sl811hs.c revision 1.103 1 1.103 riastrad /* $NetBSD: sl811hs.c,v 1.103 2020/02/15 01:21:56 riastradh Exp $ */
2 1.1 isaki
3 1.1 isaki /*
4 1.12 kiyohara * Not (c) 2007 Matthew Orgass
5 1.36 skrll * This file is public domain, meaning anyone can make any use of part or all
6 1.36 skrll * of this file including copying into other works without credit. Any use,
7 1.36 skrll * modified or not, is solely the responsibility of the user. If this file is
8 1.36 skrll * part of a collection then use in the collection is governed by the terms of
9 1.12 kiyohara * the collection.
10 1.12 kiyohara */
11 1.12 kiyohara
12 1.12 kiyohara /*
13 1.12 kiyohara * Cypress/ScanLogic SL811HS/T USB Host Controller
14 1.12 kiyohara * Datasheet, Errata, and App Note available at www.cypress.com
15 1.12 kiyohara *
16 1.36 skrll * Uses: Ratoc CFU1U PCMCIA USB Host Controller, Nereid X68k USB HC, ISA
17 1.12 kiyohara * HCs. The Ratoc CFU2 uses a different chip.
18 1.1 isaki *
19 1.36 skrll * This chip puts the serial in USB. It implements USB by means of an eight
20 1.36 skrll * bit I/O interface. It can be used for ISA, PCMCIA/CF, parallel port,
21 1.36 skrll * serial port, or any eight bit interface. It has 256 bytes of memory, the
22 1.36 skrll * first 16 of which are used for register access. There are two sets of
23 1.36 skrll * registers for sending individual bus transactions. Because USB is polled,
24 1.36 skrll * this organization means that some amount of card access must often be made
25 1.36 skrll * when devices are attached, even if when they are not directly being used.
26 1.36 skrll * A per-ms frame interrupt is necessary and many devices will poll with a
27 1.12 kiyohara * per-frame bulk transfer.
28 1.1 isaki *
29 1.36 skrll * It is possible to write a little over two bytes to the chip (auto
30 1.36 skrll * incremented) per full speed byte time on the USB. Unfortunately,
31 1.36 skrll * auto-increment does not work reliably so write and bus speed is
32 1.12 kiyohara * approximately the same for full speed devices.
33 1.12 kiyohara *
34 1.36 skrll * In addition to the 240 byte packet size limit for isochronous transfers,
35 1.36 skrll * this chip has no means of determining the current frame number other than
36 1.36 skrll * getting all 1ms SOF interrupts, which is not always possible even on a fast
37 1.36 skrll * system. Isochronous transfers guarantee that transfers will never be
38 1.36 skrll * retried in a later frame, so this can cause problems with devices beyond
39 1.36 skrll * the difficulty in actually performing the transfer most frames. I tried
40 1.36 skrll * implementing isoc transfers and was able to play CD-derrived audio via an
41 1.12 kiyohara * iMic on a 2GHz PC, however it would still be interrupted at times and
42 1.36 skrll * once interrupted, would stay out of sync. All isoc support has been
43 1.12 kiyohara * removed.
44 1.12 kiyohara *
45 1.36 skrll * BUGS: all chip revisions have problems with low speed devices through hubs.
46 1.36 skrll * The chip stops generating SOF with hubs that send SE0 during SOF. See
47 1.36 skrll * comment in dointr(). All performance enhancing features of this chip seem
48 1.12 kiyohara * not to work properly, most confirmed buggy in errata doc.
49 1.1 isaki *
50 1.1 isaki */
51 1.1 isaki
52 1.1 isaki /*
53 1.36 skrll * The hard interrupt is the main entry point. Start, callbacks, and repeat
54 1.12 kiyohara * are the only others called frequently.
55 1.12 kiyohara *
56 1.36 skrll * Since this driver attaches to pcmcia, card removal at any point should be
57 1.12 kiyohara * expected and not cause panics or infinite loops.
58 1.1 isaki */
59 1.12 kiyohara
60 1.34 skrll /*
61 1.34 skrll * XXX TODO:
62 1.12 kiyohara * copy next output packet while transfering
63 1.12 kiyohara * usb suspend
64 1.12 kiyohara * could keep track of known values of all buffer space?
65 1.12 kiyohara * combined print/log function for errors
66 1.12 kiyohara *
67 1.48 skrll * ub_usepolling support is untested and may not work
68 1.1 isaki */
69 1.1 isaki
70 1.1 isaki #include <sys/cdefs.h>
71 1.103 riastrad __KERNEL_RCSID(0, "$NetBSD: sl811hs.c,v 1.103 2020/02/15 01:21:56 riastradh Exp $");
72 1.26 isaki
73 1.77 skrll #ifdef _KERNEL_OPT
74 1.26 isaki #include "opt_slhci.h"
75 1.56 skrll #include "opt_usb.h"
76 1.56 skrll #endif
77 1.56 skrll
78 1.1 isaki #include <sys/param.h>
79 1.56 skrll
80 1.53 skrll #include <sys/bus.h>
81 1.53 skrll #include <sys/cpu.h>
82 1.53 skrll #include <sys/device.h>
83 1.53 skrll #include <sys/gcq.h>
84 1.53 skrll #include <sys/intr.h>
85 1.1 isaki #include <sys/kernel.h>
86 1.53 skrll #include <sys/kmem.h>
87 1.1 isaki #include <sys/proc.h>
88 1.12 kiyohara #include <sys/queue.h>
89 1.56 skrll #include <sys/sysctl.h>
90 1.53 skrll #include <sys/systm.h>
91 1.1 isaki
92 1.1 isaki #include <dev/usb/usb.h>
93 1.1 isaki #include <dev/usb/usbdi.h>
94 1.1 isaki #include <dev/usb/usbdivar.h>
95 1.56 skrll #include <dev/usb/usbhist.h>
96 1.1 isaki #include <dev/usb/usb_mem.h>
97 1.1 isaki #include <dev/usb/usbdevs.h>
98 1.48 skrll #include <dev/usb/usbroothub.h>
99 1.1 isaki
100 1.1 isaki #include <dev/ic/sl811hsreg.h>
101 1.1 isaki #include <dev/ic/sl811hsvar.h>
102 1.1 isaki
103 1.12 kiyohara #define Q_CB 0 /* Control/Bulk */
104 1.12 kiyohara #define Q_NEXT_CB 1
105 1.12 kiyohara #define Q_MAX_XFER Q_CB
106 1.12 kiyohara #define Q_CALLBACKS 2
107 1.12 kiyohara #define Q_MAX Q_CALLBACKS
108 1.12 kiyohara
109 1.12 kiyohara #define F_AREADY (0x00000001)
110 1.12 kiyohara #define F_BREADY (0x00000002)
111 1.12 kiyohara #define F_AINPROG (0x00000004)
112 1.12 kiyohara #define F_BINPROG (0x00000008)
113 1.12 kiyohara #define F_LOWSPEED (0x00000010)
114 1.12 kiyohara #define F_UDISABLED (0x00000020) /* Consider disabled for USB */
115 1.12 kiyohara #define F_NODEV (0x00000040)
116 1.12 kiyohara #define F_ROOTINTR (0x00000080)
117 1.12 kiyohara #define F_REALPOWER (0x00000100) /* Actual power state */
118 1.12 kiyohara #define F_POWER (0x00000200) /* USB reported power state */
119 1.12 kiyohara #define F_ACTIVE (0x00000400)
120 1.12 kiyohara #define F_CALLBACK (0x00000800) /* Callback scheduled */
121 1.12 kiyohara #define F_SOFCHECK1 (0x00001000)
122 1.12 kiyohara #define F_SOFCHECK2 (0x00002000)
123 1.12 kiyohara #define F_CRESET (0x00004000) /* Reset done not reported */
124 1.12 kiyohara #define F_CCONNECT (0x00008000) /* Connect change not reported */
125 1.12 kiyohara #define F_RESET (0x00010000)
126 1.12 kiyohara #define F_ISOC_WARNED (0x00020000)
127 1.12 kiyohara #define F_LSVH_WARNED (0x00040000)
128 1.12 kiyohara
129 1.12 kiyohara #define F_DISABLED (F_NODEV|F_UDISABLED)
130 1.12 kiyohara #define F_CHANGE (F_CRESET|F_CCONNECT)
131 1.12 kiyohara
132 1.12 kiyohara #ifdef SLHCI_TRY_LSVH
133 1.12 kiyohara unsigned int slhci_try_lsvh = 1;
134 1.12 kiyohara #else
135 1.12 kiyohara unsigned int slhci_try_lsvh = 0;
136 1.12 kiyohara #endif
137 1.12 kiyohara
138 1.12 kiyohara #define ADR 0
139 1.12 kiyohara #define LEN 1
140 1.12 kiyohara #define PID 2
141 1.12 kiyohara #define DEV 3
142 1.12 kiyohara #define STAT 2
143 1.12 kiyohara #define CONT 3
144 1.12 kiyohara
145 1.12 kiyohara #define A 0
146 1.12 kiyohara #define B 1
147 1.12 kiyohara
148 1.36 skrll static const uint8_t slhci_tregs[2][4] =
149 1.12 kiyohara {{SL11_E0ADDR, SL11_E0LEN, SL11_E0PID, SL11_E0DEV },
150 1.12 kiyohara {SL11_E1ADDR, SL11_E1LEN, SL11_E1PID, SL11_E1DEV }};
151 1.12 kiyohara
152 1.12 kiyohara #define PT_ROOT_CTRL 0
153 1.12 kiyohara #define PT_ROOT_INTR 1
154 1.12 kiyohara #define PT_CTRL_SETUP 2
155 1.12 kiyohara #define PT_CTRL_DATA 3
156 1.12 kiyohara #define PT_CTRL_STATUS 4
157 1.12 kiyohara #define PT_INTR 5
158 1.12 kiyohara #define PT_BULK 6
159 1.12 kiyohara #define PT_MAX 6
160 1.12 kiyohara
161 1.12 kiyohara #ifdef SLHCI_DEBUG
162 1.12 kiyohara #define SLHCI_MEM_ACCOUNTING
163 1.12 kiyohara #endif
164 1.12 kiyohara
165 1.34 skrll /*
166 1.34 skrll * Maximum allowable reserved bus time. Since intr/isoc transfers have
167 1.37 skrll * unconditional priority, this is all that ensures control and bulk transfers
168 1.37 skrll * get a chance. It is a single value for all frames since all transfers can
169 1.37 skrll * use multiple consecutive frames if an error is encountered. Note that it
170 1.37 skrll * is not really possible to fill the bus with transfers, so this value should
171 1.37 skrll * be on the low side. Defaults to giving a warning unless SLHCI_NO_OVERTIME
172 1.34 skrll * is defined. Full time is 12000 - END_BUSTIME.
173 1.34 skrll */
174 1.12 kiyohara #ifndef SLHCI_RESERVED_BUSTIME
175 1.12 kiyohara #define SLHCI_RESERVED_BUSTIME 5000
176 1.12 kiyohara #endif
177 1.12 kiyohara
178 1.34 skrll /*
179 1.34 skrll * Rate for "exceeds reserved bus time" warnings (default) or errors.
180 1.37 skrll * Warnings only happen when an endpoint open causes the time to go above
181 1.34 skrll * SLHCI_RESERVED_BUSTIME, not if it is already above.
182 1.34 skrll */
183 1.12 kiyohara #ifndef SLHCI_OVERTIME_WARNING_RATE
184 1.12 kiyohara #define SLHCI_OVERTIME_WARNING_RATE { 60, 0 } /* 60 seconds */
185 1.12 kiyohara #endif
186 1.12 kiyohara static const struct timeval reserved_warn_rate = SLHCI_OVERTIME_WARNING_RATE;
187 1.12 kiyohara
188 1.34 skrll /*
189 1.34 skrll * For EOF, the spec says 42 bit times, plus (I think) a possible hub skew of
190 1.12 kiyohara * 20 bit times. By default leave 66 bit times to start the transfer beyond
191 1.12 kiyohara * the required time. Units are full-speed bit times (a bit over 5us per 64).
192 1.34 skrll * Only multiples of 64 are significant.
193 1.34 skrll */
194 1.12 kiyohara #define SLHCI_STANDARD_END_BUSTIME 128
195 1.12 kiyohara #ifndef SLHCI_EXTRA_END_BUSTIME
196 1.12 kiyohara #define SLHCI_EXTRA_END_BUSTIME 0
197 1.12 kiyohara #endif
198 1.12 kiyohara
199 1.12 kiyohara #define SLHCI_END_BUSTIME (SLHCI_STANDARD_END_BUSTIME+SLHCI_EXTRA_END_BUSTIME)
200 1.12 kiyohara
201 1.34 skrll /*
202 1.34 skrll * This is an approximation of the USB worst-case timings presented on p. 54 of
203 1.37 skrll * the USB 1.1 spec translated to full speed bit times.
204 1.37 skrll * FS = full speed with handshake, FSII = isoc in, FSIO = isoc out,
205 1.34 skrll * FSI = isoc (worst case), LS = low speed
206 1.34 skrll */
207 1.12 kiyohara #define SLHCI_FS_CONST 114
208 1.12 kiyohara #define SLHCI_FSII_CONST 92
209 1.12 kiyohara #define SLHCI_FSIO_CONST 80
210 1.12 kiyohara #define SLHCI_FSI_CONST 92
211 1.12 kiyohara #define SLHCI_LS_CONST 804
212 1.12 kiyohara #ifndef SLHCI_PRECICE_BUSTIME
213 1.34 skrll /*
214 1.34 skrll * These values are < 3% too high (compared to the multiply and divide) for
215 1.34 skrll * max sized packets.
216 1.34 skrll */
217 1.12 kiyohara #define SLHCI_FS_DATA_TIME(len) (((u_int)(len)<<3)+(len)+((len)>>1))
218 1.12 kiyohara #define SLHCI_LS_DATA_TIME(len) (((u_int)(len)<<6)+((u_int)(len)<<4))
219 1.12 kiyohara #else
220 1.12 kiyohara #define SLHCI_FS_DATA_TIME(len) (56*(len)/6)
221 1.12 kiyohara #define SLHCI_LS_DATA_TIME(len) (449*(len)/6)
222 1.12 kiyohara #endif
223 1.12 kiyohara
224 1.34 skrll /*
225 1.34 skrll * Set SLHCI_WAIT_SIZE to the desired maximum size of single FS transfer
226 1.12 kiyohara * to poll for after starting a transfer. 64 gets all full speed transfers.
227 1.36 skrll * Note that even if 0 polling will occur if data equal or greater than the
228 1.12 kiyohara * transfer size is copied to the chip while the transfer is in progress.
229 1.12 kiyohara * Setting SLHCI_WAIT_TIME to -12000 will disable polling.
230 1.12 kiyohara */
231 1.12 kiyohara #ifndef SLHCI_WAIT_SIZE
232 1.12 kiyohara #define SLHCI_WAIT_SIZE 8
233 1.12 kiyohara #endif
234 1.12 kiyohara #ifndef SLHCI_WAIT_TIME
235 1.12 kiyohara #define SLHCI_WAIT_TIME (SLHCI_FS_CONST + \
236 1.12 kiyohara SLHCI_FS_DATA_TIME(SLHCI_WAIT_SIZE))
237 1.12 kiyohara #endif
238 1.12 kiyohara const int slhci_wait_time = SLHCI_WAIT_TIME;
239 1.1 isaki
240 1.12 kiyohara #ifndef SLHCI_MAX_RETRIES
241 1.12 kiyohara #define SLHCI_MAX_RETRIES 3
242 1.12 kiyohara #endif
243 1.1 isaki
244 1.12 kiyohara /* Check IER values for corruption after this many unrecognized interrupts. */
245 1.12 kiyohara #ifndef SLHCI_IER_CHECK_FREQUENCY
246 1.1 isaki #ifdef SLHCI_DEBUG
247 1.12 kiyohara #define SLHCI_IER_CHECK_FREQUENCY 1
248 1.1 isaki #else
249 1.12 kiyohara #define SLHCI_IER_CHECK_FREQUENCY 100
250 1.1 isaki #endif
251 1.12 kiyohara #endif
252 1.12 kiyohara
253 1.12 kiyohara /* Note that buffer points to the start of the buffer for this transfer. */
254 1.12 kiyohara struct slhci_pipe {
255 1.12 kiyohara struct usbd_pipe pipe;
256 1.12 kiyohara struct usbd_xfer *xfer; /* xfer in progress */
257 1.12 kiyohara uint8_t *buffer; /* I/O buffer (if needed) */
258 1.12 kiyohara struct gcq ap; /* All pipes */
259 1.12 kiyohara struct gcq to; /* Timeout list */
260 1.12 kiyohara struct gcq xq; /* Xfer queues */
261 1.12 kiyohara unsigned int pflags; /* Pipe flags */
262 1.12 kiyohara #define PF_GONE (0x01) /* Pipe is on disabled device */
263 1.12 kiyohara #define PF_TOGGLE (0x02) /* Data toggle status */
264 1.12 kiyohara #define PF_LS (0x04) /* Pipe is low speed */
265 1.12 kiyohara #define PF_PREAMBLE (0x08) /* Needs preamble */
266 1.12 kiyohara Frame to_frame; /* Frame number for timeout */
267 1.12 kiyohara Frame frame; /* Frame number for intr xfer */
268 1.12 kiyohara Frame lastframe; /* Previous frame number for intr */
269 1.12 kiyohara uint16_t bustime; /* Worst case bus time usage */
270 1.12 kiyohara uint16_t newbustime[2]; /* new bustimes (see index below) */
271 1.12 kiyohara uint8_t tregs[4]; /* ADR, LEN, PID, DEV */
272 1.12 kiyohara uint8_t newlen[2]; /* 0 = short data, 1 = ctrl data */
273 1.12 kiyohara uint8_t newpid; /* for ctrl */
274 1.12 kiyohara uint8_t wantshort; /* last xfer must be short */
275 1.12 kiyohara uint8_t control; /* Host control register settings */
276 1.12 kiyohara uint8_t nerrs; /* Current number of errors */
277 1.12 kiyohara uint8_t ptype; /* Pipe type */
278 1.12 kiyohara };
279 1.1 isaki
280 1.48 skrll #define SLHCI_BUS2SC(bus) ((bus)->ub_hcpriv)
281 1.48 skrll #define SLHCI_PIPE2SC(pipe) SLHCI_BUS2SC((pipe)->up_dev->ud_bus)
282 1.48 skrll #define SLHCI_XFER2SC(xfer) SLHCI_BUS2SC((xfer)->ux_bus)
283 1.48 skrll
284 1.48 skrll #define SLHCI_PIPE2SPIPE(pipe) ((struct slhci_pipe *)(pipe))
285 1.55 skrll #define SLHCI_XFER2SPIPE(xfer) SLHCI_PIPE2SPIPE((xfer)->ux_pipe)
286 1.55 skrll
287 1.55 skrll #define SLHCI_XFER_TYPE(x) (SLHCI_XFER2SPIPE(xfer)->ptype)
288 1.48 skrll
289 1.12 kiyohara #ifdef SLHCI_PROFILE_TRANSFER
290 1.12 kiyohara #if defined(__mips__)
291 1.34 skrll /*
292 1.34 skrll * MIPS cycle counter does not directly count cpu cycles but is a different
293 1.34 skrll * fraction of cpu cycles depending on the cpu.
