xref: /haiku/src/add-ons/kernel/drivers/disk/scsi/scsi_disk/scsi_disk.cpp (revision 1deede7388b04dbeec5af85cae7164735ea9e70d)
1 /*
2  * Copyright 2021 David Sebek, dasebek@gmail.com
3  * Copyright 2008-2013 Axel Dörfler, axeld@pinc-software.de
4  * Copyright 2002/03 Thomas Kurschel
5  * All rights reserved. Distributed under the terms of the MIT License.
6  */
7 
8 
9 /*!	Peripheral driver to handle any kind of SCSI disks,
10 	i.e. hard disk and floopy disks (ZIP etc.)
11 
12 	Much work is done by scsi_periph and block_io.
13 
14 	You'll find das_... all over the place. This stands for
15 	"Direct Access Storage" which is the official SCSI name for
16 	normal (floppy/hard/ZIP)-disk drives.
17 */
18 
19 
20 #include "scsi_disk.h"
21 
22 #include <string.h>
23 #include <stdlib.h>
24 
25 #include <AutoDeleter.h>
26 
27 #include <fs/devfs.h>
28 #include <util/fs_trim_support.h>
29 
30 #include "dma_resources.h"
31 #include "IORequest.h"
32 #include "IOSchedulerSimple.h"
33 
34 
35 //#define TRACE_SCSI_DISK
36 #ifdef TRACE_SCSI_DISK
37 #	define TRACE(x...) dprintf("scsi_disk: " x)
38 #else
39 #	define TRACE(x...) ;
40 #endif
41 
42 
43 static const uint8 kDriveIcon[] = {
44 	0x6e, 0x63, 0x69, 0x66, 0x08, 0x03, 0x01, 0x00, 0x00, 0x02, 0x00, 0x16,
45 	0x02, 0x3c, 0xc7, 0xee, 0x38, 0x9b, 0xc0, 0xba, 0x16, 0x57, 0x3e, 0x39,
46 	0xb0, 0x49, 0x77, 0xc8, 0x42, 0xad, 0xc7, 0x00, 0xff, 0xff, 0xd3, 0x02,
47 	0x00, 0x06, 0x02, 0x3c, 0x96, 0x32, 0x3a, 0x4d, 0x3f, 0xba, 0xfc, 0x01,
48 	0x3d, 0x5a, 0x97, 0x4b, 0x57, 0xa5, 0x49, 0x84, 0x4d, 0x00, 0x47, 0x47,
49 	0x47, 0xff, 0xa5, 0xa0, 0xa0, 0x02, 0x00, 0x16, 0x02, 0xbc, 0x59, 0x2f,
50 	0xbb, 0x29, 0xa7, 0x3c, 0x0c, 0xe4, 0xbd, 0x0b, 0x7c, 0x48, 0x92, 0xc0,
51 	0x4b, 0x79, 0x66, 0x00, 0x7d, 0xff, 0xd4, 0x02, 0x00, 0x06, 0x02, 0x38,
52 	0xdb, 0xb4, 0x39, 0x97, 0x33, 0xbc, 0x4a, 0x33, 0x3b, 0xa5, 0x42, 0x48,
53 	0x6e, 0x66, 0x49, 0xee, 0x7b, 0x00, 0x59, 0x67, 0x56, 0xff, 0xeb, 0xb2,
54 	0xb2, 0x03, 0xa7, 0xff, 0x00, 0x03, 0xff, 0x00, 0x00, 0x04, 0x01, 0x80,
55 	0x07, 0x0a, 0x06, 0x22, 0x3c, 0x22, 0x49, 0x44, 0x5b, 0x5a, 0x3e, 0x5a,
56 	0x31, 0x39, 0x25, 0x0a, 0x04, 0x22, 0x3c, 0x44, 0x4b, 0x5a, 0x31, 0x39,
57 	0x25, 0x0a, 0x04, 0x44, 0x4b, 0x44, 0x5b, 0x5a, 0x3e, 0x5a, 0x31, 0x0a,
58 	0x04, 0x22, 0x3c, 0x22, 0x49, 0x44, 0x5b, 0x44, 0x4b, 0x08, 0x02, 0x27,
59 	0x43, 0xb8, 0x14, 0xc1, 0xf1, 0x08, 0x02, 0x26, 0x43, 0x29, 0x44, 0x0a,
60 	0x05, 0x44, 0x5d, 0x49, 0x5d, 0x60, 0x3e, 0x5a, 0x3b, 0x5b, 0x3f, 0x08,
61 	0x0a, 0x07, 0x01, 0x06, 0x00, 0x0a, 0x00, 0x01, 0x00, 0x10, 0x01, 0x17,
62 	0x84, 0x00, 0x04, 0x0a, 0x01, 0x01, 0x01, 0x00, 0x0a, 0x02, 0x01, 0x02,
63 	0x00, 0x0a, 0x03, 0x01, 0x03, 0x00, 0x0a, 0x04, 0x01, 0x04, 0x10, 0x01,
64 	0x17, 0x85, 0x20, 0x04, 0x0a, 0x06, 0x01, 0x05, 0x30, 0x24, 0xb3, 0x99,
65 	0x01, 0x17, 0x82, 0x00, 0x04, 0x0a, 0x05, 0x01, 0x05, 0x30, 0x20, 0xb2,
66 	0xe6, 0x01, 0x17, 0x82, 0x00, 0x04
67 };
68 
69 
70 static scsi_periph_interface* sSCSIPeripheral;
71 static device_manager_info* sDeviceManager;
72 
73 
74 static status_t
75 update_capacity(das_driver_info* device)
76 {
77 	TRACE("update_capacity()\n");
78 
