ports[i].link.link_up;
245  data.ports[i].link.loop_closed = slave->ports[i].link.loop_closed;
246  data.ports[i].link.signal_detected =
247  slave->ports[i].link.signal_detected;
248  data.ports[i].receive_time = slave->ports[i].receive_time;
249  if (slave->ports[i].next_slave) {
250  data.ports[i].next_slave =
251  slave->ports[i].next_slave->ring_position;
252  } else {
253  data.ports[i].next_slave = 0xffff;
254  }
255  data.ports[i].delay_to_next_dc = slave->ports[i].delay_to_next_dc;
256  }
257  data.fmmu_bit = slave->base_fmmu_bit_operation;
258  data.dc_supported = slave->base_dc_supported;
259  data.dc_range = slave->base_dc_range;
260  data.has_dc_system_time = slave->has_dc_system_time;
261  data.transmission_delay = slave->transmission_delay;
262  data.al_state = slave->current_state;
263  data.error_flag = slave->error_flag;
264 
265  data.sync_count = slave->sii.sync_count;
266  data.sdo_count = ec_slave_sdo_count(slave);
267  data.sii_nwords = slave->sii_nwords;
268  ec_ioctl_strcpy(data.group, slave->sii.group);
269  ec_ioctl_strcpy(data.image, slave->sii.image);
270  ec_ioctl_strcpy(data.order, slave->sii.order);
271  ec_ioctl_strcpy(data.name, slave->sii.name);
272 
273  up(&master->master_sem);
274 
275  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
276  return -EFAULT;
277 
278  return 0;
279 }
280 
281 /*****************************************************************************/
282 
289  void *arg
290  )
291 {
292  ec_ioctl_slave_sync_t data;
293  const ec_slave_t *slave;
294  const ec_sync_t *sync;
295 
296  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
297  return -EFAULT;
298  }
299 
300  if (down_interruptible(&master->master_sem))
301  return -EINTR;
302 
303  if (!(slave = ec_master_find_slave_const(
304  master, 0, data.slave_position))) {
305  up(&master->master_sem);
306  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
307  data.slave_position);
308  return -EINVAL;
309  }
310 
311  if (data.sync_index >= slave->sii.sync_count) {
312  up(&master->master_sem);
313  EC_SLAVE_ERR(slave, "Sync manager %u does not exist!\n",
314  data.sync_index);
315  return -EINVAL;
316  }
317 
318  sync = &slave->sii.syncs[data.sync_index];
319 
321  data.default_size = sync->default_length;
322  data.control_register = sync->control_register;
323  data.enable = sync->enable;
324  data.pdo_count = ec_pdo_list_count(&sync->pdos);
325 
326  up(&master->master_sem);
327 
328  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
329  return -EFAULT;
330 
331  return 0;
332 }
333 
334 /*****************************************************************************/
335 
342  void *arg
343  )
344 {
345  ec_ioctl_slave_sync_pdo_t data;
346  const ec_slave_t *slave;
347  const ec_sync_t *sync;
348  const ec_pdo_t *pdo;
349 
350  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
351  return -EFAULT;
352  }
353 
354  if (down_interruptible(&master->master_sem))
355  return -EINTR;
356 
357  if (!(slave = ec_master_find_slave_const(
358  master, 0, data.slave_position))) {
359  up(&master->master_sem);
360  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
361  data.slave_position);
362  return -EINVAL;
363  }
364 
365  if (data.sync_index >= slave->sii.sync_count) {
366  up(&master->master_sem);
367  EC_SLAVE_ERR(slave, "Sync manager %u does not exist!\n",
368  data.sync_index);
369  return -EINVAL;
370  }
371 
372  sync = &slave->sii.syncs[data.sync_index];
374  &sync->pdos, data.pdo_pos))) {
375  up(&master->master_sem);
376  EC_SLAVE_ERR(slave, "Sync manager %u does not contain a PDO with "
377  "position %u!\n", data.sync_index, data.pdo_pos);
378  return -EINVAL;
379  }
380 
381  data.index = pdo->index;
382  data.entry_count = ec_pdo_entry_count(pdo);
383  ec_ioctl_strcpy(data.name, pdo->name);
384 
385  up(&master->master_sem);
386 
387  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
388  return -EFAULT;
389 
390  return 0;
391 }
392 
393 /*****************************************************************************/
394 
401  void *arg
402  )
403 {
404  ec_ioctl_slave_sync_pdo_entry_t data;
405  const ec_slave_t *slave;
406  const ec_sync_t *sync;
407  const ec_pdo_t *pdo;
408  const ec_pdo_entry_t *entry;
409 
410  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
411  return -EFAULT;
412  }
413 
414  if (down_interruptible(&master->master_sem))
415  return -EINTR;
416 
417  if (!(slave = ec_master_find_slave_const(
418  master, 0, data.slave_position))) {
419  up(&master->master_sem);
420  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
421  data.slave_position);
422  return -EINVAL;
423  }
424 
425  if (data.sync_index >= slave->sii.sync_count) {
426  up(&master->master_sem);
427  EC_SLAVE_ERR(slave, "Sync manager %u does not exist!\n",
428  data.sync_index);
429  return -EINVAL;
430  }
431 
432  sync = &slave->sii.syncs[data.sync_index];
434  &sync->pdos, data.pdo_pos))) {
435  up(&master->master_sem);
436  EC_SLAVE_ERR(slave, "Sync manager %u does not contain a PDO with "
437  "position %u!\n", data.sync_index, data.pdo_pos);
438  return -EINVAL;
439  }
440 
441  if (!(entry = ec_pdo_find_entry_by_pos_const(
442  pdo, data.entry_pos))) {
443  up(&master->master_sem);
444  EC_SLAVE_ERR(slave, "PDO 0x%04X does not contain an entry with "
445  "position %u!\n", data.pdo_pos, data.entry_pos);
446  return -EINVAL;
447  }
448 
449  data.index = entry->index;
450  data.subindex = entry->subindex;
451  data.bit_length = entry->bit_length;
452  ec_ioctl_strcpy(data.name, entry->name);
453 
454  up(&master->master_sem);
455 
456  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
457  return -EFAULT;
458 
459  return 0;
460 }
461 
462 /*****************************************************************************/
463 
470  void *arg
471  )
472 {
473  ec_ioctl_domain_t data;
474  const ec_domain_t *domain;
475  unsigned int dev_idx;
476 
477  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
478  return -EFAULT;
479  }
480 
481  if (down_interruptible(&master->master_sem))
482  return -EINTR;
483 
484  if (!(domain = ec_master_find_domain_const(master, data.index))) {
485  up(&master->master_sem);
486  EC_MASTER_ERR(master, "Domain %u does not exist!\n", data.index);
487  return -EINVAL;
488  }
489 
490  data.data_size = domain->data_size;
491  data.logical_base_address = domain->logical_base_address;
492  for (dev_idx = EC_DEVICE_MAIN;
493  dev_idx < ec_master_num_devices(domain->master); dev_idx++) {
494  data.working_counter[dev_idx] = domain->working_counter[dev_idx];
495  }
496  data.expected_working_counter = domain->expected_working_counter;
497  data.fmmu_count = ec_domain_fmmu_count(domain);
498 
499  up(&master->master_sem);
500 
501  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
502  return -EFAULT;
503 
504  return 0;
505 }
506 
507 /*****************************************************************************/
508 
515  void *arg
516  )
517 {
518  ec_ioctl_domain_fmmu_t data;
519  const ec_domain_t *domain;
520  const ec_fmmu_config_t *fmmu;
521 
522  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
523  return -EFAULT;
524  }
525 
526  if (down_interruptible(&master->master_sem))
527  return -EINTR;
528 
529  if (!(domain = ec_master_find_domain_const(master, data.domain_index))) {
530  up(&master->master_sem);
531  EC_MASTER_ERR(master, "Domain %u does not exist!\n",
532  data.domain_index);
533  return -EINVAL;
534  }
535 
536  if (!(fmmu = ec_domain_find_fmmu(domain, data.fmmu_index))) {
537  up(&master->master_sem);
538  EC_MASTER_ERR(master, "Domain %u has less than %u"
539  " fmmu configurations.\n",
540  data.domain_index, data.fmmu_index + 1);
541  return -EINVAL;
542  }
543 
544  data.slave_config_alias = fmmu->sc->alias;
545  data.slave_config_position = fmmu->sc->position;
546  data.sync_index = fmmu->sync_index;
547  data.dir = fmmu->dir;
548  data.logical_address = fmmu->logical_start_address;
549  data.data_size = fmmu->data_size;
550 
551  up(&master->master_sem);
552 
553  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
554  return -EFAULT;
555 
556  return 0;
557 }
558 
559 /*****************************************************************************/
560 
567  void *arg
568  )
569 {
570  ec_ioctl_domain_data_t data;
571  const ec_domain_t *domain;
572 
573  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
574  return -EFAULT;
575  }
576 
577  if (down_interruptible(&master->master_sem))
578  return -EINTR;
579 
580  if (!(domain = ec_master_find_domain_const(master, data.domain_index))) {
581  up(&master->master_sem);
582  EC_MASTER_ERR(master, "Domain %u does not exist!\n",
583  data.domain_index);
584  return -EINVAL;
585  }
586 
587  if (domain->data_size != data.data_size) {
588  up(&master->master_sem);
589  EC_MASTER_ERR(master, "Data size mismatch %u/%zu!\n",
590  data.data_size, domain->data_size);
591  return -EFAULT;
592  }
593 
594  if (copy_to_user((void __user *) data.target, domain->data,
595  domain->data_size)) {
596  up(&master->master_sem);
597  return -EFAULT;
598  }
599 
600  up(&master->master_sem);
601  return 0;
602 }
603 
604 /*****************************************************************************/
605 
612  void *arg
613  )
614 {
615  return ec_master_debug_level(master, (unsigned long) arg);
616 }
617 
618 /*****************************************************************************/
619 
626  void *arg
627  )
628 {
630  return 0;
631 }
632 
633 /*****************************************************************************/
634 
641  void *arg
642  )
643 {
644  ec_ioctl_slave_state_t data;
645  ec_slave_t *slave;
646 
647  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
648  return -EFAULT;
649  }
650 
651  if (down_interruptible(&master->master_sem))
652  return -EINTR;
653 
654  if (!(slave = ec_master_find_slave(
655  master, 0, data.slave_position))) {
656  up(&master->master_sem);
657  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
658  data.slave_position);
659  return -EINVAL;
660  }
661 
662  ec_slave_request_state(slave, data.al_state);
663 
664  up(&master->master_sem);
665  return 0;
666 }
667 
668 /*****************************************************************************/
669 
676  void *arg
677  )
678 {
679  ec_ioctl_slave_sdo_t data;
680  const ec_slave_t *slave;
681  const ec_sdo_t *sdo;
682 
683  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
684  return -EFAULT;
685  }
686 
687  if (down_interruptible(&master->master_sem))
688  return -EINTR;
689 
690  if (!(slave = ec_master_find_slave_const(
691  master, 0, data.slave_position))) {
692  up(&master->master_sem);
693  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
694  data.slave_position);
695  return -EINVAL;
696  }
697 
698  if (!(sdo = ec_slave_get_sdo_by_pos_const(
699  slave, data.sdo_position))) {
700  up(&master->master_sem);
701  EC_SLAVE_ERR(slave, "SDO %u does not exist!\n", data.sdo_position);
702  return -EINVAL;
703  }
704 
705  data.sdo_index = sdo->index;
706  data.max_subindex = sdo->max_subindex;
707  ec_ioctl_strcpy(data.name, sdo->name);
708 
709  up(&master->master_sem);
710 
711  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
712  return -EFAULT;
713 
714  return 0;
715 }
716 
717 /*****************************************************************************/
718 
725  void *arg
726  )
727 {
728  ec_ioctl_slave_sdo_entry_t data;
729  const ec_slave_t *slave;
730  const ec_sdo_t *sdo;
731  const ec_sdo_entry_t *entry;
732 
733  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
734  return -EFAULT;
735  }
736 
737  if (down_interruptible(&master->master_sem))
738  return -EINTR;
739 
740  if (!(slave = ec_master_find_slave_const(
741  master, 0, data.slave_position))) {
742  up(&master->master_sem);
743  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
744  data.slave_position);
745  return -EINVAL;
746  }
747 
748  if (data.sdo_spec <= 0) {
749  if (!(sdo = ec_slave_get_sdo_by_pos_const(
750  slave, -data.sdo_spec))) {
751  up(&master->master_sem);
752  EC_SLAVE_ERR(slave, "SDO %u does not exist!\n", -data.sdo_spec);
753  return -EINVAL;
754  }
755  } else {
756  if (!(sdo = ec_slave_get_sdo_const(
757  slave, data.sdo_spec))) {
758  up(&master->master_sem);
759  EC_SLAVE_ERR(slave, "SDO 0x%04X does not exist!\n",
760  data.sdo_spec);
761  return -EINVAL;
762  }
763  }
764 
765  if (!(entry = ec_sdo_get_entry_const(
766  sdo, data.sdo_entry_subindex))) {
767  up(&master->master_sem);
768  EC_SLAVE_ERR(slave, "SDO entry 0x%04X:%02X does not exist!\n",
769  sdo->index, data.sdo_entry_subindex);
770  return -EINVAL;
771  }
772 
773  data.data_type = entry->data_type;
774  data.bit_length = entry->bit_length;
775  data.read_access[EC_SDO_ENTRY_ACCESS_PREOP] =
777  data.read_access[EC_SDO_ENTRY_ACCESS_SAFEOP] =
779  data.read_access[EC_SDO_ENTRY_ACCESS_OP] =
781  data.write_access[EC_SDO_ENTRY_ACCESS_PREOP] =
783  data.write_access[EC_SDO_ENTRY_ACCESS_SAFEOP] =
785  data.write_access[EC_SDO_ENTRY_ACCESS_OP] =
787  ec_ioctl_strcpy(data.description, entry->description);
788 
789  up(&master->master_sem);
790 
791  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
792  return -EFAULT;
793 
794  return 0;
795 }
796 
797 /*****************************************************************************/
798 
805  void *arg
806  )
807 {
808  ec_ioctl_slave_sdo_upload_t data;
809  uint8_t *target;
810  int ret;
811 
812  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
813  return -EFAULT;
814  }
815 
816  if (!(target = kmalloc(data.target_size, GFP_KERNEL))) {
817  EC_MASTER_ERR(master, "Failed to allocate %zu bytes"
818  " for SDO upload.\n", data.target_size);
819  return -ENOMEM;
820  }
821 
822  ret = ecrt_master_sdo_upload(master, data.slave_position,
823  data.sdo_index, data.sdo_entry_subindex, target,
824  data.target_size, &data.data_size, &data.abort_code);
825 
826  if (!ret) {
827  if (copy_to_user((void __user *) data.target,
828  target, data.data_size)) {
829  kfree(target);
830  return -EFAULT;
831  }
832  }
833 
834  kfree(target);
835 
836  if (__copy_to_user((void __user *) arg, &data, sizeof(data))) {
837  return -EFAULT;
838  }
839 
840  return ret;
841 }
842 
843 /*****************************************************************************/
844 
851  void *arg
852  )
853 {
854  ec_ioctl_slave_sdo_download_t data;
855  uint8_t *sdo_data;
856  int retval;
857 
858  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
859  return -EFAULT;
860  }
861 
862  if (!(sdo_data = kmalloc(data.data_size, GFP_KERNEL))) {
863  EC_MASTER_ERR(master, "Failed to allocate %zu bytes"
864  " for SDO download.\n", data.data_size);
865  return -ENOMEM;
866  }
867 
868  if (copy_from_user(sdo_data, (void __user *) data.data, data.data_size)) {
869  kfree(sdo_data);
870  return -EFAULT;
871  }
872 
873  if (data.complete_access) {
874  retval = ecrt_master_sdo_download_complete(master, data.slave_position,
875  data.sdo_index, sdo_data, data.data_size, &data.abort_code);
876  } else {
877  retval = ecrt_master_sdo_download(master, data.slave_position,
878  data.sdo_index, data.sdo_entry_subindex, sdo_data,
879  data.data_size, &data.abort_code);
880  }
881 
882  kfree(sdo_data);
883 
884  if (__copy_to_user((void __user *) arg, &data, sizeof(data))) {
885  retval = -EFAULT;
886  }
887 
888  return retval;
889 }
890 
891 /*****************************************************************************/
892 
899  void *arg
900  )
901 {
902  ec_ioctl_slave_sii_t data;
903  const ec_slave_t *slave;
904  int retval;
905 
906  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
907  return -EFAULT;
908  }
909 
910  if (down_interruptible(&master->master_sem))
911  return -EINTR;
912 
913  if (!(slave = ec_master_find_slave_const(
914  master, 0, data.slave_position))) {
915  up(&master->master_sem);
916  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
917  data.slave_position);
918  return -EINVAL;
919  }
920 
921  if (!data.nwords
922  || data.offset + data.nwords > slave->sii_nwords) {
923  up(&master->master_sem);
924  EC_SLAVE_ERR(slave, "Invalid SII read offset/size %u/%u for slave SII"
925  " size %zu!\n", data.offset, data.nwords, slave->sii_nwords);
926  return -EINVAL;
927  }
928 
929  if (copy_to_user((void __user *) data.words,
930  slave->sii_words + data.offset, data.nwords * 2))
931  retval = -EFAULT;
932  else
933  retval = 0;
934 
935  up(&master->master_sem);
936  return retval;
937 }
938 
939 /*****************************************************************************/
940 
947  void *arg
948  )
949 {
950  ec_ioctl_slave_sii_t data;
951  ec_slave_t *slave;
952  unsigned int byte_size;
953  uint16_t *words;
954  ec_sii_write_request_t request;
955 
956  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
957  return -EFAULT;
958  }
959 
960  if (!data.nwords) {
961  return 0;
962  }
963 
964  byte_size = sizeof(uint16_t) * data.nwords;
965  if (!(words = kmalloc(byte_size, GFP_KERNEL))) {
966  EC_MASTER_ERR(master, "Failed to allocate %u bytes"
967  " for SII contents.\n", byte_size);
968  return -ENOMEM;
969  }
970 
971  if (copy_from_user(words,
972  (void __user *) data.words, byte_size)) {
973  kfree(words);
974  return -EFAULT;
975  }
976 
977  if (down_interruptible(&master->master_sem)) {
978  kfree(words);
979  return -EINTR;
980  }
981 
982  if (!(slave = ec_master_find_slave(
983  master, 0, data.slave_position))) {
984  up(&master->master_sem);
985  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
986  data.slave_position);
987  kfree(words);
988  return -EINVAL;
989  }
990 
991  // init SII write request
992  INIT_LIST_HEAD(&request.list);
993  request.slave = slave;
994  request.words = words;
995  request.offset = data.offset;
996  request.nwords = data.nwords;
997  request.state = EC_INT_REQUEST_QUEUED;
998 
999  // schedule SII write request.
1000  list_add_tail(&request.list, &master->sii_requests);
1001 
1002  up(&master->master_sem);
1003 
1004  // wait for processing through FSM
1005  if (wait_event_interruptible(master->request_queue,
1006  request.state != EC_INT_REQUEST_QUEUED)) {
1007  // interrupted by signal
1008  down(&master->master_sem);
1009  if (request.state == EC_INT_REQUEST_QUEUED) {
1010  // abort request
1011  list_del(&request.list);
1012  up(&master->master_sem);
1013  kfree(words);
1014  return -EINTR;
1015  }
1016  up(&master->master_sem);
1017  }
1018 
1019  // wait until master FSM has finished processing
1020  wait_event(master->request_queue, request.state != EC_INT_REQUEST_BUSY);
1021 
1022  kfree(words);
1023 
1024  return request.state == EC_INT_REQUEST_SUCCESS ? 0 : -EIO;
1025 }
1026 
1027 /*****************************************************************************/
1028 
1034  ec_master_t *master,
1035  void *arg
1036  )
1037 {
1038  ec_ioctl_slave_reg_t io;
1039  ec_slave_t *slave;
1040  ec_reg_request_t request;
1041  int ret;
1042 
1043  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
1044  return -EFAULT;
1045  }
1046 
1047  if (!io.size) {
1048  return 0;
1049  }
1050 
1051  // init register request
1052  ret = ec_reg_request_init(&request, io.size);
1053  if (ret) {
1054  return ret;
1055  }
1056 
1057  ecrt_reg_request_read(&request, io.address, io.size);
1058 
1059  if (down_interruptible(&master->master_sem)) {
1060  ec_reg_request_clear(&request);
1061  return -EINTR;
1062  }
1063 
1064  if (!(slave = ec_master_find_slave(
1065  master, 0, io.slave_position))) {
1066  up(&master->master_sem);
1067  ec_reg_request_clear(&request);
1068  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
1069  io.slave_position);
1070  return -EINVAL;
1071  }
1072 
1073  // schedule request.