294 1.34 skrll */
295 1.48 skrll typedef uint32_t cc_type;
296 1.12 kiyohara #define CC_TYPE_FMT "%u"
297 1.12 kiyohara #define slhci_cc_set(x) __asm volatile ("mfc0 %[cc], $9\n\tnop\n\tnop\n\tnop" \
298 1.12 kiyohara : [cc] "=r"(x))
299 1.12 kiyohara #elif defined(__i386__)
300 1.48 skrll typedef uint64_t cc_type;
301 1.12 kiyohara #define CC_TYPE_FMT "%llu"
302 1.12 kiyohara #define slhci_cc_set(x) __asm volatile ("rdtsc" : "=A"(x))
303 1.12 kiyohara #else
304 1.12 kiyohara #error "SLHCI_PROFILE_TRANSFER not implemented on this MACHINE_ARCH (see sys/dev/ic/sl811hs.c)"
305 1.12 kiyohara #endif
306 1.12 kiyohara struct slhci_cc_time {
307 1.12 kiyohara cc_type start;
308 1.12 kiyohara cc_type stop;
309 1.12 kiyohara unsigned int miscdata;
310 1.12 kiyohara };
311 1.12 kiyohara #ifndef SLHCI_N_TIMES
312 1.12 kiyohara #define SLHCI_N_TIMES 200
313 1.12 kiyohara #endif
314 1.12 kiyohara struct slhci_cc_times {
315 1.12 kiyohara struct slhci_cc_time times[SLHCI_N_TIMES];
316 1.12 kiyohara int current;
317 1.12 kiyohara int wraparound;
318 1.1 isaki };
319 1.1 isaki
320 1.12 kiyohara static struct slhci_cc_times t_ab[2];
321 1.12 kiyohara static struct slhci_cc_times t_abdone;
322 1.12 kiyohara static struct slhci_cc_times t_copy_to_dev;
323 1.12 kiyohara static struct slhci_cc_times t_copy_from_dev;
324 1.12 kiyohara static struct slhci_cc_times t_intr;
325 1.12 kiyohara static struct slhci_cc_times t_lock;
326 1.12 kiyohara static struct slhci_cc_times t_delay;
327 1.12 kiyohara static struct slhci_cc_times t_hard_int;
328 1.12 kiyohara static struct slhci_cc_times t_callback;
329 1.12 kiyohara
330 1.12 kiyohara static inline void
331 1.12 kiyohara start_cc_time(struct slhci_cc_times *times, unsigned int misc) {
332 1.12 kiyohara times->times[times->current].miscdata = misc;
333 1.12 kiyohara slhci_cc_set(times->times[times->current].start);
334 1.12 kiyohara }
335 1.12 kiyohara static inline void
336 1.12 kiyohara stop_cc_time(struct slhci_cc_times *times) {
337 1.12 kiyohara slhci_cc_set(times->times[times->current].stop);
338 1.12 kiyohara if (++times->current >= SLHCI_N_TIMES) {
339 1.12 kiyohara times->current = 0;
340 1.12 kiyohara times->wraparound = 1;
341 1.12 kiyohara }
342 1.12 kiyohara }
343 1.12 kiyohara
344 1.12 kiyohara void slhci_dump_cc_times(int);
345 1.12 kiyohara
346 1.12 kiyohara void
347 1.12 kiyohara slhci_dump_cc_times(int n) {
348 1.12 kiyohara struct slhci_cc_times *times;
349 1.12 kiyohara int i;
350 1.12 kiyohara
351 1.12 kiyohara switch (n) {
352 1.12 kiyohara default:
353 1.12 kiyohara case 0:
354 1.12 kiyohara printf("USBA start transfer to intr:\n");
355 1.12 kiyohara times = &t_ab[A];
356 1.12 kiyohara break;
357 1.12 kiyohara case 1:
358 1.12 kiyohara printf("USBB start transfer to intr:\n");
359 1.12 kiyohara times = &t_ab[B];
360 1.12 kiyohara break;
361 1.12 kiyohara case 2:
362 1.12 kiyohara printf("abdone:\n");
363 1.12 kiyohara times = &t_abdone;
364 1.12 kiyohara break;
365 1.12 kiyohara case 3:
366 1.12 kiyohara printf("copy to device:\n");
367 1.12 kiyohara times = &t_copy_to_dev;
368 1.12 kiyohara break;
369 1.12 kiyohara case 4:
370 1.12 kiyohara printf("copy from device:\n");
371 1.12 kiyohara times = &t_copy_from_dev;
372 1.12 kiyohara break;
373 1.12 kiyohara case 5:
374 1.12 kiyohara printf("intr to intr:\n");
375 1.12 kiyohara times = &t_intr;
376 1.12 kiyohara break;
377 1.12 kiyohara case 6:
378 1.12 kiyohara printf("lock to release:\n");
379 1.12 kiyohara times = &t_lock;
380 1.12 kiyohara break;
381 1.12 kiyohara case 7:
382 1.12 kiyohara printf("delay time:\n");
383 1.12 kiyohara times = &t_delay;
384 1.12 kiyohara break;
385 1.12 kiyohara case 8:
386 1.12 kiyohara printf("hard interrupt enter to exit:\n");
387 1.12 kiyohara times = &t_hard_int;
388 1.12 kiyohara break;
389 1.12 kiyohara case 9:
390 1.12 kiyohara printf("callback:\n");
391 1.12 kiyohara times = &t_callback;
392 1.12 kiyohara break;
393 1.12 kiyohara }
394 1.12 kiyohara
395 1.12 kiyohara if (times->wraparound)
396 1.12 kiyohara for (i = times->current + 1; i < SLHCI_N_TIMES; i++)
397 1.36 skrll printf("start " CC_TYPE_FMT " stop " CC_TYPE_FMT
398 1.36 skrll " difference %8i miscdata %#x\n",
399 1.36 skrll times->times[i].start, times->times[i].stop,
400 1.36 skrll (int)(times->times[i].stop -
401 1.12 kiyohara times->times[i].start), times->times[i].miscdata);
402 1.12 kiyohara
403 1.12 kiyohara for (i = 0; i < times->current; i++)
404 1.36 skrll printf("start " CC_TYPE_FMT " stop " CC_TYPE_FMT
405 1.36 skrll " difference %8i miscdata %#x\n", times->times[i].start,
406 1.36 skrll times->times[i].stop, (int)(times->times[i].stop -
407 1.12 kiyohara times->times[i].start), times->times[i].miscdata);
408 1.12 kiyohara }
409 1.12 kiyohara #else
410 1.12 kiyohara #define start_cc_time(x, y)
411 1.12 kiyohara #define stop_cc_time(x)
412 1.12 kiyohara #endif /* SLHCI_PROFILE_TRANSFER */
413 1.12 kiyohara
414 1.36 skrll typedef usbd_status (*LockCallFunc)(struct slhci_softc *, struct slhci_pipe
415 1.12 kiyohara *, struct usbd_xfer *);
416 1.12 kiyohara
417 1.48 skrll struct usbd_xfer * slhci_allocx(struct usbd_bus *, unsigned int);
418 1.12 kiyohara void slhci_freex(struct usbd_bus *, struct usbd_xfer *);
419 1.41 skrll static void slhci_get_lock(struct usbd_bus *, kmutex_t **);
420 1.12 kiyohara
421 1.12 kiyohara usbd_status slhci_transfer(struct usbd_xfer *);
422 1.12 kiyohara usbd_status slhci_start(struct usbd_xfer *);
423 1.12 kiyohara usbd_status slhci_root_start(struct usbd_xfer *);
424 1.12 kiyohara usbd_status slhci_open(struct usbd_pipe *);
425 1.12 kiyohara
426 1.48 skrll static int slhci_roothub_ctrl(struct usbd_bus *, usb_device_request_t *,
427 1.48 skrll void *, int);
428 1.48 skrll
429 1.34 skrll /*
430 1.34 skrll * slhci_supported_rev, slhci_preinit, slhci_attach, slhci_detach,
431 1.34 skrll * slhci_activate
432 1.34 skrll */
433 1.12 kiyohara
434 1.12 kiyohara void slhci_abort(struct usbd_xfer *);
435 1.12 kiyohara void slhci_close(struct usbd_pipe *);
436 1.12 kiyohara void slhci_clear_toggle(struct usbd_pipe *);
437 1.12 kiyohara void slhci_poll(struct usbd_bus *);
438 1.12 kiyohara void slhci_done(struct usbd_xfer *);
439 1.12 kiyohara void slhci_void(void *);
440 1.12 kiyohara
441 1.12 kiyohara /* lock entry functions */
442 1.12 kiyohara
443 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
444 1.12 kiyohara void slhci_mem_use(struct usbd_bus *, int);
445 1.12 kiyohara #endif
446 1.12 kiyohara
447 1.12 kiyohara void slhci_reset_entry(void *);
448 1.36 skrll usbd_status slhci_lock_call(struct slhci_softc *, LockCallFunc,
449 1.12 kiyohara struct slhci_pipe *, struct usbd_xfer *);
450 1.12 kiyohara void slhci_start_entry(struct slhci_softc *, struct slhci_pipe *);
451 1.12 kiyohara void slhci_callback_entry(void *arg);
452 1.41 skrll void slhci_do_callback(struct slhci_softc *, struct usbd_xfer *);
453 1.12 kiyohara
454 1.12 kiyohara /* slhci_intr */
455 1.12 kiyohara
456 1.41 skrll void slhci_main(struct slhci_softc *);
457 1.12 kiyohara
458 1.12 kiyohara /* in lock functions */
459 1.12 kiyohara
460 1.12 kiyohara static void slhci_write(struct slhci_softc *, uint8_t, uint8_t);
461 1.12 kiyohara static uint8_t slhci_read(struct slhci_softc *, uint8_t);
462 1.12 kiyohara static void slhci_write_multi(struct slhci_softc *, uint8_t, uint8_t *, int);
463 1.12 kiyohara static void slhci_read_multi(struct slhci_softc *, uint8_t, uint8_t *, int);
464 1.12 kiyohara
465 1.12 kiyohara static void slhci_waitintr(struct slhci_softc *, int);
466 1.12 kiyohara static int slhci_dointr(struct slhci_softc *);
467 1.12 kiyohara static void slhci_abdone(struct slhci_softc *, int);
468 1.12 kiyohara static void slhci_tstart(struct slhci_softc *);
469 1.12 kiyohara static void slhci_dotransfer(struct slhci_softc *);
470 1.12 kiyohara
471 1.41 skrll static void slhci_callback(struct slhci_softc *);
472 1.12 kiyohara static void slhci_enter_xfer(struct slhci_softc *, struct slhci_pipe *);
473 1.12 kiyohara static void slhci_enter_xfers(struct slhci_softc *);
474 1.12 kiyohara static void slhci_queue_timed(struct slhci_softc *, struct slhci_pipe *);
475 1.12 kiyohara static void slhci_xfer_timer(struct slhci_softc *, struct slhci_pipe *);
476 1.12 kiyohara
477 1.12 kiyohara static void slhci_callback_schedule(struct slhci_softc *);
478 1.12 kiyohara static void slhci_do_callback_schedule(struct slhci_softc *);
479 1.12 kiyohara #if 0
480 1.41 skrll void slhci_pollxfer(struct slhci_softc *, struct usbd_xfer *); /* XXX */
481 1.12 kiyohara #endif
482 1.12 kiyohara
483 1.36 skrll static usbd_status slhci_do_poll(struct slhci_softc *, struct slhci_pipe *,
484 1.12 kiyohara struct usbd_xfer *);
485 1.36 skrll static usbd_status slhci_lsvh_warn(struct slhci_softc *, struct slhci_pipe *,
486 1.12 kiyohara struct usbd_xfer *);
487 1.36 skrll static usbd_status slhci_isoc_warn(struct slhci_softc *, struct slhci_pipe *,
488 1.12 kiyohara struct usbd_xfer *);
489 1.36 skrll static usbd_status slhci_open_pipe(struct slhci_softc *, struct slhci_pipe *,
490 1.12 kiyohara struct usbd_xfer *);
491 1.36 skrll static usbd_status slhci_close_pipe(struct slhci_softc *, struct slhci_pipe *,
492 1.12 kiyohara struct usbd_xfer *);
493 1.36 skrll static usbd_status slhci_do_abort(struct slhci_softc *, struct slhci_pipe *,
494 1.12 kiyohara struct usbd_xfer *);
495 1.36 skrll static usbd_status slhci_halt(struct slhci_softc *, struct slhci_pipe *,
496 1.12 kiyohara struct usbd_xfer *);
497 1.12 kiyohara
498 1.12 kiyohara static void slhci_intrchange(struct slhci_softc *, uint8_t);
499 1.12 kiyohara static void slhci_drain(struct slhci_softc *);
500 1.12 kiyohara static void slhci_reset(struct slhci_softc *);
501 1.36 skrll static int slhci_reserve_bustime(struct slhci_softc *, struct slhci_pipe *,
502 1.12 kiyohara int);
503 1.12 kiyohara static void slhci_insert(struct slhci_softc *);
504 1.12 kiyohara
505 1.12 kiyohara static usbd_status slhci_clear_feature(struct slhci_softc *, unsigned int);
506 1.12 kiyohara static usbd_status slhci_set_feature(struct slhci_softc *, unsigned int);
507 1.12 kiyohara static void slhci_get_status(struct slhci_softc *, usb_port_status_t *);
508 1.12 kiyohara
509 1.56 skrll #define SLHCIHIST_FUNC() USBHIST_FUNC()
510 1.56 skrll #define SLHCIHIST_CALLED() USBHIST_CALLED(slhcidebug)
511 1.56 skrll
512 1.12 kiyohara #ifdef SLHCI_DEBUG
513 1.86 skrll static int slhci_memtest(struct slhci_softc *);
514 1.86 skrll
515 1.12 kiyohara void slhci_log_buffer(struct usbd_xfer *);
516 1.12 kiyohara void slhci_log_req(usb_device_request_t *);
517 1.12 kiyohara void slhci_log_dumpreg(void);
518 1.12 kiyohara void slhci_log_xfer(struct usbd_xfer *);
519 1.12 kiyohara void slhci_log_spipe(struct slhci_pipe *);
520 1.12 kiyohara void slhci_print_intr(void);
521 1.12 kiyohara void slhci_log_sc(void);
522 1.12 kiyohara void slhci_log_slreq(struct slhci_pipe *);
523 1.12 kiyohara
524 1.12 kiyohara /* Constified so you can read the values from ddb */
525 1.12 kiyohara const int SLHCI_D_TRACE = 0x0001;
526 1.12 kiyohara const int SLHCI_D_MSG = 0x0002;
527 1.12 kiyohara const int SLHCI_D_XFER = 0x0004;
528 1.12 kiyohara const int SLHCI_D_MEM = 0x0008;
529 1.12 kiyohara const int SLHCI_D_INTR = 0x0010;
530 1.12 kiyohara const int SLHCI_D_SXFER = 0x0020;
531 1.12 kiyohara const int SLHCI_D_ERR = 0x0080;
532 1.12 kiyohara const int SLHCI_D_BUF = 0x0100;
533 1.12 kiyohara const int SLHCI_D_SOFT = 0x0200;
534 1.12 kiyohara const int SLHCI_D_WAIT = 0x0400;
535 1.12 kiyohara const int SLHCI_D_ROOT = 0x0800;
536 1.12 kiyohara /* SOF/NAK alone normally ignored, SOF also needs D_INTR */
537 1.12 kiyohara const int SLHCI_D_SOF = 0x1000;
538 1.12 kiyohara const int SLHCI_D_NAK = 0x2000;
539 1.12 kiyohara
540 1.51 skrll int slhcidebug = 0x1cbc; /* 0xc8c; */ /* 0xffff; */ /* 0xd8c; */
541 1.12 kiyohara
542 1.56 skrll SYSCTL_SETUP(sysctl_hw_slhci_setup, "sysctl hw.slhci setup")
543 1.56 skrll {
544 1.56 skrll int err;
545 1.56 skrll const struct sysctlnode *rnode;
546 1.56 skrll const struct sysctlnode *cnode;
547 1.56 skrll
548 1.56 skrll err = sysctl_createv(clog, 0, NULL, &rnode,
549 1.56 skrll CTLFLAG_PERMANENT, CTLTYPE_NODE, "slhci",
550 1.56 skrll SYSCTL_DESCR("slhci global controls"),
551 1.56 skrll NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL);
552 1.56 skrll
553 1.56 skrll if (err)
554 1.56 skrll goto fail;
555 1.56 skrll
556 1.56 skrll /* control debugging printfs */
557 1.56 skrll err = sysctl_createv(clog, 0, &rnode, &cnode,
558 1.56 skrll CTLFLAG_PERMANENT|CTLFLAG_READWRITE, CTLTYPE_INT,
559 1.56 skrll "debug", SYSCTL_DESCR("Enable debugging output"),
560 1.56 skrll NULL, 0, &slhcidebug, sizeof(slhcidebug), CTL_CREATE, CTL_EOL);
561 1.56 skrll if (err)
562 1.56 skrll goto fail;
563 1.56 skrll
564 1.56 skrll return;
565 1.56 skrll fail:
566 1.56 skrll aprint_error("%s: sysctl_createv failed (err = %d)\n", __func__, err);
567 1.56 skrll }
568 1.28 mrg
569 1.56 skrll struct slhci_softc *ssc;
570 1.12 kiyohara
571 1.51 skrll #define SLHCI_DEXEC(x, y) do { if ((slhcidebug & SLHCI_ ## x)) { y; } \
572 1.12 kiyohara } while (/*CONSTCOND*/ 0)
573 1.56 skrll #define DDOLOG(f, a, b, c, d) do { KERNHIST_LOG(usbhist, f, a, b, c, d); \
574 1.12 kiyohara } while (/*CONSTCOND*/0)
575 1.12 kiyohara #define DLOG(x, f, a, b, c, d) SLHCI_DEXEC(x, DDOLOG(f, a, b, c, d))
576 1.79 skrll
577 1.34 skrll /*
578 1.34 skrll * DDOLOGBUF logs a buffer up to 8 bytes at a time. No identifier so that we
579 1.34 skrll * can make it a real function.
580 1.34 skrll */
581 1.12 kiyohara static void
582 1.12 kiyohara DDOLOGBUF(uint8_t *buf, unsigned int length)
583 1.12 kiyohara {
584 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
585 1.12 kiyohara int i;
586 1.12 kiyohara
587 1.12 kiyohara for(i=0; i+8 <= length; i+=8)
588 1.12 kiyohara DDOLOG("%.4x %.4x %.4x %.4x", (buf[i] << 8) | buf[i+1],
589 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], (buf[i+4] << 8) | buf[i+5],
590 1.12 kiyohara (buf[i+6] << 8) | buf[i+7]);
591 1.12 kiyohara if (length == i+7)
592 1.12 kiyohara DDOLOG("%.4x %.4x %.4x %.2x", (buf[i] << 8) | buf[i+1],
593 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], (buf[i+4] << 8) | buf[i+5],
594 1.12 kiyohara buf[i+6]);
595 1.12 kiyohara else if (length == i+6)
596 1.12 kiyohara DDOLOG("%.4x %.4x %.4x", (buf[i] << 8) | buf[i+1],
597 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], (buf[i+4] << 8) | buf[i+5], 0);
598 1.12 kiyohara else if (length == i+5)
599 1.12 kiyohara DDOLOG("%.4x %.4x %.2x", (buf[i] << 8) | buf[i+1],
600 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], buf[i+4], 0);
601 1.12 kiyohara else if (length == i+4)
602 1.12 kiyohara DDOLOG("%.4x %.4x", (buf[i] << 8) | buf[i+1],
603 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], 0,0);
604 1.12 kiyohara else if (length == i+3)
605 1.12 kiyohara DDOLOG("%.4x %.2x", (buf[i] << 8) | buf[i+1], buf[i+2], 0,0);
606 1.12 kiyohara else if (length == i+2)
607 1.12 kiyohara DDOLOG("%.4x", (buf[i] << 8) | buf[i+1], 0,0,0);
608 1.12 kiyohara else if (length == i+1)
609 1.12 kiyohara DDOLOG("%.2x", buf[i], 0,0,0);
610 1.12 kiyohara }
611 1.12 kiyohara #define DLOGBUF(x, b, l) SLHCI_DEXEC(x, DDOLOGBUF(b, l))
612 1.80 skrll
613 1.80 skrll #define DDOLOGCTRL(x) do { \
614 1.98 pgoyette DDOLOG("CTRL suspend=%jd", !!((x) & SL11_CTRL_SUSPEND), 0, 0, 0); \
615 1.98 pgoyette DDOLOG("CTRL ls =%jd jk =%jd reset =%jd sof =%jd", \
616 1.80 skrll !!((x) & SL11_CTRL_LOWSPEED), !!((x) & SL11_CTRL_JKSTATE), \
617 1.80 skrll !!((x) & SL11_CTRL_RESETENGINE), !!((x) & SL11_CTRL_ENABLESOF));\
618 1.80 skrll } while (0)
619 1.80 skrll
620 1.80 skrll #define DDOLOGISR(r) do { \
621 1.98 pgoyette DDOLOG("ISR data =%jd det/res=%jd insert =%jd sof =%jd", \
622 1.80 skrll !!((r) & SL11_ISR_DATA), !!((r) & SL11_ISR_RESUME), \
623 1.80 skrll !!((r) & SL11_ISR_INSERT), !!!!((r) & SL11_ISR_SOF)); \
624 1.98 pgoyette DDOLOG("ISR babble =%jd usbb =%jd usba =%jd", \
625 1.80 skrll !!((r) & SL11_ISR_BABBLE), !!((r) & SL11_ISR_USBB), \
626 1.80 skrll !!((r) & SL11_ISR_USBA), 0); \
627 1.80 skrll } while (0)
628 1.80 skrll
629 1.80 skrll #define DDOLOGIER(r) do { \
630 1.80 skrll DDOLOG("IER det/res=%d insert =%d sof =%d", \
631 1.80 skrll !!((r) & SL11_IER_RESUME), \
632 1.80 skrll !!((r) & SL11_IER_INSERT), !!!!((r) & SL11_IER_SOF), 0); \
633 1.80 skrll DDOLOG("IER babble =%d usbb =%d usba =%d", \
634 1.80 skrll !!((r) & SL11_IER_BABBLE), !!((r) & SL11_IER_USBB), \
635 1.80 skrll !!((r) & SL11_IER_USBA), 0); \
636 1.80 skrll } while (0)
637 1.80 skrll
638 1.84 skrll #define DDOLOGSTATUS(s) do { \
639 1.80 skrll DDOLOG("STAT stall =%d nak =%d overflow =%d setup =%d", \
640 1.80 skrll !!((s) & SL11_EPSTAT_STALL), !!((s) & SL11_EPSTAT_NAK), \
641 1.80 skrll !!((s) & SL11_EPSTAT_OVERFLOW), !!((s) & SL11_EPSTAT_SETUP)); \
642 1.82 skrll DDOLOG("STAT sequence=%d timeout =%d error =%d ack =%d", \
643 1.80 skrll !!((s) & SL11_EPSTAT_SEQUENCE), !!((s) & SL11_EPSTAT_TIMEOUT), \
644 1.80 skrll !!((s) & SL11_EPSTAT_ERROR), !!((s) & SL11_EPSTAT_ACK)); \
645 1.80 skrll } while (0)
646 1.80 skrll
647 1.84 skrll #define DDOLOGEPCTRL(r) do { \
648 1.80 skrll DDOLOG("CTRL preamble=%d toggle =%d sof =%d iso =%d", \
649 1.80 skrll !!((r) & SL11_EPCTRL_PREAMBLE), !!((r) & SL11_EPCTRL_DATATOGGLE),\
650 1.80 skrll !!((r) & SL11_EPCTRL_SOF), !!((r) & SL11_EPCTRL_ISO)); \
651 1.80 skrll DDOLOG("CTRL out =%d enable =%d arm =%d", \
652 1.80 skrll !!((r) & SL11_EPCTRL_DIRECTION), \
653 1.80 skrll !!((r) & SL11_EPCTRL_ENABLE), !!((r) & SL11_EPCTRL_ARM), 0); \
654 1.80 skrll } while (0)
655 1.80 skrll
656 1.84 skrll #define DDOLOGEPSTAT(r) do { \
657 1.80 skrll DDOLOG("STAT stall =%d nak =%d overflow =%d setup =%d", \
658 1.80 skrll !!((r) & SL11_EPSTAT_STALL), !!((r) & SL11_EPSTAT_NAK), \
659 1.80 skrll !!((r) & SL11_EPSTAT_OVERFLOW), !!((r) & SL11_EPSTAT_SETUP)); \
660 1.80 skrll DDOLOG("STAT sequence=%d timeout =%d error =%d ack =%d", \
661 1.80 skrll !!((r) & SL11_EPSTAT_SEQUENCE), !!((r) & SL11_EPSTAT_TIMEOUT), \
662 1.80 skrll !!((r) & SL11_EPSTAT_ERROR), !!((r) & SL11_EPSTAT_ACK)); \
663 1.80 skrll } while (0)
664 1.12 kiyohara #else /* now !SLHCI_DEBUG */
665 1.56 skrll #define slhcidebug 0
666 1.12 kiyohara #define slhci_log_spipe(spipe) ((void)0)
667 1.12 kiyohara #define slhci_log_xfer(xfer) ((void)0)
668 1.12 kiyohara #define SLHCI_DEXEC(x, y) ((void)0)
669 1.12 kiyohara #define DDOLOG(f, a, b, c, d) ((void)0)
670 1.12 kiyohara #define DLOG(x, f, a, b, c, d) ((void)0)
671 1.12 kiyohara #define DDOLOGBUF(b, l) ((void)0)
672 1.12 kiyohara #define DLOGBUF(x, b, l) ((void)0)
673 1.80 skrll #define DDOLOGCTRL(x) ((void)0)
674 1.80 skrll #define DDOLOGISR(r) ((void)0)
675 1.80 skrll #define DDOLOGIER(r) ((void)0)
676 1.84 skrll #define DDOLOGSTATUS(s) ((void)0)
677 1.84 skrll #define DDOLOGEPCTRL(r) ((void)0)
678 1.84 skrll #define DDOLOGEPSTAT(r) ((void)0)
679 1.12 kiyohara #endif /* SLHCI_DEBUG */
680 1.12 kiyohara
681 1.12 kiyohara #ifdef DIAGNOSTIC
682 1.12 kiyohara #define LK_SLASSERT(exp, sc, spipe, xfer, ext) do { \
683 1.12 kiyohara if (!(exp)) { \
684 1.12 kiyohara printf("%s: assertion %s failed line %u function %s!" \
685 1.12 kiyohara " halted\n", SC_NAME(sc), #exp, __LINE__, __func__);\
686 1.12 kiyohara slhci_halt(sc, spipe, xfer); \
687 1.12 kiyohara ext; \
688 1.12 kiyohara } \
689 1.12 kiyohara } while (/*CONSTCOND*/0)
690 1.12 kiyohara #define UL_SLASSERT(exp, sc, spipe, xfer, ext) do { \
691 1.12 kiyohara if (!(exp)) { \
692 1.12 kiyohara printf("%s: assertion %s failed line %u function %s!" \
693 1.12 kiyohara " halted\n", SC_NAME(sc), #exp, __LINE__, __func__); \
694 1.12 kiyohara slhci_lock_call(sc, &slhci_halt, spipe, xfer); \
695 1.12 kiyohara ext; \
696 1.12 kiyohara } \
697 1.12 kiyohara } while (/*CONSTCOND*/0)
698 1.12 kiyohara #else
699 1.12 kiyohara #define LK_SLASSERT(exp, sc, spipe, xfer, ext) ((void)0)
700 1.12 kiyohara #define UL_SLASSERT(exp, sc, spipe, xfer, ext) ((void)0)
701 1.12 kiyohara #endif
702 1.12 kiyohara
703 1.12 kiyohara const struct usbd_bus_methods slhci_bus_methods = {
704 1.48 skrll .ubm_open = slhci_open,
705 1.48 skrll .ubm_softint= slhci_void,
706 1.48 skrll .ubm_dopoll = slhci_poll,
707 1.48 skrll .ubm_allocx = slhci_allocx,
708 1.48 skrll .ubm_freex = slhci_freex,
709 1.48 skrll .ubm_getlock = slhci_get_lock,
710 1.48 skrll .ubm_rhctrl = slhci_roothub_ctrl,
711 1.1 isaki };
712 1.1 isaki
713 1.12 kiyohara const struct usbd_pipe_methods slhci_pipe_methods = {
714 1.48 skrll .upm_transfer = slhci_transfer,
715 1.48 skrll .upm_start = slhci_start,
716 1.48 skrll .upm_abort = slhci_abort,
717 1.48 skrll .upm_close = slhci_close,
718 1.48 skrll .upm_cleartoggle = slhci_clear_toggle,
719 1.48 skrll .upm_done = slhci_done,
720 1.1 isaki };
721 1.1 isaki
722 1.12 kiyohara const struct usbd_pipe_methods slhci_root_methods = {
723 1.48 skrll .upm_transfer = slhci_transfer,
724 1.48 skrll .upm_start = slhci_root_start,
725 1.48 skrll .upm_abort = slhci_abort,
726 1.48 skrll .upm_close = (void (*)(struct usbd_pipe *))slhci_void, /* XXX safe? */
727 1.48 skrll .upm_cleartoggle = slhci_clear_toggle,
728 1.48 skrll .upm_done = slhci_done,
729 1.1 isaki };
730 1.1 isaki
731 1.12 kiyohara /* Queue inlines */
732 1.12 kiyohara
733 1.12 kiyohara #define GOT_FIRST_TO(tvar, t) \
734 1.12 kiyohara GCQ_GOT_FIRST_TYPED(tvar, &(t)->to, struct slhci_pipe, to)
735 1.12 kiyohara
736 1.12 kiyohara #define FIND_TO(var, t, tvar, cond) \
737 1.12 kiyohara GCQ_FIND_TYPED(var, &(t)->to, tvar, struct slhci_pipe, to, cond)
738 1.12 kiyohara
739 1.12 kiyohara #define FOREACH_AP(var, t, tvar) \
740 1.12 kiyohara GCQ_FOREACH_TYPED(var, &(t)->ap, tvar, struct slhci_pipe, ap)
741 1.1 isaki
742 1.12 kiyohara #define GOT_FIRST_TIMED_COND(tvar, t, cond) \
743 1.12 kiyohara GCQ_GOT_FIRST_COND_TYPED(tvar, &(t)->timed, struct slhci_pipe, xq, cond)
744 1.1 isaki
745 1.12 kiyohara #define GOT_FIRST_CB(tvar, t) \
746 1.12 kiyohara GCQ_GOT_FIRST_TYPED(tvar, &(t)->q[Q_CB], struct slhci_pipe, xq)
747 1.1 isaki
748 1.12 kiyohara #define DEQUEUED_CALLBACK(tvar, t) \
749 1.12 kiyohara GCQ_DEQUEUED_FIRST_TYPED(tvar, &(t)->q[Q_CALLBACKS], struct slhci_pipe, xq)
750 1.1 isaki
751 1.12 kiyohara #define FIND_TIMED(var, t, tvar, cond) \
752 1.12 kiyohara GCQ_FIND_TYPED(var, &(t)->timed, tvar, struct slhci_pipe, xq, cond)
753 1.1 isaki
754 1.12 kiyohara #define DEQUEUED_WAITQ(tvar, sc) \
755 1.12 kiyohara GCQ_DEQUEUED_FIRST_TYPED(tvar, &(sc)->sc_waitq, struct slhci_pipe, xq)
756 1.1 isaki
757 1.12 kiyohara static inline void
758 1.12 kiyohara enter_waitq(struct slhci_softc *sc, struct slhci_pipe *spipe)
759 1.1 isaki {
760 1.12 kiyohara gcq_insert_tail(&sc->sc_waitq, &spipe->xq);
761 1.1 isaki }
762 1.1 isaki
763 1.1 isaki static inline void
764 1.12 kiyohara enter_q(struct slhci_transfers *t, struct slhci_pipe *spipe, int i)
765 1.1 isaki {
766 1.12 kiyohara gcq_insert_tail(&t->q[i], &spipe->xq);
767 1.1 isaki }
768 1.1 isaki
769 1.1 isaki static inline void
770 1.12 kiyohara enter_callback(struct slhci_transfers *t, struct slhci_pipe *spipe)
771 1.1 isaki {
772 1.12 kiyohara gcq_insert_tail(&t->q[Q_CALLBACKS], &spipe->xq);
773 1.1 isaki }
774 1.1 isaki
775 1.1 isaki static inline void
776 1.12 kiyohara enter_all_pipes(struct slhci_transfers *t, struct slhci_pipe *spipe)
777 1.1 isaki {
778 1.12 kiyohara gcq_insert_tail(&t->ap, &spipe->ap);
779 1.1 isaki }
780 1.1 isaki
781 1.12 kiyohara /* Start out of lock functions. */
782 1.12 kiyohara
783 1.12 kiyohara struct usbd_xfer *
784 1.48 skrll slhci_allocx(struct usbd_bus *bus, unsigned int nframes)
785 1.1 isaki {
786 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
787 1.12 kiyohara struct usbd_xfer *xfer;
788 1.12 kiyohara
789 1.48 skrll xfer = kmem_zalloc(sizeof(*xfer), KM_SLEEP);
790 1.1 isaki
791 1.98 pgoyette DLOG(D_MEM, "allocx %#jx", (uintptr_t)xfer, 0,0,0);
792 1.12 kiyohara
793 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
794 1.12 kiyohara slhci_mem_use(bus, 1);
795 1.12 kiyohara #endif
796 1.12 kiyohara #ifdef DIAGNOSTIC
797 1.12 kiyohara if (xfer != NULL)
798 1.48 skrll xfer->ux_state = XFER_BUSY;
799 1.12 kiyohara #endif
800 1.12 kiyohara return xfer;
801 1.12 kiyohara }
802 1.12 kiyohara
803 1.12 kiyohara void
804 1.12 kiyohara slhci_freex(struct usbd_bus *bus, struct usbd_xfer *xfer)
805 1.12 kiyohara {
806 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
807 1.98 pgoyette DLOG(D_MEM, "freex xfer %#jx spipe %#jx",
808 1.98 pgoyette (uintptr_t)xfer, (uintptr_t)xfer->ux_pipe,0,0);
809 1.1 isaki
810 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
811 1.12 kiyohara slhci_mem_use(bus, -1);
812 1.12 kiyohara #endif
813 1.12 kiyohara #ifdef DIAGNOSTIC
814 1.101 rin if (xfer->ux_state != XFER_BUSY &&
815 1.101 rin xfer->ux_status != USBD_NOT_STARTED) {
816 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
817 1.36 skrll printf("%s: slhci_freex: xfer=%p not busy, %#08x halted\n",
818 1.48 skrll SC_NAME(sc), xfer, xfer->ux_state);
819 1.79 skrll DDOLOG("xfer=%p not busy, %#08x halted\n", xfer,
820 1.79 skrll xfer->ux_state, 0, 0);
821 1.12 kiyohara slhci_lock_call(sc, &slhci_halt, NULL, NULL);
822 1.12 kiyohara return;
823 1.1 isaki }
824 1.48 skrll xfer->ux_state = XFER_FREE;
825 1.12 kiyohara #endif
826 1.1 isaki
827 1.48 skrll kmem_free(xfer, sizeof(*xfer));
828 1.12 kiyohara }
829 1.1 isaki
830 1.41 skrll static void
831 1.41 skrll slhci_get_lock(struct usbd_bus *bus, kmutex_t **lock)
832 1.41 skrll {
833 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
834 1.41 skrll
835 1.41 skrll *lock = &sc->sc_lock;
836 1.41 skrll }
837 1.41 skrll
838 1.12 kiyohara usbd_status
839 1.12 kiyohara slhci_transfer(struct usbd_xfer *xfer)
840 1.12 kiyohara {
841 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
842 1.48 skrll struct slhci_softc *sc = SLHCI_XFER2SC(xfer);
843 1.12 kiyohara usbd_status error;
844 1.1 isaki
845 1.98 pgoyette DLOG(D_TRACE, "transfer type %jd xfer %#jx spipe %#jx ",
846 1.98 pgoyette SLHCI_XFER_TYPE(xfer), (uintptr_t)xfer, (uintptr_t)xfer->ux_pipe,
847 1.98 pgoyette 0);
848 1.1 isaki
849 1.12 kiyohara /* Insert last in queue */
850 1.41 skrll mutex_enter(&sc->sc_lock);
851 1.12 kiyohara error = usb_insert_transfer(xfer);
852 1.41 skrll mutex_exit(&sc->sc_lock);
853 1.12 kiyohara if (error) {
854 1.12 kiyohara if (error != USBD_IN_PROGRESS)
855 1.98 pgoyette DLOG(D_ERR, "usb_insert_transfer returns %jd!", error,
856 1.12 kiyohara 0,0,0);
857 1.12 kiyohara return error;
858 1.12 kiyohara }
859 1.1 isaki
860 1.12 kiyohara /*
861 1.12 kiyohara * Pipe isn't running (otherwise error would be USBD_INPROG),
862 1.12 kiyohara * so start it first.