79 	scsi_ccb *ccb = device->scsi->alloc_ccb(device->scsi_device);
80 	if (ccb == NULL)
81 		return B_NO_MEMORY;
82 
83 	status_t status = sSCSIPeripheral->check_capacity(
84 		device->scsi_periph_device, ccb);
85 
86 	device->scsi->free_ccb(ccb);
87 
88 	return status;
89 }
90 
91 
92 static status_t
93 get_geometry(das_handle* handle, device_geometry* geometry)
94 {
95 	das_driver_info* info = handle->info;
96 
97 	status_t status = update_capacity(info);
98 	if (status != B_OK)
99 		return status;
100 
101 	devfs_compute_geometry_size(geometry, info->capacity, info->block_size);
102 
103 	geometry->device_type = B_DISK;
104 	geometry->removable = info->removable;
105 
106 	// TBD: for all but CD-ROMs, read mode sense - medium type
107 	// (bit 7 of block device specific parameter for Optical Memory Block Device)
108 	// (same for Direct-Access Block Devices)
109 	// (same for write-once block devices)
110 	// (same for optical memory block devices)
111 	geometry->read_only = false;
112 	geometry->write_once = false;
113 
114 	TRACE("scsi_disk: get_geometry(): %" B_PRId32 ", %" B_PRId32 ", %" B_PRId32
115 		", %" B_PRId32 ", %d, %d, %d, %d\n", geometry->bytes_per_sector,
116 		geometry->sectors_per_track, geometry->cylinder_count,
117 		geometry->head_count, geometry->device_type,
118 		geometry->removable, geometry->read_only, geometry->write_once);
119 
120 	return B_OK;
121 }
122 
123 
124 static status_t
125 load_eject(das_driver_info *device, bool load)
126 {
127 	TRACE("load_eject()\n");
128 
129 	scsi_ccb *ccb = device->scsi->alloc_ccb(device->scsi_device);
130 	if (ccb == NULL)
131 		return B_NO_MEMORY;
132 
133 	err_res result = sSCSIPeripheral->send_start_stop(
134 		device->scsi_periph_device, ccb, load, true);
135 
136 	device->scsi->free_ccb(ccb);
137 
138 	return result.error_code;
139 }
140 
141 
142 static status_t
143 synchronize_cache(das_driver_info *device)
144 {
145 	TRACE("synchronize_cache()\n");
146 
147 	scsi_ccb *ccb = device->scsi->alloc_ccb(device->scsi_device);
148 	if (ccb == NULL)
149 		return B_NO_MEMORY;
150 
151 	err_res result = sSCSIPeripheral->synchronize_cache(
152 		device->scsi_periph_device, ccb);
153 
154 	device->scsi->free_ccb(ccb);
155 
156 	return result.error_code;
157 }
158 
159 
160 static status_t
161 trim_device(das_driver_info* device, fs_trim_data* trimData)
162 {
163 	TRACE("trim_device()\n");
164 
165 	trimData->trimmed_size = 0;
166 
167 	scsi_ccb* request = device->scsi->alloc_ccb(device->scsi_device);
168 	if (request == NULL)
169 		return B_NO_MEMORY;
170 
171 	scsi_block_range* blockRanges = (scsi_block_range*)
172 		malloc(trimData->range_count * sizeof(*blockRanges));
173 	if (blockRanges == NULL)
174 		return B_NO_MEMORY;
175 
176 	MemoryDeleter deleter(blockRanges);
177 
178 	for (uint32 i = 0; i < trimData->range_count; i++) {
179 		uint64 startBytes = trimData->ranges[i].offset;
180 		uint64 sizeBytes = trimData->ranges[i].size;
181 		uint32 blockSize = device->block_size;
182 
183 		// Align to a block boundary so we don't discard blocks
184 		// that could also contain some other data
