sl811hs.c revision 1.62 1 1.62 skrll /* $NetBSD: sl811hs.c,v 1.62 2016/05/11 21:02:10 skrll 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 1.62 skrll __KERNEL_RCSID(0, "$NetBSD: sl811hs.c,v 1.62 2016/05/11 21:02:10 skrll Exp $");
72 1.26 isaki
73 1.26 isaki #include "opt_slhci.h"
74 1.1 isaki
75 1.56 skrll #ifdef _KERNEL_OPT
76 1.56 skrll #include "opt_usb.h"
77 1.56 skrll #endif
78 1.56 skrll
79 1.1 isaki #include <sys/param.h>
80 1.56 skrll
81 1.53 skrll #include <sys/bus.h>
82 1.53 skrll #include <sys/cpu.h>
83 1.53 skrll #include <sys/device.h>
84 1.53 skrll #include <sys/gcq.h>
85 1.53 skrll #include <sys/intr.h>
86 1.1 isaki #include <sys/kernel.h>
87 1.53 skrll #include <sys/kmem.h>
88 1.1 isaki #include <sys/proc.h>
89 1.12 kiyohara #include <sys/queue.h>
90 1.56 skrll #include <sys/sysctl.h>
91 1.53 skrll #include <sys/systm.h>
92 1.1 isaki
93 1.1 isaki #include <dev/usb/usb.h>
94 1.1 isaki #include <dev/usb/usbdi.h>
95 1.1 isaki #include <dev/usb/usbdivar.h>
96 1.56 skrll #include <dev/usb/usbhist.h>
97 1.1 isaki #include <dev/usb/usb_mem.h>
98 1.1 isaki #include <dev/usb/usbdevs.h>
99 1.48 skrll #include <dev/usb/usbroothub.h>
100 1.1 isaki
101 1.1 isaki #include <dev/ic/sl811hsreg.h>
102 1.1 isaki #include <dev/ic/sl811hsvar.h>
103 1.1 isaki
104 1.12 kiyohara #define Q_CB 0 /* Control/Bulk */
105 1.12 kiyohara #define Q_NEXT_CB 1
106 1.12 kiyohara #define Q_MAX_XFER Q_CB
107 1.12 kiyohara #define Q_CALLBACKS 2
108 1.12 kiyohara #define Q_MAX Q_CALLBACKS
109 1.12 kiyohara
110 1.12 kiyohara #define F_AREADY (0x00000001)
111 1.12 kiyohara #define F_BREADY (0x00000002)
112 1.12 kiyohara #define F_AINPROG (0x00000004)
113 1.12 kiyohara #define F_BINPROG (0x00000008)
114 1.12 kiyohara #define F_LOWSPEED (0x00000010)
115 1.12 kiyohara #define F_UDISABLED (0x00000020) /* Consider disabled for USB */
116 1.12 kiyohara #define F_NODEV (0x00000040)
117 1.12 kiyohara #define F_ROOTINTR (0x00000080)
118 1.12 kiyohara #define F_REALPOWER (0x00000100) /* Actual power state */
119 1.12 kiyohara #define F_POWER (0x00000200) /* USB reported power state */
120 1.12 kiyohara #define F_ACTIVE (0x00000400)
121 1.12 kiyohara #define F_CALLBACK (0x00000800) /* Callback scheduled */
122 1.12 kiyohara #define F_SOFCHECK1 (0x00001000)
123 1.12 kiyohara #define F_SOFCHECK2 (0x00002000)
124 1.12 kiyohara #define F_CRESET (0x00004000) /* Reset done not reported */
125 1.12 kiyohara #define F_CCONNECT (0x00008000) /* Connect change not reported */
126 1.12 kiyohara #define F_RESET (0x00010000)
127 1.12 kiyohara #define F_ISOC_WARNED (0x00020000)
128 1.12 kiyohara #define F_LSVH_WARNED (0x00040000)
129 1.12 kiyohara
130 1.12 kiyohara #define F_DISABLED (F_NODEV|F_UDISABLED)
131 1.12 kiyohara #define F_CHANGE (F_CRESET|F_CCONNECT)
132 1.12 kiyohara
133 1.12 kiyohara #ifdef SLHCI_TRY_LSVH
134 1.12 kiyohara unsigned int slhci_try_lsvh = 1;
135 1.12 kiyohara #else
136 1.12 kiyohara unsigned int slhci_try_lsvh = 0;
137 1.12 kiyohara #endif
138 1.12 kiyohara
139 1.12 kiyohara #define ADR 0
140 1.12 kiyohara #define LEN 1
141 1.12 kiyohara #define PID 2
142 1.12 kiyohara #define DEV 3
143 1.12 kiyohara #define STAT 2
144 1.12 kiyohara #define CONT 3
145 1.12 kiyohara
146 1.12 kiyohara #define A 0
147 1.12 kiyohara #define B 1
148 1.12 kiyohara
149 1.36 skrll static const uint8_t slhci_tregs[2][4] =
150 1.12 kiyohara {{SL11_E0ADDR, SL11_E0LEN, SL11_E0PID, SL11_E0DEV },
151 1.12 kiyohara {SL11_E1ADDR, SL11_E1LEN, SL11_E1PID, SL11_E1DEV }};
152 1.12 kiyohara
153 1.12 kiyohara #define PT_ROOT_CTRL 0
154 1.12 kiyohara #define PT_ROOT_INTR 1
155 1.12 kiyohara #define PT_CTRL_SETUP 2
156 1.12 kiyohara #define PT_CTRL_DATA 3
157 1.12 kiyohara #define PT_CTRL_STATUS 4
158 1.12 kiyohara #define PT_INTR 5
159 1.12 kiyohara #define PT_BULK 6
160 1.12 kiyohara #define PT_MAX 6
161 1.12 kiyohara
162 1.12 kiyohara #ifdef SLHCI_DEBUG
163 1.12 kiyohara #define SLHCI_MEM_ACCOUNTING
164 1.12 kiyohara static const char *
165 1.12 kiyohara pnames(int ptype)
166 1.12 kiyohara {
167 1.36 skrll static const char * const names[] = { "ROOT Ctrl", "ROOT Intr",
168 1.12 kiyohara "Control (setup)", "Control (data)", "Control (status)",
169 1.12 kiyohara "Interrupt", "Bulk", "BAD PTYPE" };
170 1.12 kiyohara
171 1.12 kiyohara KASSERT(sizeof(names) / sizeof(names[0]) == PT_MAX + 2);
172 1.12 kiyohara if (ptype > PT_MAX)
173 1.12 kiyohara ptype = PT_MAX + 1;
174 1.12 kiyohara return names[ptype];
175 1.12 kiyohara }
176 1.12 kiyohara #endif
177 1.12 kiyohara
178 1.34 skrll /*
179 1.34 skrll * Maximum allowable reserved bus time. Since intr/isoc transfers have
180 1.37 skrll * unconditional priority, this is all that ensures control and bulk transfers
181 1.37 skrll * get a chance. It is a single value for all frames since all transfers can
182 1.37 skrll * use multiple consecutive frames if an error is encountered. Note that it
183 1.37 skrll * is not really possible to fill the bus with transfers, so this value should
184 1.37 skrll * be on the low side. Defaults to giving a warning unless SLHCI_NO_OVERTIME
185 1.34 skrll * is defined. Full time is 12000 - END_BUSTIME.