863 1.12 kiyohara */
864 1.1 isaki
865 1.34 skrll /*
866 1.41 skrll * Start will take the lock.
867 1.34 skrll */
868 1.48 skrll error = xfer->ux_pipe->up_methods->upm_start(SIMPLEQ_FIRST(&xfer->ux_pipe->up_queue));
869 1.1 isaki
870 1.12 kiyohara return error;
871 1.1 isaki }
872 1.1 isaki
873 1.12 kiyohara /* It is not safe for start to return anything other than USBD_INPROG. */
874 1.12 kiyohara usbd_status
875 1.12 kiyohara slhci_start(struct usbd_xfer *xfer)
876 1.1 isaki {
877 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
878 1.48 skrll struct slhci_softc *sc = SLHCI_XFER2SC(xfer);
879 1.48 skrll struct usbd_pipe *pipe = xfer->ux_pipe;
880 1.48 skrll struct slhci_pipe *spipe = SLHCI_PIPE2SPIPE(pipe);
881 1.41 skrll struct slhci_transfers *t = &sc->sc_transfers;
882 1.48 skrll usb_endpoint_descriptor_t *ed = pipe->up_endpoint->ue_edesc;
883 1.12 kiyohara unsigned int max_packet;
884 1.12 kiyohara
885 1.41 skrll mutex_enter(&sc->sc_lock);
886 1.12 kiyohara
887 1.12 kiyohara max_packet = UGETW(ed->wMaxPacketSize);
888 1.12 kiyohara
889 1.98 pgoyette DLOG(D_TRACE, "transfer type %jd start xfer %#jx spipe %#jx length %jd",
890 1.98 pgoyette spipe->ptype, (uintptr_t)xfer, (uintptr_t)spipe, xfer->ux_length);
891 1.12 kiyohara
892 1.12 kiyohara /* root transfers use slhci_root_start */
893 1.12 kiyohara
894 1.12 kiyohara KASSERT(spipe->xfer == NULL); /* not SLASSERT */
895 1.12 kiyohara
896 1.48 skrll xfer->ux_actlen = 0;
897 1.48 skrll xfer->ux_status = USBD_IN_PROGRESS;
898 1.12 kiyohara
899 1.12 kiyohara spipe->xfer = xfer;
900 1.12 kiyohara
901 1.12 kiyohara spipe->nerrs = 0;
902 1.12 kiyohara spipe->frame = t->frame;
903 1.12 kiyohara spipe->control = SL11_EPCTRL_ARM_ENABLE;
904 1.48 skrll spipe->tregs[DEV] = pipe->up_dev->ud_addr;
905 1.36 skrll spipe->tregs[PID] = spipe->newpid = UE_GET_ADDR(ed->bEndpointAddress)
906 1.36 skrll | (UE_GET_DIR(ed->bEndpointAddress) == UE_DIR_IN ? SL11_PID_IN :
907 1.12 kiyohara SL11_PID_OUT);
908 1.48 skrll spipe->newlen[0] = xfer->ux_length % max_packet;
909 1.100 riastrad spipe->newlen[1] = uimin(xfer->ux_length, max_packet);
910 1.12 kiyohara
911 1.12 kiyohara if (spipe->ptype == PT_BULK || spipe->ptype == PT_INTR) {
912 1.12 kiyohara if (spipe->pflags & PF_TOGGLE)
913 1.12 kiyohara spipe->control |= SL11_EPCTRL_DATATOGGLE;
914 1.12 kiyohara spipe->tregs[LEN] = spipe->newlen[1];
915 1.36 skrll if (spipe->tregs[LEN])
916 1.48 skrll spipe->buffer = xfer->ux_buf;
917 1.12 kiyohara else
918 1.12 kiyohara spipe->buffer = NULL;
919 1.12 kiyohara spipe->lastframe = t->frame;
920 1.94 skrll if (spipe->ptype == PT_INTR) {
921 1.94 skrll spipe->frame = spipe->lastframe +
922 1.94 skrll spipe->pipe.up_interval;
923 1.94 skrll }
924 1.94 skrll
925 1.12 kiyohara #if defined(DEBUG) || defined(SLHCI_DEBUG)
926 1.36 skrll if (__predict_false(spipe->ptype == PT_INTR &&
927 1.48 skrll xfer->ux_length > spipe->tregs[LEN])) {
928 1.12 kiyohara printf("%s: Long INTR transfer not supported!\n",
929 1.36 skrll SC_NAME(sc));
930 1.79 skrll DDOLOG("Long INTR transfer not supported!", 0, 0, 0, 0);
931 1.48 skrll xfer->ux_status = USBD_INVAL;
932 1.12 kiyohara }
933 1.1 isaki #endif
934 1.12 kiyohara } else {
935 1.12 kiyohara /* ptype may be currently set to any control transfer type. */
936 1.12 kiyohara SLHCI_DEXEC(D_TRACE, slhci_log_xfer(xfer));
937 1.1 isaki
938 1.12 kiyohara /* SETUP contains IN/OUT bits also */
939 1.12 kiyohara spipe->tregs[PID] |= SL11_PID_SETUP;
940 1.12 kiyohara spipe->tregs[LEN] = 8;
941 1.48 skrll spipe->buffer = (uint8_t *)&xfer->ux_request;
942 1.12 kiyohara DLOGBUF(D_XFER, spipe->buffer, spipe->tregs[LEN]);
943 1.12 kiyohara spipe->ptype = PT_CTRL_SETUP;
944 1.12 kiyohara spipe->newpid &= ~SL11_PID_BITS;
945 1.89 skrll if (xfer->ux_length == 0 ||
946 1.89 skrll (xfer->ux_request.bmRequestType & UT_READ))
947 1.12 kiyohara spipe->newpid |= SL11_PID_IN;
948 1.12 kiyohara else
949 1.12 kiyohara spipe->newpid |= SL11_PID_OUT;
950 1.12 kiyohara }
951 1.12 kiyohara
952 1.89 skrll if (xfer->ux_flags & USBD_FORCE_SHORT_XFER &&
953 1.89 skrll spipe->tregs[LEN] == max_packet &&
954 1.89 skrll (spipe->newpid & SL11_PID_BITS) == SL11_PID_OUT)
955 1.12 kiyohara spipe->wantshort = 1;
956 1.12 kiyohara else
957 1.12 kiyohara spipe->wantshort = 0;
958 1.12 kiyohara
959 1.34 skrll /*
960 1.34 skrll * The goal of newbustime and newlen is to avoid bustime calculation
961 1.37 skrll * in the interrupt. The calculations are not too complex, but they
962 1.37 skrll * complicate the conditional logic somewhat and doing them all in the
963 1.37 skrll * same place shares constants. Index 0 is "short length" for bulk and
964 1.37 skrll * ctrl data and 1 is "full length" for ctrl data (bulk/intr are
965 1.34 skrll * already set to full length).
966 1.34 skrll */
967 1.12 kiyohara if (spipe->pflags & PF_LS) {
968 1.34 skrll /*
969 1.48 skrll * Setting PREAMBLE for directly connected LS devices will
970 1.34 skrll * lock up the chip.
971 1.34 skrll */
972 1.12 kiyohara if (spipe->pflags & PF_PREAMBLE)
973 1.12 kiyohara spipe->control |= SL11_EPCTRL_PREAMBLE;
974 1.12 kiyohara if (max_packet <= 8) {
975 1.36 skrll spipe->bustime = SLHCI_LS_CONST +
976 1.12 kiyohara SLHCI_LS_DATA_TIME(spipe->tregs[LEN]);
977 1.36 skrll spipe->newbustime[0] = SLHCI_LS_CONST +
978 1.12 kiyohara SLHCI_LS_DATA_TIME(spipe->newlen[0]);
979 1.36 skrll spipe->newbustime[1] = SLHCI_LS_CONST +
980 1.12 kiyohara SLHCI_LS_DATA_TIME(spipe->newlen[1]);
981 1.12 kiyohara } else
982 1.48 skrll xfer->ux_status = USBD_INVAL;
983 1.12 kiyohara } else {
984 1.48 skrll UL_SLASSERT(pipe->up_dev->ud_speed == USB_SPEED_FULL, sc,
985 1.12 kiyohara spipe, xfer, return USBD_IN_PROGRESS);
986 1.12 kiyohara if (max_packet <= SL11_MAX_PACKET_SIZE) {
987 1.36 skrll spipe->bustime = SLHCI_FS_CONST +
988 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->tregs[LEN]);
989 1.36 skrll spipe->newbustime[0] = SLHCI_FS_CONST +
990 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->newlen[0]);
991 1.36 skrll spipe->newbustime[1] = SLHCI_FS_CONST +
992 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->newlen[1]);
993 1.12 kiyohara } else
994 1.48 skrll xfer->ux_status = USBD_INVAL;
995 1.12 kiyohara }
996 1.12 kiyohara
997 1.34 skrll /*
998 1.34 skrll * The datasheet incorrectly indicates that DIRECTION is for
999 1.37 skrll * "transmit to host". It is for OUT and SETUP. The app note
1000 1.34 skrll * describes its use correctly.
1001 1.34 skrll */
1002 1.37 skrll if ((spipe->tregs[PID] & SL11_PID_BITS) != SL11_PID_IN)
1003 1.12 kiyohara spipe->control |= SL11_EPCTRL_DIRECTION;
1004 1.12 kiyohara
1005 1.12 kiyohara slhci_start_entry(sc, spipe);
1006 1.1 isaki
1007 1.41 skrll mutex_exit(&sc->sc_lock);
1008 1.41 skrll
1009 1.12 kiyohara return USBD_IN_PROGRESS;
1010 1.12 kiyohara }
1011 1.1 isaki
1012 1.12 kiyohara usbd_status
1013 1.12 kiyohara slhci_root_start(struct usbd_xfer *xfer)
1014 1.12 kiyohara {
1015 1.58 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1016 1.12 kiyohara struct slhci_softc *sc;
1017 1.76 martin struct slhci_pipe *spipe __diagused;
1018 1.1 isaki
1019 1.48 skrll spipe = SLHCI_PIPE2SPIPE(xfer->ux_pipe);
1020 1.48 skrll sc = SLHCI_XFER2SC(xfer);
1021 1.1 isaki
1022 1.75 skrll struct slhci_transfers *t = &sc->sc_transfers;
1023 1.75 skrll
1024 1.75 skrll LK_SLASSERT(spipe != NULL && xfer != NULL, sc, spipe, xfer, return
1025 1.75 skrll USBD_CANCELLED);
1026 1.75 skrll
1027 1.98 pgoyette DLOG(D_TRACE, "transfer type %jd start",
1028 1.98 pgoyette SLHCI_XFER_TYPE(xfer), 0, 0, 0);
1029 1.75 skrll
1030 1.75 skrll KASSERT(spipe->ptype == PT_ROOT_INTR);
1031 1.75 skrll
1032 1.75 skrll mutex_enter(&sc->sc_intr_lock);
1033 1.103 riastrad KASSERT(t->rootintr == NULL);
1034 1.75 skrll t->rootintr = xfer;
1035 1.103 riastrad xfer->ux_status = USBD_IN_PROGRESS;
1036 1.75 skrll mutex_exit(&sc->sc_intr_lock);
1037 1.75 skrll
1038 1.75 skrll return USBD_IN_PROGRESS;
1039 1.1 isaki }
1040 1.1 isaki
1041 1.1 isaki usbd_status
1042 1.12 kiyohara slhci_open(struct usbd_pipe *pipe)
1043 1.1 isaki {
1044 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1045 1.12 kiyohara struct usbd_device *dev;
1046 1.12 kiyohara struct slhci_softc *sc;
1047 1.12 kiyohara struct slhci_pipe *spipe;
1048 1.12 kiyohara usb_endpoint_descriptor_t *ed;
1049 1.12 kiyohara unsigned int max_packet, pmaxpkt;
1050 1.48 skrll uint8_t rhaddr;
1051 1.12 kiyohara
1052 1.48 skrll dev = pipe->up_dev;
1053 1.48 skrll sc = SLHCI_PIPE2SC(pipe);
1054 1.48 skrll spipe = SLHCI_PIPE2SPIPE(pipe);
1055 1.48 skrll ed = pipe->up_endpoint->ue_edesc;
1056 1.48 skrll rhaddr = dev->ud_bus->ub_rhaddr;
1057 1.12 kiyohara
1058 1.98 pgoyette DLOG(D_TRACE, "slhci_open(addr=%jd,ep=%jd,rootaddr=%jd)",
1059 1.48 skrll dev->ud_addr, ed->bEndpointAddress, rhaddr, 0);
1060 1.12 kiyohara
1061 1.12 kiyohara spipe->pflags = 0;
1062 1.12 kiyohara spipe->frame = 0;
1063 1.12 kiyohara spipe->lastframe = 0;
1064 1.12 kiyohara spipe->xfer = NULL;
1065 1.12 kiyohara spipe->buffer = NULL;
1066 1.12 kiyohara
1067 1.12 kiyohara gcq_init(&spipe->ap);
1068 1.12 kiyohara gcq_init(&spipe->to);
1069 1.12 kiyohara gcq_init(&spipe->xq);
1070 1.12 kiyohara
1071 1.34 skrll /*
1072 1.34 skrll * The endpoint descriptor will not have been set up yet in the case
1073 1.37 skrll * of the standard control pipe, so the max packet checks are also
1074 1.34 skrll * necessary in start.
1075 1.34 skrll */
1076 1.12 kiyohara
1077 1.12 kiyohara max_packet = UGETW(ed->wMaxPacketSize);
1078 1.12 kiyohara
1079 1.48 skrll if (dev->ud_speed == USB_SPEED_LOW) {
1080 1.12 kiyohara spipe->pflags |= PF_LS;
1081 1.48 skrll if (dev->ud_myhub->ud_addr != rhaddr) {
1082 1.12 kiyohara spipe->pflags |= PF_PREAMBLE;
1083 1.12 kiyohara if (!slhci_try_lsvh)
1084 1.36 skrll return slhci_lock_call(sc, &slhci_lsvh_warn,
1085 1.12 kiyohara spipe, NULL);
1086 1.12 kiyohara }
1087 1.12 kiyohara pmaxpkt = 8;
1088 1.12 kiyohara } else
1089 1.12 kiyohara pmaxpkt = SL11_MAX_PACKET_SIZE;
1090 1.12 kiyohara
1091 1.12 kiyohara if (max_packet > pmaxpkt) {
1092 1.98 pgoyette DLOG(D_ERR, "packet too large! size %jd spipe %#jx", max_packet,
1093 1.98 pgoyette (uintptr_t)spipe, 0,0);
1094 1.12 kiyohara return USBD_INVAL;
1095 1.12 kiyohara }
1096 1.1 isaki
1097 1.48 skrll if (dev->ud_addr == rhaddr) {
1098 1.1 isaki switch (ed->bEndpointAddress) {
1099 1.1 isaki case USB_CONTROL_ENDPOINT:
1100 1.12 kiyohara spipe->ptype = PT_ROOT_CTRL;
1101 1.48 skrll pipe->up_interval = 0;
1102 1.48 skrll pipe->up_methods = &roothub_ctrl_methods;
1103 1.1 isaki break;
1104 1.48 skrll case UE_DIR_IN | USBROOTHUB_INTR_ENDPT:
1105 1.12 kiyohara spipe->ptype = PT_ROOT_INTR;
1106 1.48 skrll pipe->up_interval = 1;
1107 1.48 skrll pipe->up_methods = &slhci_root_methods;
1108 1.1 isaki break;
1109 1.1 isaki default:
1110 1.12 kiyohara printf("%s: Invalid root endpoint!\n", SC_NAME(sc));
1111 1.79 skrll DDOLOG("Invalid root endpoint", 0, 0, 0, 0);
1112 1.1 isaki return USBD_INVAL;
1113 1.1 isaki }
1114 1.12 kiyohara return USBD_NORMAL_COMPLETION;
1115 1.1 isaki } else {
1116 1.1 isaki switch (ed->bmAttributes & UE_XFERTYPE) {
1117 1.1 isaki case UE_CONTROL:
1118 1.12 kiyohara spipe->ptype = PT_CTRL_SETUP;
1119 1.48 skrll pipe->up_interval = 0;
1120 1.1 isaki break;
1121 1.1 isaki case UE_INTERRUPT:
1122 1.12 kiyohara spipe->ptype = PT_INTR;
1123 1.48 skrll if (pipe->up_interval == USBD_DEFAULT_INTERVAL)
1124 1.48 skrll pipe->up_interval = ed->bInterval;
1125 1.1 isaki break;
1126 1.1 isaki case UE_ISOCHRONOUS:
1127 1.36 skrll return slhci_lock_call(sc, &slhci_isoc_warn, spipe,
1128 1.12 kiyohara NULL);
1129 1.1 isaki case UE_BULK:
1130 1.12 kiyohara spipe->ptype = PT_BULK;
1131 1.48 skrll pipe->up_interval = 0;
1132 1.1 isaki break;
1133 1.1 isaki }
1134 1.12 kiyohara
1135 1.98 pgoyette DLOG(D_MSG, "open pipe type %jd interval %jd", spipe->ptype,
1136 1.48 skrll pipe->up_interval, 0,0);
1137 1.12 kiyohara
1138 1.48 skrll pipe->up_methods = __UNCONST(&slhci_pipe_methods);
1139 1.12 kiyohara
1140 1.12 kiyohara return slhci_lock_call(sc, &slhci_open_pipe, spipe, NULL);
1141 1.1 isaki }
1142 1.1 isaki }
1143 1.1 isaki
1144 1.12 kiyohara int
1145 1.12 kiyohara slhci_supported_rev(uint8_t rev)
1146 1.1 isaki {
1147 1.48 skrll return rev >= SLTYPE_SL811HS_R12 && rev <= SLTYPE_SL811HS_R15;
1148 1.1 isaki }
1149 1.1 isaki
1150 1.34 skrll /*
1151 1.34 skrll * Must be called before the ISR is registered. Interrupts can be shared so
1152 1.37 skrll * slhci_intr could be called as soon as the ISR is registered.
1153 1.34 skrll * Note max_current argument is actual current, but stored as current/2
1154 1.34 skrll */
1155 1.1 isaki void
1156 1.36 skrll slhci_preinit(struct slhci_softc *sc, PowerFunc pow, bus_space_tag_t iot,
1157 1.29 kiyohara bus_space_handle_t ioh, uint16_t max_current, uint32_t stride)
1158 1.1 isaki {
1159 1.12 kiyohara struct slhci_transfers *t;
1160 1.12 kiyohara int i;
1161 1.12 kiyohara
1162 1.12 kiyohara t = &sc->sc_transfers;
1163 1.12 kiyohara
1164 1.83 skrll #ifdef SLHCI_DEBUG
1165 1.83 skrll ssc = sc;
1166 1.83 skrll #endif
1167 1.83 skrll
1168 1.41 skrll mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_SOFTUSB);
1169 1.57 skrll mutex_init(&sc->sc_intr_lock, MUTEX_DEFAULT, IPL_USB);
1170 1.41 skrll
1171 1.12 kiyohara /* sc->sc_ier = 0; */
1172 1.12 kiyohara /* t->rootintr = NULL; */
1173 1.12 kiyohara t->flags = F_NODEV|F_UDISABLED;
1174 1.12 kiyohara t->pend = INT_MAX;
1175 1.12 kiyohara KASSERT(slhci_wait_time != INT_MAX);
1176 1.12 kiyohara t->len[0] = t->len[1] = -1;
1177 1.12 kiyohara if (max_current > 500)
1178 1.12 kiyohara max_current = 500;
1179 1.12 kiyohara t->max_current = (uint8_t)(max_current / 2);
1180 1.12 kiyohara sc->sc_enable_power = pow;
1181 1.12 kiyohara sc->sc_iot = iot;
1182 1.12 kiyohara sc->sc_ioh = ioh;
1183 1.12 kiyohara sc->sc_stride = stride;
1184 1.12 kiyohara
1185 1.12 kiyohara KASSERT(Q_MAX+1 == sizeof(t->q) / sizeof(t->q[0]));
1186 1.12 kiyohara
1187 1.12 kiyohara for (i = 0; i <= Q_MAX; i++)
1188 1.12 kiyohara gcq_init_head(&t->q[i]);
1189 1.12 kiyohara gcq_init_head(&t->timed);
1190 1.12 kiyohara gcq_init_head(&t->to);
1191 1.12 kiyohara gcq_init_head(&t->ap);
1192 1.12 kiyohara gcq_init_head(&sc->sc_waitq);
1193 1.1 isaki }
1194 1.1 isaki
1195 1.12 kiyohara int
1196 1.12 kiyohara slhci_attach(struct slhci_softc *sc)
1197 1.1 isaki {
1198 1.41 skrll struct slhci_transfers *t;
1199 1.41 skrll const char *rev;
1200 1.41 skrll
1201 1.41 skrll t = &sc->sc_transfers;
1202 1.41 skrll
1203 1.41 skrll /* Detect and check the controller type */
1204 1.41 skrll t->sltype = SL11_GET_REV(slhci_read(sc, SL11_REV));
1205 1.41 skrll
1206 1.41 skrll /* SL11H not supported */
1207 1.41 skrll if (!slhci_supported_rev(t->sltype)) {
1208 1.41 skrll if (t->sltype == SLTYPE_SL11H)
1209 1.41 skrll printf("%s: SL11H unsupported or bus error!\n",
1210 1.41 skrll SC_NAME(sc));
1211 1.41 skrll else
1212 1.41 skrll printf("%s: Unknown chip revision!\n", SC_NAME(sc));
1213 1.12 kiyohara return -1;
1214 1.41 skrll }
1215 1.41 skrll
1216 1.86 skrll #ifdef SLHCI_DEBUG
1217 1.86 skrll if (slhci_memtest(sc)) {
1218 1.86 skrll printf("%s: memory/bus error!\n", SC_NAME(sc));
1219 1.86 skrll return -1;
1220 1.86 skrll }
1221 1.86 skrll #endif
1222 1.86 skrll
1223 1.41 skrll callout_init(&sc->sc_timer, CALLOUT_MPSAFE);
1224 1.41 skrll callout_setfunc(&sc->sc_timer, slhci_reset_entry, sc);
1225 1.41 skrll
1226 1.41 skrll /*
1227 1.41 skrll * It is not safe to call the soft interrupt directly as
1228 1.48 skrll * usb_schedsoftintr does in the ub_usepolling case (due to locking).