185 		uint64 blockOffset = startBytes % blockSize;
186 		if (blockOffset == 0) {
187 			blockRanges[i].lba = startBytes / blockSize;
188 			blockRanges[i].size = sizeBytes / blockSize;
189 		} else {
190 			blockRanges[i].lba = startBytes / blockSize + 1;
191 			blockRanges[i].size = (sizeBytes - (blockSize - blockOffset))
192 				/ blockSize;
193 		}
194 	}
195 
196 	// Check ranges against device capacity and make them fit
197 	for (uint32 i = 0; i < trimData->range_count; i++) {
198 		if (blockRanges[i].lba >= device->capacity) {
199 			dprintf("trim_device(): range offset (LBA) %" B_PRIu64
200 				" exceeds device capacity %" B_PRIu64 "\n",
201 				blockRanges[i].lba, device->capacity);
202 			return B_BAD_VALUE;
203 		}
204 		uint64 maxSize = device->capacity - blockRanges[i].lba;
205 		blockRanges[i].size = min_c(blockRanges[i].size, maxSize);
206 	}
207 
208 	uint64 trimmedBlocks;
209 	status_t status = sSCSIPeripheral->trim_device(device->scsi_periph_device,
210 		request, blockRanges, trimData->range_count, &trimmedBlocks);
211 
212 	device->scsi->free_ccb(request);
213 	// Some blocks may have been trimmed even if trim_device returns a failure
214 	trimData->trimmed_size = trimmedBlocks * device->block_size;
215 
216 	return status;
217 }
218 
219 
220 static int
221 log2(uint32 x)
222 {
223 	int y;
224 
225 	for (y = 31; y >= 0; --y) {
226 		if (x == ((uint32)1 << y))
227 			break;
228 	}
229 
230 	return y;
231 }
232 
233 
234 static status_t
235 do_io(void* cookie, IOOperation* operation)
236 {
237 	das_driver_info* info = (das_driver_info*)cookie;
238 
239 	// TODO: this can go away as soon as we pushed the IOOperation to the upper
240 	// layers - we can then set scsi_periph::io() as callback for the scheduler
241 	size_t bytesTransferred;
242 	status_t status = sSCSIPeripheral->io(info->scsi_periph_device, operation,
243 		&bytesTransferred);
244 
245 	info->io_scheduler->OperationCompleted(operation, status, bytesTransferred);
246 	return status;
247 }
248 
249 
250 //	#pragma mark - device module API
251 
252 
253 static status_t
254 das_init_device(void* _info, void** _cookie)
255 {
256 	das_driver_info* info = (das_driver_info*)_info;
257 
258 	// and get (initial) capacity
259 	scsi_ccb *request = info->scsi->alloc_ccb(info->scsi_device);
260 	if (request == NULL)
261 		return B_NO_MEMORY;
262 
263 	sSCSIPeripheral->check_capacity(info->scsi_periph_device, request);
264 	info->scsi->free_ccb(request);
265 
266 	*_cookie = info;
267 	return B_OK;
268 }
269 
270 
271 static void
272 das_uninit_device(void* _cookie)
273 {
274 	das_driver_info* info = (das_driver_info*)_cookie;
275 
276 	delete info->io_scheduler;
277 }
278 
279 
280 static status_t
281 das_open(void* _info, const char* path, int openMode, void** _cookie)
282 {
283 	das_driver_info* info = (das_driver_info*)_info;
284 
285 	das_handle* handle = (das_handle*)malloc(sizeof(das_handle));
286 	if (handle == NULL)
287 		return B_NO_MEMORY;
288 
289 	handle->info = info;
290 
291 	status_t status = sSCSIPeripheral->handle_open(info->scsi_periph_device,
292 		(periph_handle_cookie)handle, &handle->scsi_periph_handle);