1074  list_add_tail(&request.list, &slave->reg_requests);
1075 
1076  up(&master->master_sem);
1077 
1078  // wait for processing through FSM
1079  if (wait_event_interruptible(master->request_queue,
1080  request.state != EC_INT_REQUEST_QUEUED)) {
1081  // interrupted by signal
1082  down(&master->master_sem);
1083  if (request.state == EC_INT_REQUEST_QUEUED) {
1084  // abort request
1085  list_del(&request.list);
1086  up(&master->master_sem);
1087  ec_reg_request_clear(&request);
1088  return -EINTR;
1089  }
1090  up(&master->master_sem);
1091  }
1092 
1093  // wait until master FSM has finished processing
1094  wait_event(master->request_queue, request.state != EC_INT_REQUEST_BUSY);
1095 
1096  if (request.state == EC_INT_REQUEST_SUCCESS) {
1097  if (copy_to_user((void __user *) io.data, request.data, io.size)) {
1098  return -EFAULT;
1099  }
1100  }
1101  ec_reg_request_clear(&request);
1102 
1103  return request.state == EC_INT_REQUEST_SUCCESS ? 0 : -EIO;
1104 }
1105 
1106 /*****************************************************************************/
1107 
1113  ec_master_t *master,
1114  void *arg
1115  )
1116 {
1117  ec_ioctl_slave_reg_t io;
1118  ec_slave_t *slave;
1119  ec_reg_request_t request;
1120  int ret;
1121 
1122  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
1123  return -EFAULT;
1124  }
1125 
1126  if (!io.size) {
1127  return 0;
1128  }
1129 
1130  // init register request
1131  ret = ec_reg_request_init(&request, io.size);
1132  if (ret) {
1133  return ret;
1134  }
1135 
1136  if (copy_from_user(request.data, (void __user *) io.data, io.size)) {
1137  ec_reg_request_clear(&request);
1138  return -EFAULT;
1139  }
1140 
1141  ecrt_reg_request_write(&request, io.address, io.size);
1142 
1143  if (down_interruptible(&master->master_sem)) {
1144  ec_reg_request_clear(&request);
1145  return -EINTR;
1146  }
1147 
1148  if (io.emergency) {
1149  request.ring_position = io.slave_position;
1150  // schedule request.
1151  list_add_tail(&request.list, &master->emerg_reg_requests);
1152  }
1153  else {
1154  if (!(slave = ec_master_find_slave(master, 0, io.slave_position))) {
1155  up(&master->master_sem);
1156  ec_reg_request_clear(&request);
1157  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
1158  io.slave_position);
1159  return -EINVAL;
1160  }
1161 
1162  // schedule request.
1163  list_add_tail(&request.list, &slave->reg_requests);
1164  }
1165 
1166  up(&master->master_sem);
1167 
1168  // wait for processing through FSM
1169  if (wait_event_interruptible(master->request_queue,
1170  request.state != EC_INT_REQUEST_QUEUED)) {
1171  // interrupted by signal
1172  down(&master->master_sem);
1173  if (request.state == EC_INT_REQUEST_QUEUED) {
1174  // abort request
1175  list_del(&request.list);
1176  up(&master->master_sem);
1177  ec_reg_request_clear(&request);
1178  return -EINTR;
1179  }
1180  up(&master->master_sem);
1181  }
1182 
1183  // wait until master FSM has finished processing
1184  wait_event(master->request_queue, request.state != EC_INT_REQUEST_BUSY);
1185 
1186  ec_reg_request_clear(&request);
1187 
1188  return request.state == EC_INT_REQUEST_SUCCESS ? 0 : -EIO;
1189 }
1190 
1191 /*****************************************************************************/
1192 
1198  ec_master_t *master,
1199  void *arg
1200  )
1201 {
1202  ec_ioctl_config_t data;
1203  const ec_slave_config_t *sc;
1204  uint8_t i;
1205 
1206  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
1207  return -EFAULT;
1208  }
1209 
1210  if (down_interruptible(&master->master_sem))
1211  return -EINTR;
1212 
1213  if (!(sc = ec_master_get_config_const(
1214  master, data.config_index))) {
1215  up(&master->master_sem);
1216  EC_MASTER_ERR(master, "Slave config %u does not exist!\n",
1217  data.config_index);
1218  return -EINVAL;
1219  }
1220 
1221  data.alias = sc->alias;
1222  data.position = sc->position;
1223  data.vendor_id = sc->vendor_id;
1224  data.product_code = sc->product_code;
1225  for (i = 0; i < EC_MAX_SYNC_MANAGERS; i++) {
1226  data.syncs[i].dir = sc->sync_configs[i].dir;
1227  data.syncs[i].watchdog_mode = sc->sync_configs[i].watchdog_mode;
1228  data.syncs[i].pdo_count =
1230  }
1231  data.watchdog_divider = sc->watchdog_divider;
1232  data.watchdog_intervals = sc->watchdog_intervals;
1233  data.sdo_count = ec_slave_config_sdo_count(sc);
1234  data.idn_count = ec_slave_config_idn_count(sc);
1235  data.flag_count = ec_slave_config_flag_count(sc);
1236  data.slave_position = sc->slave ? sc->slave->ring_position : -1;
1237  data.dc_assign_activate = sc->dc_assign_activate;
1238  for (i = 0; i < EC_SYNC_SIGNAL_COUNT; i++) {
1239  data.dc_sync[i] = sc->dc_sync[i];
1240  }
1241 
1242  up(&master->master_sem);
1243 
1244  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
1245  return -EFAULT;
1246 
1247  return 0;
1248 }
1249 
1250 /*****************************************************************************/
1251 
1257  ec_master_t *master,
1258  void *arg
1259  )
1260 {
1261  ec_ioctl_config_pdo_t data;
1262  const ec_slave_config_t *sc;
1263  const ec_pdo_t *pdo;
1264 
1265  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
1266  return -EFAULT;
1267  }
1268 
1269  if (data.sync_index >= EC_MAX_SYNC_MANAGERS) {
1270  EC_MASTER_ERR(master, "Invalid sync manager index %u!\n",
1271  data.sync_index);
1272  return -EINVAL;
1273  }
1274 
1275  if (down_interruptible(&master->master_sem))
1276  return -EINTR;
1277 
1278  if (!(sc = ec_master_get_config_const(
1279  master, data.config_index))) {
1280  up(&master->master_sem);
1281  EC_MASTER_ERR(master, "Slave config %u does not exist!\n",
1282  data.config_index);
1283  return -EINVAL;
1284  }
1285 
1287  &sc->sync_configs[data.sync_index].pdos,
1288  data.pdo_pos))) {
1289  up(&master->master_sem);
1290  EC_MASTER_ERR(master, "Invalid PDO position!\n");
1291  return -EINVAL;
1292  }
1293 
1294  data.index = pdo->index;
1295  data.entry_count = ec_pdo_entry_count(pdo);
1296  ec_ioctl_strcpy(data.name, pdo->name);
1297 
1298  up(&master->master_sem);
1299 
1300  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
1301  return -EFAULT;
1302 
1303  return 0;
1304 }
1305 
1306 /*****************************************************************************/
1307 
1313  ec_master_t *master,
1314  void *arg
1315  )
1316 {
1317  ec_ioctl_config_pdo_entry_t data;
1318  const ec_slave_config_t *sc;
1319  const ec_pdo_t *pdo;
1320  const ec_pdo_entry_t *entry;
1321 
1322  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
1323  return -EFAULT;
1324  }
1325 
1326  if (data.sync_index >= EC_MAX_SYNC_MANAGERS) {
1327  EC_MASTER_ERR(master, "Invalid sync manager index %u!\n",
1328  data.sync_index);
1329  return -EINVAL;
1330  }
1331 
1332  if (down_interruptible(&master->master_sem))
1333  return -EINTR;
1334 
1335  if (!(sc = ec_master_get_config_const(
1336  master, data.config_index))) {
1337  up(&master->master_sem);
1338  EC_MASTER_ERR(master, "Slave config %u does not exist!\n",
1339  data.config_index);
1340  return -EINVAL;
1341  }
1342 
1344  &sc->sync_configs[data.sync_index].pdos,
1345  data.pdo_pos))) {
1346  up(&master->master_sem);
1347  EC_MASTER_ERR(master, "Invalid PDO position!\n");
1348  return -EINVAL;
1349  }
1350 
1351  if (!(entry = ec_pdo_find_entry_by_pos_const(
1352  pdo, data.entry_pos))) {
1353  up(&master->master_sem);
1354  EC_MASTER_ERR(master, "Entry not found!\n");
1355  return -EINVAL;
1356  }
1357 
1358  data.index = entry->index;
1359  data.subindex = entry->subindex;
1360  data.bit_length = entry->bit_length;
1361  ec_ioctl_strcpy(data.name, entry->name);
1362 
1363  up(&master->master_sem);
1364 
1365  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
1366  return -EFAULT;
1367 
1368  return 0;
1369 }
1370 
1371 /*****************************************************************************/
1372 
1378  ec_master_t *master,
1379  void *arg
1380  )
1381 {
1382  ec_ioctl_config_sdo_t *ioctl;
1383  const ec_slave_config_t *sc;
1384  const ec_sdo_request_t *req;
1385 
1386  if (!(ioctl = kmalloc(sizeof(*ioctl), GFP_KERNEL))) {
1387  return -ENOMEM;
1388  }
1389 
1390  if (copy_from_user(ioctl, (void __user *) arg, sizeof(*ioctl))) {
1391  kfree(ioctl);
1392  return -EFAULT;
1393  }
1394 
1395  if (down_interruptible(&master->master_sem)) {
1396  kfree(ioctl);
1397  return -EINTR;
1398  }
1399 
1400  if (!(sc = ec_master_get_config_const(
1401  master, ioctl->config_index))) {
1402  up(&master->master_sem);
1403  EC_MASTER_ERR(master, "Slave config %u does not exist!\n",
1404  ioctl->config_index);
1405  kfree(ioctl);
1406  return -EINVAL;
1407  }
1408 
1410  sc, ioctl->sdo_pos))) {
1411  up(&master->master_sem);
1412  EC_MASTER_ERR(master, "Invalid SDO position!\n");
1413  kfree(ioctl);
1414  return -EINVAL;
1415  }
1416 
1417  ioctl->index = req->index;
1418  ioctl->subindex = req->subindex;
1419  ioctl->size = req->data_size;
1420  memcpy(ioctl->data, req->data,
1421  min((u32) ioctl->size, (u32) EC_MAX_SDO_DATA_SIZE));
1422  ioctl->complete_access = req->complete_access;
1423 
1424  up(&master->master_sem);
1425 
1426  if (copy_to_user((void __user *) arg, ioctl, sizeof(*ioctl))) {
1427  kfree(ioctl);
1428  return -EFAULT;
1429  }
1430 
1431  kfree(ioctl);
1432  return 0;
1433 }
1434 
1435 /*****************************************************************************/
1436 
1442  ec_master_t *master,
1443  void *arg
1444  )
1445 {
1446  ec_ioctl_config_idn_t *ioctl;
1447  const ec_slave_config_t *sc;
1448  const ec_soe_request_t *req;
1449 
1450  if (!(ioctl = kmalloc(sizeof(*ioctl), GFP_KERNEL))) {
1451  return -ENOMEM;
1452  }
1453 
1454  if (copy_from_user(ioctl, (void __user *) arg, sizeof(*ioctl))) {
1455  kfree(ioctl);
1456  return -EFAULT;
1457  }
1458 
1459  if (down_interruptible(&master->master_sem)) {
1460  kfree(ioctl);
1461  return -EINTR;
1462  }
1463 
1464  if (!(sc = ec_master_get_config_const(
1465  master, ioctl->config_index))) {
1466  up(&master->master_sem);
1467  EC_MASTER_ERR(master, "Slave config %u does not exist!\n",
1468  ioctl->config_index);
1469  kfree(ioctl);
1470  return -EINVAL;
1471  }
1472 
1474  sc, ioctl->idn_pos))) {
1475  up(&master->master_sem);
1476  EC_MASTER_ERR(master, "Invalid IDN position!\n");
1477  kfree(ioctl);
1478  return -EINVAL;
1479  }
1480 
1481  ioctl->drive_no = req->drive_no;
1482  ioctl->idn = req->idn;
1483  ioctl->state = req->al_state;
1484  ioctl->size = req->data_size;
1485  memcpy(ioctl->data, req->data,
1486  min((u32) ioctl->size, (u32) EC_MAX_IDN_DATA_SIZE));
1487 
1488  up(&master->master_sem);
1489 
1490  if (copy_to_user((void __user *) arg, ioctl, sizeof(*ioctl))) {
1491  kfree(ioctl);
1492  return -EFAULT;
1493  }
1494 
1495  kfree(ioctl);
1496  return 0;
1497 }
1498 
1499 /*****************************************************************************/
1500 
1506  ec_master_t *master,
1507  void *arg
1508  )
1509 {
1510  ec_ioctl_config_flag_t *ioctl;
1511  const ec_slave_config_t *sc;
1512  const ec_flag_t *flag;
1513  size_t size;
1514 
1515  if (!(ioctl = kmalloc(sizeof(*ioctl), GFP_KERNEL))) {
1516  return -ENOMEM;
1517  }
1518 
1519  if (copy_from_user(ioctl, (void __user *) arg, sizeof(*ioctl))) {
1520  kfree(ioctl);
1521  return -EFAULT;
1522  }
1523 
1524  if (down_interruptible(&master->master_sem)) {
1525  kfree(ioctl);
1526  return -EINTR;
1527  }
1528 
1529  if (!(sc = ec_master_get_config_const(
1530  master, ioctl->config_index))) {
1531  up(&master->master_sem);
1532  EC_MASTER_ERR(master, "Slave config %u does not exist!\n",
1533  ioctl->config_index);
1534  kfree(ioctl);
1535  return -EINVAL;
1536  }
1537 
1539  sc, ioctl->flag_pos))) {
1540  up(&master->master_sem);
1541  EC_MASTER_ERR(master, "Invalid flag position!\n");
1542  kfree(ioctl);
1543  return -EINVAL;
1544  }
1545 
1546  size = min((u32) strlen(flag->key), (u32) EC_MAX_FLAG_KEY_SIZE - 1);
1547  memcpy(ioctl->key, flag->key, size);
1548  ioctl->key[size] = 0x00;
1549  ioctl->value = flag->value;
1550 
1551  up(&master->master_sem);
1552 
1553  if (copy_to_user((void __user *) arg, ioctl, sizeof(*ioctl))) {
1554  kfree(ioctl);
1555  return -EFAULT;
1556  }
1557 
1558  kfree(ioctl);
1559  return 0;
1560 }
1561 
1562 /*****************************************************************************/
1563 
1564 #ifdef EC_EOE
1565 
1571  ec_master_t *master,
1572  void *arg
1573  )
1574 {
1575  ec_ioctl_eoe_handler_t data;
1576  const ec_eoe_t *eoe;
1577 
1578  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
1579  return -EFAULT;
1580  }
1581 
1582  if (down_interruptible(&master->master_sem))
1583  return -EINTR;
1584 
1585  if (!(eoe = ec_master_get_eoe_handler_const(master, data.eoe_index))) {
1586  up(&master->master_sem);
1587  EC_MASTER_ERR(master, "EoE handler %u does not exist!\n",
1588  data.eoe_index);
1589  return -EINVAL;
1590  }
1591 
1592  if (eoe->slave) {
1593  data.slave_position = eoe->slave->ring_position;
1594  } else {
1595  data.slave_position = 0xffff;
1596  }
1597  snprintf(data.name, EC_DATAGRAM_NAME_SIZE, eoe->dev->name);
1598  data.open = eoe->opened;
1599  data.rx_bytes = eoe->stats.tx_bytes;
1600  data.rx_rate = eoe->tx_rate;
1601  data.tx_bytes = eoe->stats.rx_bytes;
1602  data.tx_rate = eoe->tx_rate;
1603  data.tx_queued_frames = eoe->tx_queued_frames;
1604  data.tx_queue_size = eoe->tx_queue_size;
1605 
1606  up(&master->master_sem);
1607 
1608  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
1609  return -EFAULT;
1610 
1611  return 0;
1612 }
1613 
1614 #endif
1615 
1616 /*****************************************************************************/
1617 
1623  ec_master_t *master,
1624  void *arg,
1625  ec_ioctl_context_t *ctx
1626  )
1627 {
1628  ec_master_t *m;
1629  int ret = 0;
1630 
1632  if (IS_ERR(m)) {
1633  ret = PTR_ERR(m);
1634  } else {
1635  ctx->requested = 1;
1636  }
1637 
1638  return ret;
1639 }
1640 
1641 /*****************************************************************************/
1642 
1648  ec_master_t *master,
1649  void *arg,
1650  ec_ioctl_context_t *ctx
1651  )
1652 {
1653  ec_domain_t *domain;
1654 
1655  if (unlikely(!ctx->requested))
1656  return -EPERM;
1657 
1659  if (IS_ERR(domain))
1660  return PTR_ERR(domain);
1661 
1662  return domain->index;
1663 }
1664 
1665 /*****************************************************************************/
1666 
1672  ec_master_t *master,
1673  void *arg,
1674  ec_ioctl_context_t *ctx
1675  )
1676 {
1677  ec_ioctl_config_t data;
1678  ec_slave_config_t *sc, *entry;
1679 
1680  if (unlikely(!ctx->requested))
1681  return -EPERM;
1682 
1683  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
1684  return -EFAULT;
1685  }
1686 
1687  sc = ecrt_master_slave_config_err(master, data.alias, data.position,
1688  data.vendor_id, data.product_code);
1689  if (IS_ERR(sc))
1690  return PTR_ERR(sc);
1691 
1692  data.config_index = 0;
1693 
1694  if (down_interruptible(&master->master_sem))
1695  return -EINTR;
1696 
1697  list_for_each_entry(entry, &master->configs, list) {
1698  if (entry == sc)
1699  break;
1700  data.config_index++;
1701  }
1702 
1703  up(&master->master_sem);
1704 
1705  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
1706  return -EFAULT;
1707 
1708  return 0;
1709 }
1710 
1711 /*****************************************************************************/
1712 
1718  ec_master_t *master,
1719  void *arg,
1720  ec_ioctl_context_t *ctx
1721  )
1722 {
1723  unsigned long config_index = (unsigned long) arg;
1724  ec_slave_config_t *sc = NULL;
1725  int ret = 0;
1726 
1727  if (unlikely(!ctx->requested)) {
1728  ret = -EPERM;
1729  goto out_return;
1730  }
1731 
1732  if (down_interruptible(&master->master_sem)) {
1733  ret = -EINTR;
1734  goto out_return;
1735  }
1736 
1737  if (config_index != 0xFFFFFFFF) {
1738  if (!(sc = ec_master_get_config(master, config_index))) {
1739  ret = -ENOENT;
1740  goto out_up;
1741  }
1742  }
1743 
1745 
1746 out_up:
1747  up(&master->master_sem);
1748 out_return:
1749  return ret;
1750 }
1751 
1752 /*****************************************************************************/
1753 
1759  ec_master_t *master,
1760  void *arg,
1761  ec_ioctl_context_t *ctx
1762  )
1763 {
1764  ec_ioctl_master_activate_t io;
1765  ec_domain_t *domain;
1766  off_t offset;
1767  int ret;
1768 
1769  if (unlikely(!ctx->requested))
1770  return -EPERM;
1771 
1772  io.process_data = NULL;
1773 
1774  /* Get the sum of the domains' process data sizes. */
1775 
1776  ctx->process_data_size = 0;
1777 
1778  if (down_interruptible(&master->master_sem))
1779  return -EINTR;
1780 
1781  list_for_each_entry(domain, &master->domains, list) {
1782  ctx->process_data_size += ecrt_domain_size(domain);
1783  }
1784 
1785  up(&master->master_sem);
1786 
1787  if (ctx->process_data_size) {
1788  ctx->process_data = vmalloc(ctx->process_data_size);
1789  if (!ctx->process_data) {
1790  ctx->process_data_size = 0;
1791  return -ENOMEM;
1792  }
1793 
1794  /* Set the memory as external process data memory for the
1795  * domains.
1796  */
1797  offset = 0;
1798  list_for_each_entry(domain, &master->domains, list) {
1800  ctx->process_data + offset);
1801  offset += ecrt_domain_size(domain);
1802  }
1803 
1804 #ifdef EC_IOCTL_RTDM
1805  /* RTDM uses a different approach for memory-mapping, which has to be
1806  * initiated by the kernel.