1229 1.41 skrll */
1230 1.41 skrll sc->sc_cb_softintr = softint_establish(SOFTINT_NET,
1231 1.41 skrll slhci_callback_entry, sc);
1232 1.41 skrll
1233 1.41 skrll if (t->sltype == SLTYPE_SL811HS_R12)
1234 1.54 skrll rev = "(rev 1.2)";
1235 1.41 skrll else if (t->sltype == SLTYPE_SL811HS_R14)
1236 1.54 skrll rev = "(rev 1.4 or 1.5)";
1237 1.41 skrll else
1238 1.54 skrll rev = "(unknown revision)";
1239 1.41 skrll
1240 1.41 skrll aprint_normal("%s: ScanLogic SL811HS/T USB Host Controller %s\n",
1241 1.41 skrll SC_NAME(sc), rev);
1242 1.41 skrll
1243 1.41 skrll aprint_normal("%s: Max Current %u mA (value by code, not by probe)\n",
1244 1.41 skrll SC_NAME(sc), t->max_current * 2);
1245 1.41 skrll
1246 1.41 skrll #if defined(SLHCI_DEBUG) || defined(SLHCI_NO_OVERTIME) || \
1247 1.41 skrll defined(SLHCI_TRY_LSVH) || defined(SLHCI_PROFILE_TRANSFER)
1248 1.41 skrll aprint_normal("%s: driver options:"
1249 1.41 skrll #ifdef SLHCI_DEBUG
1250 1.41 skrll " SLHCI_DEBUG"
1251 1.41 skrll #endif
1252 1.41 skrll #ifdef SLHCI_TRY_LSVH
1253 1.41 skrll " SLHCI_TRY_LSVH"
1254 1.41 skrll #endif
1255 1.41 skrll #ifdef SLHCI_NO_OVERTIME
1256 1.41 skrll " SLHCI_NO_OVERTIME"
1257 1.41 skrll #endif
1258 1.41 skrll #ifdef SLHCI_PROFILE_TRANSFER
1259 1.41 skrll " SLHCI_PROFILE_TRANSFER"
1260 1.41 skrll #endif
1261 1.41 skrll "\n", SC_NAME(sc));
1262 1.41 skrll #endif
1263 1.48 skrll sc->sc_bus.ub_revision = USBREV_1_1;
1264 1.48 skrll sc->sc_bus.ub_methods = __UNCONST(&slhci_bus_methods);
1265 1.48 skrll sc->sc_bus.ub_pipesize = sizeof(struct slhci_pipe);
1266 1.48 skrll sc->sc_bus.ub_usedma = false;
1267 1.41 skrll
1268 1.41 skrll if (!sc->sc_enable_power)
1269 1.41 skrll t->flags |= F_REALPOWER;
1270 1.41 skrll
1271 1.41 skrll t->flags |= F_ACTIVE;
1272 1.1 isaki
1273 1.12 kiyohara /* Attach usb and uhub. */
1274 1.12 kiyohara sc->sc_child = config_found(SC_DEV(sc), &sc->sc_bus, usbctlprint);
1275 1.1 isaki
1276 1.12 kiyohara if (!sc->sc_child)
1277 1.12 kiyohara return -1;
1278 1.12 kiyohara else
1279 1.12 kiyohara return 0;
1280 1.1 isaki }
1281 1.1 isaki
1282 1.12 kiyohara int
1283 1.12 kiyohara slhci_detach(struct slhci_softc *sc, int flags)
1284 1.1 isaki {
1285 1.12 kiyohara struct slhci_transfers *t;
1286 1.12 kiyohara int ret;
1287 1.1 isaki
1288 1.12 kiyohara t = &sc->sc_transfers;
1289 1.12 kiyohara
1290 1.12 kiyohara /* By this point bus access is no longer allowed. */
1291 1.12 kiyohara
1292 1.12 kiyohara KASSERT(!(t->flags & F_ACTIVE));
1293 1.12 kiyohara
1294 1.34 skrll /*
1295 1.34 skrll * To be MPSAFE is not sufficient to cancel callouts and soft
1296 1.13 kiyohara * interrupts and assume they are dead since the code could already be
1297 1.34 skrll * running or about to run. Wait until they are known to be done.
1298 1.34 skrll */
1299 1.12 kiyohara while (t->flags & (F_RESET|F_CALLBACK))
1300 1.12 kiyohara tsleep(&sc, PPAUSE, "slhci_detach", hz);
1301 1.12 kiyohara
1302 1.16 ad softint_disestablish(sc->sc_cb_softintr);
1303 1.12 kiyohara
1304 1.41 skrll mutex_destroy(&sc->sc_lock);
1305 1.41 skrll mutex_destroy(&sc->sc_intr_lock);
1306 1.41 skrll
1307 1.12 kiyohara ret = 0;
1308 1.12 kiyohara
1309 1.12 kiyohara if (sc->sc_child)
1310 1.12 kiyohara ret = config_detach(sc->sc_child, flags);
1311 1.12 kiyohara
1312 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
1313 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1314 1.12 kiyohara if (sc->sc_mem_use) {
1315 1.12 kiyohara printf("%s: Memory still in use after detach! mem_use (count)"
1316 1.12 kiyohara " = %d\n", SC_NAME(sc), sc->sc_mem_use);
1317 1.79 skrll DDOLOG("Memory still in use after detach! mem_use (count)"
1318 1.79 skrll " = %d", sc->sc_mem_use, 0, 0, 0);
1319 1.12 kiyohara }
1320 1.12 kiyohara #endif
1321 1.12 kiyohara
1322 1.12 kiyohara return ret;
1323 1.12 kiyohara }
1324 1.12 kiyohara
1325 1.12 kiyohara int
1326 1.23 cegger slhci_activate(device_t self, enum devact act)
1327 1.12 kiyohara {
1328 1.24 dyoung struct slhci_softc *sc = device_private(self);
1329 1.12 kiyohara
1330 1.24 dyoung switch (act) {
1331 1.24 dyoung case DVACT_DEACTIVATE:
1332 1.24 dyoung slhci_lock_call(sc, &slhci_halt, NULL, NULL);
1333 1.24 dyoung return 0;
1334 1.24 dyoung default:
1335 1.12 kiyohara return EOPNOTSUPP;
1336 1.24 dyoung }
1337 1.12 kiyohara }
1338 1.1 isaki
1339 1.1 isaki void
1340 1.12 kiyohara slhci_abort(struct usbd_xfer *xfer)
1341 1.1 isaki {
1342 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1343 1.12 kiyohara struct slhci_softc *sc;
1344 1.12 kiyohara struct slhci_pipe *spipe;
1345 1.12 kiyohara
1346 1.48 skrll spipe = SLHCI_PIPE2SPIPE(xfer->ux_pipe);
1347 1.12 kiyohara
1348 1.12 kiyohara if (spipe == NULL)
1349 1.12 kiyohara goto callback;
1350 1.12 kiyohara
1351 1.48 skrll sc = SLHCI_XFER2SC(xfer);
1352 1.46 joerg KASSERT(mutex_owned(&sc->sc_lock));
1353 1.46 joerg
1354 1.98 pgoyette DLOG(D_TRACE, "transfer type %jd abort xfer %#jx spipe %#jx "
1355 1.98 pgoyette " spipe->xfer %#jx", spipe->ptype, (uintptr_t)xfer,
1356 1.98 pgoyette (uintptr_t)spipe, (uintptr_t)spipe->xfer);
1357 1.12 kiyohara
1358 1.12 kiyohara slhci_lock_call(sc, &slhci_do_abort, spipe, xfer);
1359 1.1 isaki
1360 1.12 kiyohara callback:
1361 1.48 skrll xfer->ux_status = USBD_CANCELLED;
1362 1.12 kiyohara usb_transfer_complete(xfer);
1363 1.1 isaki }
1364 1.1 isaki
1365 1.12 kiyohara void
1366 1.12 kiyohara slhci_close(struct usbd_pipe *pipe)
1367 1.1 isaki {
1368 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1369 1.12 kiyohara struct slhci_softc *sc;
1370 1.12 kiyohara struct slhci_pipe *spipe;
1371 1.1 isaki
1372 1.48 skrll sc = SLHCI_PIPE2SC(pipe);
1373 1.48 skrll spipe = SLHCI_PIPE2SPIPE(pipe);
1374 1.1 isaki
1375 1.98 pgoyette DLOG(D_TRACE, "transfer type %jd close spipe %#jx spipe->xfer %#jx",
1376 1.98 pgoyette spipe->ptype, (uintptr_t)spipe, (uintptr_t)spipe->xfer, 0);
1377 1.1 isaki
1378 1.12 kiyohara slhci_lock_call(sc, &slhci_close_pipe, spipe, NULL);
1379 1.1 isaki }
1380 1.1 isaki
1381 1.1 isaki void
1382 1.12 kiyohara slhci_clear_toggle(struct usbd_pipe *pipe)
1383 1.1 isaki {
1384 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1385 1.12 kiyohara struct slhci_pipe *spipe;
1386 1.12 kiyohara
1387 1.48 skrll spipe = SLHCI_PIPE2SPIPE(pipe);
1388 1.12 kiyohara
1389 1.98 pgoyette DLOG(D_TRACE, "transfer type %jd toggle spipe %#jx", spipe->ptype,
1390 1.98 pgoyette (uintptr_t)spipe, 0, 0);
1391 1.1 isaki
1392 1.12 kiyohara spipe->pflags &= ~PF_TOGGLE;
1393 1.2 isaki
1394 1.2 isaki #ifdef DIAGNOSTIC
1395 1.12 kiyohara if (spipe->xfer != NULL) {
1396 1.36 skrll struct slhci_softc *sc = (struct slhci_softc
1397 1.48 skrll *)pipe->up_dev->ud_bus;
1398 1.12 kiyohara
1399 1.36 skrll printf("%s: Clear toggle on transfer in progress! halted\n",
1400 1.12 kiyohara SC_NAME(sc));
1401 1.79 skrll DDOLOG("Clear toggle on transfer in progress! halted",
1402 1.79 skrll 0, 0, 0, 0);
1403 1.12 kiyohara slhci_halt(sc, NULL, NULL);
1404 1.2 isaki }
1405 1.2 isaki #endif
1406 1.1 isaki }
1407 1.1 isaki
1408 1.1 isaki void
1409 1.12 kiyohara slhci_poll(struct usbd_bus *bus) /* XXX necessary? */
1410 1.1 isaki {
1411 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1412 1.12 kiyohara struct slhci_softc *sc;
1413 1.12 kiyohara
1414 1.48 skrll sc = SLHCI_BUS2SC(bus);
1415 1.12 kiyohara
1416 1.12 kiyohara DLOG(D_TRACE, "slhci_poll", 0,0,0,0);
1417 1.12 kiyohara
1418 1.12 kiyohara slhci_lock_call(sc, &slhci_do_poll, NULL, NULL);
1419 1.1 isaki }
1420 1.1 isaki
1421 1.12 kiyohara void
1422 1.12 kiyohara slhci_done(struct usbd_xfer *xfer)
1423 1.12 kiyohara {
1424 1.12 kiyohara }
1425 1.1 isaki
1426 1.12 kiyohara void
1427 1.12 kiyohara slhci_void(void *v) {}
1428 1.1 isaki
1429 1.12 kiyohara /* End out of lock functions. Start lock entry functions. */
1430 1.1 isaki
1431 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
1432 1.12 kiyohara void
1433 1.12 kiyohara slhci_mem_use(struct usbd_bus *bus, int val)
1434 1.12 kiyohara {
1435 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
1436 1.1 isaki
1437 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1438 1.12 kiyohara sc->sc_mem_use += val;
1439 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1440 1.12 kiyohara }
1441 1.12 kiyohara #endif
1442 1.1 isaki
1443 1.12 kiyohara void
1444 1.12 kiyohara slhci_reset_entry(void *arg)
1445 1.1 isaki {
1446 1.59 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1447 1.41 skrll struct slhci_softc *sc = arg;
1448 1.12 kiyohara
1449 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1450 1.12 kiyohara slhci_reset(sc);
1451 1.34 skrll /*
1452 1.39 skrll * We cannot call the callback directly since we could then be reset
1453 1.37 skrll * again before finishing and need the callout delay for timing.
1454 1.37 skrll * Scheduling the callout again before we exit would defeat the reap
1455 1.37 skrll * mechanism since we could be unlocked while the reset flag is not
1456 1.34 skrll * set. The callback code will check the wait queue.
1457 1.34 skrll */
1458 1.12 kiyohara slhci_callback_schedule(sc);
1459 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1460 1.1 isaki }
1461 1.1 isaki
1462 1.1 isaki usbd_status
1463 1.36 skrll slhci_lock_call(struct slhci_softc *sc, LockCallFunc lcf, struct slhci_pipe
1464 1.12 kiyohara *spipe, struct usbd_xfer *xfer)
1465 1.12 kiyohara {
1466 1.12 kiyohara usbd_status ret;
1467 1.12 kiyohara
1468 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1469 1.12 kiyohara ret = (*lcf)(sc, spipe, xfer);
1470 1.41 skrll slhci_main(sc);
1471 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1472 1.12 kiyohara
1473 1.12 kiyohara return ret;
1474 1.12 kiyohara }
1475 1.12 kiyohara
1476 1.12 kiyohara void
1477 1.12 kiyohara slhci_start_entry(struct slhci_softc *sc, struct slhci_pipe *spipe)
1478 1.1 isaki {
1479 1.12 kiyohara struct slhci_transfers *t;
1480 1.1 isaki
1481 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1482 1.12 kiyohara t = &sc->sc_transfers;
1483 1.1 isaki
1484 1.41 skrll if (!(t->flags & (F_AINPROG|F_BINPROG))) {
1485 1.12 kiyohara slhci_enter_xfer(sc, spipe);
1486 1.12 kiyohara slhci_dotransfer(sc);
1487 1.41 skrll slhci_main(sc);
1488 1.12 kiyohara } else {
1489 1.12 kiyohara enter_waitq(sc, spipe);
1490 1.1 isaki }
1491 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1492 1.1 isaki }
1493 1.1 isaki
1494 1.12 kiyohara void
1495 1.12 kiyohara slhci_callback_entry(void *arg)
1496 1.1 isaki {
1497 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1498 1.12 kiyohara struct slhci_softc *sc;
1499 1.12 kiyohara struct slhci_transfers *t;
1500 1.1 isaki
1501 1.41 skrll sc = (struct slhci_softc *)arg;
1502 1.1 isaki
1503 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1504 1.12 kiyohara t = &sc->sc_transfers;
1505 1.98 pgoyette DLOG(D_SOFT, "callback_entry flags %#jx", t->flags, 0,0,0);
1506 1.1 isaki
1507 1.12 kiyohara repeat:
1508 1.41 skrll slhci_callback(sc);
1509 1.1 isaki
1510 1.12 kiyohara if (!gcq_empty(&sc->sc_waitq)) {
1511 1.12 kiyohara slhci_enter_xfers(sc);
1512 1.12 kiyohara slhci_dotransfer(sc);
1513 1.12 kiyohara slhci_waitintr(sc, 0);
1514 1.12 kiyohara goto repeat;
1515 1.12 kiyohara }
1516 1.1 isaki
1517 1.12 kiyohara t->flags &= ~F_CALLBACK;
1518 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1519 1.1 isaki }
1520 1.1 isaki
1521 1.1 isaki void
1522 1.41 skrll slhci_do_callback(struct slhci_softc *sc, struct usbd_xfer *xfer)
1523 1.1 isaki {
1524 1.62 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1525 1.43 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1526 1.12 kiyohara
1527 1.12 kiyohara start_cc_time(&t_callback, (u_int)xfer);
1528 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1529 1.12 kiyohara
1530 1.41 skrll mutex_enter(&sc->sc_lock);
1531 1.12 kiyohara usb_transfer_complete(xfer);
1532 1.41 skrll mutex_exit(&sc->sc_lock);
1533 1.12 kiyohara
1534 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1535 1.12 kiyohara stop_cc_time(&t_callback);
1536 1.1 isaki }
1537 1.1 isaki
1538 1.12 kiyohara int
1539 1.12 kiyohara slhci_intr(void *arg)
1540 1.1 isaki {
1541 1.58 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1542 1.41 skrll struct slhci_softc *sc = arg;
1543 1.93 skrll int ret = 0;
1544 1.93 skrll int irq;
1545 1.12 kiyohara
1546 1.12 kiyohara start_cc_time(&t_hard_int, (unsigned int)arg);
1547 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1548 1.12 kiyohara
1549 1.93 skrll do {
1550 1.93 skrll irq = slhci_dointr(sc);
1551 1.93 skrll ret |= irq;
1552 1.93 skrll slhci_main(sc);
1553 1.93 skrll } while (irq);
1554 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1555 1.12 kiyohara
1556 1.12 kiyohara stop_cc_time(&t_hard_int);
1557 1.12 kiyohara return ret;
1558 1.1 isaki }
1559 1.1 isaki
1560 1.85 skrll /* called with interrupt lock only held. */
1561 1.1 isaki void
1562 1.41 skrll slhci_main(struct slhci_softc *sc)
1563 1.1 isaki {
1564 1.58 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1565 1.12 kiyohara struct slhci_transfers *t;
1566 1.12 kiyohara
1567 1.12 kiyohara t = &sc->sc_transfers;
1568 1.1 isaki
1569 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1570 1.1 isaki
1571 1.12 kiyohara waitcheck:
1572 1.12 kiyohara slhci_waitintr(sc, slhci_wait_time);
1573 1.1 isaki
1574 1.1 isaki /*
1575 1.48 skrll * The direct call is needed in the ub_usepolling and disabled cases
1576 1.36 skrll * since the soft interrupt is not available. In the disabled case,
1577 1.36 skrll * this code can be reached from the usb detach, after the reaping of
1578 1.41 skrll * the soft interrupt. That test could be !F_ACTIVE, but there is no
1579 1.41 skrll * reason not to make the callbacks directly in the other DISABLED
1580 1.41 skrll * cases.
1581 1.1 isaki */
1582 1.12 kiyohara if ((t->flags & F_ROOTINTR) || !gcq_empty(&t->q[Q_CALLBACKS])) {
1583 1.48 skrll if (__predict_false(sc->sc_bus.ub_usepolling ||
1584 1.41 skrll t->flags & F_DISABLED))
1585 1.41 skrll slhci_callback(sc);
1586 1.12 kiyohara else
1587 1.12 kiyohara slhci_callback_schedule(sc);
1588 1.12 kiyohara }
1589 1.12 kiyohara
1590 1.12 kiyohara if (!gcq_empty(&sc->sc_waitq)) {
1591 1.12 kiyohara slhci_enter_xfers(sc);
1592 1.12 kiyohara slhci_dotransfer(sc);
1593 1.12 kiyohara goto waitcheck;
1594 1.12 kiyohara }
1595 1.79 skrll DLOG(D_INTR, "... done", 0, 0, 0, 0);
1596 1.1 isaki }
1597 1.1 isaki
1598 1.12 kiyohara /* End lock entry functions. Start in lock function. */
1599 1.12 kiyohara
1600 1.12 kiyohara /* Register read/write routines and barriers. */
1601 1.12 kiyohara #ifdef SLHCI_BUS_SPACE_BARRIERS
1602 1.12 kiyohara #define BSB(a, b, c, d, e) bus_space_barrier(a, b, c, d, BUS_SPACE_BARRIER_ # e)
1603 1.95 jdolecek #define BSB_SYNC(a, b, c, d) bus_space_barrier(a, b, c, d, BUS_SPACE_BARRIER_READ|BUS_SPACE_BARRIER_WRITE)
1604 1.12 kiyohara #else /* now !SLHCI_BUS_SPACE_BARRIERS */
1605 1.47 christos #define BSB(a, b, c, d, e) __USE(d)
1606 1.12 kiyohara #define BSB_SYNC(a, b, c, d)
1607 1.12 kiyohara #endif /* SLHCI_BUS_SPACE_BARRIERS */
1608 1.12 kiyohara
1609 1.12 kiyohara static void
1610 1.12 kiyohara slhci_write(struct slhci_softc *sc, uint8_t addr, uint8_t data)
1611 1.1 isaki {
1612 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1613 1.12 kiyohara bus_space_tag_t iot;
1614 1.12 kiyohara bus_space_handle_t ioh;
1615 1.12 kiyohara
1616 1.12 kiyohara paddr = pst = 0;
1617 1.12 kiyohara pdata = sc->sc_stride;
1618 1.12 kiyohara psz = pdata * 2;
1619 1.12 kiyohara iot = sc->sc_iot;
1620 1.12 kiyohara ioh = sc->sc_ioh;
1621 1.12 kiyohara
1622 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1623 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1624 1.12 kiyohara bus_space_write_1(iot, ioh, pdata, data);
1625 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1626 1.12 kiyohara }
1627 1.12 kiyohara
1628 1.12 kiyohara static uint8_t
1629 1.12 kiyohara slhci_read(struct slhci_softc *sc, uint8_t addr)
1630 1.12 kiyohara {
1631 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1632 1.12 kiyohara bus_space_tag_t iot;
1633 1.12 kiyohara bus_space_handle_t ioh;
1634 1.12 kiyohara uint8_t data;
1635 1.12 kiyohara
1636 1.12 kiyohara paddr = pst = 0;
1637 1.12 kiyohara pdata = sc->sc_stride;
1638 1.12 kiyohara psz = pdata * 2;
1639 1.12 kiyohara iot = sc->sc_iot;
1640 1.12 kiyohara ioh = sc->sc_ioh;
1641 1.12 kiyohara
1642 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1643 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_READ);
1644 1.12 kiyohara data = bus_space_read_1(iot, ioh, pdata);
1645 1.12 kiyohara BSB(iot, ioh, pst, psz, READ_BEFORE_WRITE);
1646 1.12 kiyohara return data;
1647 1.12 kiyohara }
1648 1.1 isaki
1649 1.12 kiyohara #if 0 /* auto-increment mode broken, see errata doc */
1650 1.12 kiyohara static void
1651 1.12 kiyohara slhci_write_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1652 1.12 kiyohara {
1653 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1654 1.12 kiyohara bus_space_tag_t iot;
1655 1.12 kiyohara bus_space_handle_t ioh;
1656 1.12 kiyohara
1657 1.12 kiyohara paddr = pst = 0;
1658 1.12 kiyohara pdata = sc->sc_stride;
1659 1.12 kiyohara psz = pdata * 2;
1660 1.12 kiyohara iot = sc->sc_iot;
1661 1.12 kiyohara ioh = sc->sc_ioh;
1662 1.12 kiyohara
1663 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1664 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1665 1.12 kiyohara bus_space_write_multi_1(iot, ioh, pdata, buf, l);
1666 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1667 1.12 kiyohara }
1668 1.1 isaki
1669 1.12 kiyohara static void
1670 1.12 kiyohara slhci_read_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1671 1.12 kiyohara {
1672 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1673 1.12 kiyohara bus_space_tag_t iot;
1674 1.12 kiyohara bus_space_handle_t ioh;
1675 1.12 kiyohara
1676 1.12 kiyohara paddr = pst = 0;
1677 1.12 kiyohara pdata = sc->sc_stride;
1678 1.12 kiyohara psz = pdata * 2;
1679 1.12 kiyohara iot = sc->sc_iot;
1680 1.12 kiyohara ioh = sc->sc_ioh;
1681 1.12 kiyohara
1682 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1683 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_READ);
1684 1.12 kiyohara bus_space_read_multi_1(iot, ioh, pdata, buf, l);
1685 1.12 kiyohara BSB(iot, ioh, pst, psz, READ_BEFORE_WRITE);
1686 1.1 isaki }
1687 1.12 kiyohara #else
1688 1.1 isaki static void
1689 1.12 kiyohara slhci_write_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1690 1.1 isaki {
1691 1.12 kiyohara #if 1
1692 1.12 kiyohara for (; l; addr++, buf++, l--)
1693 1.12 kiyohara slhci_write(sc, addr, *buf);
1694 1.12 kiyohara #else
1695 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1696 1.12 kiyohara bus_space_tag_t iot;
1697 1.12 kiyohara bus_space_handle_t ioh;
1698 1.12 kiyohara
1699 1.12 kiyohara paddr = pst = 0;
1700 1.12 kiyohara pdata = sc->sc_stride;
1701 1.12 kiyohara psz = pdata * 2;
1702 1.12 kiyohara iot = sc->sc_iot;
1703 1.12 kiyohara ioh = sc->sc_ioh;
1704 1.12 kiyohara
1705 1.12 kiyohara for (; l; addr++, buf++, l--) {
1706 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1707 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1708 1.12 kiyohara bus_space_write_1(iot, ioh, pdata, *buf);
1709 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1710 1.12 kiyohara }
1711 1.12 kiyohara #endif
1712 1.1 isaki }
1713 1.1 isaki
1714 1.1 isaki static void
1715 1.12 kiyohara slhci_read_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1716 1.1 isaki {
1717 1.12 kiyohara #if 1
1718 1.12 kiyohara for (; l; addr++, buf++, l--)
1719 1.12 kiyohara *buf = slhci_read(sc, addr);
1720 1.12 kiyohara #else
1721 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1722 1.12 kiyohara bus_space_tag_t iot;
1723 1.12 kiyohara bus_space_handle_t ioh;
1724 1.12 kiyohara
1725 1.12 kiyohara paddr = pst = 0;
1726 1.12 kiyohara pdata = sc->sc_stride;
1727 1.12 kiyohara psz = pdata * 2;
1728 1.12 kiyohara iot = sc->sc_iot;
1729 1.12 kiyohara ioh = sc->sc_ioh;
1730 1.12 kiyohara
1731 1.12 kiyohara for (; l; addr++, buf++, l--) {
1732 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1733 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_READ);
1734 1.12 kiyohara *buf = bus_space_read_1(iot, ioh, pdata);
1735 1.12 kiyohara BSB(iot, ioh, pst, psz, READ_BEFORE_WRITE);
1736 1.12 kiyohara }
1737 1.12 kiyohara #endif
1738 1.12 kiyohara }
1739 1.12 kiyohara #endif
1740 1.12 kiyohara
1741 1.34 skrll /*
1742 1.34 skrll * After calling waitintr it is necessary to either call slhci_callback or
1743 1.37 skrll * schedule the callback if necessary. The callback cannot be called directly
1744 1.37 skrll * from the hard interrupt since it interrupts at a high IPL and callbacks
1745 1.34 skrll * can do copyout and such.
