usb_mem.c revision 1.77 1 /* $NetBSD: usb_mem.c,v 1.77 2020/05/15 06:26:44 skrll Exp $ */
2
3 /*
4 * Copyright (c) 1998 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Lennart Augustsson (lennart (at) augustsson.net) at
9 * Carlstedt Research & Technology.
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 *
20 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 * POSSIBILITY OF SUCH DAMAGE.
31 */
32
33 /*
34 * USB DMA memory allocation.
35 * We need to allocate a lot of small (many 8 byte, some larger)
36 * memory blocks that can be used for DMA. Using the bus_dma
37 * routines directly would incur large overheads in space and time.
38 */
39
40 #include <sys/cdefs.h>
41 __KERNEL_RCSID(0, "$NetBSD: usb_mem.c,v 1.77 2020/05/15 06:26:44 skrll Exp $");
42
43 #ifdef _KERNEL_OPT
44 #include "opt_usb.h"
45 #endif
46
47 #include <sys/param.h>
48 #include <sys/bus.h>
49 #include <sys/cpu.h>
50 #include <sys/device.h> /* for usbdivar.h */
51 #include <sys/kernel.h>
52 #include <sys/kmem.h>
53 #include <sys/once.h>
54 #include <sys/queue.h>
55 #include <sys/systm.h>
56
57 #include <dev/usb/usb.h>
58 #include <dev/usb/usbdi.h>
59 #include <dev/usb/usbdivar.h> /* just for usb_dma_t */
60 #include <dev/usb/usbhist.h>
61 #include <dev/usb/usb_mem.h>
62
63 #define DPRINTF(FMT,A,B,C,D) USBHIST_LOG(usbdebug,FMT,A,B,C,D)
64 #define DPRINTFN(N,FMT,A,B,C,D) USBHIST_LOGN(usbdebug,N,FMT,A,B,C,D)
65
66 #define USB_MEM_SMALL roundup(64, CACHE_LINE_SIZE)
67 #define USB_MEM_CHUNKS 64
68 #define USB_MEM_BLOCK (USB_MEM_SMALL * USB_MEM_CHUNKS)
69
70 /* This struct is overlayed on free fragments. */
71 struct usb_frag_dma {
72 usb_dma_block_t *ufd_block;
73 u_int ufd_offs;
74 LIST_ENTRY(usb_frag_dma) ufd_next;
75 };
76
77 Static usbd_status usb_block_allocmem(bus_dma_tag_t, size_t, size_t,
78 u_int, usb_dma_block_t **);
79 Static void usb_block_freemem(usb_dma_block_t *);
80
81 LIST_HEAD(usb_dma_block_qh, usb_dma_block);
82 Static struct usb_dma_block_qh usb_blk_freelist =
83 LIST_HEAD_INITIALIZER(usb_blk_freelist);
84 kmutex_t usb_blk_lock;
85
86 #ifdef DEBUG
87 Static struct usb_dma_block_qh usb_blk_fraglist =
88 LIST_HEAD_INITIALIZER(usb_blk_fraglist);
89 Static struct usb_dma_block_qh usb_blk_fulllist =
90 LIST_HEAD_INITIALIZER(usb_blk_fulllist);
91 #endif
92 Static u_int usb_blk_nfree = 0;
93 /* XXX should have different free list for different tags (for speed) */
94 Static LIST_HEAD(, usb_frag_dma) usb_frag_freelist =
95 LIST_HEAD_INITIALIZER(usb_frag_freelist);
96
97 Static int usb_mem_init(void);
98
99 Static int
100 usb_mem_init(void)
101 {
102
103 mutex_init(&usb_blk_lock, MUTEX_DEFAULT, IPL_NONE);
104 return 0;
105 }
106
107 Static usbd_status
108 usb_block_allocmem(bus_dma_tag_t tag, size_t size, size_t align,
109 u_int flags, usb_dma_block_t **dmap)
110 {
111 usb_dma_block_t *b;
112 int error;
113
114 USBHIST_FUNC();
115 USBHIST_CALLARGS(usbdebug, "size=%ju align=%ju flags=%#jx", size, align, flags, 0);
116
117 ASSERT_SLEEPABLE();
118 KASSERT(size != 0);
119 KASSERT(mutex_owned(&usb_blk_lock));
120