293 	if (status < B_OK) {
294 		free(handle);
295 		return status;
296 	}
297 
298 	*_cookie = handle;
299 	return B_OK;
300 }
301 
302 
303 static status_t
304 das_close(void* cookie)
305 {
306 	das_handle* handle = (das_handle*)cookie;
307 	TRACE("close()\n");
308 
309 	sSCSIPeripheral->handle_close(handle->scsi_periph_handle);
310 	return B_OK;
311 }
312 
313 
314 static status_t
315 das_free(void* cookie)
316 {
317 	das_handle* handle = (das_handle*)cookie;
318 	TRACE("free()\n");
319 
320 	sSCSIPeripheral->handle_free(handle->scsi_periph_handle);
321 	free(handle);
322 	return B_OK;
323 }
324 
325 
326 static status_t
327 das_read(void* cookie, off_t pos, void* buffer, size_t* _length)
328 {
329 	das_handle* handle = (das_handle*)cookie;
330 	size_t length = *_length;
331 
332 	IORequest request;
333 	status_t status = request.Init(pos, (addr_t)buffer, length, false, 0);
334 	if (status != B_OK)
335 		return status;
336 
337 	status = handle->info->io_scheduler->ScheduleRequest(&request);
338 	if (status != B_OK)
339 		return status;
340 
341 	status = request.Wait(0, 0);
342 	if (status == B_OK)
343 		*_length = length;
344 	else
345 		dprintf("das_read(): request.Wait() returned: %s\n", strerror(status));
346 
347 	return status;
348 }
349 
350 
351 static status_t
352 das_write(void* cookie, off_t pos, const void* buffer, size_t* _length)
353 {
354 	das_handle* handle = (das_handle*)cookie;
355 	size_t length = *_length;
356 
357 	IORequest request;
358 	status_t status = request.Init(pos, (addr_t)buffer, length, true, 0);
359 	if (status != B_OK)
360 		return status;
361 
362 	status = handle->info->io_scheduler->ScheduleRequest(&request);
363 	if (status != B_OK)
364 		return status;
365 
366 	status = request.Wait(0, 0);
367 	if (status == B_OK)
368 		*_length = length;
369 	else
370 		dprintf("das_write(): request.Wait() returned: %s\n", strerror(status));
371 
372 	return status;
373 }
374 
375 
376 static status_t
377 das_io(void *cookie, io_request *request)
378 {
379 	das_handle* handle = (das_handle*)cookie;
380 
381 	return handle->info->io_scheduler->ScheduleRequest(request);
382 }
383 
384 
385 static status_t
386 das_ioctl(void* cookie, uint32 op, void* buffer, size_t length)
387 {
388 	das_handle* handle = (das_handle*)cookie;
389 	das_driver_info* info = handle->info;
390 
391 	TRACE("ioctl(op = %" B_PRIu32 ")\n", op);
392 
393 	switch (op) {
394 		case B_GET_DEVICE_SIZE:
395 		{
396 			status_t status = update_capacity(info);
397 			if (status != B_OK)
398 				return status;
399 
400 			size_t size = info->capacity * info->block_size;
401 			return user_memcpy(buffer, &size, sizeof(size_t));
402 		}
403 
404 		case B_GET_GEOMETRY:
405 		{
406 			if (buffer == NULL /*|| length != sizeof(device_geometry)*/)
407 				return B_BAD_VALUE;
408 
409 		 	device_geometry geometry;
410 			status_t status = get_geometry(handle, &geometry);
411 			if (status != B_OK)
412 				return status;
413 
414 			return user_memcpy(buffer, &geometry, sizeof(device_geometry));
415 		}
416 
417 		case B_GET_ICON_NAME:
418 			// TODO: take device type into account!