1807  */
1808  ret = ec_rtdm_mmap(ctx, &io.process_data);
1809  if (ret < 0) {
1810  EC_MASTER_ERR(master, "Failed to map process data"
1811  " memory to user space (code %i).\n", ret);
1812  return ret;
1813  }
1814 #endif
1815  }
1816 
1817  io.process_data_size = ctx->process_data_size;
1818 
1819 #ifndef EC_IOCTL_RTDM
1822 #endif
1823 
1825  if (ret < 0)
1826  return ret;
1827 
1828  if (copy_to_user((void __user *) arg, &io,
1829  sizeof(ec_ioctl_master_activate_t)))
1830  return -EFAULT;
1831 
1832  return 0;
1833 }
1834 
1835 /*****************************************************************************/
1836 
1842  ec_master_t *master,
1843  void *arg,
1844  ec_ioctl_context_t *ctx
1845  )
1846 {
1847  if (unlikely(!ctx->requested))
1848  return -EPERM;
1849 
1851  return 0;
1852 }
1853 
1854 /*****************************************************************************/
1855 
1861  ec_master_t *master,
1862  void *arg,
1863  ec_ioctl_context_t *ctx
1864  )
1865 {
1866  size_t send_interval;
1867 
1868  if (unlikely(!ctx->requested)) {
1869  return -EPERM;
1870  }
1871 
1872  if (copy_from_user(&send_interval, (void __user *) arg,
1873  sizeof(send_interval))) {
1874  return -EFAULT;
1875  }
1876 
1877  if (down_interruptible(&master->master_sem))
1878  return -EINTR;
1879 
1880  ec_master_set_send_interval(master, send_interval);
1881 
1882  up(&master->master_sem);
1883  return 0;
1884 }
1885 
1886 /*****************************************************************************/
1887 
1889 
1895  ec_master_t *master,
1896  void *arg,
1897  ec_ioctl_context_t *ctx
1898  )
1899 {
1900  if (unlikely(!ctx->requested)) {
1901  return -EPERM;
1902  }
1903 
1905 
1906  down( & master->io_sem );
1908  up( & master->io_sem );
1909  return 0;
1910 }
1911 
1912 /*****************************************************************************/
1913 
1919  ec_master_t *master,
1920  void *arg,
1921  ec_ioctl_context_t *ctx
1922  )
1923 {
1924  if (unlikely(!ctx->requested)) {
1925  return -EPERM;
1926  }
1927 
1928  down( & master->io_sem );
1930  up( & master->io_sem );
1931  return 0;
1932 }
1933 
1934 /*****************************************************************************/
1935 
1941  ec_master_t *master,
1942  void *arg,
1943  ec_ioctl_context_t *ctx
1944  )
1945 {
1946  ec_master_state_t data;
1947 
1948  ecrt_master_state(master, &data);
1949 
1950  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
1951  return -EFAULT;
1952 
1953  return 0;
1954 }
1955 
1956 /*****************************************************************************/
1957 
1963  ec_master_t *master,
1964  void *arg,
1965  ec_ioctl_context_t *ctx
1966  )
1967 {
1968  ec_ioctl_link_state_t ioctl;
1969  ec_master_link_state_t state;
1970  int ret;
1971 
1972  if (copy_from_user(&ioctl, (void __user *) arg, sizeof(ioctl))) {
1973  return -EFAULT;
1974  }
1975 
1976  ret = ecrt_master_link_state(master, ioctl.dev_idx, &state);
1977  if (ret < 0) {
1978  return ret;
1979  }
1980 
1981  if (copy_to_user((void __user *) ioctl.state, &state, sizeof(state))) {
1982  return -EFAULT;
1983  }
1984 
1985  return 0;
1986 }
1987 
1988 /*****************************************************************************/
1989 
1995  ec_master_t *master,
1996  void *arg,
1997  ec_ioctl_context_t *ctx
1998  )
1999 {
2000  uint64_t time;
2001 
2002  if (unlikely(!ctx->requested))
2003  return -EPERM;
2004 
2005  if (copy_from_user(&time, (void __user *) arg, sizeof(time))) {
2006  return -EFAULT;
2007  }
2008 
2010  return 0;
2011 }
2012 
2013 /*****************************************************************************/
2014 
2020  ec_master_t *master,
2021  void *arg,
2022  ec_ioctl_context_t *ctx
2023  )
2024 {
2025  if (unlikely(!ctx->requested)) {
2026  return -EPERM;
2027  }
2028 
2029  down( & master->io_sem );
2031  up( & master->io_sem );
2032  return 0;
2033 }
2034 
2035 /*****************************************************************************/
2036 
2042  ec_master_t *master,
2043  void *arg,
2044  ec_ioctl_context_t *ctx
2045  )
2046 {
2047  uint64_t time;
2048 
2049  if (unlikely(!ctx->requested))
2050  return -EPERM;
2051 
2052  if (copy_from_user(&time, (void __user *) arg, sizeof(time))) {
2053  return -EFAULT;
2054  }
2055 
2056  down( & master->io_sem );
2058  up( & master->io_sem );
2059  return 0;
2060 }
2061 
2062 /*****************************************************************************/
2063 
2069  ec_master_t *master,
2070  void *arg,
2071  ec_ioctl_context_t *ctx
2072  )
2073 {
2074  if (unlikely(!ctx->requested)) {
2075  return -EPERM;
2076  }
2077 
2078  down( & master->io_sem );
2080  up( & master->io_sem );
2081  return 0;
2082 }
2083 
2084 /*****************************************************************************/
2085 
2091  ec_master_t *master,
2092  void *arg,
2093  ec_ioctl_context_t *ctx
2094  )
2095 {
2096  uint32_t time;
2097  int ret;
2098 
2099  if (unlikely(!ctx->requested)) {
2100  return -EPERM;
2101  }
2102 
2104  if (ret) {
2105  return ret;
2106  }
2107 
2108  if (copy_to_user((void __user *) arg, &time, sizeof(time))) {
2109  return -EFAULT;
2110  }
2111 
2112  return 0;
2113 }
2114 
2115 /*****************************************************************************/
2116 
2122  ec_master_t *master,
2123  void *arg,
2124  ec_ioctl_context_t *ctx
2125  )
2126 {
2127  if (unlikely(!ctx->requested)) {
2128  return -EPERM;
2129  }
2130 
2131  down( & master->io_sem );
2133  up( & master->io_sem );
2134  return 0;
2135 }
2136 
2137 /*****************************************************************************/
2138 
2144  ec_master_t *master,
2145  void *arg,
2146  ec_ioctl_context_t *ctx
2147  )
2148 {
2149  uint32_t time_diff;
2150 
2151  if (unlikely(!ctx->requested))
2152  return -EPERM;
2153 
2155 
2156  if (copy_to_user((void __user *) arg, &time_diff, sizeof(time_diff)))
2157  return -EFAULT;
2158 
2159  return 0;
2160 }
2161 
2162 /*****************************************************************************/
2163 
2169  ec_master_t *master,
2170  void *arg,
2171  ec_ioctl_context_t *ctx
2172  )
2173 {
2174  down(&master->master_sem);
2176  up(&master->master_sem);
2177  return 0;
2178 }
2179 
2180 /*****************************************************************************/
2181 
2187  ec_master_t *master,
2188  void *arg,
2189  ec_ioctl_context_t *ctx
2190  )
2191 {
2192  ec_ioctl_config_t data;
2193  ec_slave_config_t *sc;
2194  unsigned int i;
2195  int ret = 0;
2196 
2197  if (unlikely(!ctx->requested)) {
2198  ret = -EPERM;
2199  goto out_return;
2200  }
2201 
2202  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
2203  ret = -EFAULT;
2204  goto out_return;
2205  }
2206 
2207  if (down_interruptible(&master->master_sem)) {
2208  ret = -EINTR;
2209  goto out_return;
2210  }
2211 
2212  if (!(sc = ec_master_get_config(master, data.config_index))) {
2213  ret = -ENOENT;
2214  goto out_up;
2215  }
2216 
2217  for (i = 0; i < EC_MAX_SYNC_MANAGERS; i++) {
2218  if (data.syncs[i].config_this) {
2219  ret = ecrt_slave_config_sync_manager(sc, i, data.syncs[i].dir,
2220  data.syncs[i].watchdog_mode);
2221  if (ret) {
2222  goto out_up;
2223  }
2224  }
2225  }
2226 
2227 out_up:
2228  up(&master->master_sem);
2229 out_return:
2230  return ret;
2231 }
2232 
2233 /*****************************************************************************/
2234 
2240  ec_master_t *master,
2241  void *arg,
2242  ec_ioctl_context_t *ctx
2243  )
2244 {
2245  ec_ioctl_config_t data;
2246  ec_slave_config_t *sc;
2247  int ret = 0;
2248 
2249  if (unlikely(!ctx->requested)) {
2250  ret = -EPERM;
2251  goto out_return;
2252  }
2253 
2254  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
2255  ret = -EFAULT;
2256  goto out_return;
2257  }
2258 
2259  if (down_interruptible(&master->master_sem)) {
2260  ret = -EINTR;
2261  goto out_return;
2262  }
2263 
2264  if (!(sc = ec_master_get_config(master, data.config_index))) {
2265  ret = -ENOENT;
2266  goto out_up;
2267  }
2268 
2270  data.watchdog_divider, data.watchdog_intervals);
2271 
2272 out_up:
2273  up(&master->master_sem);
2274 out_return:
2275  return ret;
2276 }
2277 
2278 /*****************************************************************************/
2279 
2285  ec_master_t *master,
2286  void *arg,
2287  ec_ioctl_context_t *ctx
2288  )
2289 {
2290  ec_ioctl_config_pdo_t data;
2291  ec_slave_config_t *sc;
2292 
2293  if (unlikely(!ctx->requested))
2294  return -EPERM;
2295 
2296  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2297  return -EFAULT;
2298 
2299  if (down_interruptible(&master->master_sem))
2300  return -EINTR;
2301 
2302  if (!(sc = ec_master_get_config(master, data.config_index))) {
2303  up(&master->master_sem);
2304  return -ENOENT;
2305  }
2306 
2307  up(&master->master_sem);
2309  return ecrt_slave_config_pdo_assign_add(sc, data.sync_index, data.index);
2310 }
2311 
2312 /*****************************************************************************/
2313 
2319  ec_master_t *master,
2320  void *arg,
2321  ec_ioctl_context_t *ctx
2322  )
2323 {
2324  ec_ioctl_config_pdo_t data;
2325  ec_slave_config_t *sc;
2326 
2327  if (unlikely(!ctx->requested))
2328  return -EPERM;
2329 
2330  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2331  return -EFAULT;
2332 
2333  if (down_interruptible(&master->master_sem))
2334  return -EINTR;
2335 
2336  if (!(sc = ec_master_get_config(master, data.config_index))) {
2337  up(&master->master_sem);
2338  return -ENOENT;
2339  }
2340 
2341  up(&master->master_sem);
2343  ecrt_slave_config_pdo_assign_clear(sc, data.sync_index);
2344  return 0;
2345 }
2346 
2347 /*****************************************************************************/
2348 
2354  ec_master_t *master,
2355  void *arg,
2356  ec_ioctl_context_t *ctx
2357  )
2358 {
2359  ec_ioctl_add_pdo_entry_t data;
2360  ec_slave_config_t *sc;
2361 
2362  if (unlikely(!ctx->requested))
2363  return -EPERM;
2364 
2365  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2366  return -EFAULT;
2367 
2368  if (down_interruptible(&master->master_sem))
2369  return -EINTR;
2370 
2371  if (!(sc = ec_master_get_config(master, data.config_index))) {
2372  up(&master->master_sem);
2373  return -ENOENT;
2374  }
2375 
2376  up(&master->master_sem);
2378  return ecrt_slave_config_pdo_mapping_add(sc, data.pdo_index,
2379  data.entry_index, data.entry_subindex, data.entry_bit_length);
2380 }
2381 
2382 /*****************************************************************************/
2383 
2389  ec_master_t *master,
2390  void *arg,
2391  ec_ioctl_context_t *ctx
2392  )
2393 {
2394  ec_ioctl_config_pdo_t data;
2395  ec_slave_config_t *sc;
2396 
2397  if (unlikely(!ctx->requested))
2398  return -EPERM;
2399 
2400  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2401  return -EFAULT;
2402 
2403  if (down_interruptible(&master->master_sem))
2404  return -EINTR;
2405 
2406  if (!(sc = ec_master_get_config(master, data.config_index))) {
2407  up(&master->master_sem);
2408  return -ENOENT;
2409  }
2410 
2411  up(&master->master_sem);
2413  ecrt_slave_config_pdo_mapping_clear(sc, data.index);
2414  return 0;
2415 }
2416 
2417 /*****************************************************************************/
2418 
2424  ec_master_t *master,
2425  void *arg,
2426  ec_ioctl_context_t *ctx
2427  )
2428 {
2429  ec_ioctl_reg_pdo_entry_t data;
2430  ec_slave_config_t *sc;
2431  ec_domain_t *domain;
2432  int ret;
2433 
2434  if (unlikely(!ctx->requested))
2435  return -EPERM;
2436 
2437  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2438  return -EFAULT;
2439 
2440  if (down_interruptible(&master->master_sem))
2441  return -EINTR;
2442 
2443  if (!(sc = ec_master_get_config(master, data.config_index))) {
2444  up(&master->master_sem);
2445  return -ENOENT;
2446  }
2447 
2448  if (!(domain = ec_master_find_domain(master, data.domain_index))) {
2449  up(&master->master_sem);
2450  return -ENOENT;
2451  }
2452 
2453  up(&master->master_sem);
2455  ret = ecrt_slave_config_reg_pdo_entry(sc, data.entry_index,
2456  data.entry_subindex, domain, &data.bit_position);
2457 
2458  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
2459  return -EFAULT;
2460 
2461  return ret;
2462 }
2463 
2464 /*****************************************************************************/
2465 
2471  ec_master_t *master,
2472  void *arg,
2473  ec_ioctl_context_t *ctx
2474  )
2475 {
2476  ec_ioctl_reg_pdo_pos_t io;
2477  ec_slave_config_t *sc;
2478  ec_domain_t *domain;
2479  int ret;
2480 
2481  if (unlikely(!ctx->requested)) {
2482  return -EPERM;
2483  }
2484 
2485  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
2486  return -EFAULT;
2487  }
2488 
2489  if (down_interruptible(&master->master_sem)) {
2490  return -EINTR;
2491  }
2492 
2493  if (!(sc = ec_master_get_config(master, io.config_index))) {
2494  up(&master->master_sem);
2495  return -ENOENT;
2496  }
2497 
2498  if (!(domain = ec_master_find_domain(master, io.domain_index))) {
2499  up(&master->master_sem);
2500  return -ENOENT;
2501  }
2502 
2503  up(&master->master_sem);
2505  ret = ecrt_slave_config_reg_pdo_entry_pos(sc, io.sync_index,
2506  io.pdo_pos, io.entry_pos, domain, &io.bit_position);
2507 
2508  if (copy_to_user((void __user *) arg, &io, sizeof(io)))
2509  return -EFAULT;
2510 
2511  return ret;
2512 }
2513 
2514 /*****************************************************************************/
2515 
2521  ec_master_t *master,
2522  void *arg,
2523  ec_ioctl_context_t *ctx
2524  )
2525 {
2526  ec_ioctl_config_t data;
2527  ec_slave_config_t *sc;
2528 
2529  if (unlikely(!ctx->requested))
2530  return -EPERM;
2531 
2532  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2533  return -EFAULT;
2534 
2535  if (down_interruptible(&master->master_sem))
2536  return -EINTR;
2537 
2538  if (!(sc = ec_master_get_config(master, data.config_index))) {
2539  up(&master->master_sem);
2540  return -ENOENT;
2541  }
2542 
2544  data.dc_sync[0].cycle_time,
2545  data.dc_sync[0].shift_time,
2546  data.dc_sync[1].cycle_time,
2547  data.dc_sync[1].shift_time);
2548 
2549  up(&master->master_sem);
2550 
2551  return 0;
2552 }
2553 
2554 /*****************************************************************************/
2555 
2561  ec_master_t *master,
2562  void *arg,
2563  ec_ioctl_context_t *ctx
2564  )
2565 {
2566  ec_ioctl_sc_sdo_t data;
2567  ec_slave_config_t *sc;
2568  uint8_t *sdo_data = NULL;
2569  int ret;
2570 
2571  if (unlikely(!ctx->requested))
2572  return -EPERM;
2573 
2574  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2575  return -EFAULT;
2576 
2577  if (!data.size)
2578  return -EINVAL;
2579 
2580  if (!(sdo_data = kmalloc(data.size, GFP_KERNEL))) {
2581  return -ENOMEM;
2582  }
2583 
2584  if (copy_from_user(sdo_data, (void __user *) data.data, data.size)) {
2585  kfree(sdo_data);
2586  return -EFAULT;
2587  }
2588 
2589  if (down_interruptible(&master->master_sem)) {
2590  kfree(sdo_data);
2591  return -EINTR;
2592  }
2593 
2594  if (!(sc = ec_master_get_config(master, data.config_index))) {
2595  up(&master->master_sem);
2596  kfree(sdo_data);
2597  return -ENOENT;
2598  }
2599 
2600  up(&master->master_sem);
2602  if (data.complete_access) {
2604  data.index, sdo_data, data.size);
2605  } else {
2606  ret = ecrt_slave_config_sdo(sc, data.index, data.subindex, sdo_data,
2607  data.size);
2608  }
2609  kfree(sdo_data);
2610  return ret;
2611 }
2612 
2613 /*****************************************************************************/
2614 
2620  ec_master_t *master,
2621  void *arg,
2622  ec_ioctl_context_t *ctx
2623  )
2624 {
2625  ec_ioctl_sc_emerg_t io;
2626  ec_slave_config_t *sc;
2627  int ret;
2628 
2629  if (unlikely(!ctx->requested))
2630  return -EPERM;
2631 
2632  if (copy_from_user(&io, (void __user *) arg, sizeof(io)))
2633  return -EFAULT;
2634 
2635  if (down_interruptible(&master->master_sem)) {
2636  return -EINTR;
2637  }
2638 
2639  if (!(sc = ec_master_get_config(master, io.config_index))) {
2640  up(&master->master_sem);
2641  return -ENOENT;
2642  }
2643 
2644  ret = ecrt_slave_config_emerg_size(sc, io.size);
2645 
2646  up(&master->master_sem);
2647 
2648  return ret;
2649 }
2650 
2651 /*****************************************************************************/
2652 
2658  ec_master_t *master,
2659  void *arg,
2660  ec_ioctl_context_t *ctx
2661  )
2662 {
2663  ec_ioctl_sc_emerg_t io;
2664  ec_slave_config_t *sc;
2665  u8 msg[EC_COE_EMERGENCY_MSG_SIZE];
2666  int ret;
2667 
2668  if (unlikely(!ctx->requested)) {
2669  return -EPERM;
2670  }
2671 
2672  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
2673  return -EFAULT;
2674  }
2675 
2676  /* no locking of master_sem needed, because configuration will not be
2677  * deleted in the meantime. */
2678 
2679  if (!(sc = ec_master_get_config(master, io.config_index))) {
2680  return -ENOENT;
2681  }
2682 
2683  ret = ecrt_slave_config_emerg_pop(sc, msg);
2684  if (ret < 0) {
2685  return ret;
2686  }
2687 
2688  if (copy_to_user((void __user *) io.target, msg, sizeof(msg))) {
2689  return -EFAULT;
2690  }
2691 
2692  return ret;
2693 }
2694 
2695 /*****************************************************************************/
2696 
2702  ec_master_t *master,
2703  void *arg,
2704  ec_ioctl_context_t *ctx
2705  )
2706 {
2707  ec_ioctl_sc_emerg_t io;
2708  ec_slave_config_t *sc;
2709 
2710  if (unlikely(!ctx->requested)) {
2711  return -EPERM;
2712  }
2713 
2714  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
2715  return -EFAULT;
2716  }
2717 
2718  /* no locking of master_sem needed, because configuration will not be
2719  * deleted in the meantime. */
2720 
2721  if (!(sc = ec_master_get_config(master, io.config_index))) {
2722  return -ENOENT;
2723  }
2724 
2725  return ecrt_slave_config_emerg_clear(sc);
2726 }
2727 
2728 /*****************************************************************************/
2729 
2735  ec_master_t *master,
2736  void *arg,
2737  ec_ioctl_context_t *ctx
2738  )
2739 {
2740  ec_ioctl_sc_emerg_t io;
2741  ec_slave_config_t *sc;
2742  int ret;
2743 
2744  if (unlikely(!ctx->requested)) {
2745  return -EPERM;
2746  }
2747 
2748  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
2749  return -EFAULT;