121 bool multiseg = (flags & USBMALLOC_MULTISEG) != 0;
122 bool coherent = (flags & USBMALLOC_COHERENT) != 0;
123 u_int dmaflags = coherent ? USB_DMA_COHERENT : 0;
124
125 /* First check the free list. */
126 LIST_FOREACH(b, &usb_blk_freelist, next) {
127 /* Don't allocate multiple segments to unwilling callers */
128 if (b->nsegs != 1 && !multiseg)
129 continue;
130 if (b->tag == tag &&
131 b->size >= size &&
132 b->align >= align &&
133 (b->flags & USB_DMA_COHERENT) == dmaflags) {
134 LIST_REMOVE(b, next);
135 usb_blk_nfree--;
136 *dmap = b;
137 DPRINTFN(6, "free list size=%ju", b->size, 0, 0, 0);
138 return USBD_NORMAL_COMPLETION;
139 }
140 }
141
142 DPRINTFN(6, "no freelist entry", 0, 0, 0, 0);
143 mutex_exit(&usb_blk_lock);
144
145 b = kmem_zalloc(sizeof(*b), KM_SLEEP);
146 b->tag = tag;
147 b->size = size;
148 b->align = align;
149 b->flags = dmaflags;
150
151 if (!multiseg)
152 /* Caller wants one segment */
153 b->nsegs = 1;
154 else
155 b->nsegs = howmany(size, PAGE_SIZE);
156
157 b->segs = kmem_alloc(b->nsegs * sizeof(*b->segs), KM_SLEEP);
158 b->nsegs_alloc = b->nsegs;
159
160 error = bus_dmamem_alloc(tag, b->size, align, 0,
161 b->segs, b->nsegs,
162 &b->nsegs, BUS_DMA_WAITOK);
163 if (error)
164 goto free0;
165
166 error = bus_dmamem_map(tag, b->segs, b->nsegs, b->size, &b->kaddr,
167 BUS_DMA_WAITOK | (coherent ? BUS_DMA_COHERENT : 0));
168 if (error)
169 goto free1;
170
171 error = bus_dmamap_create(tag, b->size, b->nsegs, b->size,
172 0, BUS_DMA_WAITOK, &b->map);
173 if (error)
174 goto unmap;
175
176 error = bus_dmamap_load(tag, b->map, b->kaddr, b->size, NULL,
177 BUS_DMA_WAITOK);
178 if (error)
179 goto destroy;
180
181 *dmap = b;
182 #ifdef USB_FRAG_DMA_WORKAROUND
183 memset(b->kaddr, 0, b->size);
184 #endif
185 mutex_enter(&usb_blk_lock);
186
187 return USBD_NORMAL_COMPLETION;
188
189 destroy:
190 bus_dmamap_destroy(tag, b->map);
191 unmap:
192 bus_dmamem_unmap(tag, b->kaddr, b->size);
193 free1:
194 bus_dmamem_free(tag, b->segs, b->nsegs);
195 free0:
196 kmem_free(b->segs, b->nsegs_alloc * sizeof(*b->segs));
197 kmem_free(b, sizeof(*b));
198 mutex_enter(&usb_blk_lock);
199
200 return USBD_NOMEM;
201 }
202
203 #if 0
204 void
205 usb_block_real_freemem(usb_dma_block_t *b)
206 {
207 #ifdef DIAGNOSTIC
208 if (cpu_softintr_p() || cpu_intr_p()) {
209 printf("usb_block_real_freemem: in interrupt context\n");
210 return;
211 }
212 #endif
213 bus_dmamap_unload(b->tag, b->map);
214 bus_dmamap_destroy(b->tag, b->map);
215 bus_dmamem_unmap(b->tag, b->kaddr, b->size);
216 bus_dmamem_free(b->tag, b->segs, b->nsegs);
217 kmem_free(b->segs, b->nsegs_alloc * sizeof(*b->segs));
218 kmem_free(b, sizeof(*b));
219 }
220 #endif
221
222 #ifdef DEBUG
223 static bool
224 usb_valid_block_p(usb_dma_block_t *b, struct usb_dma_block_qh *qh)
225 {
226 usb_dma_block_t *xb;
227 LIST_FOREACH(xb, qh, next) {
228 if (xb == b)
229 return true;
230 }
231 return false;
232 }
233 #endif
234
235 /*
236 * Do not free the memory unconditionally since we might be called
237 * from an interrupt context and that is BAD.