419 			return user_strlcpy((char*)buffer, info->removable
420 				? "devices/drive-removable-media" : "devices/drive-harddisk",
421 				B_FILE_NAME_LENGTH);
422 
423 		case B_GET_VECTOR_ICON:
424 		{
425 			// TODO: take device type into account!
426 			device_icon iconData;
427 			if (length != sizeof(device_icon))
428 				return B_BAD_VALUE;
429 			if (user_memcpy(&iconData, buffer, sizeof(device_icon)) != B_OK)
430 				return B_BAD_ADDRESS;
431 
432 			if (iconData.icon_size >= (int32)sizeof(kDriveIcon)) {
433 				if (user_memcpy(iconData.icon_data, kDriveIcon,
434 						sizeof(kDriveIcon)) != B_OK)
435 					return B_BAD_ADDRESS;
436 			}
437 
438 			iconData.icon_size = sizeof(kDriveIcon);
439 			return user_memcpy(buffer, &iconData, sizeof(device_icon));
440 		}
441 
442 		case B_EJECT_DEVICE:
443 		case B_SCSI_EJECT:
444 			return load_eject(info, false);
445 
446 		case B_LOAD_MEDIA:
447 			return load_eject(info, true);
448 
449 		case B_FLUSH_DRIVE_CACHE:
450 			return synchronize_cache(info);
451 
452 		case B_TRIM_DEVICE:
453 		{
454 			// We know the buffer is kernel-side because it has been
455 			// preprocessed in devfs
456 			ASSERT(IS_KERNEL_ADDRESS(buffer));
457 			return trim_device(info, (fs_trim_data*)buffer);
458 		}
459 
460 		default:
461 			return sSCSIPeripheral->ioctl(handle->scsi_periph_handle, op,
462 				buffer, length);
463 	}
464 }
465 
466 
467 //	#pragma mark - scsi_periph callbacks
468 
469 
470 static void
471 das_set_capacity(das_driver_info* info, uint64 capacity, uint32 blockSize)
472 {
473 	TRACE("das_set_capacity(device = %p, capacity = %" B_PRIu64
474 		", blockSize = %" B_PRIu32 ")\n", info, capacity, blockSize);
475 
476 	// get log2, if possible
477 	uint32 blockShift = log2(blockSize);
478 
479 	if ((1UL << blockShift) != blockSize)
480 		blockShift = 0;
481 
482 	info->capacity = capacity;
483 
484 	if (info->block_size != blockSize) {
485 		if (info->block_size != 0) {
486 			dprintf("old %" B_PRId32 ", new %" B_PRId32 "\n", info->block_size,
487 				blockSize);
488 			panic("updating DMAResource not yet implemented...");
489 		}
490 
491 		// TODO: we need to replace the DMAResource in our IOScheduler
492 		status_t status = info->dma_resource->Init(info->node, blockSize, 1024,
493 			32);
494 		if (status != B_OK)
495 			panic("initializing DMAResource failed: %s", strerror(status));
496 
497 		info->io_scheduler = new(std::nothrow) IOSchedulerSimple(
498 			info->dma_resource);
499 		if (info->io_scheduler == NULL)
500 			panic("allocating IOScheduler failed.");
501 
502 		// TODO: use whole device name here
503 		status = info->io_scheduler->Init("scsi");
504 		if (status != B_OK)
505 			panic("initializing IOScheduler failed: %s", strerror(status));
506 
507 		info->io_scheduler->SetCallback(do_io, info);
508 	}
509 
510 	info->block_size = blockSize;
511 }
512 
513 
514 static void
515 das_media_changed(das_driver_info *device, scsi_ccb *request)
516 {
517 	// do a capacity check
518 	// TODO: is this a good idea (e.g. if this is an empty CD)?