2750  }
2751 
2752  /* no locking of master_sem needed, because configuration will not be
2753  * deleted in the meantime. */
2754 
2755  if (!(sc = ec_master_get_config(master, io.config_index))) {
2756  return -ENOENT;
2757  }
2758 
2760  if (ret < 0) {
2761  return ret;
2762  }
2763 
2764  io.overruns = ret;
2765 
2766  if (copy_to_user((void __user *) arg, &io, sizeof(io))) {
2767  return -EFAULT;
2768  }
2769 
2770  return 0;
2771 }
2772 
2773 /*****************************************************************************/
2774 
2780  ec_master_t *master,
2781  void *arg,
2782  ec_ioctl_context_t *ctx
2783  )
2784 {
2785  ec_ioctl_sdo_request_t data;
2786  ec_slave_config_t *sc;
2787  ec_sdo_request_t *req;
2788 
2789  if (unlikely(!ctx->requested))
2790  return -EPERM;
2791 
2792  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
2793  return -EFAULT;
2794  }
2795 
2796  data.request_index = 0;
2797 
2798  if (down_interruptible(&master->master_sem))
2799  return -EINTR;
2800 
2801  sc = ec_master_get_config(master, data.config_index);
2802  if (!sc) {
2803  up(&master->master_sem);
2804  return -ENOENT;
2805  }
2806 
2807  list_for_each_entry(req, &sc->sdo_requests, list) {
2808  data.request_index++;
2809  }
2810 
2811  up(&master->master_sem);
2813  req = ecrt_slave_config_create_sdo_request_err(sc, data.sdo_index,
2814  data.sdo_subindex, data.size);
2815  if (IS_ERR(req))
2816  return PTR_ERR(req);
2817 
2818  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
2819  return -EFAULT;
2820 
2821  return 0;
2822 }
2823 
2824 /*****************************************************************************/
2825 
2831  ec_master_t *master,
2832  void *arg,
2833  ec_ioctl_context_t *ctx
2834  )
2835 {
2836  ec_ioctl_reg_request_t io;
2837  ec_slave_config_t *sc;
2838  ec_reg_request_t *reg;
2839 
2840  if (unlikely(!ctx->requested)) {
2841  return -EPERM;
2842  }
2843 
2844  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
2845  return -EFAULT;
2846  }
2847 
2848  io.request_index = 0;
2849 
2850  if (down_interruptible(&master->master_sem)) {
2851  return -EINTR;
2852  }
2853 
2854  sc = ec_master_get_config(master, io.config_index);
2855  if (!sc) {
2856  up(&master->master_sem);
2857  return -ENOENT;
2858  }
2859 
2860  list_for_each_entry(reg, &sc->reg_requests, list) {
2861  io.request_index++;
2862  }
2863 
2864  up(&master->master_sem);
2866  reg = ecrt_slave_config_create_reg_request_err(sc, io.mem_size);
2867  if (IS_ERR(reg)) {
2868  return PTR_ERR(reg);
2869  }
2870 
2871  if (copy_to_user((void __user *) arg, &io, sizeof(io))) {
2872  return -EFAULT;
2873  }
2874 
2875  return 0;
2876 }
2877 
2878 /*****************************************************************************/
2879 
2885  ec_master_t *master,
2886  void *arg,
2887  ec_ioctl_context_t *ctx
2888  )
2889 {
2890  ec_ioctl_voe_t data;
2891  ec_slave_config_t *sc;
2892  ec_voe_handler_t *voe;
2893 
2894  if (unlikely(!ctx->requested))
2895  return -EPERM;
2896 
2897  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
2898  return -EFAULT;
2899  }
2900 
2901  data.voe_index = 0;
2902 
2903  if (down_interruptible(&master->master_sem))
2904  return -EINTR;
2905 
2906  sc = ec_master_get_config(master, data.config_index);
2907  if (!sc) {
2908  up(&master->master_sem);
2909  return -ENOENT;
2910  }
2911 
2912  list_for_each_entry(voe, &sc->voe_handlers, list) {
2913  data.voe_index++;
2914  }
2915 
2916  up(&master->master_sem);
2918  voe = ecrt_slave_config_create_voe_handler_err(sc, data.size);
2919  if (IS_ERR(voe))
2920  return PTR_ERR(voe);
2921 
2922  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
2923  return -EFAULT;
2924 
2925  return 0;
2926 }
2927 
2928 /*****************************************************************************/
2929 
2935  ec_master_t *master,
2936  void *arg,
2937  ec_ioctl_context_t *ctx
2938  )
2939 {
2940  ec_ioctl_sc_state_t data;
2941  const ec_slave_config_t *sc;
2943 
2944  if (unlikely(!ctx->requested))
2945  return -EPERM;
2946 
2947  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
2948  return -EFAULT;
2949  }
2950 
2951  /* no locking of master_sem needed, because sc will not be deleted in the
2952  * meantime. */
2953 
2954  if (!(sc = ec_master_get_config_const(master, data.config_index))) {
2955  return -ENOENT;
2956  }
2957 
2958  ecrt_slave_config_state(sc, &state);
2959 
2960  if (copy_to_user((void __user *) data.state, &state, sizeof(state)))
2961  return -EFAULT;
2962 
2963  return 0;
2964 }
2965 
2966 /*****************************************************************************/
2967 
2973  ec_master_t *master,
2974  void *arg,
2975  ec_ioctl_context_t *ctx
2976  )
2977 {
2978  ec_ioctl_sc_idn_t ioctl;
2979  ec_slave_config_t *sc;
2980  uint8_t *data = NULL;
2981  int ret;
2982 
2983  if (unlikely(!ctx->requested))
2984  return -EPERM;
2985 
2986  if (copy_from_user(&ioctl, (void __user *) arg, sizeof(ioctl)))
2987  return -EFAULT;
2988 
2989  if (!ioctl.size)
2990  return -EINVAL;
2991 
2992  if (!(data = kmalloc(ioctl.size, GFP_KERNEL))) {
2993  return -ENOMEM;
2994  }
2995 
2996  if (copy_from_user(data, (void __user *) ioctl.data, ioctl.size)) {
2997  kfree(data);
2998  return -EFAULT;
2999  }
3000 
3001  if (down_interruptible(&master->master_sem)) {
3002  kfree(data);
3003  return -EINTR;
3004  }
3005 
3006  if (!(sc = ec_master_get_config(master, ioctl.config_index))) {
3007  up(&master->master_sem);
3008  kfree(data);
3009  return -ENOENT;
3010  }
3011 
3012  up(&master->master_sem);
3014  ret = ecrt_slave_config_idn(
3015  sc, ioctl.drive_no, ioctl.idn, ioctl.al_state, data, ioctl.size);
3016  kfree(data);
3017  return ret;
3018 }
3019 
3020 /*****************************************************************************/
3021 
3027  ec_master_t *master,
3028  void *arg,
3029  ec_ioctl_context_t *ctx
3030  )
3031 {
3032  ec_ioctl_sc_flag_t ioctl;
3033  ec_slave_config_t *sc;
3034  uint8_t *key;
3035  int ret;
3036 
3037  if (unlikely(!ctx->requested)) {
3038  return -EPERM;
3039  }
3040 
3041  if (copy_from_user(&ioctl, (void __user *) arg, sizeof(ioctl))) {
3042  return -EFAULT;
3043  }
3044 
3045  if (!ioctl.key_size) {
3046  return -EINVAL;
3047  }
3048 
3049  if (!(key = kmalloc(ioctl.key_size + 1, GFP_KERNEL))) {
3050  return -ENOMEM;
3051  }
3052 
3053  if (copy_from_user(key, (void __user *) ioctl.key, ioctl.key_size)) {
3054  kfree(key);
3055  return -EFAULT;
3056  }
3057  key[ioctl.key_size] = '\0';
3058 
3059  if (down_interruptible(&master->master_sem)) {
3060  kfree(key);
3061  return -EINTR;
3062  }
3063 
3064  if (!(sc = ec_master_get_config(master, ioctl.config_index))) {
3065  up(&master->master_sem);
3066  kfree(key);
3067  return -ENOENT;
3068  }
3069 
3070  up(&master->master_sem);
3072  ret = ecrt_slave_config_flag(sc, key, ioctl.value);
3073  kfree(key);
3074  return ret;
3075 }
3076 
3077 /*****************************************************************************/
3078 
3084  ec_master_t *master,
3085  void *arg,
3086  ec_ioctl_context_t *ctx
3087  )
3088 {
3089  const ec_domain_t *domain;
3090 
3091  if (unlikely(!ctx->requested)) {
3092  return -EPERM;
3093  }
3094 
3095  if (down_interruptible(&master->master_sem)) {
3096  return -EINTR;
3097  }
3098 
3099  list_for_each_entry(domain, &master->domains, list) {
3100  if (domain->index == (unsigned long) arg) {
3101  size_t size = ecrt_domain_size(domain);
3102  up(&master->master_sem);
3103  return size;
3104  }
3105  }
3106 
3107  up(&master->master_sem);
3108  return -ENOENT;
3109 }
3110 
3111 /*****************************************************************************/
3112 
3118  ec_master_t *master,
3119  void *arg,
3120  ec_ioctl_context_t *ctx
3121  )
3122 {
3123  int offset = 0;
3124  const ec_domain_t *domain;
3125 
3126  if (unlikely(!ctx->requested))
3127  return -EPERM;
3128 
3129  if (down_interruptible(&master->master_sem)) {
3130  return -EINTR;
3131  }
3132 
3133  list_for_each_entry(domain, &master->domains, list) {
3134  if (domain->index == (unsigned long) arg) {
3135  up(&master->master_sem);
3136  return offset;
3137  }
3138  offset += ecrt_domain_size(domain);
3139  }
3140 
3141  up(&master->master_sem);
3142  return -ENOENT;
3143 }
3144 
3145 /*****************************************************************************/
3146 
3152  ec_master_t *master,
3153  void *arg,
3154  ec_ioctl_context_t *ctx
3155  )
3156 {
3157  ec_domain_t *domain;
3158 
3159  if (unlikely(!ctx->requested))
3160  return -EPERM;
3161 
3162  /* no locking of master_sem needed, because domain will not be deleted in
3163  * the meantime. */
3164 
3165  if (!(domain = ec_master_find_domain(master, (unsigned long) arg))) {
3166  return -ENOENT;
3167  }
3168 
3169  ecrt_domain_process(domain);
3170  return 0;
3171 }
3172 
3173 /*****************************************************************************/
3174 
3180  ec_master_t *master,
3181  void *arg,
3182  ec_ioctl_context_t *ctx
3183  )
3184 {
3185  ec_domain_t *domain;
3186 
3187  if (unlikely(!ctx->requested))
3188  return -EPERM;
3189 
3190  /* no locking of master_sem needed, because domain will not be deleted in
3191  * the meantime. */
3192 
3193  if (!(domain = ec_master_find_domain(master, (unsigned long) arg))) {
3194  return -ENOENT;
3195  }
3196 
3197  down( & master->io_sem );
3198  ecrt_domain_queue(domain);
3199  up( & master->io_sem );
3200  return 0;
3201 }
3202 
3203 /*****************************************************************************/
3204 
3210  ec_master_t *master,
3211  void *arg,
3212  ec_ioctl_context_t *ctx
3213  )
3214 {
3215  ec_ioctl_domain_state_t data;
3216  const ec_domain_t *domain;
3217  ec_domain_state_t state;
3218 
3219  if (unlikely(!ctx->requested))
3220  return -EPERM;
3221 
3222  if (copy_from_user(&data, (void __user *) arg, sizeof(data))) {
3223  return -EFAULT;
3224  }
3225 
3226  /* no locking of master_sem needed, because domain will not be deleted in
3227  * the meantime. */
3228 
3229  if (!(domain = ec_master_find_domain_const(master, data.domain_index))) {
3230  return -ENOENT;
3231  }
3232 
3233  ecrt_domain_state(domain, &state);
3234 
3235  if (copy_to_user((void __user *) data.state, &state, sizeof(state)))
3236  return -EFAULT;
3237 
3238  return 0;
3239 }
3240 
3241 /*****************************************************************************/
3242 
3248  ec_master_t *master,
3249  void *arg,
3250  ec_ioctl_context_t *ctx
3251  )
3252 {
3253  ec_ioctl_sdo_request_t data;
3254  ec_slave_config_t *sc;
3255  ec_sdo_request_t *req;
3256 
3257  if (unlikely(!ctx->requested))
3258  return -EPERM;
3259 
3260  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3261  return -EFAULT;
3262 
3263  /* no locking of master_sem needed, because neither sc nor req will not be
3264  * deleted in the meantime. */
3265 
3266  if (!(sc = ec_master_get_config(master, data.config_index))) {
3267  return -ENOENT;
3268  }
3269 
3270  if (!(req = ec_slave_config_find_sdo_request(sc, data.request_index))) {
3271  return -ENOENT;
3272  }
3273 
3274  ecrt_sdo_request_index(req, data.sdo_index, data.sdo_subindex);
3275  return 0;
3276 }
3277 
3278 /*****************************************************************************/
3279 
3285  ec_master_t *master,
3286  void *arg,
3287  ec_ioctl_context_t *ctx
3288  )
3289 {
3290  ec_ioctl_sdo_request_t data;
3291  ec_slave_config_t *sc;
3292  ec_sdo_request_t *req;
3293 
3294  if (unlikely(!ctx->requested))
3295  return -EPERM;
3296 
3297  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3298  return -EFAULT;
3299 
3300  /* no locking of master_sem needed, because neither sc nor req will not be
3301  * deleted in the meantime. */
3302 
3303  if (!(sc = ec_master_get_config(master, data.config_index))) {
3304  return -ENOENT;
3305  }
3306 
3307  if (!(req = ec_slave_config_find_sdo_request(sc, data.request_index))) {
3308  return -ENOENT;
3309  }
3310 
3311  ecrt_sdo_request_timeout(req, data.timeout);
3312  return 0;
3313 }
3314 
3315 /*****************************************************************************/
3316 
3322  ec_master_t *master,
3323  void *arg,
3324  ec_ioctl_context_t *ctx
3325  )
3326 {
3327  ec_ioctl_sdo_request_t data;
3328  ec_slave_config_t *sc;
3329  ec_sdo_request_t *req;
3330 
3331  if (unlikely(!ctx->requested))
3332  return -EPERM;
3333 
3334  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3335  return -EFAULT;
3336 
3337  /* no locking of master_sem needed, because neither sc nor req will not be
3338  * deleted in the meantime. */
3339 
3340  if (!(sc = ec_master_get_config(master, data.config_index))) {
3341  return -ENOENT;
3342  }
3343 
3344  if (!(req = ec_slave_config_find_sdo_request(sc, data.request_index))) {
3345  return -ENOENT;
3346  }
3347 
3348  data.state = ecrt_sdo_request_state(req);
3349  if (data.state == EC_REQUEST_SUCCESS && req->dir == EC_DIR_INPUT)
3350  data.size = ecrt_sdo_request_data_size(req);
3351  else
3352  data.size = 0;
3353 
3354  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
3355  return -EFAULT;
3356 
3357  return 0;
3358 }
3359 
3360 /*****************************************************************************/
3361 
3367  ec_master_t *master,
3368  void *arg,
3369  ec_ioctl_context_t *ctx
3370  )
3371 {
3372  ec_ioctl_sdo_request_t data;
3373  ec_slave_config_t *sc;
3374  ec_sdo_request_t *req;
3375 
3376  if (unlikely(!ctx->requested))
3377  return -EPERM;
3378 
3379  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3380  return -EFAULT;
3381 
3382  /* no locking of master_sem needed, because neither sc nor req will not be
3383  * deleted in the meantime. */
3384 
3385  if (!(sc = ec_master_get_config(master, data.config_index))) {
3386  return -ENOENT;
3387  }
3388 
3389  if (!(req = ec_slave_config_find_sdo_request(sc, data.request_index))) {
3390  return -ENOENT;
3391  }
3392 
3393  ecrt_sdo_request_read(req);
3394  return 0;
3395 }
3396 
3397 /*****************************************************************************/
3398 
3404  ec_master_t *master,
3405  void *arg,
3406  ec_ioctl_context_t *ctx
3407  )
3408 {
3409  ec_ioctl_sdo_request_t data;
3410  ec_slave_config_t *sc;
3411  ec_sdo_request_t *req;
3412  int ret;
3413 
3414  if (unlikely(!ctx->requested))
3415  return -EPERM;
3416 
3417  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3418  return -EFAULT;
3419 
3420  if (!data.size) {
3421  EC_MASTER_ERR(master, "SDO download: Data size may not be zero!\n");
3422  return -EINVAL;
3423  }
3424 
3425  /* no locking of master_sem needed, because neither sc nor req will not be
3426  * deleted in the meantime. */
3427 
3428  if (!(sc = ec_master_get_config(master, data.config_index))) {
3429  return -ENOENT;
3430  }
3431 
3432  if (!(req = ec_slave_config_find_sdo_request(sc, data.request_index))) {
3433  return -ENOENT;
3434  }
3435 
3436  ret = ec_sdo_request_alloc(req, data.size);
3437  if (ret)
3438  return ret;
3439 
3440  if (copy_from_user(req->data, (void __user *) data.data, data.size))
3441  return -EFAULT;
3442 
3443  req->data_size = data.size;
3445  return 0;
3446 }
3447 
3448 /*****************************************************************************/
3449 
3455  ec_master_t *master,
3456  void *arg,
3457  ec_ioctl_context_t *ctx
3458  )
3459 {
3460  ec_ioctl_sdo_request_t data;
3461  ec_slave_config_t *sc;
3462  ec_sdo_request_t *req;
3463 
3464  if (unlikely(!ctx->requested))
3465  return -EPERM;
3466 
3467  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3468  return -EFAULT;
3469 
3470  /* no locking of master_sem needed, because neither sc nor req will not be
3471  * deleted in the meantime. */
3472 
3473  if (!(sc = ec_master_get_config(master, data.config_index))) {
3474  return -ENOENT;
3475  }
3476 
3477  if (!(req = ec_slave_config_find_sdo_request(sc, data.request_index))) {
3478  return -ENOENT;
3479  }
3480 
3481  if (copy_to_user((void __user *) data.data, ecrt_sdo_request_data(req),
3483  return -EFAULT;
3484 
3485  return 0;
3486 }
3487 
3488 /*****************************************************************************/
3489 
3495  ec_master_t *master,
3496  void *arg,
3497  ec_ioctl_context_t *ctx
3498  )
3499 {
3500  ec_ioctl_reg_request_t io;
3501  ec_slave_config_t *sc;
3502  ec_reg_request_t *reg;
3503 
3504  if (unlikely(!ctx->requested)) {
3505  return -EPERM;
3506  }
3507 
3508  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
3509  return -EFAULT;
3510  }
3511 
3512  if (io.mem_size <= 0) {
3513  return 0;
3514  }
3515 
3516  /* no locking of master_sem needed, because neither sc nor reg will not be
3517  * deleted in the meantime. */
3518 
3519  if (!(sc = ec_master_get_config(master, io.config_index))) {
3520  return -ENOENT;
3521  }
3522 
3523  if (!(reg = ec_slave_config_find_reg_request(sc, io.request_index))) {
3524  return -ENOENT;
3525  }
3526 
3527  if (copy_to_user((void __user *) io.data, ecrt_reg_request_data(reg),
3528  min(reg->mem_size, io.mem_size))) {
3529  return -EFAULT;
3530  }
3531 
3532  return 0;
3533 }
3534 
3535 /*****************************************************************************/
3536 
3542  ec_master_t *master,
3543  void *arg,
3544  ec_ioctl_context_t *ctx
3545  )
3546 {
3547  ec_ioctl_reg_request_t io;
3548  ec_slave_config_t *sc;
3549  ec_reg_request_t *reg;
3550 
3551  if (unlikely(!ctx->requested)) {
3552  return -EPERM;
3553  }
3554 
3555  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
3556  return -EFAULT;
3557  }
3558 
3559  /* no locking of master_sem needed, because neither sc nor reg will not be
3560  * deleted in the meantime. */
3561 
3562  if (!(sc = ec_master_get_config(master, io.config_index))) {
3563  return -ENOENT;
3564  }
3565 
3566  if (!(reg = ec_slave_config_find_reg_request(sc, io.request_index))) {
3567  return -ENOENT;
3568  }
3569 
3570  io.state = ecrt_reg_request_state(reg);
3571  io.new_data = io.state == EC_REQUEST_SUCCESS && reg->dir == EC_DIR_INPUT;
3572 
3573  if (copy_to_user((void __user *) arg, &io, sizeof(io))) {
3574  return -EFAULT;
3575  }
3576 
3577  return 0;
3578 }
3579 
3580 /*****************************************************************************/
3581 
3587  ec_master_t *master,
3588  void *arg,