238 * XXX when should we really free?
239 */
240 Static void
241 usb_block_freemem(usb_dma_block_t *b)
242 {
243 USBHIST_FUNC();
244 USBHIST_CALLARGS(usbdebug, "size=%ju", b->size, 0, 0, 0);
245
246 KASSERT(mutex_owned(&usb_blk_lock));
247
248 #ifdef DEBUG
249 LIST_REMOVE(b, next);
250 #endif
251 LIST_INSERT_HEAD(&usb_blk_freelist, b, next);
252 usb_blk_nfree++;
253 }
254
255 usbd_status
256 usb_allocmem(struct usbd_bus *bus, size_t size, size_t align, u_int flags,
257 usb_dma_t *p)
258 {
259 bus_dma_tag_t tag = bus->ub_dmatag;
260 usbd_status err;
261 struct usb_frag_dma *f;
262 usb_dma_block_t *b;
263 int i;
264 static ONCE_DECL(init_control);
265
266 USBHIST_FUNC(); USBHIST_CALLED(usbdebug);
267
268 ASSERT_SLEEPABLE();
269
270 RUN_ONCE(&init_control, usb_mem_init);
271
272 u_int dmaflags = (flags & USBMALLOC_COHERENT) ? USB_DMA_COHERENT : 0;
273
274 /* If the request is large then just use a full block. */
275 if (size > USB_MEM_SMALL || align > USB_MEM_SMALL) {
276 DPRINTFN(1, "large alloc %jd", size, 0, 0, 0);
277 size = (size + USB_MEM_BLOCK - 1) & ~(USB_MEM_BLOCK - 1);
278 mutex_enter(&usb_blk_lock);
279 err = usb_block_allocmem(tag, size, align, flags,
280 &p->udma_block);
281 if (!err) {
282 #ifdef DEBUG
283 LIST_INSERT_HEAD(&usb_blk_fulllist, p->udma_block, next);
284 #endif
285 p->udma_block->flags = USB_DMA_FULLBLOCK | dmaflags;
286 p->udma_offs = 0;
287 }
288 mutex_exit(&usb_blk_lock);
289 return err;
290 }
291
292 mutex_enter(&usb_blk_lock);
293 /* Check for free fragments. */
294 LIST_FOREACH(f, &usb_frag_freelist, ufd_next) {
295 KDASSERTMSG(usb_valid_block_p(f->ufd_block, &usb_blk_fraglist),
296 "%s: usb frag %p: unknown block pointer %p",
297 __func__, f, f->ufd_block);
298 if (f->ufd_block->tag == tag &&
299 (f->ufd_block->flags & USB_DMA_COHERENT) == dmaflags)
300 break;
301 }
302 if (f == NULL) {
303 DPRINTFN(1, "adding fragments", 0, 0, 0, 0);
304
305 err = usb_block_allocmem(tag, USB_MEM_BLOCK, USB_MEM_SMALL,
306 flags, &b);
307 if (err) {
308 mutex_exit(&usb_blk_lock);
309 return err;
310 }
311 #ifdef DEBUG
312 LIST_INSERT_HEAD(&usb_blk_fraglist, b, next);
313 #endif
314 b->flags = 0;
315 for (i = 0; i < USB_MEM_BLOCK; i += USB_MEM_SMALL) {
316 f = (struct usb_frag_dma *)((char *)b->kaddr + i);
317 f->ufd_block = b;
318 f->ufd_offs = i;
319 LIST_INSERT_HEAD(&usb_frag_freelist, f, ufd_next);
320 #ifdef USB_FRAG_DMA_WORKAROUND
321 i += 1 * USB_MEM_SMALL;
322 #endif
323 }
324 f = LIST_FIRST(&usb_frag_freelist);
325 }
326 p->udma_block = f->ufd_block;
327 p->udma_offs = f->ufd_offs;
328 #ifdef USB_FRAG_DMA_WORKAROUND