519 	sSCSIPeripheral->check_capacity(device->scsi_periph_device, request);
520 }
521 
522 
523 scsi_periph_callbacks callbacks = {
524 	(void (*)(periph_device_cookie, uint64, uint32))das_set_capacity,
525 	(void (*)(periph_device_cookie, scsi_ccb *))das_media_changed
526 };
527 
528 
529 //	#pragma mark - driver module API
530 
531 
532 static float
533 das_supports_device(device_node *parent)
534 {
535 	const char *bus;
536 	uint8 deviceType;
537 
538 	// make sure parent is really the SCSI bus manager
539 	if (sDeviceManager->get_attr_string(parent, B_DEVICE_BUS, &bus, false))
540 		return -1;
541 
542 	if (strcmp(bus, "scsi"))
543 		return 0.0;
544 
545 	// check whether it's really a Direct Access Device
546 	if (sDeviceManager->get_attr_uint8(parent, SCSI_DEVICE_TYPE_ITEM,
547 			&deviceType, true) != B_OK || deviceType != scsi_dev_direct_access)
548 		return 0.0;
549 
550 	return 0.6;
551 }
552 
553 
554 /*!	Called whenever a new device was added to system;
555 	if we really support it, we create a new node that gets
556 	server by the block_io module
557 */
558 static status_t
559 das_register_device(device_node *node)
560 {
561 	const scsi_res_inquiry *deviceInquiry = NULL;
562 	size_t inquiryLength;
563 	uint32 maxBlocks;
564 
565 	// get inquiry data
566 	if (sDeviceManager->get_attr_raw(node, SCSI_DEVICE_INQUIRY_ITEM,
567 			(const void **)&deviceInquiry, &inquiryLength, true) != B_OK
568 		|| inquiryLength < sizeof(scsi_res_inquiry))
569 		return B_ERROR;
570 
571 	// get block limit of underlying hardware to lower it (if necessary)
572 	if (sDeviceManager->get_attr_uint32(node, B_DMA_MAX_TRANSFER_BLOCKS,
573 			&maxBlocks, true) != B_OK)
574 		maxBlocks = INT_MAX;
575 
576 	// using 10 byte commands, at most 0xffff blocks can be transmitted at once
577 	// (sadly, we cannot update this value later on if only 6 byte commands
578 	//  are supported, but the block_io module can live with that)
579 	maxBlocks = min_c(maxBlocks, 0xffff);
580 
581 	// ready to register
582 	device_attr attrs[] = {
583 		{ B_DEVICE_PRETTY_NAME, B_STRING_TYPE, { string: "SCSI Disk" }},
584 		// tell block_io whether the device is removable
585 		{"removable", B_UINT8_TYPE, {ui8: deviceInquiry->removable_medium}},
586 		// impose own max block restriction
587 		{B_DMA_MAX_TRANSFER_BLOCKS, B_UINT32_TYPE, {ui32: maxBlocks}},
588 		{ NULL }
589 	};
590 
591 	return sDeviceManager->register_node(node, SCSI_DISK_DRIVER_MODULE_NAME,
592 		attrs, NULL, NULL);
593 }
594 
595 
596 static status_t
597 das_init_driver(device_node *node, void **cookie)
598 {
599 	TRACE("das_init_driver");
600 
601 	uint8 removable;
602 	status_t status = sDeviceManager->get_attr_uint8(node, "removable",
603 		&removable, false);
604 	if (status != B_OK)
605 		return status;
606 
607 	das_driver_info* info = (das_driver_info*)malloc(sizeof(das_driver_info));
608 	if (info == NULL)
609 		return B_NO_MEMORY;