3589  ec_ioctl_context_t *ctx
3590  )
3591 {
3592  ec_ioctl_reg_request_t io;
3593  ec_slave_config_t *sc;
3594  ec_reg_request_t *reg;
3595 
3596  if (unlikely(!ctx->requested)) {
3597  return -EPERM;
3598  }
3599 
3600  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
3601  return -EFAULT;
3602  }
3603 
3604  /* no locking of master_sem needed, because neither sc nor reg will not be
3605  * deleted in the meantime. */
3606 
3607  if (!(sc = ec_master_get_config(master, io.config_index))) {
3608  return -ENOENT;
3609  }
3610 
3611  if (!(reg = ec_slave_config_find_reg_request(sc, io.request_index))) {
3612  return -ENOENT;
3613  }
3614 
3615  if (io.transfer_size > reg->mem_size) {
3616  return -EOVERFLOW;
3617  }
3618 
3619  if (copy_from_user(reg->data, (void __user *) io.data,
3620  io.transfer_size)) {
3621  return -EFAULT;
3622  }
3623 
3624  ecrt_reg_request_write(reg, io.address, io.transfer_size);
3625  return 0;
3626 }
3627 
3628 /*****************************************************************************/
3629 
3635  ec_master_t *master,
3636  void *arg,
3637  ec_ioctl_context_t *ctx
3638  )
3639 {
3640  ec_ioctl_reg_request_t io;
3641  ec_slave_config_t *sc;
3642  ec_reg_request_t *reg;
3643 
3644  if (unlikely(!ctx->requested)) {
3645  return -EPERM;
3646  }
3647 
3648  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
3649  return -EFAULT;
3650  }
3651 
3652  /* no locking of master_sem needed, because neither sc nor reg will not be
3653  * deleted in the meantime. */
3654 
3655  if (!(sc = ec_master_get_config(master, io.config_index))) {
3656  return -ENOENT;
3657  }
3658 
3659  if (!(reg = ec_slave_config_find_reg_request(sc, io.request_index))) {
3660  return -ENOENT;
3661  }
3662 
3663  if (io.transfer_size > reg->mem_size) {
3664  return -EOVERFLOW;
3665  }
3666 
3667  ecrt_reg_request_read(reg, io.address, io.transfer_size);
3668  return 0;
3669 }
3670 
3671 /*****************************************************************************/
3672 
3678  ec_master_t *master,
3679  void *arg,
3680  ec_ioctl_context_t *ctx
3681  )
3682 {
3683  ec_ioctl_voe_t data;
3684  ec_slave_config_t *sc;
3685  ec_voe_handler_t *voe;
3686  uint32_t vendor_id;
3687  uint16_t vendor_type;
3688 
3689  if (unlikely(!ctx->requested))
3690  return -EPERM;
3691 
3692  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3693  return -EFAULT;
3694 
3695  if (get_user(vendor_id, data.vendor_id))
3696  return -EFAULT;
3697 
3698  if (get_user(vendor_type, data.vendor_type))
3699  return -EFAULT;
3700 
3701  /* no locking of master_sem needed, because neither sc nor voe will not be
3702  * deleted in the meantime. */
3703 
3704  if (!(sc = ec_master_get_config(master, data.config_index))) {
3705  return -ENOENT;
3706  }
3707 
3708  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3709  return -ENOENT;
3710  }
3711 
3712  ecrt_voe_handler_send_header(voe, vendor_id, vendor_type);
3713  return 0;
3714 }
3715 
3716 /*****************************************************************************/
3717 
3723  ec_master_t *master,
3724  void *arg,
3725  ec_ioctl_context_t *ctx
3726  )
3727 {
3728  ec_ioctl_voe_t data;
3729  ec_slave_config_t *sc;
3730  ec_voe_handler_t *voe;
3731  uint32_t vendor_id;
3732  uint16_t vendor_type;
3733 
3734  if (unlikely(!ctx->requested))
3735  return -EPERM;
3736 
3737  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3738  return -EFAULT;
3739 
3740  /* no locking of master_sem needed, because neither sc nor voe will not be
3741  * deleted in the meantime. */
3742 
3743  if (!(sc = ec_master_get_config(master, data.config_index))) {
3744  return -ENOENT;
3745  }
3746 
3747  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3748  return -ENOENT;
3749  }
3750 
3751  ecrt_voe_handler_received_header(voe, &vendor_id, &vendor_type);
3752 
3753  if (likely(data.vendor_id))
3754  if (put_user(vendor_id, data.vendor_id))
3755  return -EFAULT;
3756 
3757  if (likely(data.vendor_type))
3758  if (put_user(vendor_type, data.vendor_type))
3759  return -EFAULT;
3760 
3761  return 0;
3762 }
3763 
3764 /*****************************************************************************/
3765 
3771  ec_master_t *master,
3772  void *arg,
3773  ec_ioctl_context_t *ctx
3774  )
3775 {
3776  ec_ioctl_voe_t data;
3777  ec_slave_config_t *sc;
3778  ec_voe_handler_t *voe;
3779 
3780  if (unlikely(!ctx->requested))
3781  return -EPERM;
3782 
3783  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3784  return -EFAULT;
3785 
3786  /* no locking of master_sem needed, because neither sc nor voe will not be
3787  * deleted in the meantime. */
3788 
3789  if (!(sc = ec_master_get_config(master, data.config_index))) {
3790  return -ENOENT;
3791  }
3792 
3793  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3794  return -ENOENT;
3795  }
3796 
3797  ecrt_voe_handler_read(voe);
3798  return 0;
3799 }
3800 
3801 /*****************************************************************************/
3802 
3808  ec_master_t *master,
3809  void *arg,
3810  ec_ioctl_context_t *ctx
3811  )
3812 {
3813  ec_ioctl_voe_t data;
3814  ec_slave_config_t *sc;
3815  ec_voe_handler_t *voe;
3816 
3817  if (unlikely(!ctx->requested))
3818  return -EPERM;
3819 
3820  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3821  return -EFAULT;
3822 
3823  /* no locking of master_sem needed, because neither sc nor voe will not be
3824  * deleted in the meantime. */
3825 
3826  if (!(sc = ec_master_get_config(master, data.config_index))) {
3827  return -ENOENT;
3828  }
3829 
3830  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3831  return -ENOENT;
3832  }
3833 
3835  return 0;
3836 }
3837 
3838 /*****************************************************************************/
3839 
3845  ec_master_t *master,
3846  void *arg,
3847  ec_ioctl_context_t *ctx
3848  )
3849 {
3850  ec_ioctl_voe_t data;
3851  ec_slave_config_t *sc;
3852  ec_voe_handler_t *voe;
3853 
3854  if (unlikely(!ctx->requested))
3855  return -EPERM;
3856 
3857  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3858  return -EFAULT;
3859 
3860  /* no locking of master_sem needed, because neither sc nor voe will not be
3861  * deleted in the meantime. */
3862 
3863  if (!(sc = ec_master_get_config(master, data.config_index))) {
3864  return -ENOENT;
3865  }
3866 
3867  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3868  return -ENOENT;
3869  }
3870 
3871  if (data.size) {
3872  if (data.size > ec_voe_handler_mem_size(voe))
3873  return -EOVERFLOW;
3874 
3875  if (copy_from_user(ecrt_voe_handler_data(voe),
3876  (void __user *) data.data, data.size))
3877  return -EFAULT;
3878  }
3879 
3880  ecrt_voe_handler_write(voe, data.size);
3881  return 0;
3882 }
3883 
3884 /*****************************************************************************/
3885 
3891  ec_master_t *master,
3892  void *arg,
3893  ec_ioctl_context_t *ctx
3894  )
3895 {
3896  ec_ioctl_voe_t data;
3897  ec_slave_config_t *sc;
3898  ec_voe_handler_t *voe;
3899 
3900  if (unlikely(!ctx->requested))
3901  return -EPERM;
3902 
3903  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3904  return -EFAULT;
3905 
3906  /* no locking of master_sem needed, because neither sc nor voe will not be
3907  * deleted in the meantime. */
3908 
3909  if (!(sc = ec_master_get_config(master, data.config_index))) {
3910  return -ENOENT;
3911  }
3912 
3913  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3914  return -ENOENT;
3915  }
3916 
3917  down( & master->io_sem );
3918  data.state = ecrt_voe_handler_execute(voe);
3919  up( & master->io_sem );
3920  if (data.state == EC_REQUEST_SUCCESS && voe->dir == EC_DIR_INPUT)
3921  data.size = ecrt_voe_handler_data_size(voe);
3922  else
3923  data.size = 0;
3924 
3925  if (copy_to_user((void __user *) arg, &data, sizeof(data)))
3926  return -EFAULT;
3927 
3928  return 0;
3929 }
3930 
3931 /*****************************************************************************/
3932 
3938  ec_master_t *master,
3939  void *arg,
3940  ec_ioctl_context_t *ctx
3941  )
3942 {
3943  ec_ioctl_voe_t data;
3944  ec_slave_config_t *sc;
3945  ec_voe_handler_t *voe;
3946 
3947  if (unlikely(!ctx->requested))
3948  return -EPERM;
3949 
3950  if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
3951  return -EFAULT;
3952 
3953  /* no locking of master_sem needed, because neither sc nor voe will not be
3954  * deleted in the meantime. */
3955 
3956  if (!(sc = ec_master_get_config(master, data.config_index))) {
3957  return -ENOENT;
3958  }
3959 
3960  if (!(voe = ec_slave_config_find_voe_handler(sc, data.voe_index))) {
3961  return -ENOENT;
3962  }
3963 
3964  if (copy_to_user((void __user *) data.data, ecrt_voe_handler_data(voe),
3966  return -EFAULT;
3967 
3968  return 0;
3969 }
3970 
3971 /*****************************************************************************/
3972 
3978  ec_master_t *master,
3979  void *arg
3980  )
3981 {
3982  ec_ioctl_slave_foe_t io;
3983  ec_foe_request_t request;
3984  ec_slave_t *slave;
3985  int ret;
3986 
3987  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
3988  return -EFAULT;
3989  }
3990 
3991  ec_foe_request_init(&request, io.file_name);
3992  ret = ec_foe_request_alloc(&request, 10000); // FIXME
3993  if (ret) {
3994  ec_foe_request_clear(&request);
3995  return ret;
3996  }
3997 
3998  ec_foe_request_read(&request);
3999 
4000  if (down_interruptible(&master->master_sem)) {
4001  ec_foe_request_clear(&request);
4002  return -EINTR;
4003  }
4004 
4005  if (!(slave = ec_master_find_slave(master, 0, io.slave_position))) {
4006  up(&master->master_sem);
4007  ec_foe_request_clear(&request);
4008  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
4009  io.slave_position);
4010  return -EINVAL;
4011  }
4012 
4013  EC_SLAVE_DBG(slave, 1, "Scheduling FoE read request.\n");
4014 
4015  // schedule request.
4016  list_add_tail(&request.list, &slave->foe_requests);
4017 
4018  up(&master->master_sem);
4019 
4020  // wait for processing through FSM
4021  if (wait_event_interruptible(master->request_queue,
4022  request.state != EC_INT_REQUEST_QUEUED)) {
4023  // interrupted by signal
4024  down(&master->master_sem);
4025  if (request.state == EC_INT_REQUEST_QUEUED) {
4026  list_del(&request.list);
4027  up(&master->master_sem);
4028  ec_foe_request_clear(&request);
4029  return -EINTR;
4030  }
4031  // request already processing: interrupt not possible.
4032  up(&master->master_sem);
4033  }
4034 
4035  // wait until master FSM has finished processing
4036  wait_event(master->request_queue, request.state != EC_INT_REQUEST_BUSY);
4037 
4038  io.result = request.result;
4039  io.error_code = request.error_code;
4040 
4041  if (request.state != EC_INT_REQUEST_SUCCESS) {
4042  io.data_size = 0;
4043  ret = -EIO;
4044  } else {
4045  if (request.data_size > io.buffer_size) {
4046  EC_SLAVE_ERR(slave, "%s(): Buffer too small.\n", __func__);
4047  ec_foe_request_clear(&request);
4048  return -EOVERFLOW;
4049  }
4050  io.data_size = request.data_size;
4051  if (copy_to_user((void __user *) io.buffer,
4052  request.buffer, io.data_size)) {
4053  ec_foe_request_clear(&request);
4054  return -EFAULT;
4055  }
4056  ret = 0;
4057  }
4058 
4059  if (__copy_to_user((void __user *) arg, &io, sizeof(io))) {
4060  ret = -EFAULT;
4061  }
4062 
4063  ec_foe_request_clear(&request);
4064  return ret;
4065 }
4066 
4067 /*****************************************************************************/
4068 
4074  ec_master_t *master,
4075  void *arg
4076  )
4077 {
4078  ec_ioctl_slave_foe_t io;
4079  ec_foe_request_t request;
4080  ec_slave_t *slave;
4081  int ret;
4082 
4083  if (copy_from_user(&io, (void __user *) arg, sizeof(io))) {
4084  return -EFAULT;
4085  }
4086 
4087  ec_foe_request_init(&request, io.file_name);
4088 
4089  ret = ec_foe_request_alloc(&request, io.buffer_size);
4090  if (ret) {
4091  ec_foe_request_clear(&request);
4092  return ret;
4093  }
4094 
4095  if (copy_from_user(request.buffer,
4096  (void __user *) io.buffer, io.buffer_size)) {
4097  ec_foe_request_clear(&request);
4098  return -EFAULT;
4099  }
4100 
4101  request.data_size = io.buffer_size;
4102  ec_foe_request_write(&request);
4103 
4104  if (down_interruptible(&master->master_sem)) {
4105  ec_foe_request_clear(&request);
4106  return -EINTR;
4107  }
4108 
4109  if (!(slave = ec_master_find_slave(master, 0, io.slave_position))) {
4110  up(&master->master_sem);
4111  EC_MASTER_ERR(master, "Slave %u does not exist!\n",
4112  io.slave_position);
4113  ec_foe_request_clear(&request);
4114  return -EINVAL;
4115  }
4116 
4117  EC_SLAVE_DBG(slave, 1, "Scheduling FoE write request.\n");
4118 
4119  // schedule FoE write request.
4120  list_add_tail(&request.list, &slave->foe_requests);
4121 
4122  up(&master->master_sem);
4123 
4124  // wait for processing through FSM
4125  if (wait_event_interruptible(master->request_queue,
4126  request.state != EC_INT_REQUEST_QUEUED)) {
4127  // interrupted by signal
4128  down(&master->master_sem);
4129  if (request.state == EC_INT_REQUEST_QUEUED) {
4130  // abort request
4131  list_del(&request.list);
4132  up(&master->master_sem);
4133  ec_foe_request_clear(&request);
4134  return -EINTR;
4135  }
4136  up(&master->master_sem);
4137  }
4138 
4139  // wait until master FSM has finished processing
4140  wait_event(master->request_queue, request.state != EC_INT_REQUEST_BUSY);
4141 
4142  io.result = request.result;
4143  io.error_code = request.error_code;
4144 
4145  ret = request.state == EC_INT_REQUEST_SUCCESS ? 0 : -EIO;
4146 
4147  if (__copy_to_user((void __user *) arg, &io, sizeof(io))) {
4148  ret = -EFAULT;
4149  }
4150 
4151  ec_foe_request_clear(&request);
4152  return ret;
4153 }
4154 
4155 /*****************************************************************************/
4156 
4162  ec_master_t *master,
4163  void *arg
4164  )
4165 {
4166  ec_ioctl_slave_soe_read_t ioctl;
4167  u8 *data;
4168  int retval;
4169 
4170  if (copy_from_user(&ioctl, (void __user *) arg, sizeof(ioctl))) {
4171  return -EFAULT;
4172  }
4173 
4174  data = kmalloc(ioctl.mem_size, GFP_KERNEL);
4175  if (!data) {
4176  EC_MASTER_ERR(master, "Failed to allocate %zu bytes of IDN data.\n",
4177  ioctl.mem_size);
4178  return -ENOMEM;
4179  }
4180 
4181  retval = ecrt_master_read_idn(master, ioctl.slave_position,
4182  ioctl.drive_no, ioctl.idn, data, ioctl.mem_size, &ioctl.data_size,
4183  &ioctl.error_code);
4184  if (retval) {
4185  kfree(data);
4186  return retval;
4187  }
4188 
4189  if (copy_to_user((void __user *) ioctl.data,
4190  data, ioctl.data_size)) {
4191  kfree(data);
4192  return -EFAULT;
4193  }
4194  kfree(data);
4195 
4196  if (__copy_to_user((void __user *) arg, &ioctl, sizeof(ioctl))) {
4197  retval = -EFAULT;
4198  }
4199 
4200  EC_MASTER_DBG(master, 1, "Finished SoE read request.\n");
4201  return retval;
4202 }
4203 
4204 /*****************************************************************************/
4205 
4211  ec_master_t *master,
4212  void *arg
4213  )
4214 {
4215  ec_ioctl_slave_soe_write_t ioctl;
4216  u8 *data;
4217  int retval;
4218 
4219  if (copy_from_user(&ioctl, (void __user *) arg, sizeof(ioctl))) {
4220  return -EFAULT;
4221  }
4222 
4223  data = kmalloc(ioctl.data_size, GFP_KERNEL);
4224  if (!data) {
4225  EC_MASTER_ERR(master, "Failed to allocate %zu bytes of IDN data.\n",
4226  ioctl.data_size);
4227  return -ENOMEM;
4228  }
4229  if (copy_from_user(data, (void __user *) ioctl.data, ioctl.data_size)) {
4230  kfree(data);
4231  return -EFAULT;
4232  }
4233 
4234  retval = ecrt_master_write_idn(master, ioctl.slave_position,
4235  ioctl.drive_no, ioctl.idn, data, ioctl.data_size,
4236  &ioctl.error_code);
4237  kfree(data);
4238  if (retval) {
4239  return retval;
4240  }
4241 
4242  if (__copy_to_user((void __user *) arg, &ioctl, sizeof(ioctl))) {
4243  retval = -EFAULT;
4244  }
4245 
4246  EC_MASTER_DBG(master, 1, "Finished SoE write request.\n");
4247  return retval;
4248 }
4249 
4250 /*****************************************************************************/
4251 
4254 #ifdef EC_IOCTL_RTDM
4255 #define EC_IOCTL ec_ioctl_rtdm
4256 #else
4257 #define EC_IOCTL ec_ioctl
4258 #endif
4259 
4265  ec_master_t *master,
4266  ec_ioctl_context_t *ctx,
4267  unsigned int cmd,
4268  void *arg
4269  )
4270 {
4271 #if DEBUG_LATENCY
4272  cycles_t a = get_cycles(), b;
4273  unsigned int t;
4274 #endif
4275  int ret;
4276 
4277  switch (cmd) {
4278  case EC_IOCTL_MODULE:
4279  ret = ec_ioctl_module(arg);
4280  break;
4281  case EC_IOCTL_MASTER:
4282  ret = ec_ioctl_master(master, arg);
4283  break;
4284  case EC_IOCTL_SLAVE:
4285  ret = ec_ioctl_slave(master, arg);
4286  break;
4287  case EC_IOCTL_SLAVE_SYNC:
4288  ret = ec_ioctl_slave_sync(master, arg);
4289  break;
4290  case EC_IOCTL_SLAVE_SYNC_PDO:
4291  ret = ec_ioctl_slave_sync_pdo(master, arg);
4292  break;
4293  case EC_IOCTL_SLAVE_SYNC_PDO_ENTRY:
4295  break;
4296  case EC_IOCTL_DOMAIN:
4297  ret = ec_ioctl_domain(master, arg);
4298  break;
4299  case EC_IOCTL_DOMAIN_FMMU:
4300  ret = ec_ioctl_domain_fmmu(master, arg);
4301  break;
4302  case EC_IOCTL_DOMAIN_DATA:
4303  ret = ec_ioctl_domain_data(master, arg);
4304  break;
4305  case EC_IOCTL_MASTER_DEBUG:
4306  if (!ctx->writable) {
4307  ret = -EPERM;
4308  break;
4309  }
4310  ret = ec_ioctl_master_debug(master, arg);
4311  break;
4312  case EC_IOCTL_MASTER_RESCAN:
4313  if (!ctx->writable) {
4314  ret = -EPERM;
4315  break;
4316  }
4317  ret = ec_ioctl_master_rescan(master, arg);
4318  break;
4319  case EC_IOCTL_SLAVE_STATE:
4320  if (!ctx->writable) {
4321  ret = -EPERM;
4322  break;
4323  }
4324  ret = ec_ioctl_slave_state(master, arg);
4325  break;
4326  case EC_IOCTL_SLAVE_SDO:
4327  ret = ec_ioctl_slave_sdo(master, arg);
4328  break;
4329  case EC_IOCTL_SLAVE_SDO_ENTRY:
4330  ret = ec_ioctl_slave_sdo_entry(master, arg);
4331  break;
4332  case EC_IOCTL_SLAVE_SDO_UPLOAD:
4333  ret = ec_ioctl_slave_sdo_upload(master, arg);
4334  break;
4335  case EC_IOCTL_SLAVE_SDO_DOWNLOAD:
4336  if (!ctx->writable) {
4337  ret = -EPERM;
4338  break;
4339  }
4340  ret = ec_ioctl_slave_sdo_download(master, arg);
4341  break;
4342  case EC_IOCTL_SLAVE_SII_READ:
4343  ret = ec_ioctl_slave_sii_read(master, arg);
4344  break;
4345  case EC_IOCTL_SLAVE_SII_WRITE:
4346  if (!ctx->writable) {
4347  ret = -EPERM;
4348  break;
4349  }
4350  ret = ec_ioctl_slave_sii_write(master, arg);
4351  break;
4352  case EC_IOCTL_SLAVE_REG_READ:
4353  ret = ec_ioctl_slave_reg_read(master, arg);
4354  break;
4355  case EC_IOCTL_SLAVE_REG_WRITE:
4356  if (!ctx->writable) {
4357  ret = -EPERM;
4358  break;
4359  }
4360  ret = ec_ioctl_slave_reg_write(master, arg);
4361  break;
4362  case EC_IOCTL_SLAVE_FOE_READ:
4363  ret = ec_ioctl_slave_foe_read(master, arg);
4364  break;
4365  case EC_IOCTL_SLAVE_FOE_WRITE:
4366  if (!ctx->writable) {
4367  ret = -EPERM;
4368  break;
4369  }
4370  ret = ec_ioctl_slave_foe_write(master, arg);
4371  break;
4372  case EC_IOCTL_SLAVE_SOE_READ:
4373  ret = ec_ioctl_slave_soe_read(master, arg);
4374  break;
4375  case EC_IOCTL_SLAVE_SOE_WRITE:
4376  if (!ctx->writable) {
4377  ret = -EPERM;
4378  break;
4379  }
4380  ret = ec_ioctl_slave_soe_write(master, arg);
4381  break;
4382  case EC_IOCTL_CONFIG:
4383  ret = ec_ioctl_config(master, arg);
4384  break;
4385  case EC_IOCTL_CONFIG_PDO:
4386  ret = ec_ioctl_config_pdo(master, arg);
4387  break;
4388  case EC_IOCTL_CONFIG_PDO_ENTRY:
4389  ret = ec_ioctl_config_pdo_entry(master, arg);
4390  break;
4391  case EC_IOCTL_CONFIG_SDO:
4392  ret = ec_ioctl_config_sdo(master, arg);
4393  break;
4394  case EC_IOCTL_CONFIG_IDN:
4395  ret = ec_ioctl_config_idn(master, arg);
4396  break;
4397  case EC_IOCTL_CONFIG_FLAG:
4398  ret = ec_ioctl_config_flag(master, arg);
4399  break;
4400 #ifdef EC_EOE
4401  case EC_IOCTL_EOE_HANDLER:
4402  ret = ec_ioctl_eoe_handler(master, arg);
4403  break;
4404 #endif
4405  case EC_IOCTL_REQUEST:
4406  if (!ctx->writable) {
4407  ret = -EPERM;
4408  break;
4409  }
4410  ret = ec_ioctl_request(master, arg, ctx);
4411  break;
4412  case EC_IOCTL_CREATE_DOMAIN:
4413  if (!ctx->writable) {
4414  ret = -EPERM;
4415  break;
4416  }
4417  ret = ec_ioctl_create_domain(master, arg, ctx);
4418  break;
4419  case EC_IOCTL_CREATE_SLAVE_CONFIG:
4420  if (!ctx->writable) {
4421  ret = -EPERM;
4422  break;
4423  }
4424  ret = ec_ioctl_create_slave_config(master, arg, ctx);
4425  break;
4426  case EC_IOCTL_SELECT_REF_CLOCK:
4427  if (!ctx->writable) {
4428  ret = -EPERM;
4429  break;
4430  }
4431  ret = ec_ioctl_select_ref_clock(master, arg, ctx);
4432  break;
4433  case EC_IOCTL_ACTIVATE:
4434  if (!ctx->writable) {
4435  ret = -EPERM;
4436  break;
4437  }
4438  ret = ec_ioctl_activate(master, arg, ctx);
4439  break;
4440  case EC_IOCTL_DEACTIVATE:
4441  if (!ctx->writable) {
4442  ret = -EPERM;
4443  break;
4444  }
4445  ret = ec_ioctl_deactivate(master, arg, ctx);
4446  break;
4447  case EC_IOCTL_SEND:
4448  if (!ctx->writable) {
4449  ret = -EPERM;
4450  break;
4451  }
4452  ret = ec_ioctl_send(master, arg, ctx);
4453  break;
4454  case EC_IOCTL_RECEIVE:
4455  if (!ctx->writable) {
4456  ret = -EPERM;
4457  break;
4458  }
4459  ret = ec_ioctl_receive(master, arg, ctx);
4460  break;
4461  case EC_IOCTL_MASTER_STATE:
4462  ret = ec_ioctl_master_state(master, arg, ctx);
4463  break;
4464  case EC_IOCTL_MASTER_LINK_STATE:
4465  ret = ec_ioctl_master_link_state(master, arg, ctx);
4466  break;
4467  case EC_IOCTL_APP_TIME:
4468  if (!ctx->writable) {
4469  ret = -EPERM;
4470  break;
4471  }
4472  ret = ec_ioctl_app_time(master, arg, ctx);
4473  break;
4474  case EC_IOCTL_SYNC_REF:
4475  if (!ctx->writable) {
4476  ret = -EPERM;
4477  break;
4478  }
4479  ret = ec_ioctl_sync_ref(master, arg, ctx);
4480  break;
4481  case EC_IOCTL_SYNC_REF_TO:
4482  if (!ctx->writable) {
4483  ret = -EPERM;
4484  break;
4485  }
4486  ret = ec_ioctl_sync_ref_to(master, arg, ctx);
4487  break;
4488  case EC_IOCTL_SYNC_SLAVES:
4489  if (!ctx->writable) {
4490  ret = -EPERM;
4491  break;
4492  }
4493  ret = ec_ioctl_sync_slaves(master, arg, ctx);
4494  break;
4495  case EC_IOCTL_REF_CLOCK_TIME:
4496  if (!ctx->writable) {
4497  ret = -EPERM;
4498  break;
4499  }
4500  ret = ec_ioctl_ref_clock_time(master, arg, ctx);
4501  break;
4502  case EC_IOCTL_SYNC_MON_QUEUE:
4503  if (!ctx->writable) {
4504  ret = -EPERM;
4505  break;
4506  }
4507  ret = ec_ioctl_sync_mon_queue(master, arg, ctx);
4508  break;
4509  case EC_IOCTL_SYNC_MON_PROCESS:
4510  if (!ctx->writable) {
4511  ret = -EPERM;
4512  break;
4513  }
4514  ret = ec_ioctl_sync_mon_process(master, arg, ctx);
4515  break;
4516  case EC_IOCTL_RESET:
4517  if (!ctx->writable) {
4518  ret = -EPERM;
4519  break;
4520  }
4521  ret = ec_ioctl_reset(master, arg, ctx);
4522  break;
4523  case EC_IOCTL_SC_SYNC:
4524  if (!ctx->writable) {
4525  ret = -EPERM;
4526  break;
4527  }
4528  ret = ec_ioctl_sc_sync(master, arg, ctx);
4529  break;
4530  case EC_IOCTL_SC_WATCHDOG:
4531  if (!ctx->writable) {
4532  ret = -EPERM;
4533  break;
4534  }
4535  ret = ec_ioctl_sc_watchdog(master, arg, ctx);
4536  break;
4537  case EC_IOCTL_SC_ADD_PDO:
4538  if (!ctx->writable) {
4539  ret = -EPERM;
4540  break;
4541  }
4542  ret = ec_ioctl_sc_add_pdo(master, arg, ctx);
4543  break;
4544  case EC_IOCTL_SC_CLEAR_PDOS:
4545  if (!ctx->writable) {
4546  ret = -EPERM;
4547  break;
4548  }
4549  ret = ec_ioctl_sc_clear_pdos(master, arg, ctx);
4550  break;
4551  case EC_IOCTL_SC_ADD_ENTRY:
4552  if (!ctx->writable) {
4553  ret = -EPERM;
4554  break;
4555  }
4556  ret = ec_ioctl_sc_add_entry(master, arg, ctx);
4557  break;
4558  case EC_IOCTL_SC_CLEAR_ENTRIES:
4559  if (!ctx->writable) {
4560  ret = -EPERM;
4561  break;
4562  }
4563  ret = ec_ioctl_sc_clear_entries(master, arg, ctx);
4564  break;
4565  case EC_IOCTL_SC_REG_PDO_ENTRY:
4566  if (!ctx->writable) {
4567  ret = -EPERM;
4568  break;
4569  }
4570  ret = ec_ioctl_sc_reg_pdo_entry(master, arg, ctx);
4571  break;
4572  case EC_IOCTL_SC_REG_PDO_POS:
4573  if (!ctx->writable) {
4574  ret = -EPERM;
4575  break;
4576  }
4577  ret = ec_ioctl_sc_reg_pdo_pos(master, arg, ctx);
4578  break;
4579  case EC_IOCTL_SC_DC:
4580  if (!ctx->writable) {
4581  ret = -EPERM;
4582  break;
4583  }
4584  ret = ec_ioctl_sc_dc(master, arg, ctx);
4585  break;
4586  case EC_IOCTL_SC_SDO:
4587  if (!ctx->writable) {
4588  ret = -EPERM;
4589  break;
4590  }
4591  ret = ec_ioctl_sc_sdo(master, arg, ctx);
4592  break;
4593  case EC_IOCTL_SC_EMERG_SIZE:
4594  if (!ctx->writable) {
4595  ret = -EPERM;
4596  break;
4597  }
4598  ret = ec_ioctl_sc_emerg_size(master, arg, ctx);
4599  break;
4600  case EC_IOCTL_SC_EMERG_POP:
4601  if (!ctx->writable) {
4602  ret = -EPERM;
4603  break;
4604  }
4605  ret = ec_ioctl_sc_emerg_pop(master, arg, ctx);
4606  break;
4607  case EC_IOCTL_SC_EMERG_CLEAR:
4608  if (!ctx->writable) {
4609  ret = -EPERM;
4610  break;
4611  }
4612  ret = ec_ioctl_sc_emerg_clear(master, arg, ctx);
4613  break;
4614  case EC_IOCTL_SC_EMERG_OVERRUNS:
4615  ret = ec_ioctl_sc_emerg_overruns(master, arg, ctx);
4616  break;
4617  case EC_IOCTL_SC_SDO_REQUEST:
4618  if (!ctx->writable) {
4619  ret = -EPERM;
4620  break;
4621  }
4622  ret = ec_ioctl_sc_create_sdo_request(master, arg, ctx);
4623  break;
4624  case EC_IOCTL_SC_REG_REQUEST:
4625  if (!ctx->writable) {
4626  ret = -EPERM;
4627  break;
4628  }
4629  ret = ec_ioctl_sc_create_reg_request(master, arg, ctx);
4630  break;
4631  case EC_IOCTL_SC_VOE:
4632  if (!ctx->writable) {
4633  ret = -EPERM;
4634  break;
4635  }
4636  ret = ec_ioctl_sc_create_voe_handler(master, arg, ctx);
4637  break;
4638  case EC_IOCTL_SC_STATE:
4639  ret = ec_ioctl_sc_state(master, arg, ctx);
4640  break;
4641  case EC_IOCTL_SC_IDN:
4642  if (!ctx->writable) {
4643  ret = -EPERM;
4644  break;
4645  }
4646  ret = ec_ioctl_sc_idn(master, arg, ctx);
4647  break;
4648  case EC_IOCTL_SC_FLAG:
4649  if (!ctx->writable) {
4650  ret = -EPERM;
4651  break;
4652  }
4653  ret = ec_ioctl_sc_flag(master, arg, ctx);
4654  break;
4655  case EC_IOCTL_DOMAIN_SIZE:
4656  ret = ec_ioctl_domain_size(master, arg, ctx);
4657  break;
4658  case EC_IOCTL_DOMAIN_OFFSET:
4659  ret = ec_ioctl_domain_offset(master, arg, ctx);
4660  break;
4661  case EC_IOCTL_DOMAIN_PROCESS:
4662  if (!ctx->writable) {
4663  ret = -EPERM;
4664  break;
4665  }
4666  ret = ec_ioctl_domain_process(master, arg, ctx);
4667  break;
4668  case EC_IOCTL_DOMAIN_QUEUE:
4669  if (!ctx->writable) {
4670  ret = -EPERM;
4671  break;
4672  }
4673  ret = ec_ioctl_domain_queue(master, arg, ctx);
4674  break;
4675  case EC_IOCTL_DOMAIN_STATE:
4676  ret = ec_ioctl_domain_state(master, arg, ctx);
4677  break;
4678  case EC_IOCTL_SDO_REQUEST_INDEX:
4679  if (!ctx->writable) {
4680  ret = -EPERM;
4681  break;
4682  }
4683  ret = ec_ioctl_sdo_request_index(master, arg, ctx);
4684  break;
4685  case EC_IOCTL_SDO_REQUEST_TIMEOUT:
4686  if (!ctx->writable) {
4687  ret = -EPERM;
4688  break;
4689  }
4690  ret = ec_ioctl_sdo_request_timeout(master, arg, ctx);
4691  break;
4692  case EC_IOCTL_SDO_REQUEST_STATE:
4693  ret = ec_ioctl_sdo_request_state(master, arg, ctx);
4694  break;
4695  case EC_IOCTL_SDO_REQUEST_READ:
4696  if (!ctx->writable) {
4697  ret = -EPERM;
4698  break;
4699  }
4700  ret = ec_ioctl_sdo_request_read(master, arg, ctx);
4701  break;
4702  case EC_IOCTL_SDO_REQUEST_WRITE:
4703  if (!ctx->writable) {
4704  ret = -EPERM;
4705  break;
4706  }
4707  ret = ec_ioctl_sdo_request_write(master, arg, ctx);
4708  break;
4709  case EC_IOCTL_SDO_REQUEST_DATA:
4710  ret = ec_ioctl_sdo_request_data(master, arg, ctx);
4711  break;
4712  case EC_IOCTL_REG_REQUEST_DATA:
4713  ret = ec_ioctl_reg_request_data(master, arg, ctx);
4714  break;
4715  case EC_IOCTL_REG_REQUEST_STATE:
4716  ret = ec_ioctl_reg_request_state(master, arg, ctx);
4717  break;
4718  case EC_IOCTL_REG_REQUEST_WRITE:
4719  if (!ctx->writable) {
4720  ret = -EPERM;
4721  break;
4722  }
4723  ret = ec_ioctl_reg_request_write(master, arg, ctx);
4724  break;
4725  case EC_IOCTL_REG_REQUEST_READ:
4726  if (!ctx->writable) {
4727  ret = -EPERM;
4728  break;
4729  }
4730  ret = ec_ioctl_reg_request_read(master, arg, ctx);
4731  break;
4732  case EC_IOCTL_VOE_SEND_HEADER:
4733  if (!ctx->writable) {
4734  ret = -EPERM;
4735  break;
4736  }
4737  ret = ec_ioctl_voe_send_header(master, arg, ctx);
4738  break;
4739  case EC_IOCTL_VOE_REC_HEADER:
4740  ret = ec_ioctl_voe_rec_header(master, arg, ctx);
4741  break;
4742  case EC_IOCTL_VOE_READ:
4743  if (!ctx->writable) {
4744  ret = -EPERM;
4745  break;
4746  }
4747  ret = ec_ioctl_voe_read(master, arg, ctx);
4748  break;
4749  case EC_IOCTL_VOE_READ_NOSYNC:
4750  if (!ctx->writable) {
4751  ret = -EPERM;
4752  break;
4753  }
4754  ret = ec_ioctl_voe_read_nosync(master, arg, ctx);
4755  break;
4756  case EC_IOCTL_VOE_WRITE:
4757  if (!ctx->writable) {
4758  ret = -EPERM;
4759  break;
4760  }
4761  ret = ec_ioctl_voe_write(master, arg, ctx);
4762  break;
4763  case EC_IOCTL_VOE_EXEC:
4764  if (!ctx->writable) {
4765  ret = -EPERM;
4766  break;
4767  }
4768  ret = ec_ioctl_voe_exec(master, arg, ctx);
4769  break;
4770  case EC_IOCTL_VOE_DATA:
4771  ret = ec_ioctl_voe_data(master, arg, ctx);
4772  break;
4773  case EC_IOCTL_SET_SEND_INTERVAL:
4774  if (!ctx->writable) {
4775  ret = -EPERM;
4776  break;
4777  }
4778  ret = ec_ioctl_set_send_interval(master, arg, ctx);
4779  break;
4780  default:
4781  ret = -ENOTTY;
4782  break;
4783  }
4784 
4785 #if DEBUG_LATENCY
4786  b = get_cycles();
4787  t = (unsigned int) ((b - a) * 1000LL) / cpu_khz;
4788  if (t > 50) {
4789  EC_MASTER_WARN(master, "ioctl(0x%02x) took %u us.\n",
4790  _IOC_NR(cmd), t);
4791  }
4792 #endif
4793 
4794  return ret;
4795 }
4796 
4797 /*****************************************************************************/
size_t ecrt_domain_size(const ec_domain_t *domain)
Returns the current size of the domain&#39;s process data.
Definition: domain.c:427
ec_sii_general_flags_t general_flags
General flags.
Definition: slave.h:161
void ecrt_reg_request_write(ec_reg_request_t *reg, uint16_t address, size_t size)
Schedule an register write operation.
Definition: reg_request.c:100
uint16_t ring_position
Ring position for emergency requests.
Definition: reg_request.h:57
const ec_slave_config_t * sc
EtherCAT slave config.
Definition: fmmu_config.h:48
static ATTRIBUTES int ec_ioctl_domain(ec_master_t *master, void *arg)
Get domain information.
Definition: ioctl.c:468
ec_internal_request_state_t state
Request state.
Definition: reg_request.h:56
static ATTRIBUTES int ec_ioctl_sdo_request_timeout(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sets an SDO request&#39;s timeout.
Definition: ioctl.c:3284
unsigned int ec_slave_config_flag_count(const ec_slave_config_t *sc)
Get the number of feature flags.
Definition: slave_config.c:470
uint16_t offset
SII word offset.
Definition: fsm_master.h:56
uint16_t ring_position
Ring position.
Definition: slave.h:183
uint32_t revision_number
Revision number.
Definition: slave.h:137
const ec_sdo_entry_t * ec_sdo_get_entry_const(const ec_sdo_t *sdo, uint8_t subindex)
Get an SDO entry from an SDO via its subindex.
Definition: sdo.c:116
static ATTRIBUTES int ec_ioctl_sc_emerg_clear(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Clear the emergency ring.
Definition: ioctl.c:2701
uint16_t ec_slave_sdo_count(const ec_slave_t *slave)
Get the number of SDOs in the dictionary.
Definition: slave.c:706
int ec_master_operation_work(ec_master_t *master)
Master kernel thread function for OPERATION phase.
Definition: master.c:1626
uint16_t boot_rx_mailbox_offset
Bootstrap receive mailbox address.
Definition: slave.h:139
int ecrt_slave_config_emerg_size(ec_slave_config_t *sc, size_t elements)
Set the size of the CoE emergency ring buffer.
#define EC_DATAGRAM_NAME_SIZE
Size of the datagram description string.
Definition: globals.h:104
ec_sii_t sii
Extracted SII data.
Definition: slave.h:223
uint32_t ecrt_master_sync_monitor_process(ec_master_t *master)
Processes the DC synchrony monitoring datagram.
Definition: master.c:2846
struct semaphore io_sem
Semaphore used in IDLE phase.
Definition: master.h:296
ec_reg_request_t * ec_slave_config_find_reg_request(ec_slave_config_t *sc, unsigned int pos)
Finds a register handler via its position in the list.
Definition: slave_config.c:536
void ecrt_voe_handler_received_header(const ec_voe_handler_t *voe, uint32_t *vendor_id, uint16_t *vendor_type)
Reads the header data of a received VoE message.
Definition: voe_handler.c:132
static ATTRIBUTES int ec_ioctl_slave_state(ec_master_t *master, void *arg)
Set slave state.
Definition: ioctl.c:639
void ecrt_reg_request_read(ec_reg_request_t *reg, uint16_t address, size_t size)
Schedule a register read operation.
Definition: reg_request.c:111
uint8_t * data
Pointer to SDO data.
Definition: soe_request.h:53
size_t ecrt_voe_handler_data_size(const ec_voe_handler_t *voe)
Returns the current data size.
Definition: voe_handler.c:152
static ATTRIBUTES int ec_ioctl_sdo_request_write(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts an SDO write operation.
Definition: ioctl.c:3403
FMMU configuration.
Definition: fmmu_config.h:46
static ATTRIBUTES int ec_ioctl_config_sdo(ec_master_t *master, void *arg)
Get slave configuration SDO information.
Definition: ioctl.c:1377
static ATTRIBUTES int ec_ioctl_master_link_state(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get the link state.
Definition: ioctl.c:1962
u64 tx_count
Number of frames sent.
Definition: master.h:156
static ATTRIBUTES int ec_ioctl_slave_reg_read(ec_master_t *master, void *arg)
Read a slave&#39;s registers.
Definition: ioctl.c:1033
struct list_head sii_requests
SII write requests.
Definition: master.h:307
void ecrt_master_sync_slave_clocks(ec_master_t *master)
Queues the DC clock drift compensation datagram for sending.
Definition: master.c:2828
static ATTRIBUTES int ec_ioctl_domain_offset(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Gets the domain&#39;s offset in the total process data.
Definition: ioctl.c:3117
static ATTRIBUTES int ec_ioctl_create_slave_config(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Create a slave configuration.
Definition: ioctl.c:1671
const ec_soe_request_t * ec_slave_config_get_idn_by_pos_const(const ec_slave_config_t *sc, unsigned int pos)
Finds an IDN configuration via its position in the list.
Definition: slave_config.c:448
int ecrt_slave_config_sdo(ec_slave_config_t *sc, uint16_t index, uint8_t subindex, const uint8_t *data, size_t size)
Add an SDO configuration.
Definition: slave_config.c:956
ec_sdo_request_t * ecrt_slave_config_create_sdo_request_err(ec_slave_config_t *sc, uint16_t index, uint8_t subindex, size_t size)
Same as ecrt_slave_config_create_sdo_request(), but with ERR_PTR() return value.
#define EC_SLAVE_DBG(slave, level, fmt, args...)
Convenience macro for printing slave-specific debug messages to syslog.
Definition: slave.h:106
CANopen SDO entry.
Definition: sdo_entry.h:54
static ATTRIBUTES int ec_ioctl_reg_request_read(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts an register read operation.
Definition: ioctl.c:3634
static ATTRIBUTES int ec_ioctl_slave_sdo_upload(ec_master_t *master, void *arg)
Upload SDO.
Definition: ioctl.c:803
size_t data_size
Size of the process data.
Definition: domain.h:61
ec_slave_t * slave
pointer to the corresponding slave
Definition: ethernet.h:79
static ATTRIBUTES int ec_ioctl_voe_send_header(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sets the VoE send header.
Definition: ioctl.c:3677
s32 tx_byte_rates[EC_RATE_COUNT]
Transmit rates in byte/s for different statistics cycle periods.
Definition: master.h:173
ec_internal_request_state_t state
State of the request.
Definition: fsm_master.h:59
ec_slave_config_t * ec_master_get_config(const ec_master_t *master, unsigned int pos)
Get a slave configuration via its position in the list.
Definition: master.c:1899
int ecrt_slave_config_pdo_assign_add(ec_slave_config_t *sc, uint8_t sync_index, uint16_t pdo_index)
Add a PDO to a sync manager&#39;s PDO assignment.
Definition: slave_config.c:640
size_t ec_voe_handler_mem_size(const ec_voe_handler_t *voe)
Get usable memory size.
Definition: voe_handler.c:108
int ecrt_master_link_state(const ec_master_t *master, unsigned int dev_idx, ec_master_link_state_t *state)
Reads the current state of a redundant link.
Definition: master.c:2759
ec_slave_port_t ports[EC_MAX_PORTS]
Ports.
Definition: slave.h:187
void ecrt_master_application_time(ec_master_t *master, uint64_t app_time)
Sets the application time.