329 p->udma_offs += USB_MEM_SMALL;
330 #endif
331 LIST_REMOVE(f, ufd_next);
332 mutex_exit(&usb_blk_lock);
333 DPRINTFN(5, "use frag=%#jx size=%jd", (uintptr_t)f, size, 0, 0);
334
335 return USBD_NORMAL_COMPLETION;
336 }
337
338 void
339 usb_freemem(struct usbd_bus *bus, usb_dma_t *p)
340 {
341 struct usb_frag_dma *f;
342
343 USBHIST_FUNC(); USBHIST_CALLED(usbdebug);
344
345 mutex_enter(&usb_blk_lock);
346 if (p->udma_block->flags & USB_DMA_FULLBLOCK) {
347 KDASSERTMSG(usb_valid_block_p(p->udma_block, &usb_blk_fulllist),
348 "%s: dma %p: invalid block pointer %p",
349 __func__, p, p->udma_block);
350 DPRINTFN(1, "large free", 0, 0, 0, 0);
351 usb_block_freemem(p->udma_block);
352 mutex_exit(&usb_blk_lock);
353 return;
354 }
355 KDASSERTMSG(usb_valid_block_p(p->udma_block, &usb_blk_fraglist),
356 "%s: dma %p: invalid block pointer %p",
357 __func__, p, p->udma_block);
358 //usb_syncmem(p, 0, USB_MEM_SMALL, BUS_DMASYNC_POSTREAD);
359 f = KERNADDR(p, 0);
360 #ifdef USB_FRAG_DMA_WORKAROUND
361 f = (void *)((uintptr_t)f - USB_MEM_SMALL);
362 #endif
363 f->ufd_block = p->udma_block;
364 f->ufd_offs = p->udma_offs;
365 #ifdef USB_FRAG_DMA_WORKAROUND
366 f->ufd_offs -= USB_MEM_SMALL;
367 #endif
368 LIST_INSERT_HEAD(&usb_frag_freelist, f, ufd_next);
369 mutex_exit(&usb_blk_lock);
370 DPRINTFN(5, "frag=%#jx", (uintptr_t)f, 0, 0, 0);
371 }
372
373 bus_addr_t
374 usb_dmaaddr(usb_dma_t *dma, unsigned int offset)
375 {
376 unsigned int i;
377 bus_size_t seg_offs;
378
379 offset += dma->udma_offs;
380
381 KASSERTMSG(offset < dma->udma_block->size, "offset %d vs %zu", offset,
382 dma->udma_block->size);
383
384 if (dma->udma_block->nsegs == 1) {
385 KASSERT(dma->udma_block->map->dm_segs[0].ds_len > offset);
386 return dma->udma_block->map->dm_segs[0].ds_addr + offset;
387 }
388
389 /*
390 * Search for a bus_segment_t corresponding to this offset. With no
391 * record of the offset in the map to a particular dma_segment_t, we
392 * have to iterate from the start of the list each time. Could be
393 * improved
394 */
395 seg_offs = 0;
396 for (i = 0; i < dma->udma_block->nsegs; i++) {
397 if (seg_offs + dma->udma_block->map->dm_segs[i].ds_len > offset)
398 break;
399
400 seg_offs += dma->udma_block->map->dm_segs[i].ds_len;
401 }
402
403 KASSERT(i != dma->udma_block->nsegs);
404 offset -= seg_offs;
405 return dma->udma_block->map->dm_segs[i].ds_addr + offset;
406 }
407
408 void
409 usb_syncmem(usb_dma_t *p, bus_addr_t offset, bus_size_t len, int ops)
410 {
411
412 bus_dmamap_sync(p->udma_block->tag, p->udma_block->map,
413 p->udma_offs + offset, len, ops);
414 }
415