1746 1.34 skrll */
1747 1.12 kiyohara static void
1748 1.12 kiyohara slhci_waitintr(struct slhci_softc *sc, int wait_time)
1749 1.12 kiyohara {
1750 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1751 1.12 kiyohara struct slhci_transfers *t;
1752 1.12 kiyohara
1753 1.12 kiyohara t = &sc->sc_transfers;
1754 1.12 kiyohara
1755 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1756 1.12 kiyohara
1757 1.48 skrll if (__predict_false(sc->sc_bus.ub_usepolling))
1758 1.12 kiyohara wait_time = 12000;
1759 1.12 kiyohara
1760 1.12 kiyohara while (t->pend <= wait_time) {
1761 1.98 pgoyette DLOG(D_WAIT, "waiting... frame %jd pend %jd flags %#jx",
1762 1.12 kiyohara t->frame, t->pend, t->flags, 0);
1763 1.12 kiyohara LK_SLASSERT(t->flags & F_ACTIVE, sc, NULL, NULL, return);
1764 1.36 skrll LK_SLASSERT(t->flags & (F_AINPROG|F_BINPROG), sc, NULL, NULL,
1765 1.12 kiyohara return);
1766 1.12 kiyohara slhci_dointr(sc);
1767 1.12 kiyohara }
1768 1.81 skrll DLOG(D_WAIT, "... done", 0, 0, 0, 0);
1769 1.12 kiyohara }
1770 1.12 kiyohara
1771 1.12 kiyohara static int
1772 1.12 kiyohara slhci_dointr(struct slhci_softc *sc)
1773 1.12 kiyohara {
1774 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1775 1.12 kiyohara struct slhci_transfers *t;
1776 1.12 kiyohara struct slhci_pipe *tosp;
1777 1.12 kiyohara uint8_t r;
1778 1.12 kiyohara
1779 1.12 kiyohara t = &sc->sc_transfers;
1780 1.12 kiyohara
1781 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1782 1.12 kiyohara
1783 1.78 skrll if (sc->sc_ier == 0) {
1784 1.78 skrll DLOG(D_INTR, "sc_ier is zero", 0, 0, 0, 0);
1785 1.12 kiyohara return 0;
1786 1.78 skrll }
1787 1.12 kiyohara
1788 1.12 kiyohara r = slhci_read(sc, SL11_ISR);
1789 1.12 kiyohara
1790 1.12 kiyohara #ifdef SLHCI_DEBUG
1791 1.51 skrll if (slhcidebug & SLHCI_D_INTR && r & sc->sc_ier &&
1792 1.88 skrll ((r & ~(SL11_ISR_SOF|SL11_ISR_DATA)) || slhcidebug & SLHCI_D_SOF)) {
1793 1.12 kiyohara uint8_t e, f;
1794 1.12 kiyohara
1795 1.12 kiyohara e = slhci_read(sc, SL11_IER);
1796 1.12 kiyohara f = slhci_read(sc, SL11_CTRL);
1797 1.79 skrll DDOLOG("Flags=%#x IER=%#x ISR=%#x CTRL=%#x", t->flags, e, r, f);
1798 1.79 skrll DDOLOGCTRL(f);
1799 1.79 skrll DDOLOGISR(r);
1800 1.12 kiyohara }
1801 1.12 kiyohara #endif
1802 1.12 kiyohara
1803 1.40 skrll /*
1804 1.40 skrll * check IER for corruption occasionally. Assume that the above
1805 1.40 skrll * sc_ier == 0 case works correctly.
1806 1.40 skrll */
1807 1.12 kiyohara if (__predict_false(sc->sc_ier_check++ > SLHCI_IER_CHECK_FREQUENCY)) {
1808 1.12 kiyohara sc->sc_ier_check = 0;
1809 1.12 kiyohara if (sc->sc_ier != slhci_read(sc, SL11_IER)) {
1810 1.36 skrll printf("%s: IER value corrupted! halted\n",
1811 1.12 kiyohara SC_NAME(sc));
1812 1.79 skrll DDOLOG("IER value corrupted! halted", 0, 0, 0, 0);
1813 1.36 skrll slhci_halt(sc, NULL, NULL);
1814 1.12 kiyohara return 1;
1815 1.12 kiyohara }
1816 1.12 kiyohara }
1817 1.12 kiyohara
1818 1.12 kiyohara r &= sc->sc_ier;
1819 1.12 kiyohara
1820 1.78 skrll if (r == 0) {
1821 1.78 skrll DLOG(D_INTR, "r is zero", 0, 0, 0, 0);
1822 1.12 kiyohara return 0;
1823 1.78 skrll }
1824 1.12 kiyohara
1825 1.12 kiyohara sc->sc_ier_check = 0;
1826 1.12 kiyohara
1827 1.12 kiyohara slhci_write(sc, SL11_ISR, r);
1828 1.12 kiyohara BSB_SYNC(sc->iot, sc->ioh, sc->pst, sc->psz);
1829 1.12 kiyohara
1830 1.12 kiyohara /* If we have an insertion event we do not care about anything else. */
1831 1.12 kiyohara if (__predict_false(r & SL11_ISR_INSERT)) {
1832 1.12 kiyohara slhci_insert(sc);
1833 1.78 skrll DLOG(D_INTR, "... done", 0, 0, 0, 0);
1834 1.12 kiyohara return 1;
1835 1.12 kiyohara }
1836 1.12 kiyohara
1837 1.12 kiyohara stop_cc_time(&t_intr);
1838 1.12 kiyohara start_cc_time(&t_intr, r);
1839 1.12 kiyohara
1840 1.12 kiyohara if (r & SL11_ISR_SOF) {
1841 1.12 kiyohara t->frame++;
1842 1.12 kiyohara
1843 1.12 kiyohara gcq_merge_tail(&t->q[Q_CB], &t->q[Q_NEXT_CB]);
1844 1.12 kiyohara
1845 1.34 skrll /*
1846 1.34 skrll * SOFCHECK flags are cleared in tstart. Two flags are needed
1847 1.37 skrll * since the first SOF interrupt processed after the transfer
1848 1.37 skrll * is started might have been generated before the transfer
1849 1.34 skrll * was started.
1850 1.34 skrll */
1851 1.37 skrll if (__predict_false(t->flags & F_SOFCHECK2 && t->flags &
1852 1.12 kiyohara (F_AINPROG|F_BINPROG))) {
1853 1.12 kiyohara printf("%s: Missed transfer completion. halted\n",
1854 1.12 kiyohara SC_NAME(sc));
1855 1.79 skrll DDOLOG("Missed transfer completion. halted", 0, 0, 0,
1856 1.79 skrll 0);
1857 1.12 kiyohara slhci_halt(sc, NULL, NULL);
1858 1.12 kiyohara return 1;
1859 1.12 kiyohara } else if (t->flags & F_SOFCHECK1) {
1860 1.12 kiyohara t->flags |= F_SOFCHECK2;
1861 1.12 kiyohara } else
1862 1.12 kiyohara t->flags |= F_SOFCHECK1;
1863 1.12 kiyohara
1864 1.12 kiyohara if (t->flags & F_CHANGE)
1865 1.12 kiyohara t->flags |= F_ROOTINTR;
1866 1.12 kiyohara
1867 1.12 kiyohara while (__predict_true(GOT_FIRST_TO(tosp, t)) &&
1868 1.12 kiyohara __predict_false(tosp->to_frame <= t->frame)) {
1869 1.48 skrll tosp->xfer->ux_status = USBD_TIMEOUT;
1870 1.12 kiyohara slhci_do_abort(sc, tosp, tosp->xfer);
1871 1.12 kiyohara enter_callback(t, tosp);
1872 1.12 kiyohara }
1873 1.12 kiyohara
1874 1.34 skrll /*
1875 1.34 skrll * Start any waiting transfers right away. If none, we will
1876 1.34 skrll * start any new transfers later.
1877 1.34 skrll */
1878 1.12 kiyohara slhci_tstart(sc);
1879 1.12 kiyohara }
1880 1.12 kiyohara
1881 1.12 kiyohara if (r & (SL11_ISR_USBA|SL11_ISR_USBB)) {
1882 1.12 kiyohara int ab;
1883 1.12 kiyohara
1884 1.36 skrll if ((r & (SL11_ISR_USBA|SL11_ISR_USBB)) ==
1885 1.12 kiyohara (SL11_ISR_USBA|SL11_ISR_USBB)) {
1886 1.12 kiyohara if (!(t->flags & (F_AINPROG|F_BINPROG)))
1887 1.12 kiyohara return 1; /* presume card pulled */
1888 1.12 kiyohara
1889 1.36 skrll LK_SLASSERT((t->flags & (F_AINPROG|F_BINPROG)) !=
1890 1.12 kiyohara (F_AINPROG|F_BINPROG), sc, NULL, NULL, return 1);
1891 1.12 kiyohara
1892 1.34 skrll /*
1893 1.34 skrll * This should never happen (unless card removal just
1894 1.12 kiyohara * occurred) but appeared frequently when both
1895 1.36 skrll * transfers were started at the same time and was
1896 1.36 skrll * accompanied by data corruption. It still happens
1897 1.36 skrll * at times. I have not seen data correption except
1898 1.36 skrll * when the STATUS bit gets set, which now causes the
1899 1.36 skrll * driver to halt, however this should still not
1900 1.36 skrll * happen so the warning is kept. See comment in
1901 1.12 kiyohara * abdone, below.
1902 1.12 kiyohara */
1903 1.12 kiyohara printf("%s: Transfer reported done but not started! "
1904 1.12 kiyohara "Verify data integrity if not detaching. "
1905 1.12 kiyohara " flags %#x r %x\n", SC_NAME(sc), t->flags, r);
1906 1.12 kiyohara
1907 1.12 kiyohara if (!(t->flags & F_AINPROG))
1908 1.12 kiyohara r &= ~SL11_ISR_USBA;
1909 1.12 kiyohara else
1910 1.12 kiyohara r &= ~SL11_ISR_USBB;
1911 1.12 kiyohara }
1912 1.12 kiyohara t->pend = INT_MAX;
1913 1.12 kiyohara
1914 1.12 kiyohara if (r & SL11_ISR_USBA)
1915 1.12 kiyohara ab = A;
1916 1.36 skrll else
1917 1.12 kiyohara ab = B;
1918 1.12 kiyohara
1919 1.34 skrll /*
1920 1.34 skrll * This happens when a low speed device is attached to
1921 1.37 skrll * a hub with chip rev 1.5. SOF stops, but a few transfers
1922 1.12 kiyohara * still work before causing this error.
1923 1.12 kiyohara */
1924 1.12 kiyohara if (!(t->flags & (ab ? F_BINPROG : F_AINPROG))) {
1925 1.36 skrll printf("%s: %s done but not in progress! halted\n",
1926 1.12 kiyohara SC_NAME(sc), ab ? "B" : "A");
1927 1.79 skrll DDOLOG("AB=%d done but not in progress! halted", ab,
1928 1.79 skrll 0, 0, 0);
1929 1.12 kiyohara slhci_halt(sc, NULL, NULL);
1930 1.12 kiyohara return 1;
1931 1.12 kiyohara }
1932 1.12 kiyohara
1933 1.12 kiyohara t->flags &= ~(ab ? F_BINPROG : F_AINPROG);
1934 1.12 kiyohara slhci_tstart(sc);
1935 1.12 kiyohara stop_cc_time(&t_ab[ab]);
1936 1.12 kiyohara start_cc_time(&t_abdone, t->flags);
1937 1.12 kiyohara slhci_abdone(sc, ab);
1938 1.12 kiyohara stop_cc_time(&t_abdone);
1939 1.12 kiyohara }
1940 1.12 kiyohara
1941 1.12 kiyohara slhci_dotransfer(sc);
1942 1.12 kiyohara
1943 1.78 skrll DLOG(D_INTR, "... done", 0, 0, 0, 0);
1944 1.78 skrll
1945 1.12 kiyohara return 1;
1946 1.12 kiyohara }
1947 1.12 kiyohara
1948 1.12 kiyohara static void
1949 1.12 kiyohara slhci_abdone(struct slhci_softc *sc, int ab)
1950 1.12 kiyohara {
1951 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1952 1.12 kiyohara struct slhci_transfers *t;
1953 1.12 kiyohara struct slhci_pipe *spipe;
1954 1.12 kiyohara struct usbd_xfer *xfer;
1955 1.36 skrll uint8_t status, buf_start;
1956 1.12 kiyohara uint8_t *target_buf;
1957 1.12 kiyohara unsigned int actlen;
1958 1.12 kiyohara int head;
1959 1.12 kiyohara
1960 1.12 kiyohara t = &sc->sc_transfers;
1961 1.12 kiyohara
1962 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1963 1.12 kiyohara
1964 1.98 pgoyette DLOG(D_TRACE, "ABDONE flags %#jx", t->flags, 0,0,0);
1965 1.12 kiyohara
1966 1.98 pgoyette DLOG(D_MSG, "DONE AB=%jd spipe %#jx len %jd xfer %#jx", ab,
1967 1.98 pgoyette t->spipe[ab], (uintptr_t)t->len[ab],
1968 1.98 pgoyette (uintptr_t)(t->spipe[ab] ? t->spipe[ab]->xfer : NULL));
1969 1.12 kiyohara
1970 1.12 kiyohara spipe = t->spipe[ab];
1971 1.12 kiyohara
1972 1.34 skrll /*
1973 1.34 skrll * skip this one if aborted; do not call return from the rest of the
1974 1.34 skrll * function unless halting, else t->len will not be cleared.
1975 1.34 skrll */
1976 1.12 kiyohara if (spipe == NULL)
1977 1.12 kiyohara goto done;
1978 1.12 kiyohara
1979 1.12 kiyohara t->spipe[ab] = NULL;
1980 1.12 kiyohara
1981 1.12 kiyohara xfer = spipe->xfer;
1982 1.12 kiyohara
1983 1.12 kiyohara gcq_remove(&spipe->to);
1984 1.12 kiyohara
1985 1.12 kiyohara LK_SLASSERT(xfer != NULL, sc, spipe, NULL, return);
1986 1.12 kiyohara
1987 1.12 kiyohara status = slhci_read(sc, slhci_tregs[ab][STAT]);
1988 1.12 kiyohara
1989 1.12 kiyohara /*
1990 1.36 skrll * I saw no status or remaining length greater than the requested
1991 1.36 skrll * length in early driver versions in circumstances I assumed caused
1992 1.36 skrll * excess power draw. I am no longer able to reproduce this when
1993 1.36 skrll * causing excess power draw circumstances.
1994 1.36 skrll *
1995 1.36 skrll * Disabling a power check and attaching aue to a keyboard and hub
1996 1.36 skrll * that is directly attached (to CFU1U, 100mA max, aue 160mA, keyboard
1997 1.36 skrll * 98mA) sometimes works and sometimes fails to configure. After
1998 1.36 skrll * removing the aue and attaching a self-powered umass dvd reader
1999 1.36 skrll * (unknown if it draws power from the host also) soon a single Error
2000 1.36 skrll * status occurs then only timeouts. The controller soon halts freeing
2001 1.36 skrll * memory due to being ONQU instead of BUSY. This may be the same
2002 1.36 skrll * basic sequence that caused the no status/bad length errors. The
2003 1.36 skrll * umass device seems to work (better at least) with the keyboard hub
2004 1.36 skrll * when not first attaching aue (tested once reading an approximately
2005 1.12 kiyohara * 200MB file).
2006 1.36 skrll *
2007 1.36 skrll * Overflow can indicate that the device and host disagree about how
2008 1.102 msaitoh * much data has been transferred. This may indicate a problem at any
2009 1.36 skrll * point during the transfer, not just when the error occurs. It may
2010 1.12 kiyohara * indicate data corruption. A warning message is printed.
2011 1.12 kiyohara *
2012 1.36 skrll * Trying to use both A and B transfers at the same time results in
2013 1.36 skrll * incorrect transfer completion ISR reports and the status will then
2014 1.36 skrll * include SL11_EPSTAT_SETUP, which is apparently set while the
2015 1.36 skrll * transfer is in progress. I also noticed data corruption, even
2016 1.36 skrll * after waiting for the transfer to complete. The driver now avoids
2017 1.12 kiyohara * trying to start both at the same time.
2018 1.12 kiyohara *
2019 1.36 skrll * I had accidently initialized the B registers before they were valid
2020 1.36 skrll * in some driver versions. Since every other performance enhancing
2021 1.36 skrll * feature has been confirmed buggy in the errata doc, I have not
2022 1.12 kiyohara * tried both transfers at once again with the documented
2023 1.12 kiyohara * initialization order.
2024 1.36 skrll *
2025 1.36 skrll * However, I have seen this problem again ("done but not started"
2026 1.36 skrll * errors), which in some cases cases the SETUP status bit to remain
2027 1.36 skrll * set on future transfers. In other cases, the SETUP bit is not set
2028 1.36 skrll * and no data corruption occurs. This occured while using both umass
2029 1.36 skrll * and aue on a powered hub (maybe triggered by some local activity
2030 1.36 skrll * also) and needs several reads of the 200MB file to trigger. The
2031 1.12 kiyohara * driver now halts if SETUP is detected.
2032 1.12 kiyohara */
2033 1.12 kiyohara
2034 1.12 kiyohara actlen = 0;
2035 1.12 kiyohara
2036 1.12 kiyohara if (__predict_false(!status)) {
2037 1.12 kiyohara DDOLOG("no status! xfer %p spipe %p", xfer, spipe, 0,0);
2038 1.12 kiyohara printf("%s: no status! halted\n", SC_NAME(sc));
2039 1.12 kiyohara slhci_halt(sc, spipe, xfer);
2040 1.12 kiyohara return;
2041 1.36 skrll }
2042 1.12 kiyohara
2043 1.12 kiyohara #ifdef SLHCI_DEBUG
2044 1.79 skrll if ((slhcidebug & SLHCI_D_NAK) ||
2045 1.79 skrll (status & SL11_EPSTAT_ERRBITS) != SL11_EPSTAT_NAK) {
2046 1.79 skrll DDOLOG("USB Status = %#.2x", status, 0, 0, 0);
2047 1.84 skrll DDOLOGSTATUS(status);
2048 1.79 skrll }
2049 1.12 kiyohara #endif
2050 1.12 kiyohara
2051 1.12 kiyohara if (!(status & SL11_EPSTAT_ERRBITS)) {
2052 1.96 skrll unsigned int cont = slhci_read(sc, slhci_tregs[ab][CONT]);
2053 1.96 skrll unsigned int len = spipe->tregs[LEN];
2054 1.98 pgoyette DLOG(D_XFER, "cont %jd len %jd", cont, len, 0, 0);
2055 1.96 skrll if ((status & SL11_EPSTAT_OVERFLOW) || cont > len) {
2056 1.96 skrll DDOLOG("overflow - cont %d len %d xfer->ux_length %d "
2057 1.96 skrll "xfer->actlen %d", cont, len, xfer->ux_length,
2058 1.96 skrll xfer->ux_actlen);
2059 1.96 skrll printf("%s: overflow cont %d len %d xfer->ux_length"
2060 1.96 skrll " %d xfer->ux_actlen %d\n", SC_NAME(sc), cont,
2061 1.96 skrll len, xfer->ux_length, xfer->ux_actlen);
2062 1.96 skrll actlen = len;
2063 1.12 kiyohara } else {
2064 1.96 skrll actlen = len - cont;
2065 1.12 kiyohara }
2066 1.96 skrll spipe->nerrs = 0;
2067 1.12 kiyohara }
2068 1.12 kiyohara
2069 1.12 kiyohara /* Actual copyin done after starting next transfer. */
2070 1.12 kiyohara if (actlen && (spipe->tregs[PID] & SL11_PID_BITS) == SL11_PID_IN) {
2071 1.12 kiyohara target_buf = spipe->buffer;
2072 1.12 kiyohara buf_start = spipe->tregs[ADR];
2073 1.12 kiyohara } else {
2074 1.12 kiyohara target_buf = NULL;
2075 1.12 kiyohara buf_start = 0; /* XXX gcc uninitialized warnings */
2076 1.12 kiyohara }
2077 1.12 kiyohara
2078 1.12 kiyohara if (status & SL11_EPSTAT_ERRBITS) {
2079 1.12 kiyohara status &= SL11_EPSTAT_ERRBITS;
2080 1.12 kiyohara if (status & SL11_EPSTAT_SETUP) {
2081 1.12 kiyohara printf("%s: Invalid controller state detected! "
2082 1.12 kiyohara "halted\n", SC_NAME(sc));
2083 1.79 skrll DDOLOG("Invalid controller state detected! "
2084 1.79 skrll "halted", 0, 0, 0, 0);
2085 1.12 kiyohara slhci_halt(sc, spipe, xfer);
2086 1.12 kiyohara return;
2087 1.48 skrll } else if (__predict_false(sc->sc_bus.ub_usepolling)) {
2088 1.92 skrll head = Q_CALLBACKS;
2089 1.92 skrll if (status & SL11_EPSTAT_STALL)
2090 1.48 skrll xfer->ux_status = USBD_STALLED;
2091 1.92 skrll else if (status & SL11_EPSTAT_TIMEOUT)
2092 1.48 skrll xfer->ux_status = USBD_TIMEOUT;
2093 1.92 skrll else if (status & SL11_EPSTAT_NAK)
2094 1.92 skrll head = Q_NEXT_CB;
2095 1.12 kiyohara else
2096 1.48 skrll xfer->ux_status = USBD_IOERROR;
2097 1.92 skrll } else if (status & SL11_EPSTAT_NAK) {
2098 1.92 skrll int i = spipe->pipe.up_interval;
2099 1.92 skrll if (i == 0)
2100 1.92 skrll i = 1;
2101 1.92 skrll DDOLOG("xfer %p spipe %p NAK delay by %d", xfer, spipe,
2102 1.92 skrll i, 0);
2103 1.92 skrll spipe->lastframe = spipe->frame = t->frame + i;
2104 1.92 skrll slhci_queue_timed(sc, spipe);
2105 1.92 skrll goto queued;
2106 1.36 skrll } else if (++spipe->nerrs > SLHCI_MAX_RETRIES ||
2107 1.92 skrll (status & SL11_EPSTAT_STALL)) {
2108 1.92 skrll DDOLOG("xfer %p spipe %p nerrs %d", xfer, spipe,
2109 1.92 skrll spipe->nerrs, 0);
2110 1.92 skrll if (status & SL11_EPSTAT_STALL)
2111 1.48 skrll xfer->ux_status = USBD_STALLED;
2112 1.92 skrll else if (status & SL11_EPSTAT_TIMEOUT)
2113 1.48 skrll xfer->ux_status = USBD_TIMEOUT;
2114 1.12 kiyohara else
2115 1.48 skrll xfer->ux_status = USBD_IOERROR;
2116 1.12 kiyohara
2117 1.98 pgoyette DLOG(D_ERR, "Max retries reached! status %#jx "
2118 1.98 pgoyette "xfer->ux_status %jd", status, xfer->ux_status, 0,
2119 1.79 skrll 0);
2120 1.84 skrll DDOLOGSTATUS(status);
2121 1.12 kiyohara
2122 1.12 kiyohara head = Q_CALLBACKS;
2123 1.12 kiyohara } else {
2124 1.12 kiyohara head = Q_NEXT_CB;
2125 1.12 kiyohara }
2126 1.12 kiyohara } else if (spipe->ptype == PT_CTRL_SETUP) {
2127 1.12 kiyohara spipe->tregs[PID] = spipe->newpid;
2128 1.12 kiyohara
2129 1.48 skrll if (xfer->ux_length) {
2130 1.36 skrll LK_SLASSERT(spipe->newlen[1] != 0, sc, spipe, xfer,
2131 1.12 kiyohara return);
2132 1.12 kiyohara spipe->tregs[LEN] = spipe->newlen[1];
2133 1.12 kiyohara spipe->bustime = spipe->newbustime[1];
2134 1.48 skrll spipe->buffer = xfer->ux_buf;
2135 1.12 kiyohara spipe->ptype = PT_CTRL_DATA;
2136 1.12 kiyohara } else {
2137 1.12 kiyohara status_setup:
2138 1.12 kiyohara /* CTRL_DATA swaps direction in PID then jumps here */
2139 1.12 kiyohara spipe->tregs[LEN] = 0;
2140 1.12 kiyohara if (spipe->pflags & PF_LS)
2141 1.12 kiyohara spipe->bustime = SLHCI_LS_CONST;
2142 1.12 kiyohara else
2143 1.12 kiyohara spipe->bustime = SLHCI_FS_CONST;
2144 1.12 kiyohara spipe->ptype = PT_CTRL_STATUS;
2145 1.12 kiyohara spipe->buffer = NULL;
2146 1.12 kiyohara }
2147 1.12 kiyohara
2148 1.12 kiyohara /* Status or first data packet must be DATA1. */
2149 1.12 kiyohara spipe->control |= SL11_EPCTRL_DATATOGGLE;
2150 1.12 kiyohara if ((spipe->tregs[PID] & SL11_PID_BITS) == SL11_PID_IN)
2151 1.12 kiyohara spipe->control &= ~SL11_EPCTRL_DIRECTION;
2152 1.36 skrll else
2153 1.12 kiyohara spipe->control |= SL11_EPCTRL_DIRECTION;
2154 1.12 kiyohara
2155 1.12 kiyohara head = Q_CB;
2156 1.12 kiyohara } else if (spipe->ptype == PT_CTRL_STATUS) {
2157 1.12 kiyohara head = Q_CALLBACKS;
2158 1.12 kiyohara } else { /* bulk, intr, control data */
2159 1.48 skrll xfer->ux_actlen += actlen;
2160 1.12 kiyohara spipe->control ^= SL11_EPCTRL_DATATOGGLE;
2161 1.12 kiyohara
2162 1.90 skrll if (actlen == spipe->tregs[LEN] &&
2163 1.90 skrll (xfer->ux_length > xfer->ux_actlen || spipe->wantshort)) {
2164 1.12 kiyohara spipe->buffer += actlen;
2165 1.48 skrll LK_SLASSERT(xfer->ux_length >= xfer->ux_actlen, sc,
2166 1.12 kiyohara spipe, xfer, return);
2167 1.48 skrll if (xfer->ux_length - xfer->ux_actlen < actlen) {
2168 1.12 kiyohara spipe->wantshort = 0;
2169 1.12 kiyohara spipe->tregs[LEN] = spipe->newlen[0];
2170 1.12 kiyohara spipe->bustime = spipe->newbustime[0];
2171 1.48 skrll LK_SLASSERT(xfer->ux_actlen +
2172 1.48 skrll spipe->tregs[LEN] == xfer->ux_length, sc,
2173 1.12 kiyohara spipe, xfer, return);
2174 1.12 kiyohara }
2175 1.12 kiyohara head = Q_CB;
2176 1.12 kiyohara } else if (spipe->ptype == PT_CTRL_DATA) {
2177 1.12 kiyohara spipe->tregs[PID] ^= SLHCI_PID_SWAP_IN_OUT;
2178 1.12 kiyohara goto status_setup;
2179 1.12 kiyohara } else {
2180 1.12 kiyohara if (spipe->ptype == PT_INTR) {
2181 1.36 skrll spipe->lastframe +=
2182 1.48 skrll spipe->pipe.up_interval;
2183 1.34 skrll /*
2184 1.34 skrll * If ack, we try to keep the
2185 1.37 skrll * interrupt rate by using lastframe
2186 1.34 skrll * instead of the current frame.