Definition: master.c:2775
unsigned int tx_queue_size
Transmit queue size.
Definition: ethernet.h:97
const ec_flag_t * ec_slave_config_get_flag_by_pos_const(const ec_slave_config_t *sc, unsigned int pos)
Finds a flag via its position in the list.
Definition: slave_config.c:492
CANopen SDO request.
Definition: sdo_request.h:48
ec_slave_state_t current_state
Current application state.
Definition: slave.h:192
#define ec_master_num_devices(MASTER)
Number of Ethernet devices.
Definition: master.h:330
static ATTRIBUTES int ec_ioctl_domain_process(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Process the domain.
Definition: ioctl.c:3151
#define EC_RATE_COUNT
Number of statistic rate intervals to maintain.
Definition: globals.h:60
static ATTRIBUTES int ec_ioctl_module(void *arg)
Get module information.
Definition: ioctl.c:81
size_t nwords
Number of words.
Definition: fsm_master.h:57
ec_internal_request_state_t state
SDO request state.
Definition: sdo_request.h:63
uint16_t address
Register address.
Definition: reg_request.h:54
int ecrt_master_sdo_download_complete(ec_master_t *master, uint16_t slave_position, uint16_t index, uint8_t *data, size_t data_size, uint32_t *abort_code)
Executes an SDO download request to write data to a slave via complete access.
Definition: master.c:2936
uint16_t bit_length
Data size in bit.
Definition: sdo_entry.h:59
Register request.
Definition: reg_request.h:48
size_t mem_size
Size of data memory.
Definition: reg_request.h:50
void ec_foe_request_write(ec_foe_request_t *req)
Prepares a write request (master to slave).
Definition: foe_request.c:228
static ATTRIBUTES int ec_ioctl_reg_request_state(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Gets an register request&#39;s state.
Definition: ioctl.c:3541
static ATTRIBUTES int ec_ioctl_reg_request_write(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts an register write operation.
Definition: ioctl.c:3586
uint32_t product_code
Slave product code.
Definition: slave_config.h:127
static ATTRIBUTES int ec_ioctl_ref_clock_time(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get the system time of the reference clock.
Definition: ioctl.c:2090
ec_slave_port_link_t link
Port link status.
Definition: slave.h:120
void ec_master_internal_receive_cb(void *cb_data)
Internal receiving callback.
Definition: master.c:562
uint16_t position
Index after alias.
Definition: slave_config.h:124
const ec_slave_t * ec_master_find_slave_const(const ec_master_t *master, uint16_t alias, uint16_t position)
Finds a slave in the bus, given the alias and position.
Definition: master.c:1850
unsigned int rescan_required
A bus rescan is required.
Definition: fsm_master.h:83
void ecrt_master_callbacks(ec_master_t *master, void(*send_cb)(void *), void(*receive_cb)(void *), void *cb_data)
Sets the locking callbacks.
Definition: master.c:2722
const ec_sdo_request_t * ec_slave_config_get_sdo_by_pos_const(const ec_slave_config_t *sc, unsigned int pos)
Finds an SDO configuration via its position in the list.
Definition: slave_config.c:404
uint32_t serial_number
Serial number.
Definition: slave.h:138
int ec_foe_request_alloc(ec_foe_request_t *req, size_t size)
Pre-allocates the data memory.
Definition: foe_request.c:111
s32 tx_frame_rates[EC_RATE_COUNT]
Transmit rates in frames/s for different statistics cycle periods.
Definition: device.h:111
ec_sii_coe_details_t coe_details
CoE detail flags.
Definition: slave.h:160
char * order
Order number.
Definition: slave.h:157
int ec_reg_request_init(ec_reg_request_t *reg, size_t size)
Register request constructor.
Definition: reg_request.c:48
const ec_domain_t * ec_master_find_domain_const(const ec_master_t *master, unsigned int index)
Get a domain via its position in the list.
Definition: master.c:1978
const ec_eoe_t * ec_master_get_eoe_handler_const(const ec_master_t *master, uint16_t index)
Get an EoE handler via its position in the list.
Definition: master.c:2017
uint16_t index
SDO index.
Definition: sdo_request.h:50
static ATTRIBUTES int ec_ioctl_sync_slaves(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sync the slave clocks.
Definition: ioctl.c:2068
u64 dc_ref_time
Common reference timestamp for DC start times.
Definition: master.h:239
unsigned int data_size
Covered PDO size.
Definition: fmmu_config.h:53
struct list_head emerg_reg_requests
Emergency register access requests.
Definition: master.h:308
uint16_t alias
Slave alias.
Definition: slave_config.h:123
static ATTRIBUTES int ec_ioctl_sc_create_reg_request(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Create a register request.
Definition: ioctl.c:2830
struct list_head domains
List of domains.
Definition: master.h:236
static ATTRIBUTES int ec_ioctl_slave_soe_read(ec_master_t *master, void *arg)
Read an SoE IDN.
Definition: ioctl.c:4161
int ecrt_slave_config_reg_pdo_entry_pos(ec_slave_config_t *sc, uint8_t sync_index, unsigned int pdo_pos, unsigned int entry_pos, ec_domain_t *domain, unsigned int *bit_position)
Registers a PDO entry using its position.
Definition: slave_config.c:872
struct list_head reg_requests
Register access requests.
Definition: slave.h:230
static ATTRIBUTES int ec_ioctl_slave_sdo_entry(ec_master_t *master, void *arg)
Get slave SDO entry information.
Definition: ioctl.c:723
uint8_t drive_no
Drive number.
Definition: soe_request.h:50
CANopen SDO.
Definition: sdo.h:49
uint16_t index
SDO index.
Definition: sdo.h:52
uint8_t * data
Pointer to SDO data.
Definition: sdo_request.h:52
static ATTRIBUTES int ec_ioctl_config_pdo(ec_master_t *master, void *arg)
Get slave configuration PDO information.
Definition: ioctl.c:1256
int16_t current_on_ebus
Power consumption in mA.
Definition: slave.h:162
void ecrt_voe_handler_read(ec_voe_handler_t *voe)
Start a VoE read operation.
Definition: voe_handler.c:159
ec_slave_t * ec_master_find_slave(ec_master_t *master, uint16_t alias, uint16_t position)
Finds a slave in the bus, given the alias and position.
Definition: master.c:1834
static ATTRIBUTES int ec_ioctl_sc_add_entry(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Add an entry to a PDO&#39;s mapping.
Definition: ioctl.c:2353
uint8_t link_state
device link state
Definition: device.h:88
Access rights in SAFEOP.
Definition: globals.h:182
unsigned int ec_pdo_list_count(const ec_pdo_list_t *pl)
Get the number of PDOs in the list.
Definition: pdo_list.c:311
ec_master_t * ecrt_request_master_err(unsigned int)
Request a master.
Definition: module.c:541
uint16_t boot_tx_mailbox_size
Bootstrap transmit mailbox size.
Definition: slave.h:142
#define EC_IOCTL
ioctl() function to use.
Definition: ioctl.c:4257
const uint8_t * macs[EC_MAX_NUM_DEVICES]
Device MAC addresses.
Definition: master.h:212
uint32_t result
FoE request abort code.
Definition: foe_request.h:68
void ecrt_master_state(const ec_master_t *master, ec_master_state_t *state)
Reads the current master state.
Definition: master.c:2736
u64 rx_count
Number of frames received.
Definition: device.h:102
void ecrt_voe_handler_read_nosync(ec_voe_handler_t *voe)
Start a VoE read operation without querying the sync manager status.
Definition: voe_handler.c:168
wait_queue_head_t request_queue
Wait queue for external requests from user space.
Definition: master.h:311
int ecrt_slave_config_emerg_clear(ec_slave_config_t *sc)
Clears CoE emergency ring buffer and the overrun counter.
void ecrt_domain_external_memory(ec_domain_t *domain, uint8_t *mem)
Provide external memory to store the domain&#39;s process data.
Definition: domain.c:434
void ecrt_master_sync_reference_clock_to(ec_master_t *master, uint64_t sync_time)
Queues the DC reference clock drift compensation datagram for sending.
Definition: master.c:2815
void ecrt_sdo_request_timeout(ec_sdo_request_t *req, uint32_t timeout)
Set the timeout for an SDO request.
Definition: sdo_request.c:196
Access rights in PREOP.
Definition: globals.h:181
static ATTRIBUTES int ec_ioctl_config_pdo_entry(ec_master_t *master, void *arg)
Get slave configuration PDO entry information.
Definition: ioctl.c:1312
unsigned int sync_count
Number of sync managers.
Definition: slave.h:166
struct list_head list
List head.
Definition: fsm_master.h:54
SII write request.
Definition: fsm_master.h:53
ec_domain_t * ecrt_master_create_domain_err(ec_master_t *master)
Same as ecrt_master_create_domain(), but with ERR_PTR() return value.
Definition: master.c:2260
uint32_t tx_rate
transmit rate (bps)
Definition: ethernet.h:106
char * key
Flag key (null-terminated ASCII string.
Definition: flag.h:40
int ecrt_slave_config_flag(ec_slave_config_t *sc, const char *key, int32_t value)
Adds a feature flag to a slave configuration.
uint16_t std_rx_mailbox_size
Standard receive mailbox size.
Definition: slave.h:144
static ATTRIBUTES int ec_ioctl_slave_foe_read(ec_master_t *master, void *arg)
Read a file from a slave via FoE.
Definition: ioctl.c:3977
const ec_slave_config_t * ec_master_get_config_const(const ec_master_t *master, unsigned int pos)
Get a slave configuration via its position in the list.
Definition: master.c:1914
void ecrt_slave_config_dc(ec_slave_config_t *sc, uint16_t assign_activate, uint32_t sync0_cycle_time, int32_t sync0_shift_time, uint32_t sync1_cycle_time, int32_t sync1_shift_time)
Configure distributed clocks.
Definition: slave_config.c:937
uint16_t std_tx_mailbox_offset
Standard transmit mailbox address.
Definition: slave.h:145
s32 rx_frame_rates[EC_RATE_COUNT]
Receive rates in frames/s for different statistics cycle periods.
Definition: device.h:114
uint8_t * ecrt_sdo_request_data(ec_sdo_request_t *req)
Access to the SDO request&#39;s data.
Definition: sdo_request.c:203
static ATTRIBUTES int ec_ioctl_master_state(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get the master state.
Definition: ioctl.c:1940
ec_direction_t dir
Direction.
Definition: sdo_request.h:60
PDO entry description.
Definition: pdo_entry.h:48
static ATTRIBUTES int ec_ioctl_sc_emerg_overruns(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get the number of emergency overruns.
Definition: ioctl.c:2734
EtherCAT master structure.
uint8_t * data
Memory for the process data.
Definition: domain.h:62
ec_sync_signal_t dc_sync[EC_SYNC_SIGNAL_COUNT]
DC sync signals.
Definition: slave_config.h:142
uint16_t index
PDO index.
Definition: pdo.h:51
static ATTRIBUTES int ec_ioctl_slave_foe_write(ec_master_t *master, void *arg)
Write a file to a slave via FoE.
Definition: ioctl.c:4073
#define EC_MASTER_DBG(master, level, fmt, args...)
Convenience macro for printing master-specific debug messages to syslog.
Definition: master.h:111
static ATTRIBUTES int ec_ioctl_master_rescan(ec_master_t *master, void *arg)
Issue a bus scan.
Definition: ioctl.c:624
uint16_t boot_tx_mailbox_offset
Bootstrap transmit mailbox address.
Definition: slave.h:141
const ec_pdo_entry_t * ec_pdo_find_entry_by_pos_const(const ec_pdo_t *pdo, unsigned int pos)
Finds a PDO entry via its position in the list.
Definition: pdo.c:279
static ATTRIBUTES int ec_ioctl_sc_create_sdo_request(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Create an SDO request.
Definition: ioctl.c:2779
ec_slave_t * slave
EtherCAT slave.
Definition: fsm_master.h:55
uint16_t index
PDO entry index.
Definition: pdo_entry.h:50
EtherCAT slave.
Definition: slave.h:176
struct semaphore master_sem
Master semaphore.
Definition: master.h:209
static ATTRIBUTES int ec_ioctl_sdo_request_index(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sets an SDO request&#39;s SDO index and subindex.
Definition: ioctl.c:3247
unsigned int ec_pdo_entry_count(const ec_pdo_t *pdo)
Get the number of PDO entries.
Definition: pdo.c:257
uint32_t logical_start_address
Logical start address.
Definition: fmmu_config.h:52
void ec_foe_request_clear(ec_foe_request_t *req)
FoE request destructor.
Definition: foe_request.c:78
void ecrt_sdo_request_read(ec_sdo_request_t *req)
Schedule an SDO read operation.
Definition: sdo_request.c:224
size_t buffer_size
Size of FoE data memory.
Definition: foe_request.h:53
static ATTRIBUTES int ec_ioctl_sdo_request_read(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts an SDO read operation.
Definition: ioctl.c:3366
static ATTRIBUTES int ec_ioctl_domain_fmmu(ec_master_t *master, void *arg)
Get domain FMMU information.
Definition: ioctl.c:513
ec_voe_handler_t * ecrt_slave_config_create_voe_handler_err(ec_slave_config_t *sc, size_t size)
Same as ecrt_slave_config_create_voe_handler(), but with ERR_PTR() return value.
Master state.
Definition: ecrt.h:271
static ATTRIBUTES int ec_ioctl_sdo_request_state(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Gets an SDO request&#39;s state.
Definition: ioctl.c:3321
int ecrt_slave_config_complete_sdo(ec_slave_config_t *sc, uint16_t index, const uint8_t *data, size_t size)
Add configuration data for a complete SDO.
char * description
Description.
Definition: sdo_entry.h:62
int ec_master_debug_level(ec_master_t *master, unsigned int level)
Set the debug level.
Definition: master.c:2042
#define ATTRIBUTES
Optional compiler attributes fo ioctl() functions.
Definition: ioctl.c:55
Slave configuration state.
Definition: ecrt.h:319
s32 tx_frame_rates[EC_RATE_COUNT]
Transmit rates in frames/s for different statistics cycle periods.
Definition: master.h:167
s32 rx_byte_rates[EC_RATE_COUNT]
Receive rates in byte/s for different statistics cycle periods.
Definition: master.h:175
Ethernet over EtherCAT (EoE)
ec_sync_config_t sync_configs[EC_MAX_SYNC_MANAGERS]
Sync manager configurations.
Definition: slave_config.h:137
ec_device_stats_t device_stats
Device statistics.
Definition: master.h:219
static ATTRIBUTES int ec_ioctl_request(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Request the master from userspace.
Definition: ioctl.c:1622
struct list_head reg_requests
List of register requests.
Definition: slave_config.h:147
static ATTRIBUTES int ec_ioctl_app_time(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Set the master DC application time.
Definition: ioctl.c:1994
ec_master_phase_t phase
Master phase.
Definition: master.h:223
Domain state.
Definition: ecrt.h:420
static ATTRIBUTES int ec_ioctl_sc_state(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get the slave configuration&#39;s state.
Definition: ioctl.c:2934
static ATTRIBUTES int ec_ioctl_domain_data(ec_master_t *master, void *arg)
Get domain data.
Definition: ioctl.c:565
uint8_t * buffer
Pointer to FoE data.
Definition: foe_request.h:52
uint8_t sync_index
Index of sync manager to use.
Definition: fmmu_config.h:50
Slave configutation feature flag.
Definition: flag.h:38
static ATTRIBUTES int ec_ioctl_sc_watchdog(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Configure a slave&#39;s watchdogs.
Definition: ioctl.c:2239
struct semaphore device_sem
Device semaphore.
Definition: master.h:218
static ATTRIBUTES int ec_ioctl_sc_add_pdo(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Add a PDO to the assignment.
Definition: ioctl.c:2284
PDO description.
Definition: pdo.h:49
s32 rx_byte_rates[EC_RATE_COUNT]
Receive rates in byte/s for different statistics cycle periods.
Definition: device.h:119
struct list_head sdo_requests
List of SDO requests.
Definition: slave_config.h:145
int ecrt_master_sdo_download(ec_master_t *master, uint16_t slave_position, uint16_t index, uint8_t subindex, uint8_t *data, size_t data_size, uint32_t *abort_code)
Executes an SDO download request to write data to a slave.
Definition: master.c:2857
EtherCAT device.
Definition: device.h:81
uint16_t * sii_words
Complete SII image.
Definition: slave.h:219
uint16_t mailbox_protocols
Supported mailbox protocols.
Definition: slave.h:147
ec_domain_t * ec_master_find_domain(ec_master_t *master, unsigned int index)
Get a domain via its position in the list.
Definition: master.c:1963
size_t data_size
Size of SDO data.
Definition: soe_request.h:55
static ATTRIBUTES int ec_ioctl_sc_dc(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sets the DC AssignActivate word and the sync signal times.
Definition: ioctl.c:2520
ec_reg_request_t * ecrt_slave_config_create_reg_request_err(ec_slave_config_t *sc, size_t size)
Same as ecrt_slave_config_create_reg_request(), but with ERR_PTR() return value.
#define EC_SLAVE_ERR(slave, fmt, args...)
Convenience macro for printing slave-specific errors to syslog.
Definition: slave.h:76
unsigned int ec_master_domain_count(const ec_master_t *master)
Get the number of domains.
Definition: master.c:1929
ec_slave_dc_range_t base_dc_range
DC range.
Definition: slave.h:211
uint8_t bit_length
entry length in bit
Definition: pdo_entry.h:53
Sync manager.
Definition: sync.h:47
static ATTRIBUTES int ec_ioctl_master_debug(ec_master_t *master, void *arg)
Set master debug level.
Definition: ioctl.c:610
uint16_t std_rx_mailbox_offset
Standard receive mailbox address.
Definition: slave.h:143
uint8_t base_fmmu_bit_operation
FMMU bit operation is supported.
Definition: slave.h:209
static ATTRIBUTES int ec_ioctl_sc_flag(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Configures a feature flag.
Definition: ioctl.c:3026
s32 loss_rates[EC_RATE_COUNT]
Frame loss rates for different statistics cycle periods.
Definition: master.h:177
uint32_t transmission_delay
DC system time transmission delay (offset from reference clock).
Definition: slave.h:215
int ecrt_master_select_reference_clock(ec_master_t *master, ec_slave_config_t *sc)
Selects the reference clock for distributed clocks.
Definition: master.c:2626
unsigned int slave_count
Number of slaves on the bus.
Definition: master.h:232
unsigned int scan_busy
Current scan state.
Definition: master.h:250
ec_pdo_list_t pdos
Current PDO assignment.
Definition: sync_config.h:49
struct list_head voe_handlers
List of VoE handlers.
Definition: slave_config.h:146
char * name
SDO name.
Definition: sdo.h:54
uint16_t dc_assign_activate
Vendor-specific AssignActivate word.
Definition: slave_config.h:141
s32 rx_frame_rates[EC_RATE_COUNT]
Receive rates in frames/s for different statistics cycle periods.
Definition: master.h:170
static ATTRIBUTES int ec_ioctl_slave_sii_read(ec_master_t *master, void *arg)
Read a slave&#39;s SII.
Definition: ioctl.c:897
unsigned int index
Index (just a number).
Definition: domain.h:58
s32 tx_byte_rates[EC_RATE_COUNT]
Transmit rates in byte/s for different statistics cycle periods.
Definition: device.h:117
Main device.
Definition: globals.h:190
static ATTRIBUTES int ec_ioctl_send(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Send frames.
Definition: ioctl.c:1894
static ATTRIBUTES int ec_ioctl_slave(ec_master_t *master, void *arg)
Get slave information.
Definition: ioctl.c:200
uint16_t watchdog_intervals
Process data watchdog intervals (see spec.
Definition: slave_config.h:131
ec_slave_port_desc_t desc
Port descriptors.
Definition: slave.h:119
#define EC_MASTER_WARN(master, fmt, args...)
Convenience macro for printing master-specific warnings to syslog.
Definition: master.h:97
static ATTRIBUTES int ec_ioctl_config_idn(ec_master_t *master, void *arg)
Get slave configuration IDN information.
Definition: ioctl.c:1441
static ATTRIBUTES int ec_ioctl_config(ec_master_t *master, void *arg)
Get slave configuration information.
Definition: ioctl.c:1197
Vendor specific over EtherCAT handler.
Definition: voe_handler.h:49
unsigned int active
Master has been activated.
Definition: master.h:224
static ATTRIBUTES int ec_ioctl_set_send_interval(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Set max.
Definition: ioctl.c:1860
ec_master_t * master
Master owning the slave.
Definition: slave.h:178
ec_request_state_t ecrt_voe_handler_execute(ec_voe_handler_t *voe)
Execute the handler.
Definition: voe_handler.c:187
static ATTRIBUTES int ec_ioctl_voe_read_nosync(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts a VoE read operation without sending a sync message first.
Definition: ioctl.c:3807
unsigned int ec_slave_config_sdo_count(const ec_slave_config_t *sc)
Get the number of SDO configurations.
Definition: slave_config.c:382
const ec_sdo_t * ec_slave_get_sdo_by_pos_const(const ec_slave_t *slave, uint16_t sdo_position)
Get an SDO from the dictionary, given its position in the list.
Definition: slave.c:684
static ATTRIBUTES int ec_ioctl_master(ec_master_t *master, void *arg)
Get master information.