610 
611 	memset(info, 0, sizeof(*info));
612 
613 	info->dma_resource = new(std::nothrow) DMAResource;
614 	if (info->dma_resource == NULL) {
615 		free(info);
616 		return B_NO_MEMORY;
617 	}
618 
619 	info->node = node;
620 	info->removable = removable;
621 
622 	device_node* parent = sDeviceManager->get_parent_node(node);
623 	sDeviceManager->get_driver(parent, (driver_module_info **)&info->scsi,
624 		(void **)&info->scsi_device);
625 	sDeviceManager->put_node(parent);
626 
627 	status = sSCSIPeripheral->register_device((periph_device_cookie)info,
628 		&callbacks, info->scsi_device, info->scsi, info->node,
629 		info->removable, 10, &info->scsi_periph_device);
630 	if (status != B_OK) {
631 		delete info->dma_resource;
632 		free(info);
633 		return status;
634 	}
635 
636 	*cookie = info;
637 	return B_OK;
638 }
639 
640 
641 static void
642 das_uninit_driver(void *_cookie)
643 {
644 	das_driver_info* info = (das_driver_info*)_cookie;
645 
646 	sSCSIPeripheral->unregister_device(info->scsi_periph_device);
647 	delete info->dma_resource;
648 	free(info);
649 }
650 
651 
652 static status_t
653 das_register_child_devices(void* _cookie)
654 {
655 	das_driver_info* info = (das_driver_info*)_cookie;
656 	status_t status;
657 
658 	char* name = sSCSIPeripheral->compose_device_name(info->node,
659 		"disk/scsi");
660 	if (name == NULL)
661 		return B_ERROR;
662 
663 	status = sDeviceManager->publish_device(info->node, name,
664 		SCSI_DISK_DEVICE_MODULE_NAME);
665 
666 	free(name);
667 	return status;
668 }
669 
670 
671 static status_t
672 das_rescan_child_devices(void* _cookie)
673 {
674 	das_driver_info* info = (das_driver_info*)_cookie;
675 	uint64 capacity = info->capacity;
676 	update_capacity(info);
677 	if (info->capacity != capacity)
678 		sSCSIPeripheral->media_changed(info->scsi_periph_device);
679 	return B_OK;
680 }
681 
682 
683 
684 module_dependency module_dependencies[] = {
685 	{SCSI_PERIPH_MODULE_NAME, (module_info**)&sSCSIPeripheral},
686 	{B_DEVICE_MANAGER_MODULE_NAME, (module_info**)&sDeviceManager},
687 	{}
688 };
689 
690 struct device_module_info sSCSIDiskDevice = {
691 	{
692 		SCSI_DISK_DEVICE_MODULE_NAME,
693 		0,
694 		NULL
695 	},
696 
697 	das_init_device,
698 	das_uninit_device,
699 	NULL, //das_remove,
700 
701 	das_open,
702 	das_close,
703 	das_free,
704 	das_read,
705 	das_write,
706 	das_io,
707 	das_ioctl,
708 
709 	NULL,	// select
710 	NULL,	// deselect
711 };
712 
713 struct driver_module_info sSCSIDiskDriver = {
714 	{
715 		SCSI_DISK_DRIVER_MODULE_NAME,
716 		0,
717 		NULL
718 	},
719 
720 	das_supports_device,
721 	das_register_device,
722 	das_init_driver,
723 	das_uninit_driver,
724 	das_register_child_devices,
725 	das_rescan_child_devices,
726 	NULL,	// removed
727 };
728 
729 module_info* modules[] = {
730 	(module_info*)&sSCSIDiskDriver,
731 	(module_info*)&sSCSIDiskDevice,
732 	NULL
733 };
734