2187 1.34 skrll */
2188 1.12 kiyohara spipe->frame = spipe->lastframe +
2189 1.48 skrll spipe->pipe.up_interval;
2190 1.12 kiyohara }
2191 1.12 kiyohara
2192 1.34 skrll /*
2193 1.34 skrll * Set the toggle for the next transfer. It
2194 1.37 skrll * has already been toggled above, so the
2195 1.37 skrll * current setting will apply to the next
2196 1.34 skrll * transfer.
2197 1.34 skrll */
2198 1.12 kiyohara if (spipe->control & SL11_EPCTRL_DATATOGGLE)
2199 1.12 kiyohara spipe->pflags |= PF_TOGGLE;
2200 1.12 kiyohara else
2201 1.12 kiyohara spipe->pflags &= ~PF_TOGGLE;
2202 1.12 kiyohara
2203 1.12 kiyohara head = Q_CALLBACKS;
2204 1.12 kiyohara }
2205 1.12 kiyohara }
2206 1.12 kiyohara
2207 1.12 kiyohara if (head == Q_CALLBACKS) {
2208 1.12 kiyohara gcq_remove(&spipe->to);
2209 1.12 kiyohara
2210 1.48 skrll if (xfer->ux_status == USBD_IN_PROGRESS) {
2211 1.48 skrll LK_SLASSERT(xfer->ux_actlen <= xfer->ux_length, sc,
2212 1.12 kiyohara spipe, xfer, return);
2213 1.48 skrll xfer->ux_status = USBD_NORMAL_COMPLETION;
2214 1.12 kiyohara }
2215 1.12 kiyohara }
2216 1.12 kiyohara
2217 1.12 kiyohara enter_q(t, spipe, head);
2218 1.12 kiyohara
2219 1.12 kiyohara queued:
2220 1.12 kiyohara if (target_buf != NULL) {
2221 1.12 kiyohara slhci_dotransfer(sc);
2222 1.12 kiyohara start_cc_time(&t_copy_from_dev, actlen);
2223 1.12 kiyohara slhci_read_multi(sc, buf_start, target_buf, actlen);
2224 1.12 kiyohara stop_cc_time(&t_copy_from_dev);
2225 1.12 kiyohara DLOGBUF(D_BUF, target_buf, actlen);
2226 1.12 kiyohara t->pend -= SLHCI_FS_CONST + SLHCI_FS_DATA_TIME(actlen);
2227 1.12 kiyohara }
2228 1.12 kiyohara
2229 1.12 kiyohara done:
2230 1.12 kiyohara t->len[ab] = -1;
2231 1.12 kiyohara }
2232 1.12 kiyohara
2233 1.12 kiyohara static void
2234 1.12 kiyohara slhci_tstart(struct slhci_softc *sc)
2235 1.12 kiyohara {
2236 1.12 kiyohara struct slhci_transfers *t;
2237 1.12 kiyohara struct slhci_pipe *spipe;
2238 1.12 kiyohara int remaining_bustime;
2239 1.12 kiyohara
2240 1.12 kiyohara t = &sc->sc_transfers;
2241 1.12 kiyohara
2242 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2243 1.12 kiyohara
2244 1.12 kiyohara if (!(t->flags & (F_AREADY|F_BREADY)))
2245 1.12 kiyohara return;
2246 1.12 kiyohara
2247 1.12 kiyohara if (t->flags & (F_AINPROG|F_BINPROG|F_DISABLED))
2248 1.12 kiyohara return;
2249 1.12 kiyohara
2250 1.34 skrll /*
2251 1.34 skrll * We have about 6 us to get from the bus time check to
2252 1.37 skrll * starting the transfer or we might babble or the chip might fail to
2253 1.37 skrll * signal transfer complete. This leaves no time for any other
2254 1.25 rmind * interrupts.
2255 1.25 rmind */
2256 1.12 kiyohara remaining_bustime = (int)(slhci_read(sc, SL811_CSOF)) << 6;
2257 1.12 kiyohara remaining_bustime -= SLHCI_END_BUSTIME;
2258 1.12 kiyohara
2259 1.34 skrll /*
2260 1.34 skrll * Start one transfer only, clearing any aborted transfers that are
2261 1.37 skrll * not yet in progress and skipping missed isoc. It is easier to copy
2262 1.37 skrll * & paste most of the A/B sections than to make the logic work
2263 1.34 skrll * otherwise and this allows better constant use.
2264 1.34 skrll */
2265 1.12 kiyohara if (t->flags & F_AREADY) {
2266 1.12 kiyohara spipe = t->spipe[A];
2267 1.12 kiyohara if (spipe == NULL) {
2268 1.12 kiyohara t->flags &= ~F_AREADY;
2269 1.12 kiyohara t->len[A] = -1;
2270 1.12 kiyohara } else if (remaining_bustime >= spipe->bustime) {
2271 1.12 kiyohara t->flags &= ~(F_AREADY|F_SOFCHECK1|F_SOFCHECK2);
2272 1.12 kiyohara t->flags |= F_AINPROG;
2273 1.12 kiyohara start_cc_time(&t_ab[A], spipe->tregs[LEN]);
2274 1.12 kiyohara slhci_write(sc, SL11_E0CTRL, spipe->control);
2275 1.12 kiyohara goto pend;
2276 1.36 skrll }
2277 1.12 kiyohara }
2278 1.12 kiyohara if (t->flags & F_BREADY) {
2279 1.12 kiyohara spipe = t->spipe[B];
2280 1.12 kiyohara if (spipe == NULL) {
2281 1.12 kiyohara t->flags &= ~F_BREADY;
2282 1.12 kiyohara t->len[B] = -1;
2283 1.12 kiyohara } else if (remaining_bustime >= spipe->bustime) {
2284 1.12 kiyohara t->flags &= ~(F_BREADY|F_SOFCHECK1|F_SOFCHECK2);
2285 1.12 kiyohara t->flags |= F_BINPROG;
2286 1.12 kiyohara start_cc_time(&t_ab[B], spipe->tregs[LEN]);
2287 1.12 kiyohara slhci_write(sc, SL11_E1CTRL, spipe->control);
2288 1.12 kiyohara pend:
2289 1.12 kiyohara t->pend = spipe->bustime;
2290 1.12 kiyohara }
2291 1.12 kiyohara }
2292 1.12 kiyohara }
2293 1.12 kiyohara
2294 1.12 kiyohara static void
2295 1.12 kiyohara slhci_dotransfer(struct slhci_softc *sc)
2296 1.12 kiyohara {
2297 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2298 1.12 kiyohara struct slhci_transfers *t;
2299 1.12 kiyohara struct slhci_pipe *spipe;
2300 1.12 kiyohara int ab, i;
2301 1.12 kiyohara
2302 1.12 kiyohara t = &sc->sc_transfers;
2303 1.12 kiyohara
2304 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2305 1.12 kiyohara
2306 1.12 kiyohara while ((t->len[A] == -1 || t->len[B] == -1) &&
2307 1.36 skrll (GOT_FIRST_TIMED_COND(spipe, t, spipe->frame <= t->frame) ||
2308 1.12 kiyohara GOT_FIRST_CB(spipe, t))) {
2309 1.12 kiyohara LK_SLASSERT(spipe->xfer != NULL, sc, spipe, NULL, return);
2310 1.36 skrll LK_SLASSERT(spipe->ptype != PT_ROOT_CTRL && spipe->ptype !=
2311 1.36 skrll PT_ROOT_INTR, sc, spipe, NULL, return);
2312 1.36 skrll
2313 1.36 skrll /* Check that this transfer can fit in the remaining memory. */
2314 1.37 skrll if (t->len[A] + t->len[B] + spipe->tregs[LEN] + 1 >
2315 1.12 kiyohara SL11_MAX_PACKET_SIZE) {
2316 1.98 pgoyette DLOG(D_XFER, "Transfer does not fit. alen %jd blen %jd "
2317 1.98 pgoyette "len %jd", t->len[A], t->len[B], spipe->tregs[LEN],
2318 1.12 kiyohara 0);
2319 1.12 kiyohara return;
2320 1.12 kiyohara }
2321 1.12 kiyohara
2322 1.12 kiyohara gcq_remove(&spipe->xq);
2323 1.12 kiyohara
2324 1.12 kiyohara if (t->len[A] == -1) {
2325 1.12 kiyohara ab = A;
2326 1.12 kiyohara spipe->tregs[ADR] = SL11_BUFFER_START;
2327 1.12 kiyohara } else {
2328 1.12 kiyohara ab = B;
2329 1.37 skrll spipe->tregs[ADR] = SL11_BUFFER_END -
2330 1.12 kiyohara spipe->tregs[LEN];
2331 1.12 kiyohara }
2332 1.12 kiyohara
2333 1.12 kiyohara t->len[ab] = spipe->tregs[LEN];
2334 1.12 kiyohara
2335 1.37 skrll if (spipe->tregs[LEN] && (spipe->tregs[PID] & SL11_PID_BITS)
2336 1.12 kiyohara != SL11_PID_IN) {
2337 1.37 skrll start_cc_time(&t_copy_to_dev,
2338 1.12 kiyohara spipe->tregs[LEN]);
2339 1.37 skrll slhci_write_multi(sc, spipe->tregs[ADR],
2340 1.12 kiyohara spipe->buffer, spipe->tregs[LEN]);
2341 1.12 kiyohara stop_cc_time(&t_copy_to_dev);
2342 1.37 skrll t->pend -= SLHCI_FS_CONST +
2343 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->tregs[LEN]);
2344 1.12 kiyohara }
2345 1.12 kiyohara
2346 1.98 pgoyette DLOG(D_MSG, "NEW TRANSFER AB=%jd flags %#jx alen %jd blen %jd",
2347 1.79 skrll ab, t->flags, t->len[0], t->len[1]);
2348 1.12 kiyohara
2349 1.12 kiyohara if (spipe->tregs[LEN])
2350 1.12 kiyohara i = 0;
2351 1.12 kiyohara else
2352 1.12 kiyohara i = 1;
2353 1.12 kiyohara
2354 1.12 kiyohara for (; i <= 3; i++)
2355 1.12 kiyohara if (t->current_tregs[ab][i] != spipe->tregs[i]) {
2356 1.12 kiyohara t->current_tregs[ab][i] = spipe->tregs[i];
2357 1.37 skrll slhci_write(sc, slhci_tregs[ab][i],
2358 1.12 kiyohara spipe->tregs[i]);
2359 1.12 kiyohara }
2360 1.12 kiyohara
2361 1.98 pgoyette DLOG(D_SXFER, "Transfer len %jd pid %#jx dev %jd type %jd",
2362 1.37 skrll spipe->tregs[LEN], spipe->tregs[PID], spipe->tregs[DEV],
2363 1.79 skrll spipe->ptype);
2364 1.12 kiyohara
2365 1.12 kiyohara t->spipe[ab] = spipe;
2366 1.12 kiyohara t->flags |= ab ? F_BREADY : F_AREADY;
2367 1.12 kiyohara
2368 1.12 kiyohara slhci_tstart(sc);
2369 1.12 kiyohara }
2370 1.12 kiyohara }
2371 1.12 kiyohara
2372 1.34 skrll /*
2373 1.73 skrll * slhci_callback is called after the lock is taken.
2374 1.34 skrll */
2375 1.12 kiyohara static void
2376 1.41 skrll slhci_callback(struct slhci_softc *sc)
2377 1.12 kiyohara {
2378 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2379 1.12 kiyohara struct slhci_transfers *t;
2380 1.12 kiyohara struct slhci_pipe *spipe;
2381 1.12 kiyohara struct usbd_xfer *xfer;
2382 1.12 kiyohara
2383 1.12 kiyohara t = &sc->sc_transfers;
2384 1.12 kiyohara
2385 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2386 1.12 kiyohara
2387 1.98 pgoyette DLOG(D_SOFT, "CB flags %#jx", t->flags, 0,0,0);
2388 1.12 kiyohara for (;;) {
2389 1.12 kiyohara if (__predict_false(t->flags & F_ROOTINTR)) {
2390 1.12 kiyohara t->flags &= ~F_ROOTINTR;
2391 1.12 kiyohara if (t->rootintr != NULL) {
2392 1.12 kiyohara u_char *p;
2393 1.12 kiyohara
2394 1.103 riastrad KASSERT(t->rootintr->ux_status ==
2395 1.103 riastrad USBD_IN_PROGRESS);
2396 1.48 skrll p = t->rootintr->ux_buf;
2397 1.12 kiyohara p[0] = 2;
2398 1.48 skrll t->rootintr->ux_actlen = 1;
2399 1.48 skrll t->rootintr->ux_status = USBD_NORMAL_COMPLETION;
2400 1.12 kiyohara xfer = t->rootintr;
2401 1.12 kiyohara goto do_callback;
2402 1.12 kiyohara }
2403 1.37 skrll }
2404 1.12 kiyohara
2405 1.12 kiyohara
2406 1.12 kiyohara if (!DEQUEUED_CALLBACK(spipe, t))
2407 1.12 kiyohara return;
2408 1.12 kiyohara
2409 1.12 kiyohara xfer = spipe->xfer;
2410 1.12 kiyohara LK_SLASSERT(xfer != NULL, sc, spipe, NULL, return);
2411 1.12 kiyohara spipe->xfer = NULL;
2412 1.98 pgoyette DLOG(D_XFER, "xfer callback length %jd actlen %jd spipe %#jx "
2413 1.98 pgoyette "type %jd", xfer->ux_length, (uintptr_t)xfer->ux_actlen,
2414 1.98 pgoyette (uintptr_t)spipe, spipe->ptype);
2415 1.12 kiyohara do_callback:
2416 1.41 skrll slhci_do_callback(sc, xfer);
2417 1.12 kiyohara }
2418 1.12 kiyohara }
2419 1.12 kiyohara
2420 1.12 kiyohara static void
2421 1.12 kiyohara slhci_enter_xfer(struct slhci_softc *sc, struct slhci_pipe *spipe)
2422 1.12 kiyohara {
2423 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2424 1.12 kiyohara struct slhci_transfers *t;
2425 1.12 kiyohara
2426 1.12 kiyohara t = &sc->sc_transfers;
2427 1.12 kiyohara
2428 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2429 1.12 kiyohara
2430 1.37 skrll if (__predict_false(t->flags & F_DISABLED) ||
2431 1.12 kiyohara __predict_false(spipe->pflags & PF_GONE)) {
2432 1.12 kiyohara DLOG(D_MSG, "slhci_enter_xfer: DISABLED or GONE", 0,0,0,0);
2433 1.48 skrll spipe->xfer->ux_status = USBD_CANCELLED;
2434 1.12 kiyohara }
2435 1.12 kiyohara
2436 1.48 skrll if (spipe->xfer->ux_status == USBD_IN_PROGRESS) {
2437 1.48 skrll if (spipe->xfer->ux_timeout) {
2438 1.48 skrll spipe->to_frame = t->frame + spipe->xfer->ux_timeout;
2439 1.37 skrll slhci_xfer_timer(sc, spipe);
2440 1.12 kiyohara }
2441 1.48 skrll if (spipe->pipe.up_interval)
2442 1.12 kiyohara slhci_queue_timed(sc, spipe);
2443 1.12 kiyohara else
2444 1.12 kiyohara enter_q(t, spipe, Q_CB);
2445 1.12 kiyohara } else
2446 1.12 kiyohara enter_callback(t, spipe);
2447 1.12 kiyohara }
2448 1.12 kiyohara
2449 1.12 kiyohara static void
2450 1.12 kiyohara slhci_enter_xfers(struct slhci_softc *sc)
2451 1.12 kiyohara {
2452 1.12 kiyohara struct slhci_pipe *spipe;
2453 1.12 kiyohara
2454 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2455 1.12 kiyohara
2456 1.12 kiyohara while (DEQUEUED_WAITQ(spipe, sc))
2457 1.12 kiyohara slhci_enter_xfer(sc, spipe);
2458 1.12 kiyohara }
2459 1.12 kiyohara
2460 1.12 kiyohara static void
2461 1.12 kiyohara slhci_queue_timed(struct slhci_softc *sc, struct slhci_pipe *spipe)
2462 1.12 kiyohara {
2463 1.12 kiyohara struct slhci_transfers *t;
2464 1.12 kiyohara struct gcq *q;
2465 1.12 kiyohara struct slhci_pipe *spp;
2466 1.12 kiyohara
2467 1.12 kiyohara t = &sc->sc_transfers;
2468 1.12 kiyohara
2469 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2470 1.12 kiyohara
2471 1.12 kiyohara FIND_TIMED(q, t, spp, spp->frame > spipe->frame);
2472 1.12 kiyohara gcq_insert_before(q, &spipe->xq);
2473 1.12 kiyohara }
2474 1.12 kiyohara
2475 1.12 kiyohara static void
2476 1.12 kiyohara slhci_xfer_timer(struct slhci_softc *sc, struct slhci_pipe *spipe)
2477 1.12 kiyohara {
2478 1.12 kiyohara struct slhci_transfers *t;
2479 1.12 kiyohara struct gcq *q;
2480 1.12 kiyohara struct slhci_pipe *spp;
2481 1.12 kiyohara
2482 1.12 kiyohara t = &sc->sc_transfers;
2483 1.12 kiyohara
2484 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2485 1.12 kiyohara
2486 1.12 kiyohara FIND_TO(q, t, spp, spp->to_frame >= spipe->to_frame);
2487 1.12 kiyohara gcq_insert_before(q, &spipe->to);
2488 1.12 kiyohara }
2489 1.12 kiyohara
2490 1.12 kiyohara static void
2491 1.12 kiyohara slhci_callback_schedule(struct slhci_softc *sc)
2492 1.12 kiyohara {
2493 1.63 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2494 1.12 kiyohara struct slhci_transfers *t;
2495 1.12 kiyohara
2496 1.12 kiyohara t = &sc->sc_transfers;
2497 1.12 kiyohara
2498 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2499 1.12 kiyohara
2500 1.12 kiyohara if (t->flags & F_ACTIVE)
2501 1.12 kiyohara slhci_do_callback_schedule(sc);
2502 1.12 kiyohara }
2503 1.12 kiyohara
2504 1.12 kiyohara static void
2505 1.12 kiyohara slhci_do_callback_schedule(struct slhci_softc *sc)
2506 1.12 kiyohara {
2507 1.59 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2508 1.12 kiyohara struct slhci_transfers *t;
2509 1.12 kiyohara
2510 1.12 kiyohara t = &sc->sc_transfers;
2511 1.12 kiyohara
2512 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2513 1.12 kiyohara
2514 1.98 pgoyette DLOG(D_MSG, "flags %#jx", t->flags, 0, 0, 0);
2515 1.12 kiyohara if (!(t->flags & F_CALLBACK)) {
2516 1.12 kiyohara t->flags |= F_CALLBACK;
2517 1.16 ad softint_schedule(sc->sc_cb_softintr);
2518 1.12 kiyohara }
2519 1.12 kiyohara }
2520 1.12 kiyohara
2521 1.12 kiyohara #if 0
2522 1.74 skrll /* must be called with lock taken. */
2523 1.12 kiyohara /* XXX static */ void
2524 1.41 skrll slhci_pollxfer(struct slhci_softc *sc, struct usbd_xfer *xfer)
2525 1.12 kiyohara {
2526 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2527 1.12 kiyohara slhci_dotransfer(sc);
2528 1.12 kiyohara do {
2529 1.12 kiyohara slhci_dointr(sc);
2530 1.48 skrll } while (xfer->ux_status == USBD_IN_PROGRESS);
2531 1.41 skrll slhci_do_callback(sc, xfer);
2532 1.12 kiyohara }
2533 1.12 kiyohara #endif
2534 1.12 kiyohara
2535 1.12 kiyohara static usbd_status
2536 1.37 skrll slhci_do_poll(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2537 1.12 kiyohara usbd_xfer *xfer)
2538 1.12 kiyohara {
2539 1.12 kiyohara slhci_waitintr(sc, 0);
2540 1.12 kiyohara
2541 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2542 1.12 kiyohara }
2543 1.12 kiyohara
2544 1.12 kiyohara static usbd_status
2545 1.37 skrll slhci_lsvh_warn(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2546 1.12 kiyohara usbd_xfer *xfer)
2547 1.12 kiyohara {
2548 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2549 1.12 kiyohara struct slhci_transfers *t;
2550 1.12 kiyohara
2551 1.12 kiyohara t = &sc->sc_transfers;
2552 1.12 kiyohara
2553 1.12 kiyohara if (!(t->flags & F_LSVH_WARNED)) {
2554 1.12 kiyohara printf("%s: Low speed device via hub disabled, "
2555 1.12 kiyohara "see slhci(4)\n", SC_NAME(sc));
2556 1.79 skrll DDOLOG("Low speed device via hub disabled, "
2557 1.79 skrll "see slhci(4)", SC_NAME(sc), 0,0,0);
2558 1.12 kiyohara t->flags |= F_LSVH_WARNED;
2559 1.12 kiyohara }
2560 1.12 kiyohara return USBD_INVAL;
2561 1.12 kiyohara }
2562 1.12 kiyohara
2563 1.12 kiyohara static usbd_status
2564 1.37 skrll slhci_isoc_warn(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2565 1.12 kiyohara usbd_xfer *xfer)
2566 1.12 kiyohara {
2567 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2568 1.12 kiyohara struct slhci_transfers *t;
2569 1.12 kiyohara
2570 1.12 kiyohara t = &sc->sc_transfers;
2571 1.12 kiyohara
2572 1.12 kiyohara if (!(t->flags & F_ISOC_WARNED)) {
2573 1.12 kiyohara printf("%s: ISOC transfer not supported "
2574 1.12 kiyohara "(see slhci(4))\n", SC_NAME(sc));
2575 1.79 skrll DDOLOG("ISOC transfer not supported "
2576 1.79 skrll "(see slhci(4))", 0, 0, 0, 0);
2577 1.12 kiyohara t->flags |= F_ISOC_WARNED;
2578 1.12 kiyohara }
2579 1.12 kiyohara return USBD_INVAL;
2580 1.12 kiyohara }
2581 1.12 kiyohara
2582 1.12 kiyohara static usbd_status
2583 1.37 skrll slhci_open_pipe(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2584 1.12 kiyohara usbd_xfer *xfer)
2585 1.12 kiyohara {
2586 1.12 kiyohara struct slhci_transfers *t;
2587 1.12 kiyohara struct usbd_pipe *pipe;
2588 1.12 kiyohara
2589 1.12 kiyohara t = &sc->sc_transfers;
2590 1.12 kiyohara pipe = &spipe->pipe;
2591 1.12 kiyohara
2592 1.12 kiyohara if (t->flags & F_DISABLED)
2593 1.12 kiyohara return USBD_CANCELLED;
2594 1.48 skrll else if (pipe->up_interval && !slhci_reserve_bustime(sc, spipe, 1))
2595 1.12 kiyohara return USBD_PENDING_REQUESTS;
2596 1.12 kiyohara else {
2597 1.12 kiyohara enter_all_pipes(t, spipe);
2598 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2599 1.12 kiyohara }
2600 1.12 kiyohara }
2601 1.12 kiyohara
2602 1.12 kiyohara static usbd_status
2603 1.37 skrll slhci_close_pipe(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2604 1.12 kiyohara usbd_xfer *xfer)
2605 1.12 kiyohara {
2606 1.12 kiyohara struct usbd_pipe *pipe;
2607 1.12 kiyohara
2608 1.12 kiyohara pipe = &spipe->pipe;
2609 1.12 kiyohara
2610 1.48 skrll if (pipe->up_interval && spipe->ptype != PT_ROOT_INTR)
2611 1.12 kiyohara slhci_reserve_bustime(sc, spipe, 0);
2612 1.12 kiyohara gcq_remove(&spipe->ap);
2613 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2614 1.12 kiyohara }
2615 1.12 kiyohara
2616 1.12 kiyohara static usbd_status
2617 1.37 skrll slhci_do_abort(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2618 1.12 kiyohara usbd_xfer *xfer)
2619 1.12 kiyohara {
2620 1.12 kiyohara struct slhci_transfers *t;
2621 1.12 kiyohara
2622 1.12 kiyohara t = &sc->sc_transfers;
2623 1.12 kiyohara
2624 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2625 1.12 kiyohara
2626 1.12 kiyohara if (spipe->xfer == xfer) {
2627 1.12 kiyohara if (spipe->ptype == PT_ROOT_INTR) {
2628 1.12 kiyohara if (t->rootintr == spipe->xfer) /* XXX assert? */
2629 1.12 kiyohara t->rootintr = NULL;
2630 1.12 kiyohara } else {
2631 1.12 kiyohara gcq_remove(&spipe->to);
2632 1.12 kiyohara gcq_remove(&spipe->xq);
2633 1.12 kiyohara
2634 1.12 kiyohara if (t->spipe[A] == spipe) {
2635 1.12 kiyohara t->spipe[A] = NULL;
2636 1.12 kiyohara if (!(t->flags & F_AINPROG))
2637 1.12 kiyohara t->len[A] = -1;
2638 1.12 kiyohara } else if (t->spipe[B] == spipe) {
2639 1.12 kiyohara t->spipe[B] = NULL;
2640 1.12 kiyohara if (!(t->flags & F_BINPROG))
2641 1.12 kiyohara t->len[B] = -1;
2642 1.12 kiyohara }
2643 1.12 kiyohara }
2644 1.12 kiyohara
2645 1.48 skrll if (xfer->ux_status != USBD_TIMEOUT) {
2646 1.12 kiyohara spipe->xfer = NULL;
2647 1.48 skrll spipe->pipe.up_repeat = 0; /* XXX timeout? */
2648 1.12 kiyohara }
2649 1.12 kiyohara }
2650 1.12 kiyohara
2651 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2652 1.12 kiyohara }
2653 1.12 kiyohara
2654 1.34 skrll /*
2655 1.41 skrll * Called to deactivate or stop use of the controller instead of panicking.
2656 1.12 kiyohara * Will cancel the xfer correctly even when not on a list.