Definition: ioctl.c:102
static ATTRIBUTES int ec_ioctl_reg_request_data(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Read register data.
Definition: ioctl.c:3494
u64 rx_bytes
Number of bytes received.
Definition: device.h:107
int ecrt_master_sdo_upload(ec_master_t *master, uint16_t slave_position, uint16_t index, uint8_t subindex, uint8_t *target, size_t target_size, size_t *result_size, uint32_t *abort_code)
Executes an SDO upload request to read data from a slave.
Definition: master.c:3017
uint8_t has_dc_system_time
The slave supports the DC system time register.
Definition: slave.h:212
void ec_foe_request_init(ec_foe_request_t *req, uint8_t *file_name)
FoE request constructor.
Definition: foe_request.c:57
static ATTRIBUTES int ec_ioctl_sc_sync(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Configure a sync manager.
Definition: ioctl.c:2186
u64 tx_count
Number of frames sent.
Definition: device.h:100
unsigned int ec_domain_fmmu_count(const ec_domain_t *domain)
Get the number of FMMU configurations of the domain.
Definition: domain.c:332
static ATTRIBUTES int ec_ioctl_sync_ref_to(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sync the reference clock.
Definition: ioctl.c:2041
static ATTRIBUTES int ec_ioctl_slave_sii_write(ec_master_t *master, void *arg)
Write a slave&#39;s SII.
Definition: ioctl.c:945
static ATTRIBUTES int ec_ioctl_sync_mon_queue(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Queue the sync monitoring datagram.
Definition: ioctl.c:2121
#define EC_MASTER_ERR(master, fmt, args...)
Convenience macro for printing master-specific errors to syslog.
Definition: master.h:85
uint8_t subindex
PDO entry subindex.
Definition: pdo_entry.h:51
uint8_t control_register
Control register value.
Definition: sync.h:51
static ATTRIBUTES int ec_ioctl_sync_ref(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Sync the reference clock.
Definition: ioctl.c:2019
Values read by the master.
Definition: ecrt.h:433
ec_direction_t dir
Sync manager direction.
Definition: sync_config.h:47
int ec_rtdm_mmap(ec_ioctl_context_t *ioctl_ctx, void **user_address)
Memory-map process data to user space.
Definition: rtdm.c:220
uint16_t data_type
Data type.
Definition: sdo_entry.h:58
ec_request_state_t ecrt_sdo_request_state(const ec_sdo_request_t *req)
Get the current state of the SDO request.
Definition: sdo_request.c:217
struct list_head configs
List of slave configurations.
Definition: master.h:235
ec_slave_t * slave
Slave pointer.
Definition: slave_config.h:134
unsigned int opened
net_device is opened
Definition: ethernet.h:85
static ATTRIBUTES int ec_ioctl_create_domain(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Create a domain.
Definition: ioctl.c:1647
static ATTRIBUTES int ec_ioctl_reset(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Reset configuration.
Definition: ioctl.c:2168
uint16_t watchdog_divider
Watchdog divider as a number of 40ns intervals (see spec.
Definition: slave_config.h:129
ec_sdo_request_t * ec_slave_config_find_sdo_request(ec_slave_config_t *sc, unsigned int pos)
Finds a CoE handler via its position in the list.
Definition: slave_config.c:514
ec_al_state_t al_state
AL state (only valid for IDN config).
Definition: soe_request.h:52
Access rights in OP.
Definition: globals.h:183
int ecrt_slave_config_idn(ec_slave_config_t *sc, uint8_t drive_no, uint16_t idn, ec_al_state_t state, const uint8_t *data, size_t size)
Add an SoE IDN configuration.
void ecrt_master_reset(ec_master_t *master)
Retry configuring slaves.
Definition: master.c:3260
static ATTRIBUTES int ec_ioctl_voe_write(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts a VoE write operation.
Definition: ioctl.c:3844
static ATTRIBUTES int ec_ioctl_domain_queue(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Queue the domain.
Definition: ioctl.c:3179
size_t data_size
Size of FoE data.
Definition: foe_request.h:54
static ATTRIBUTES int ec_ioctl_voe_rec_header(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Gets the received VoE header.
Definition: ioctl.c:3722
static ATTRIBUTES int ec_ioctl_config_flag(ec_master_t *master, void *arg)
Get slave configuration feature flag information.
Definition: ioctl.c:1505
void ecrt_master_sync_monitor_queue(ec_master_t *master)
Queues the DC synchrony monitoring datagram for sending.
Definition: master.c:2838
void ecrt_voe_handler_write(ec_voe_handler_t *voe, size_t size)
Start a VoE write operation.
Definition: voe_handler.c:177
static ATTRIBUTES int ec_ioctl_receive(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Receive frames.
Definition: ioctl.c:1918
uint16_t working_counter[EC_MAX_NUM_DEVICES]
Last working counter values.
Definition: domain.h:68
uint8_t * file_name
Pointer to the filename.
Definition: foe_request.h:67
const ec_sdo_t * ec_slave_get_sdo_const(const ec_slave_t *slave, uint16_t index)
Get an SDO from the dictionary.
Definition: slave.c:662
uint32_t logical_base_address
Logical offset address of the process data.
Definition: domain.h:64
static ATTRIBUTES int ec_ioctl_sc_emerg_size(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Set the emergency ring buffer size.
Definition: ioctl.c:2619
uint8_t read_access[EC_SDO_ENTRY_ACCESS_COUNT]
Read access.
Definition: sdo_entry.h:60
int ecrt_slave_config_pdo_mapping_add(ec_slave_config_t *sc, uint16_t pdo_index, uint16_t entry_index, uint8_t entry_subindex, uint8_t entry_bit_length)
Add a PDO entry to the given PDO&#39;s mapping.
Definition: slave_config.c:688
ec_watchdog_mode_t watchdog_mode
Watchdog mode.
Definition: sync_config.h:48
struct net_device_stats stats
device statistics
Definition: ethernet.h:84
char * name
PDO name.
Definition: pdo.h:53
uint8_t subindex
SDO subindex.
Definition: sdo_request.h:51
FoE request.
Definition: foe_request.h:50
uint16_t expected_working_counter
Expected working counter.
Definition: domain.h:70
static ATTRIBUTES int ec_ioctl_slave_sync_pdo_entry(ec_master_t *master, void *arg)
Get slave sync manager PDO entry information.
Definition: ioctl.c:399
unsigned int ec_slave_config_idn_count(const ec_slave_config_t *sc)
Get the number of IDN configurations.
Definition: slave_config.c:426
u64 tx_errors
Number of transmit errors.
Definition: device.h:110
int ecrt_slave_config_reg_pdo_entry(ec_slave_config_t *sc, uint16_t index, uint8_t subindex, ec_domain_t *domain, unsigned int *bit_position)
Registers a PDO entry for process data exchange in a domain.
Definition: slave_config.c:817
uint16_t effective_alias
Effective alias address.
Definition: slave.h:185
char * name
entry name
Definition: pdo_entry.h:52
size_t data_size
Size of SDO data.
Definition: sdo_request.h:54
int ecrt_master_read_idn(ec_master_t *master, uint16_t slave_position, uint8_t drive_no, uint16_t idn, uint8_t *target, size_t target_size, size_t *result_size, uint16_t *error_code)
Executes an SoE read request.
Definition: master.c:3176
static ATTRIBUTES int ec_ioctl_slave_sync(ec_master_t *master, void *arg)
Get slave sync manager information.
Definition: ioctl.c:287
struct list_head foe_requests
FoE write requests.
Definition: slave.h:231
ec_direction_t dir
Direction.
Definition: voe_handler.h:56
static ATTRIBUTES int ec_ioctl_voe_read(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Starts a VoE read operation.
Definition: ioctl.c:3770
u64 tx_bytes
Number of bytes sent.
Definition: master.h:161
int ecrt_master_activate(ec_master_t *master)
Finishes the configuration phase and prepares for cyclic operation.
Definition: master.c:2307
static ATTRIBUTES int ec_ioctl_sc_create_voe_handler(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Create a VoE handler.
Definition: ioctl.c:2884
uint16_t ec_master_eoe_handler_count(const ec_master_t *master)
Get the number of EoE handlers.
Definition: master.c:1995
size_t ecrt_sdo_request_data_size(const ec_sdo_request_t *req)
Returns the current SDO data size.
Definition: sdo_request.c:210
void ecrt_slave_config_pdo_mapping_clear(ec_slave_config_t *sc, uint16_t pdo_index)
Clear the mapping of a given PDO.
Definition: slave_config.c:725
uint8_t enable
Enable bit.
Definition: sync.h:52
static ATTRIBUTES int ec_ioctl_sc_clear_pdos(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Clears the PDO assignment.
Definition: ioctl.c:2318
uint8_t * data
Pointer to data memory.
Definition: reg_request.h:51
Vendor specific over EtherCAT protocol handler.
uint16_t boot_rx_mailbox_size
Bootstrap receive mailbox size.
Definition: slave.h:140
#define EC_MAX_PORTS
Maximum number of slave ports.
Definition: ecrt.h:222
ec_slave_t * next_slave
Connected slaves.
Definition: slave.h:121
ec_direction_t dir
Direction.
Definition: reg_request.h:52
static ATTRIBUTES int ec_ioctl_deactivate(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Deactivates the master.
Definition: ioctl.c:1841
uint32_t vendor_id
Slave vendor ID.
Definition: slave_config.h:126
uint32_t receive_time
Port receive times for delay measurement.
Definition: slave.h:122
uint8_t max_subindex
Maximum subindex.
Definition: sdo.h:55
static ATTRIBUTES int ec_ioctl_sc_sdo(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Configures an SDO.
Definition: ioctl.c:2560
void ec_master_internal_send_cb(void *cb_data)
Internal sending callback.
Definition: master.c:548
char * image
Image name.
Definition: slave.h:156
ec_pdo_list_t pdos
Current PDO assignment.
Definition: sync.h:53
int32_t value
Flag value (meaning depends on key).
Definition: flag.h:41
static ATTRIBUTES int ec_ioctl_sc_reg_pdo_entry(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Registers a PDO entry.
Definition: ioctl.c:2423
static ATTRIBUTES int ec_ioctl_activate(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Activates the master.
Definition: ioctl.c:1758
u64 app_time
Time of the last ecrt_master_sync() call.
Definition: master.h:238
void ec_slave_request_state(ec_slave_t *slave, ec_slave_state_t state)
Request a slave state and resets the error flag.
Definition: slave.c:296
uint16_t physical_start_address
Physical start address.
Definition: sync.h:49
static ATTRIBUTES int ec_ioctl_domain_state(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get the domain state.
Definition: ioctl.c:3209
void ec_foe_request_read(ec_foe_request_t *req)
Prepares a read request (slave to master).
Definition: foe_request.c:214
uint8_t base_dc_supported
Distributed clocks are supported.
Definition: slave.h:210
u64 rx_count
Number of frames received.
Definition: master.h:158
void ecrt_slave_config_watchdog(ec_slave_config_t *sc, uint16_t divider, uint16_t intervals)
Configure a slave&#39;s watchdog times.
Definition: slave_config.c:628
void ecrt_master_deactivate(ec_master_t *master)
Deactivates the master.
Definition: master.c:2375
static ATTRIBUTES int ec_ioctl_slave_sdo(ec_master_t *master, void *arg)
Get slave SDO information.
Definition: ioctl.c:674
size_t sii_nwords
Size of the SII contents in words.
Definition: slave.h:220
unsigned int ec_master_count(void)
Get the number of masters.
Definition: module.c:211
void ec_reg_request_clear(ec_reg_request_t *reg)
Register request destructor.
Definition: reg_request.c:73
char * group
Group name.
Definition: slave.h:155
int ecrt_slave_config_sync_manager(ec_slave_config_t *sc, uint8_t sync_index, ec_direction_t dir, ec_watchdog_mode_t watchdog_mode)
Configure a sync manager.
Definition: slave_config.c:601
int ecrt_master_write_idn(ec_master_t *master, uint16_t slave_position, uint8_t drive_no, uint16_t idn, uint8_t *data, size_t data_size, uint16_t *error_code)
Executes an SoE write request.
Definition: master.c:3100
EtherCAT slave configuration.
Definition: slave_config.h:119
void ecrt_voe_handler_send_header(ec_voe_handler_t *voe, uint32_t vendor_id, uint16_t vendor_type)
Sets the VoE header for future send operations.
Definition: voe_handler.c:123
static ATTRIBUTES int ec_ioctl_sc_emerg_pop(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Get an emergency message from the ring.
Definition: ioctl.c:2657
uint32_t error_code
Error code from an FoE Error Request.
Definition: foe_request.h:69
static ATTRIBUTES int ec_ioctl_domain_size(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Gets the domain&#39;s data size.
Definition: ioctl.c:3083
struct net_device * dev
pointer to the assigned net_device
Definition: device.h:84
EtherCAT master character device IOCTL commands.
static void ec_ioctl_strcpy(char *target, const char *source)
Copies a string to an ioctl structure.
Definition: ioctl.c:62
Request was processed successfully.
Definition: ecrt.h:533
EtherCAT slave configuration structure.
uint16_t idn
Sercos ID-Number.
Definition: soe_request.h:51
ec_internal_request_state_t state
FoE request state.
Definition: foe_request.h:63
uint8_t write_access[EC_SDO_ENTRY_ACCESS_COUNT]
Write access.
Definition: sdo_entry.h:61
ec_slave_config_t * ecrt_master_slave_config_err(ec_master_t *master, uint16_t alias, uint16_t position, uint32_t vendor_id, uint32_t product_code)
Same as ecrt_master_slave_config(), but with ERR_PTR() return value.
Definition: master.c:2557
ec_device_index_t device_index
Index of device the slave responds on.
Definition: slave.h:179
uint8_t * ecrt_reg_request_data(ec_reg_request_t *reg)
Access to the register request&#39;s data.
Definition: reg_request.c:86
int ecrt_master_reference_clock_time(ec_master_t *master, uint32_t *time)
Get the lower 32 bit of the reference clock system time.
Definition: master.c:2786
unsigned int index
Index.
Definition: master.h:195
unsigned int ec_master_config_count(const ec_master_t *master)
Get the number of slave configurations provided by the application.
Definition: master.c:1866
void ecrt_domain_state(const ec_domain_t *domain, ec_domain_state_t *state)
Reads the state of a domain.
Definition: domain.c:678
uint16_t default_length
Data length in bytes.
Definition: sync.h:50
int ecrt_slave_config_emerg_pop(ec_slave_config_t *sc, uint8_t *target)
Read and remove one record from the CoE emergency ring buffer.
static ATTRIBUTES int ec_ioctl_voe_exec(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Executes the VoE state machine.
Definition: ioctl.c:3890
void ecrt_slave_config_pdo_assign_clear(ec_slave_config_t *sc, uint8_t sync_index)
Clear a sync manager&#39;s PDO assignment.
Definition: slave_config.c:670
int ec_sdo_request_alloc(ec_sdo_request_t *req, size_t size)
Pre-allocates the data memory.
Definition: sdo_request.c:127
uint32_t product_code
Vendor-specific product code.
Definition: slave.h:136
void ecrt_domain_process(ec_domain_t *domain)
Determines the states of the domain&#39;s datagrams.
Definition: domain.c:458
ec_direction_t dir
FMMU direction.
Definition: fmmu_config.h:51
void ecrt_slave_config_state(const ec_slave_config_t *sc, ec_slave_config_state_t *state)
Outputs the state of the slave configuration.
const ec_pdo_t * ec_pdo_list_find_pdo_by_pos_const(const ec_pdo_list_t *pl, unsigned int pos)
Finds a PDO via its position in the list.
Definition: pdo_list.c:289
Ethernet over EtherCAT (EoE) handler.
Definition: ethernet.h:76
ec_fsm_master_t fsm
Master state machine.
Definition: master.h:221
u64 rx_bytes
Number of bytes received.
Definition: master.h:163
void ecrt_domain_queue(ec_domain_t *domain)
(Re-)queues all domain datagrams in the master&#39;s datagram queue.
Definition: domain.c:648
#define EC_COE_EMERGENCY_MSG_SIZE
Size of a CoE emergency message in byte.
Definition: ecrt.h:239
unsigned int error_flag
Stop processing after an error.
Definition: slave.h:193
ec_sync_t * syncs
SYNC MANAGER categories.
Definition: slave.h:165
uint16_t std_tx_mailbox_size
Standard transmit mailbox size.
Definition: slave.h:146
EtherCAT master.
Definition: master.h:194
struct list_head list
List item.
Definition: reg_request.h:49
void ecrt_master_sync_reference_clock(ec_master_t *master)
Queues the DC reference clock drift compensation datagram for sending.
Definition: master.c:2805
static ATTRIBUTES int ec_ioctl_sc_reg_pdo_pos(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Registers a PDO entry by its position.
Definition: ioctl.c:2470
#define EC_MAX_SYNC_MANAGERS
Maximum number of sync managers per slave.
Definition: ecrt.h:213
ec_device_t devices[EC_MAX_NUM_DEVICES]
EtherCAT devices.
Definition: master.h:211
static ATTRIBUTES int ec_ioctl_slave_soe_write(ec_master_t *master, void *arg)
Write an IDN to a slave via SoE.
Definition: ioctl.c:4210
u64 tx_bytes
Number of bytes sent.
Definition: device.h:105
static ATTRIBUTES int ec_ioctl_slave_sync_pdo(ec_master_t *master, void *arg)
Get slave sync manager PDO information.
Definition: ioctl.c:340
static ATTRIBUTES int ec_ioctl_select_ref_clock(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Select the DC reference clock.
Definition: ioctl.c:1717
#define EC_SYNC_SIGNAL_COUNT
Number of DC sync signals.
Definition: globals.h:98
uint8_t * ecrt_voe_handler_data(ec_voe_handler_t *voe)
Access to the VoE handler&#39;s data.
Definition: voe_handler.c:145
void ecrt_sdo_request_write(ec_sdo_request_t *req)
Schedule an SDO write operation.
Definition: sdo_request.c:235
static ATTRIBUTES int ec_ioctl_slave_reg_write(ec_master_t *master, void *arg)
Write a slave&#39;s registers.
Definition: ioctl.c:1112
int ecrt_slave_config_emerg_overruns(ec_slave_config_t *sc)
Read the number of CoE emergency overruns.
const uint16_t * words
Pointer to the data words.
Definition: fsm_master.h:58
static ATTRIBUTES int ec_ioctl_voe_data(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Reads the received VoE data.
Definition: ioctl.c:3937
char * name
Slave name.
Definition: slave.h:158
void ec_master_set_send_interval(ec_master_t *master, unsigned int send_interval)
Sets the expected interval between calls to ecrt_master_send and calculates the maximum amount of dat...
Definition: master.c:915
ec_request_state_t ecrt_reg_request_state(const ec_reg_request_t *reg)
Get the current state of the register request.
Definition: reg_request.c:93
static ATTRIBUTES int ec_ioctl_sdo_request_data(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Read SDO data.
Definition: ioctl.c:3454
EtherCAT domain.
Definition: domain.h:54
struct net_device * dev
net_device for virtual ethernet device
Definition: ethernet.h:83
static ATTRIBUTES int ec_ioctl_sync_mon_process(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Processes the sync monitoring datagram.
Definition: ioctl.c:2143
static ATTRIBUTES int ec_ioctl_eoe_handler(ec_master_t *master, void *arg)
Get EoE handler information.
Definition: ioctl.c:1570
uint32_t vendor_id
Vendor ID.
Definition: slave.h:135
uint8_t complete_access
SDO shall be transferred completely.
Definition: sdo_request.h:55
uint32_t delay_to_next_dc
Delay to next slave with DC support behind this port [ns].
Definition: slave.h:124
static ATTRIBUTES int ec_ioctl_slave_sdo_download(ec_master_t *master, void *arg)
Download SDO.
Definition: ioctl.c:849
void ecrt_sdo_request_index(ec_sdo_request_t *req, uint16_t index, uint8_t subindex)
Set the SDO index and subindex.
Definition: sdo_request.c:187
ec_slave_t * dc_ref_clock
DC reference clock slave.
Definition: master.h:248
ec_voe_handler_t * ec_slave_config_find_voe_handler(ec_slave_config_t *sc, unsigned int pos)
Finds a VoE handler via its position in the list.
Definition: slave_config.c:558
ec_master_t * master
EtherCAT master owning the domain.
Definition: domain.h:57
static ATTRIBUTES int ec_ioctl_sc_idn(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Configures an IDN.
Definition: ioctl.c:2972
struct list_head list
List item.
Definition: foe_request.h:51
unsigned int has_general
General category present.
Definition: slave.h:154
unsigned int tx_queued_frames
number of frames in the queue
Definition: ethernet.h:99
static ATTRIBUTES int ec_ioctl_sc_clear_entries(ec_master_t *master, void *arg, ec_ioctl_context_t *ctx)
Clears the mapping of a PDO.
Definition: ioctl.c:2388
void ecrt_master_receive(ec_master_t *master)
Fetches received frames from the hardware and processes the datagrams.
Definition: master.c:2488
Sercos-over-EtherCAT request.
Definition: soe_request.h:48
void ecrt_master_send(ec_master_t *master)
Sends all datagrams in the queue.
Definition: master.c:2444
const ec_fmmu_config_t * ec_domain_find_fmmu(const ec_domain_t *domain, unsigned int pos)
Get a certain FMMU configuration via its position in the list.
Definition: domain.c:350