2657 1.12 kiyohara */
2658 1.12 kiyohara static usbd_status
2659 1.48 skrll slhci_halt(struct slhci_softc *sc, struct slhci_pipe *spipe,
2660 1.48 skrll struct usbd_xfer *xfer)
2661 1.12 kiyohara {
2662 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2663 1.12 kiyohara struct slhci_transfers *t;
2664 1.12 kiyohara
2665 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2666 1.12 kiyohara
2667 1.12 kiyohara t = &sc->sc_transfers;
2668 1.12 kiyohara
2669 1.12 kiyohara DDOLOG("Halt! sc %p spipe %p xfer %p", sc, spipe, xfer, 0);
2670 1.12 kiyohara
2671 1.12 kiyohara if (spipe != NULL)
2672 1.12 kiyohara slhci_log_spipe(spipe);
2673 1.12 kiyohara
2674 1.12 kiyohara if (xfer != NULL)
2675 1.12 kiyohara slhci_log_xfer(xfer);
2676 1.12 kiyohara
2677 1.37 skrll if (spipe != NULL && xfer != NULL && spipe->xfer == xfer &&
2678 1.37 skrll !gcq_onlist(&spipe->xq) && t->spipe[A] != spipe && t->spipe[B] !=
2679 1.12 kiyohara spipe) {
2680 1.48 skrll xfer->ux_status = USBD_CANCELLED;
2681 1.12 kiyohara enter_callback(t, spipe);
2682 1.12 kiyohara }
2683 1.12 kiyohara
2684 1.12 kiyohara if (t->flags & F_ACTIVE) {
2685 1.12 kiyohara slhci_intrchange(sc, 0);
2686 1.34 skrll /*
2687 1.34 skrll * leave power on when halting in case flash devices or disks
2688 1.37 skrll * are attached, which may be writing and could be damaged
2689 1.37 skrll * by abrupt power loss. The root hub clear power feature
2690 1.12 kiyohara * should still work after halting.
2691 1.12 kiyohara */
2692 1.12 kiyohara }
2693 1.12 kiyohara
2694 1.12 kiyohara t->flags &= ~F_ACTIVE;
2695 1.12 kiyohara t->flags |= F_UDISABLED;
2696 1.12 kiyohara if (!(t->flags & F_NODEV))
2697 1.12 kiyohara t->flags |= F_NODEV|F_CCONNECT|F_ROOTINTR;
2698 1.12 kiyohara slhci_drain(sc);
2699 1.1 isaki
2700 1.12 kiyohara /* One last callback for the drain and device removal. */
2701 1.12 kiyohara slhci_do_callback_schedule(sc);
2702 1.1 isaki
2703 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2704 1.1 isaki }
2705 1.1 isaki
2706 1.34 skrll /*
2707 1.34 skrll * There are three interrupt states: no interrupts during reset and after
2708 1.37 skrll * device deactivation, INSERT only for no device present but power on, and
2709 1.12 kiyohara * SOF, INSERT, ADONE, and BDONE when device is present.
2710 1.12 kiyohara */
2711 1.1 isaki static void
2712 1.12 kiyohara slhci_intrchange(struct slhci_softc *sc, uint8_t new_ier)
2713 1.1 isaki {
2714 1.82 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2715 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2716 1.12 kiyohara if (sc->sc_ier != new_ier) {
2717 1.98 pgoyette DLOG(D_INTR, "New IER %#jx", new_ier, 0, 0, 0);
2718 1.12 kiyohara sc->sc_ier = new_ier;
2719 1.12 kiyohara slhci_write(sc, SL11_IER, new_ier);
2720 1.12 kiyohara BSB_SYNC(sc->iot, sc->ioh, sc->pst, sc->psz);
2721 1.12 kiyohara }
2722 1.1 isaki }
2723 1.1 isaki
2724 1.34 skrll /*
2725 1.34 skrll * Drain: cancel all pending transfers and put them on the callback list and
2726 1.34 skrll * set the UDISABLED flag. UDISABLED is cleared only by reset.
2727 1.34 skrll */
2728 1.12 kiyohara static void
2729 1.12 kiyohara slhci_drain(struct slhci_softc *sc)
2730 1.1 isaki {
2731 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2732 1.12 kiyohara struct slhci_transfers *t;
2733 1.12 kiyohara struct slhci_pipe *spipe;
2734 1.12 kiyohara struct gcq *q;
2735 1.12 kiyohara int i;
2736 1.1 isaki
2737 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2738 1.1 isaki
2739 1.12 kiyohara t = &sc->sc_transfers;
2740 1.1 isaki
2741 1.98 pgoyette DLOG(D_MSG, "DRAIN flags %#jx", t->flags, 0,0,0);
2742 1.1 isaki
2743 1.12 kiyohara t->pend = INT_MAX;
2744 1.1 isaki
2745 1.12 kiyohara for (i=0; i<=1; i++) {
2746 1.12 kiyohara t->len[i] = -1;
2747 1.12 kiyohara if (t->spipe[i] != NULL) {
2748 1.12 kiyohara enter_callback(t, t->spipe[i]);
2749 1.12 kiyohara t->spipe[i] = NULL;
2750 1.12 kiyohara }
2751 1.1 isaki }
2752 1.1 isaki
2753 1.12 kiyohara /* Merge the queues into the callback queue. */
2754 1.12 kiyohara gcq_merge_tail(&t->q[Q_CALLBACKS], &t->q[Q_CB]);
2755 1.12 kiyohara gcq_merge_tail(&t->q[Q_CALLBACKS], &t->q[Q_NEXT_CB]);
2756 1.12 kiyohara gcq_merge_tail(&t->q[Q_CALLBACKS], &t->timed);
2757 1.1 isaki
2758 1.34 skrll /*
2759 1.34 skrll * Cancel all pipes. Note that not all of these may be on the
2760 1.34 skrll * callback queue yet; some could be in slhci_start, for example.
2761 1.34 skrll */
2762 1.12 kiyohara FOREACH_AP(q, t, spipe) {
2763 1.27 kiyohara spipe->pflags |= PF_GONE;
2764 1.48 skrll spipe->pipe.up_repeat = 0;
2765 1.48 skrll spipe->pipe.up_aborting = 1;
2766 1.12 kiyohara if (spipe->xfer != NULL)
2767 1.48 skrll spipe->xfer->ux_status = USBD_CANCELLED;
2768 1.1 isaki }
2769 1.1 isaki
2770 1.12 kiyohara gcq_remove_all(&t->to);
2771 1.1 isaki
2772 1.12 kiyohara t->flags |= F_UDISABLED;
2773 1.12 kiyohara t->flags &= ~(F_AREADY|F_BREADY|F_AINPROG|F_BINPROG|F_LOWSPEED);
2774 1.1 isaki }
2775 1.1 isaki
2776 1.34 skrll /*
2777 1.34 skrll * RESET: SL11_CTRL_RESETENGINE=1 and SL11_CTRL_JKSTATE=0 for 50ms
2778 1.12 kiyohara * reconfigure SOF after reset, must wait 2.5us before USB bus activity (SOF)
2779 1.37 skrll * check attached device speed.
2780 1.37 skrll * must wait 100ms before USB transaction according to app note, 10ms
2781 1.12 kiyohara * by spec. uhub does this delay
2782 1.12 kiyohara *
2783 1.12 kiyohara * Started from root hub set feature reset, which does step one.
2784 1.48 skrll * ub_usepolling will call slhci_reset directly, otherwise the callout goes
2785 1.12 kiyohara * through slhci_reset_entry.
2786 1.12 kiyohara */
2787 1.12 kiyohara void
2788 1.12 kiyohara slhci_reset(struct slhci_softc *sc)
2789 1.1 isaki {
2790 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2791 1.12 kiyohara struct slhci_transfers *t;
2792 1.27 kiyohara struct slhci_pipe *spipe;
2793 1.27 kiyohara struct gcq *q;
2794 1.12 kiyohara uint8_t r, pol, ctrl;
2795 1.1 isaki
2796 1.12 kiyohara t = &sc->sc_transfers;
2797 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2798 1.1 isaki
2799 1.12 kiyohara stop_cc_time(&t_delay);
2800 1.1 isaki
2801 1.12 kiyohara KASSERT(t->flags & F_ACTIVE);
2802 1.1 isaki
2803 1.12 kiyohara start_cc_time(&t_delay, 0);
2804 1.12 kiyohara stop_cc_time(&t_delay);
2805 1.1 isaki
2806 1.12 kiyohara slhci_write(sc, SL11_CTRL, 0);
2807 1.12 kiyohara start_cc_time(&t_delay, 3);
2808 1.12 kiyohara DELAY(3);
2809 1.12 kiyohara stop_cc_time(&t_delay);
2810 1.12 kiyohara slhci_write(sc, SL11_ISR, 0xff);
2811 1.1 isaki
2812 1.12 kiyohara r = slhci_read(sc, SL11_ISR);
2813 1.1 isaki
2814 1.12 kiyohara if (r & SL11_ISR_INSERT)
2815 1.12 kiyohara slhci_write(sc, SL11_ISR, SL11_ISR_INSERT);
2816 1.1 isaki
2817 1.12 kiyohara if (r & SL11_ISR_NODEV) {
2818 1.12 kiyohara DLOG(D_MSG, "NC", 0,0,0,0);
2819 1.34 skrll /*
2820 1.34 skrll * Normally, the hard interrupt insert routine will issue
2821 1.37 skrll * CCONNECT, however we need to do it here if the detach
2822 1.34 skrll * happened during reset.
2823 1.34 skrll */
2824 1.12 kiyohara if (!(t->flags & F_NODEV))
2825 1.12 kiyohara t->flags |= F_CCONNECT|F_ROOTINTR|F_NODEV;
2826 1.12 kiyohara slhci_intrchange(sc, SL11_IER_INSERT);
2827 1.12 kiyohara } else {
2828 1.12 kiyohara if (t->flags & F_NODEV)
2829 1.12 kiyohara t->flags |= F_CCONNECT;
2830 1.12 kiyohara t->flags &= ~(F_NODEV|F_LOWSPEED);
2831 1.12 kiyohara if (r & SL11_ISR_DATA) {
2832 1.12 kiyohara DLOG(D_MSG, "FS", 0,0,0,0);
2833 1.12 kiyohara pol = ctrl = 0;
2834 1.12 kiyohara } else {
2835 1.12 kiyohara DLOG(D_MSG, "LS", 0,0,0,0);
2836 1.12 kiyohara pol = SL811_CSOF_POLARITY;
2837 1.12 kiyohara ctrl = SL11_CTRL_LOWSPEED;
2838 1.12 kiyohara t->flags |= F_LOWSPEED;
2839 1.12 kiyohara }
2840 1.1 isaki
2841 1.12 kiyohara /* Enable SOF auto-generation */
2842 1.12 kiyohara t->frame = 0; /* write to SL811_CSOF will reset frame */
2843 1.12 kiyohara slhci_write(sc, SL11_SOFTIME, 0xe0);
2844 1.12 kiyohara slhci_write(sc, SL811_CSOF, pol|SL811_CSOF_MASTER|0x2e);
2845 1.12 kiyohara slhci_write(sc, SL11_CTRL, ctrl|SL11_CTRL_ENABLESOF);
2846 1.12 kiyohara
2847 1.34 skrll /*
2848 1.34 skrll * According to the app note, ARM must be set
2849 1.37 skrll * for SOF generation to work. We initialize all
2850 1.34 skrll * USBA registers here for current_tregs.
2851 1.34 skrll */
2852 1.12 kiyohara slhci_write(sc, SL11_E0ADDR, SL11_BUFFER_START);
2853 1.12 kiyohara slhci_write(sc, SL11_E0LEN, 0);
2854 1.12 kiyohara slhci_write(sc, SL11_E0PID, SL11_PID_SOF);
2855 1.12 kiyohara slhci_write(sc, SL11_E0DEV, 0);
2856 1.12 kiyohara slhci_write(sc, SL11_E0CTRL, SL11_EPCTRL_ARM);
2857 1.12 kiyohara
2858 1.34 skrll /*
2859 1.34 skrll * Initialize B registers. This can't be done earlier since
2860 1.37 skrll * they are not valid until the SL811_CSOF register is written
2861 1.34 skrll * above due to SL11H compatability.
2862 1.34 skrll */
2863 1.12 kiyohara slhci_write(sc, SL11_E1ADDR, SL11_BUFFER_END - 8);
2864 1.12 kiyohara slhci_write(sc, SL11_E1LEN, 0);
2865 1.12 kiyohara slhci_write(sc, SL11_E1PID, 0);
2866 1.12 kiyohara slhci_write(sc, SL11_E1DEV, 0);
2867 1.12 kiyohara
2868 1.12 kiyohara t->current_tregs[0][ADR] = SL11_BUFFER_START;
2869 1.12 kiyohara t->current_tregs[0][LEN] = 0;
2870 1.12 kiyohara t->current_tregs[0][PID] = SL11_PID_SOF;
2871 1.12 kiyohara t->current_tregs[0][DEV] = 0;
2872 1.12 kiyohara t->current_tregs[1][ADR] = SL11_BUFFER_END - 8;
2873 1.12 kiyohara t->current_tregs[1][LEN] = 0;
2874 1.12 kiyohara t->current_tregs[1][PID] = 0;
2875 1.12 kiyohara t->current_tregs[1][DEV] = 0;
2876 1.12 kiyohara
2877 1.12 kiyohara /* SOF start will produce USBA interrupt */
2878 1.12 kiyohara t->len[A] = 0;
2879 1.12 kiyohara t->flags |= F_AINPROG;
2880 1.12 kiyohara
2881 1.12 kiyohara slhci_intrchange(sc, SLHCI_NORMAL_INTERRUPTS);
2882 1.12 kiyohara }
2883 1.12 kiyohara
2884 1.12 kiyohara t->flags &= ~(F_UDISABLED|F_RESET);
2885 1.12 kiyohara t->flags |= F_CRESET|F_ROOTINTR;
2886 1.27 kiyohara FOREACH_AP(q, t, spipe) {
2887 1.27 kiyohara spipe->pflags &= ~PF_GONE;
2888 1.48 skrll spipe->pipe.up_aborting = 0;
2889 1.27 kiyohara }
2890 1.98 pgoyette DLOG(D_MSG, "RESET done flags %#jx", t->flags, 0,0,0);
2891 1.1 isaki }
2892 1.1 isaki
2893 1.86 skrll
2894 1.86 skrll #ifdef SLHCI_DEBUG
2895 1.86 skrll static int
2896 1.86 skrll slhci_memtest(struct slhci_softc *sc)
2897 1.86 skrll {
2898 1.86 skrll enum { ASC, DESC, EITHER = ASC }; /* direction */
2899 1.86 skrll enum { READ, WRITE }; /* operation */
2900 1.86 skrll const char *ptr, *elem;
2901 1.86 skrll size_t i;
2902 1.86 skrll const int low = SL11_BUFFER_START, high = SL11_BUFFER_END;
2903 1.86 skrll int addr = 0, dir = ASC, op = READ;
2904 1.86 skrll /* Extended March C- test algorithm (SOFs also) */
2905 1.86 skrll const char test[] = "E(w0) A(r0w1r1) A(r1w0r0) D(r0w1) D(r1w0) E(r0)";
2906 1.86 skrll char c;
2907 1.86 skrll const uint8_t dbs[] = { 0x00, 0x0f, 0x33, 0x55 }; /* data backgrounds */
2908 1.86 skrll uint8_t db;
2909 1.86 skrll
2910 1.86 skrll /* Perform memory test for all data backgrounds. */
2911 1.86 skrll for (i = 0; i < __arraycount(dbs); i++) {
2912 1.86 skrll ptr = test;
2913 1.86 skrll elem = ptr;
2914 1.86 skrll /* Walk test algorithm string. */
2915 1.86 skrll while ((c = *ptr++) != '\0')
2916 1.86 skrll switch (tolower((int)c)) {
2917 1.86 skrll case 'a':
2918 1.86 skrll /* Address sequence is in ascending order. */
2919 1.86 skrll dir = ASC;
2920 1.86 skrll break;
2921 1.86 skrll case 'd':
2922 1.86 skrll /* Address sequence is in descending order. */
2923 1.86 skrll dir = DESC;
2924 1.86 skrll break;
2925 1.86 skrll case 'e':
2926 1.86 skrll /* Address sequence is in either order. */
2927 1.86 skrll dir = EITHER;
2928 1.86 skrll break;
2929 1.86 skrll case '(':
2930 1.86 skrll /* Start of test element (sequence). */
2931 1.86 skrll elem = ptr;
2932 1.86 skrll addr = (dir == ASC) ? low : high;
2933 1.86 skrll break;
2934 1.86 skrll case 'r':
2935 1.86 skrll /* read operation */
2936 1.86 skrll op = READ;
2937 1.86 skrll break;
2938 1.86 skrll case 'w':
2939 1.86 skrll /* write operation */
2940 1.86 skrll op = WRITE;
2941 1.86 skrll break;
2942 1.86 skrll case '0':
2943 1.86 skrll case '1':
2944 1.86 skrll /*
2945 1.86 skrll * Execute previously set-up operation by
2946 1.86 skrll * reading/writing non-inverted ('0') or
2947 1.86 skrll * inverted ('1') data background.
2948 1.86 skrll */
2949 1.86 skrll db = (c - '0') ? ~dbs[i] : dbs[i];
2950 1.86 skrll if (op == READ) {
2951 1.86 skrll if (slhci_read(sc, addr) != db)
2952 1.86 skrll return -1;
2953 1.86 skrll } else
2954 1.86 skrll slhci_write(sc, addr, db);
2955 1.86 skrll break;
2956 1.86 skrll case ')':
2957 1.86 skrll /*
2958 1.86 skrll * End of element: Repeat same element with next
2959 1.86 skrll * address or continue to next element.
2960 1.86 skrll */
2961 1.86 skrll addr = (dir == ASC) ? addr + 1 : addr - 1;
2962 1.86 skrll if (addr >= low && addr <= high)
2963 1.86 skrll ptr = elem;
2964 1.86 skrll break;
2965 1.86 skrll default:
2966 1.86 skrll /* Do nothing. */
2967 1.86 skrll break;
2968 1.86 skrll }
2969 1.86 skrll }
2970 1.86 skrll
2971 1.86 skrll return 0;
2972 1.86 skrll }
2973 1.86 skrll #endif
2974 1.86 skrll
2975 1.12 kiyohara /* returns 1 if succeeded, 0 if failed, reserve == 0 is unreserve */
2976 1.12 kiyohara static int
2977 1.37 skrll slhci_reserve_bustime(struct slhci_softc *sc, struct slhci_pipe *spipe, int
2978 1.12 kiyohara reserve)
2979 1.1 isaki {
2980 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2981 1.12 kiyohara struct slhci_transfers *t;
2982 1.12 kiyohara int bustime, max_packet;
2983 1.12 kiyohara
2984 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2985 1.12 kiyohara
2986 1.12 kiyohara t = &sc->sc_transfers;
2987 1.48 skrll max_packet = UGETW(spipe->pipe.up_endpoint->ue_edesc->wMaxPacketSize);
2988 1.12 kiyohara
2989 1.12 kiyohara if (spipe->pflags & PF_LS)
2990 1.12 kiyohara bustime = SLHCI_LS_CONST + SLHCI_LS_DATA_TIME(max_packet);
2991 1.12 kiyohara else
2992 1.12 kiyohara bustime = SLHCI_FS_CONST + SLHCI_FS_DATA_TIME(max_packet);
2993 1.1 isaki
2994 1.12 kiyohara if (!reserve) {
2995 1.12 kiyohara t->reserved_bustime -= bustime;
2996 1.12 kiyohara #ifdef DIAGNOSTIC
2997 1.12 kiyohara if (t->reserved_bustime < 0) {
2998 1.37 skrll printf("%s: reserved_bustime %d < 0!\n",
2999 1.12 kiyohara SC_NAME(sc), t->reserved_bustime);
3000 1.79 skrll DDOLOG("reserved_bustime %d < 0!",
3001 1.79 skrll t->reserved_bustime, 0, 0, 0);
3002 1.12 kiyohara t->reserved_bustime = 0;
3003 1.12 kiyohara }
3004 1.12 kiyohara #endif
3005 1.12 kiyohara return 1;
3006 1.12 kiyohara }
3007 1.1 isaki
3008 1.12 kiyohara if (t->reserved_bustime + bustime > SLHCI_RESERVED_BUSTIME) {
3009 1.37 skrll if (ratecheck(&sc->sc_reserved_warn_rate,
3010 1.12 kiyohara &reserved_warn_rate))
3011 1.12 kiyohara #ifdef SLHCI_NO_OVERTIME
3012 1.12 kiyohara {
3013 1.12 kiyohara printf("%s: Max reserved bus time exceeded! "
3014 1.12 kiyohara "Erroring request.\n", SC_NAME(sc));
3015 1.12 kiyohara DDOLOG("%s: Max reserved bus time exceeded! "
3016 1.79 skrll "Erroring request.", 0, 0, 0, 0);
3017 1.12 kiyohara }
3018 1.12 kiyohara return 0;
3019 1.12 kiyohara #else
3020 1.12 kiyohara {
3021 1.37 skrll printf("%s: Reserved bus time exceeds %d!\n",
3022 1.12 kiyohara SC_NAME(sc), SLHCI_RESERVED_BUSTIME);
3023 1.79 skrll DDOLOG("Reserved bus time exceeds %d!",
3024 1.79 skrll SLHCI_RESERVED_BUSTIME, 0, 0, 0);
3025 1.12 kiyohara }
3026 1.12 kiyohara #endif
3027 1.1 isaki }
3028 1.1 isaki
3029 1.12 kiyohara t->reserved_bustime += bustime;
3030 1.12 kiyohara return 1;
3031 1.1 isaki }
3032 1.1 isaki
3033 1.12 kiyohara /* Device insertion/removal interrupt */
3034 1.1 isaki static void
3035 1.12 kiyohara slhci_insert(struct slhci_softc *sc)
3036 1.1 isaki {
3037 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3038 1.12 kiyohara struct slhci_transfers *t;
3039 1.12 kiyohara
3040 1.12 kiyohara t = &sc->sc_transfers;
3041 1.1 isaki
3042 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
3043 1.1 isaki
3044 1.12 kiyohara if (t->flags & F_NODEV)
3045 1.12 kiyohara slhci_intrchange(sc, 0);
3046 1.12 kiyohara else {
3047 1.12 kiyohara slhci_drain(sc);
3048 1.12 kiyohara slhci_intrchange(sc, SL11_IER_INSERT);
3049 1.1 isaki }
3050 1.12 kiyohara t->flags ^= F_NODEV;
3051 1.12 kiyohara t->flags |= F_ROOTINTR|F_CCONNECT;
3052 1.98 pgoyette DLOG(D_MSG, "INSERT intr: flags after %#jx", t->flags, 0,0,0);
3053 1.1 isaki }
3054 1.1 isaki
3055 1.12 kiyohara /*
3056 1.12 kiyohara * Data structures and routines to emulate the root hub.
3057 1.12 kiyohara */
3058 1.12 kiyohara
3059 1.1 isaki static usbd_status
3060 1.12 kiyohara slhci_clear_feature(struct slhci_softc *sc, unsigned int what)
3061 1.1 isaki {
3062 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3063 1.12 kiyohara struct slhci_transfers *t;
3064 1.12 kiyohara usbd_status error;
3065 1.1 isaki
3066 1.12 kiyohara t = &sc->sc_transfers;
3067 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3068 1.1 isaki
3069 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
3070 1.1 isaki
3071 1.12 kiyohara if (what == UHF_PORT_POWER) {
3072 1.12 kiyohara DLOG(D_MSG, "POWER_OFF", 0,0,0,0);
3073 1.12 kiyohara t->flags &= ~F_POWER;
3074 1.12 kiyohara if (!(t->flags & F_NODEV))
3075 1.12 kiyohara t->flags |= F_NODEV|F_CCONNECT|F_ROOTINTR;
3076 1.12 kiyohara /* for x68k Nereid USB controller */
3077 1.12 kiyohara if (sc->sc_enable_power && (t->flags & F_REALPOWER)) {
3078 1.12 kiyohara t->flags &= ~F_REALPOWER;
3079 1.12 kiyohara sc->sc_enable_power(sc, POWER_OFF);
3080 1.12 kiyohara }
3081 1.12 kiyohara slhci_intrchange(sc, 0);
3082 1.37 skrll slhci_drain(sc);
3083 1.12 kiyohara } else if (what == UHF_C_PORT_CONNECTION) {
3084 1.12 kiyohara t->flags &= ~F_CCONNECT;
3085 1.12 kiyohara } else if (what == UHF_C_PORT_RESET) {
3086 1.12 kiyohara t->flags &= ~F_CRESET;
3087 1.12 kiyohara } else if (what == UHF_PORT_ENABLE) {
3088 1.12 kiyohara slhci_drain(sc);
3089 1.12 kiyohara } else if (what != UHF_PORT_SUSPEND) {
3090 1.12 kiyohara DDOLOG("ClrPortFeatERR:value=%#.4x", what, 0,0,0);
3091 1.12 kiyohara error = USBD_IOERROR;
3092 1.12 kiyohara }
3093 1.1 isaki
3094 1.12 kiyohara return error;
3095 1.1 isaki }
3096 1.1 isaki
3097 1.1 isaki static usbd_status
3098 1.12 kiyohara slhci_set_feature(struct slhci_softc *sc, unsigned int what)
3099 1.1 isaki {
3100 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3101 1.12 kiyohara struct slhci_transfers *t;
3102 1.12 kiyohara uint8_t r;
3103 1.12 kiyohara
3104 1.12 kiyohara t = &sc->sc_transfers;
3105 1.12 kiyohara
3106 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
3107 1.12 kiyohara
3108 1.12 kiyohara if (what == UHF_PORT_RESET) {
3109 1.12 kiyohara if (!(t->flags & F_ACTIVE)) {
3110 1.37 skrll DDOLOG("SET PORT_RESET when not ACTIVE!",
3111 1.12 kiyohara 0,0,0,0);
3112 1.12 kiyohara return USBD_INVAL;
3113 1.12 kiyohara }
3114 1.12 kiyohara if (!(t->flags & F_POWER)) {
3115 1.12 kiyohara DDOLOG("SET PORT_RESET without PORT_POWER! flags %p",
3116 1.12 kiyohara t->flags, 0,0,0);
3117 1.12 kiyohara return USBD_INVAL;
3118 1.12 kiyohara }
3119 1.12 kiyohara if (t->flags & F_RESET)
3120 1.12 kiyohara return USBD_NORMAL_COMPLETION;
3121 1.98 pgoyette DLOG(D_MSG, "RESET flags %#jx", t->flags, 0,0,0);
3122 1.12 kiyohara slhci_intrchange(sc, 0);
3123 1.37 skrll slhci_drain(sc);
3124 1.12 kiyohara slhci_write(sc, SL11_CTRL, SL11_CTRL_RESETENGINE);
3125 1.12 kiyohara /* usb spec says delay >= 10ms, app note 50ms */
3126 1.12 kiyohara start_cc_time(&t_delay, 50000);
3127 1.48 skrll if (sc->sc_bus.ub_usepolling) {
3128 1.12 kiyohara DELAY(50000);
3129 1.12 kiyohara slhci_reset(sc);
3130 1.12 kiyohara } else {
3131 1.12 kiyohara t->flags |= F_RESET;
3132 1.100 riastrad callout_schedule(&sc->sc_timer, uimax(mstohz(50), 2));
3133 1.12 kiyohara }
3134 1.12 kiyohara } else if (what == UHF_PORT_SUSPEND) {
3135 1.12 kiyohara printf("%s: USB Suspend not implemented!\n", SC_NAME(sc));
3136 1.79 skrll DDOLOG("USB Suspend not implemented!", 0, 0, 0, 0);
3137 1.12 kiyohara } else if (what == UHF_PORT_POWER) {
3138 1.12 kiyohara DLOG(D_MSG, "PORT_POWER", 0,0,0,0);
3139 1.12 kiyohara /* for x68k Nereid USB controller */
3140 1.12 kiyohara if (!(t->flags & F_ACTIVE))
3141 1.12 kiyohara return USBD_INVAL;
3142 1.12 kiyohara if (t->flags & F_POWER)
3143 1.12 kiyohara return USBD_NORMAL_COMPLETION;
3144 1.12 kiyohara if (!(t->flags & F_REALPOWER)) {
3145 1.12 kiyohara if (sc->sc_enable_power)
3146 1.12 kiyohara sc->sc_enable_power(sc, POWER_ON);
3147 1.12 kiyohara t->flags |= F_REALPOWER;
3148 1.12 kiyohara }
3149 1.12 kiyohara t->flags |= F_POWER;
3150 1.12 kiyohara r = slhci_read(sc, SL11_ISR);
3151 1.12 kiyohara if (r & SL11_ISR_INSERT)
3152 1.12 kiyohara slhci_write(sc, SL11_ISR, SL11_ISR_INSERT);
3153 1.12 kiyohara if (r & SL11_ISR_NODEV) {
3154 1.12 kiyohara slhci_intrchange(sc, SL11_IER_INSERT);
3155 1.12 kiyohara t->flags |= F_NODEV;
3156 1.12 kiyohara } else {
3157 1.12 kiyohara t->flags &= ~F_NODEV;
3158 1.12 kiyohara t->flags |= F_CCONNECT|F_ROOTINTR;
3159 1.12 kiyohara }
3160 1.12 kiyohara } else {
3161 1.12 kiyohara DDOLOG("SetPortFeatERR=%#.8x", what, 0,0,0);
3162 1.12 kiyohara return USBD_IOERROR;
3163 1.12 kiyohara }
3164 1.1 isaki
3165 1.1 isaki return USBD_NORMAL_COMPLETION;
3166 1.1 isaki }
3167 1.1 isaki
3168 1.1 isaki static void
3169 1.12 kiyohara slhci_get_status(struct slhci_softc *sc, usb_port_status_t *ps)
3170 1.1 isaki {
3171 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3172 1.12 kiyohara struct slhci_transfers *t;
3173 1.12 kiyohara unsigned int status, change;
3174 1.12 kiyohara
3175 1.12 kiyohara t = &sc->sc_transfers;
3176 1.12 kiyohara
3177 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
3178 1.1 isaki
3179 1.34 skrll /*
3180 1.71 skrll * We do not have a way to detect over current or babble and
3181 1.37 skrll * suspend is currently not implemented, so connect and reset
3182 1.34 skrll * are the only changes that need to be reported.
3183 1.34 skrll */
3184 1.12 kiyohara change = 0;
3185 1.12 kiyohara if (t->flags & F_CCONNECT)
3186 1.12 kiyohara change |= UPS_C_CONNECT_STATUS;
3187 1.12 kiyohara if (t->flags & F_CRESET)
3188 1.12 kiyohara change |= UPS_C_PORT_RESET;
3189 1.12 kiyohara
3190 1.12 kiyohara status = 0;
3191 1.12 kiyohara if (!(t->flags & F_NODEV))
3192 1.12 kiyohara status |= UPS_CURRENT_CONNECT_STATUS;
3193 1.12 kiyohara if (!(t->flags & F_UDISABLED))
3194 1.12 kiyohara status |= UPS_PORT_ENABLED;
3195 1.12 kiyohara if (t->flags & F_RESET)
3196 1.12 kiyohara status |= UPS_RESET;
3197 1.12 kiyohara if (t->flags & F_POWER)
3198 1.12 kiyohara status |= UPS_PORT_POWER;
3199 1.12 kiyohara if (t->flags & F_LOWSPEED)
3200 1.12 kiyohara status |= UPS_LOW_SPEED;
3201 1.37 skrll USETW(ps->wPortStatus, status);
3202 1.12 kiyohara USETW(ps->wPortChange, change);
3203 1.98 pgoyette DLOG(D_ROOT, "status=%#.4jx, change=%#.4jx", status, change, 0,0);
3204 1.1 isaki }
3205 1.1 isaki
3206 1.48 skrll static int
3207 1.48 skrll slhci_roothub_ctrl(struct usbd_bus *bus, usb_device_request_t *req,
3208 1.48 skrll void *buf, int buflen)
3209 1.48 skrll {
3210 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3211 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
3212 1.48 skrll struct slhci_transfers *t = &sc->sc_transfers;
3213 1.48 skrll usbd_status error = USBD_IOERROR; /* XXX should be STALL */
3214 1.48 skrll uint16_t len, value, index;
3215 1.48 skrll uint8_t type;
3216 1.48 skrll int actlen = 0;
3217 1.12 kiyohara
3218 1.12 kiyohara len = UGETW(req->wLength);
3219 1.12 kiyohara value = UGETW(req->wValue);
3220 1.12 kiyohara index = UGETW(req->wIndex);
3221 1.1 isaki
3222 1.37 skrll type = req->bmRequestType;
3223 1.1 isaki
3224 1.79 skrll SLHCI_DEXEC(D_TRACE, slhci_log_req(req));
3225 1.1 isaki
3226 1.12 kiyohara /*
3227 1.12 kiyohara * USB requests for hubs have two basic types, standard and class.
3228 1.37 skrll * Each could potentially have recipients of device, interface,
3229 1.12 kiyohara * endpoint, or other. For the hub class, CLASS_OTHER means the port
3230 1.12 kiyohara * and CLASS_DEVICE means the hub. For standard requests, OTHER
3231 1.37 skrll * is not used. Standard request are described in section 9.4 of the
3232 1.37 skrll * standard, hub class requests in 11.16. Each request is either read
3233 1.12 kiyohara * or write.
3234 1.12 kiyohara *
3235 1.37 skrll * Clear Feature, Set Feature, and Status are defined for each of the
3236 1.37 skrll * used recipients. Get Descriptor and Set Descriptor are defined for
3237 1.37 skrll * both standard and hub class types with different descriptors.
3238 1.37 skrll * Other requests have only one defined recipient and type. These
3239 1.37 skrll * include: Get/Set Address, Get/Set Configuration, Get/Set Interface,
3240 1.37 skrll * and Synch Frame for standard requests and Get Bus State for hub
3241 1.12 kiyohara * class.
3242 1.12 kiyohara *
3243 1.37 skrll * When a device is first powered up it has address 0 until the
3244 1.12 kiyohara * address is set.
3245 1.37 skrll *
3246 1.37 skrll * Hubs are only allowed to support one interface and may not have
3247 1.37 skrll * isochronous endpoints. The results of the related requests are
3248 1.12 kiyohara * undefined.
3249 1.12 kiyohara *
3250 1.37 skrll * The standard requires invalid or unsupported requests to return
3251 1.37 skrll * STALL in the data stage, however this does not work well with
3252 1.12 kiyohara * current error handling. XXX
3253 1.12 kiyohara *
3254 1.12 kiyohara * Some unsupported fields:
3255 1.12 kiyohara * Clear Hub Feature is for C_HUB_LOCAL_POWER and C_HUB_OVER_CURRENT
3256 1.12 kiyohara * Set Device Features is for ENDPOINT_HALT and DEVICE_REMOTE_WAKEUP
3257 1.12 kiyohara * Get Bus State is optional sample of D- and D+ at EOF2
3258 1.12 kiyohara */
3259 1.1 isaki
3260 1.12 kiyohara switch (req->bRequest) {
3261 1.12 kiyohara /* Write Requests */
3262 1.12 kiyohara case UR_CLEAR_FEATURE:
3263 1.12 kiyohara if (type == UT_WRITE_CLASS_OTHER) {
3264 1.69 skrll if (index == 1 /* Port */) {
3265 1.69 skrll mutex_enter(&sc->sc_intr_lock);
3266 1.12 kiyohara error = slhci_clear_feature(sc, value);
3267 1.69 skrll mutex_exit(&sc->sc_intr_lock);
3268 1.69 skrll } else
3269 1.12 kiyohara DLOG(D_ROOT, "Clear Port Feature "
3270 1.98 pgoyette "index = %#.4jx", index, 0,0,0);
3271 1.12 kiyohara }
3272 1.12 kiyohara break;
3273 1.12 kiyohara case UR_SET_FEATURE:
3274 1.12 kiyohara if (type == UT_WRITE_CLASS_OTHER) {
3275 1.68 skrll if (index == 1 /* Port */) {
3276 1.68 skrll mutex_enter(&sc->sc_intr_lock);
3277 1.12 kiyohara error = slhci_set_feature(sc, value);
3278 1.68 skrll mutex_exit(&sc->sc_intr_lock);
3279 1.68 skrll } else
3280 1.12 kiyohara DLOG(D_ROOT, "Set Port Feature "
3281 1.98 pgoyette "index = %#.4jx", index, 0,0,0);
3282 1.12 kiyohara } else if (type != UT_WRITE_CLASS_DEVICE)
3283 1.12 kiyohara DLOG(D_ROOT, "Set Device Feature "
3284 1.12 kiyohara "ENDPOINT_HALT or DEVICE_REMOTE_WAKEUP "
3285 1.12 kiyohara "not supported", 0,0,0,0);
3286 1.12 kiyohara break;
3287 1.48 skrll
3288 1.12 kiyohara /* Read Requests */
3289 1.12 kiyohara case UR_GET_STATUS:
3290 1.12 kiyohara if (type == UT_READ_CLASS_OTHER) {
3291 1.12 kiyohara if (index == 1 /* Port */ && len == /* XXX >=? */
3292 1.12 kiyohara sizeof(usb_port_status_t)) {
3293 1.68 skrll mutex_enter(&sc->sc_intr_lock);
3294 1.12 kiyohara slhci_get_status(sc, (usb_port_status_t *)
3295 1.12 kiyohara buf);
3296 1.68 skrll mutex_exit(&sc->sc_intr_lock);
3297 1.12 kiyohara actlen = sizeof(usb_port_status_t);
3298 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3299 1.37 skrll } else
3300 1.98 pgoyette DLOG(D_ROOT, "Get Port Status index = %#.4jx "
3301 1.98 pgoyette "len = %#.4jx", index, len, 0,0);
3302 1.12 kiyohara } else if (type == UT_READ_CLASS_DEVICE) { /* XXX index? */
3303 1.12 kiyohara if (len == sizeof(usb_hub_status_t)) {
3304 1.37 skrll DLOG(D_ROOT, "Get Hub Status",
3305 1.12 kiyohara 0,0,0,0);
3306 1.12 kiyohara actlen = sizeof(usb_hub_status_t);
3307 1.12 kiyohara memset(buf, 0, actlen);
3308 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3309 1.12 kiyohara } else
3310 1.98 pgoyette DLOG(D_ROOT, "Get Hub Status bad len %#.4jx",
3311 1.12 kiyohara len, 0,0,0);
3312 1.12 kiyohara }
3313 1.12 kiyohara break;
3314 1.12 kiyohara case UR_GET_DESCRIPTOR:
3315 1.12 kiyohara if (type == UT_READ_DEVICE) {
3316 1.12 kiyohara /* value is type (&0xff00) and index (0xff) */
3317 1.12 kiyohara if (value == (UDESC_DEVICE<<8)) {
3318 1.99 jakllsch actlen = buflen;
3319 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3320 1.12 kiyohara } else if (value == (UDESC_CONFIG<<8)) {
3321 1.48 skrll struct usb_roothub_descriptors confd;
3322 1.48 skrll
3323 1.100 riastrad actlen = uimin(buflen, sizeof(confd));
3324 1.48 skrll memcpy(&confd, buf, actlen);
3325 1.48 skrll
3326 1.48 skrll /* 2 mA units */
3327 1.48 skrll confd.urh_confd.bMaxPower = t->max_current;
3328 1.48 skrll memcpy(buf, &confd, actlen);
3329 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3330 1.12 kiyohara } else if (value == ((UDESC_STRING<<8)|1)) {
3331 1.12 kiyohara /* Vendor */
3332 1.99 jakllsch actlen = buflen;
3333 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3334 1.12 kiyohara } else if (value == ((UDESC_STRING<<8)|2)) {
3335 1.12 kiyohara /* Product */
3336 1.20 isaki actlen = usb_makestrdesc((usb_string_descriptor_t *)
3337 1.12 kiyohara buf, len, "SL811HS/T root hub");
3338 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3339 1.12 kiyohara } else
3340 1.12 kiyohara DDOLOG("Unknown Get Descriptor %#.4x",
3341 1.12 kiyohara value, 0,0,0);
3342 1.12 kiyohara } else if (type == UT_READ_CLASS_DEVICE) {
3343 1.12 kiyohara /* Descriptor number is 0 */
3344 1.12 kiyohara if (value == (UDESC_HUB<<8)) {
3345 1.48 skrll usb_hub_descriptor_t hubd;
3346 1.48 skrll
3347 1.100 riastrad actlen = uimin(buflen, sizeof(hubd));
3348 1.48 skrll memcpy(&hubd, buf, actlen);
3349 1.48 skrll hubd.bHubContrCurrent =
3350 1.48 skrll 500 - t->max_current;
3351 1.48 skrll memcpy(buf, &hubd, actlen);
3352 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3353 1.12 kiyohara } else
3354 1.12 kiyohara DDOLOG("Unknown Get Hub Descriptor %#.4x",
3355 1.12 kiyohara value, 0,0,0);
3356 1.12 kiyohara }
3357 1.12 kiyohara break;
3358 1.48 skrll default:
3359 1.48 skrll /* default from usbroothub */
3360 1.48 skrll return buflen;
3361 1.1 isaki }
3362 1.1 isaki
3363 1.12 kiyohara if (error == USBD_NORMAL_COMPLETION)
3364 1.48 skrll return actlen;
3365 1.12 kiyohara
3366 1.48 skrll return -1;
3367 1.1 isaki }
3368 1.1 isaki
3369 1.12 kiyohara /* End in lock functions. Start debug functions. */
3370 1.12 kiyohara
3371 1.12 kiyohara #ifdef SLHCI_DEBUG
3372 1.1 isaki void
3373 1.12 kiyohara slhci_log_buffer(struct usbd_xfer *xfer)
3374 1.1 isaki {
3375 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3376 1.12 kiyohara u_char *buf;
3377 1.1 isaki
3378 1.48 skrll if(xfer->ux_length > 0 &&
3379 1.48 skrll UE_GET_DIR(xfer->ux_pipe->up_endpoint->ue_edesc->bEndpointAddress) ==
3380 1.12 kiyohara UE_DIR_IN) {
3381 1.48 skrll buf = xfer->ux_buf;
3382 1.48 skrll DDOLOGBUF(buf, xfer->ux_actlen);
3383 1.48 skrll DDOLOG("len %d actlen %d short %d", xfer->ux_length,
3384 1.48 skrll xfer->ux_actlen, xfer->ux_length - xfer->ux_actlen, 0);
3385 1.12 kiyohara }
3386 1.1 isaki }
3387 1.1 isaki
3388 1.1 isaki void
3389 1.12 kiyohara slhci_log_req(usb_device_request_t *r)
3390 1.1 isaki {
3391 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3392 1.79 skrll int req, type, value, index, len;
3393 1.1 isaki
3394 1.1 isaki req = r->bRequest;
3395 1.1 isaki type = r->bmRequestType;
3396 1.1 isaki value = UGETW(r->wValue);
3397 1.1 isaki index = UGETW(r->wIndex);
3398 1.1 isaki len = UGETW(r->wLength);
3399 1.1 isaki
3400 1.79 skrll DDOLOG("request: type %#x", type, 0, 0, 0);
3401 1.12 kiyohara DDOLOG("request: r=%d,v=%d,i=%d,l=%d ", req, value, index, len);
3402 1.1 isaki }
3403 1.1 isaki
3404 1.1 isaki void
3405 1.12 kiyohara slhci_log_dumpreg(void)
3406 1.1 isaki {
3407 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3408 1.12 kiyohara uint8_t r;
3409 1.12 kiyohara unsigned int aaddr, alen, baddr, blen;
3410 1.12 kiyohara static u_char buf[240];
3411 1.12 kiyohara
3412 1.12 kiyohara r = slhci_read(ssc, SL11_E0CTRL);
3413 1.79 skrll DDOLOG("USB A Host Control = %#.2x", r, 0, 0, 0);
3414 1.84 skrll DDOLOGEPCTRL(r);
3415 1.79 skrll
3416 1.12 kiyohara aaddr = slhci_read(ssc, SL11_E0ADDR);
3417 1.12 kiyohara DDOLOG("USB A Base Address = %u", aaddr, 0,0,0);
3418 1.12 kiyohara alen = slhci_read(ssc, SL11_E0LEN);
3419 1.12 kiyohara DDOLOG("USB A Length = %u", alen, 0,0,0);
3420 1.12 kiyohara r = slhci_read(ssc, SL11_E0STAT);
3421 1.12 kiyohara DDOLOG("USB A Status = %#.2x", r, 0,0,0);
3422 1.84 skrll DDOLOGEPSTAT(r);
3423 1.79 skrll
3424 1.12 kiyohara r = slhci_read(ssc, SL11_E0CONT);
3425 1.12 kiyohara DDOLOG("USB A Remaining or Overflow Length = %u", r, 0,0,0);
3426 1.12 kiyohara r = slhci_read(ssc, SL11_E1CTRL);
3427 1.12 kiyohara DDOLOG("USB B Host Control = %#.2x", r, 0,0,0);
3428 1.84 skrll DDOLOGEPCTRL(r);
3429 1.79 skrll
3430 1.12 kiyohara baddr = slhci_read(ssc, SL11_E1ADDR);
3431 1.12 kiyohara DDOLOG("USB B Base Address = %u", baddr, 0,0,0);
3432 1.12 kiyohara blen = slhci_read(ssc, SL11_E1LEN);
3433 1.12 kiyohara DDOLOG("USB B Length = %u", blen, 0,0,0);
3434 1.12 kiyohara r = slhci_read(ssc, SL11_E1STAT);
3435 1.12 kiyohara DDOLOG("USB B Status = %#.2x", r, 0,0,0);
3436 1.84 skrll DDOLOGEPSTAT(r);
3437 1.79 skrll
3438 1.12 kiyohara r = slhci_read(ssc, SL11_E1CONT);
3439 1.12 kiyohara DDOLOG("USB B Remaining or Overflow Length = %u", r, 0,0,0);
3440 1.12 kiyohara
3441 1.12 kiyohara r = slhci_read(ssc, SL11_CTRL);
3442 1.12 kiyohara DDOLOG("Control = %#.2x", r, 0,0,0);
3443 1.79 skrll DDOLOGCTRL(r);
3444 1.79 skrll
3445 1.12 kiyohara r = slhci_read(ssc, SL11_IER);
3446 1.12 kiyohara DDOLOG("Interrupt Enable = %#.2x", r, 0,0,0);
3447 1.79 skrll DDOLOGIER(r);
3448 1.79 skrll
3449 1.12 kiyohara r = slhci_read(ssc, SL11_ISR);
3450 1.12 kiyohara DDOLOG("Interrupt Status = %#.2x", r, 0,0,0);
3451 1.79 skrll DDOLOGISR(r);
3452 1.79 skrll
3453 1.12 kiyohara r = slhci_read(ssc, SL11_REV);
3454 1.12 kiyohara DDOLOG("Revision = %#.2x", r, 0,0,0);
3455 1.12 kiyohara r = slhci_read(ssc, SL811_CSOF);
3456 1.12 kiyohara DDOLOG("SOF Counter = %#.2x", r, 0,0,0);
3457 1.12 kiyohara
3458 1.37 skrll if (alen && aaddr >= SL11_BUFFER_START && aaddr < SL11_BUFFER_END &&
3459 1.12 kiyohara alen <= SL11_MAX_PACKET_SIZE && aaddr + alen <= SL11_BUFFER_END) {
3460 1.12 kiyohara slhci_read_multi(ssc, aaddr, buf, alen);
3461 1.12 kiyohara DDOLOG("USBA Buffer: start %u len %u", aaddr, alen, 0,0);
3462 1.12 kiyohara DDOLOGBUF(buf, alen);
3463 1.12 kiyohara } else if (alen)
3464 1.12 kiyohara DDOLOG("USBA Buffer Invalid", 0,0,0,0);
3465 1.12 kiyohara
3466 1.37 skrll if (blen && baddr >= SL11_BUFFER_START && baddr < SL11_BUFFER_END &&
3467 1.12 kiyohara blen <= SL11_MAX_PACKET_SIZE && baddr + blen <= SL11_BUFFER_END) {
3468 1.12 kiyohara slhci_read_multi(ssc, baddr, buf, blen);
3469 1.12 kiyohara DDOLOG("USBB Buffer: start %u len %u", baddr, blen, 0,0);
3470 1.12 kiyohara DDOLOGBUF(buf, blen);
3471 1.12 kiyohara } else if (blen)
3472 1.12 kiyohara DDOLOG("USBB Buffer Invalid", 0,0,0,0);
3473 1.1 isaki }
3474 1.1 isaki
3475 1.1 isaki void
3476 1.12 kiyohara slhci_log_xfer(struct usbd_xfer *xfer)
3477 1.1 isaki {
3478 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3479 1.12 kiyohara DDOLOG("xfer: length=%u, actlen=%u, flags=%#x, timeout=%u,",
3480 1.48 skrll xfer->ux_length, xfer->ux_actlen, xfer->ux_flags, xfer->ux_timeout);
3481 1.56 skrll DDOLOG("buffer=%p", xfer->ux_buf, 0,0,0);
3482 1.79 skrll slhci_log_req(&xfer->ux_request);
3483 1.12 kiyohara }
3484 1.12 kiyohara
3485 1.12 kiyohara void
3486 1.12 kiyohara slhci_log_spipe(struct slhci_pipe *spipe)
3487 1.12 kiyohara {
3488 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3489 1.79 skrll DDOLOG("spipe %p onlists: AP=%d TO=%d XQ=%d", spipe,
3490 1.79 skrll gcq_onlist(&spipe->ap) ? 1 : 0,
3491 1.79 skrll gcq_onlist(&spipe->to) ? 1 : 0,
3492 1.79 skrll gcq_onlist(&spipe->xq) ? 1 : 0);
3493 1.79 skrll DDOLOG("spipe: xfer %p buffer %p pflags %#x ptype %d",
3494 1.79 skrll spipe->xfer, spipe->buffer, spipe->pflags, spipe->ptype);
3495 1.12 kiyohara }
3496 1.12 kiyohara
3497 1.12 kiyohara void
3498 1.12 kiyohara slhci_print_intr(void)
3499 1.12 kiyohara {
3500 1.12 kiyohara unsigned int ier, isr;
3501 1.12 kiyohara ier = slhci_read(ssc, SL11_IER);
3502 1.12 kiyohara isr = slhci_read(ssc, SL11_ISR);
3503 1.12 kiyohara printf("IER: %#x ISR: %#x \n", ier, isr);
3504 1.12 kiyohara }
3505 1.12 kiyohara
3506 1.12 kiyohara #if 0
3507 1.12 kiyohara void
3508 1.22 cegger slhci_log_sc(void)
3509 1.12 kiyohara {
3510 1.84 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3511 1.84 skrll
3512 1.12 kiyohara struct slhci_transfers *t;
3513 1.12 kiyohara int i;
3514 1.12 kiyohara
3515 1.12 kiyohara t = &ssc->sc_transfers;
3516 1.12 kiyohara
3517 1.12 kiyohara DDOLOG("Flags=%#x", t->flags, 0,0,0);
3518 1.37 skrll DDOLOG("a = %p Alen=%d b = %p Blen=%d", t->spipe[0], t->len[0],
3519 1.12 kiyohara t->spipe[1], t->len[1]);
3520 1.12 kiyohara
3521 1.37 skrll for (i=0; i<=Q_MAX; i++)
3522 1.84 skrll DDOLOG("Q %d: %p", i, gcq_hq(&t->q[i]), 0,0);
3523 1.12 kiyohara
3524 1.84 skrll DDOLOG("TIMED: %p", GCQ_ITEM(gcq_hq(&t->to),
3525 1.12 kiyohara struct slhci_pipe, to), 0,0,0);
3526 1.12 kiyohara
3527 1.12 kiyohara DDOLOG("frame=%d rootintr=%p", t->frame, t->rootintr, 0,0);
3528 1.12 kiyohara
3529 1.48 skrll DDOLOG("ub_usepolling=%d", ssc->sc_bus.ub_usepolling, 0, 0, 0);
3530 1.12 kiyohara }
3531 1.12 kiyohara
3532 1.12 kiyohara void
3533 1.12 kiyohara slhci_log_slreq(struct slhci_pipe *r)
3534 1.12 kiyohara {
3535 1.84 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3536 1.12 kiyohara DDOLOG("xfer: %p", r->xfer, 0,0,0);
3537 1.12 kiyohara DDOLOG("buffer: %p", r->buffer, 0,0,0);
3538 1.12 kiyohara DDOLOG("bustime: %u", r->bustime, 0,0,0);
3539 1.12 kiyohara DDOLOG("control: %#x", r->control, 0,0,0);
3540 1.84 skrll DDOLOGEPCTRL(r->control);
3541 1.84 skrll
3542 1.12 kiyohara DDOLOG("pid: %#x", r->tregs[PID], 0,0,0);
3543 1.12 kiyohara DDOLOG("dev: %u", r->tregs[DEV], 0,0,0);
3544 1.12 kiyohara DDOLOG("len: %u", r->tregs[LEN], 0,0,0);
3545 1.12 kiyohara
3546 1.12 kiyohara if (r->xfer)
3547 1.12 kiyohara slhci_log_xfer(r->xfer);
3548 1.1 isaki }
3549 1.12 kiyohara #endif
3550 1.1 isaki #endif /* SLHCI_DEBUG */
3551 1.12 kiyohara /* End debug functions. */
3552