186 1.34 skrll */
187 1.12 kiyohara #ifndef SLHCI_RESERVED_BUSTIME
188 1.12 kiyohara #define SLHCI_RESERVED_BUSTIME 5000
189 1.12 kiyohara #endif
190 1.12 kiyohara
191 1.34 skrll /*
192 1.34 skrll * Rate for "exceeds reserved bus time" warnings (default) or errors.
193 1.37 skrll * Warnings only happen when an endpoint open causes the time to go above
194 1.34 skrll * SLHCI_RESERVED_BUSTIME, not if it is already above.
195 1.34 skrll */
196 1.12 kiyohara #ifndef SLHCI_OVERTIME_WARNING_RATE
197 1.12 kiyohara #define SLHCI_OVERTIME_WARNING_RATE { 60, 0 } /* 60 seconds */
198 1.12 kiyohara #endif
199 1.12 kiyohara static const struct timeval reserved_warn_rate = SLHCI_OVERTIME_WARNING_RATE;
200 1.12 kiyohara
201 1.12 kiyohara /* Rate for overflow warnings */
202 1.12 kiyohara #ifndef SLHCI_OVERFLOW_WARNING_RATE
203 1.12 kiyohara #define SLHCI_OVERFLOW_WARNING_RATE { 60, 0 } /* 60 seconds */
204 1.12 kiyohara #endif
205 1.12 kiyohara static const struct timeval overflow_warn_rate = SLHCI_OVERFLOW_WARNING_RATE;
206 1.12 kiyohara
207 1.34 skrll /*
208 1.34 skrll * For EOF, the spec says 42 bit times, plus (I think) a possible hub skew of
209 1.12 kiyohara * 20 bit times. By default leave 66 bit times to start the transfer beyond
210 1.12 kiyohara * the required time. Units are full-speed bit times (a bit over 5us per 64).
211 1.34 skrll * Only multiples of 64 are significant.
212 1.34 skrll */
213 1.12 kiyohara #define SLHCI_STANDARD_END_BUSTIME 128
214 1.12 kiyohara #ifndef SLHCI_EXTRA_END_BUSTIME
215 1.12 kiyohara #define SLHCI_EXTRA_END_BUSTIME 0
216 1.12 kiyohara #endif
217 1.12 kiyohara
218 1.12 kiyohara #define SLHCI_END_BUSTIME (SLHCI_STANDARD_END_BUSTIME+SLHCI_EXTRA_END_BUSTIME)
219 1.12 kiyohara
220 1.34 skrll /*
221 1.34 skrll * This is an approximation of the USB worst-case timings presented on p. 54 of
222 1.37 skrll * the USB 1.1 spec translated to full speed bit times.
223 1.37 skrll * FS = full speed with handshake, FSII = isoc in, FSIO = isoc out,
224 1.34 skrll * FSI = isoc (worst case), LS = low speed
225 1.34 skrll */
226 1.12 kiyohara #define SLHCI_FS_CONST 114
227 1.12 kiyohara #define SLHCI_FSII_CONST 92
228 1.12 kiyohara #define SLHCI_FSIO_CONST 80
229 1.12 kiyohara #define SLHCI_FSI_CONST 92
230 1.12 kiyohara #define SLHCI_LS_CONST 804
231 1.12 kiyohara #ifndef SLHCI_PRECICE_BUSTIME
232 1.34 skrll /*
233 1.34 skrll * These values are < 3% too high (compared to the multiply and divide) for
234 1.34 skrll * max sized packets.
235 1.34 skrll */
236 1.12 kiyohara #define SLHCI_FS_DATA_TIME(len) (((u_int)(len)<<3)+(len)+((len)>>1))
237 1.12 kiyohara #define SLHCI_LS_DATA_TIME(len) (((u_int)(len)<<6)+((u_int)(len)<<4))
238 1.12 kiyohara #else
239 1.12 kiyohara #define SLHCI_FS_DATA_TIME(len) (56*(len)/6)
240 1.12 kiyohara #define SLHCI_LS_DATA_TIME(len) (449*(len)/6)
241 1.12 kiyohara #endif
242 1.12 kiyohara
243 1.34 skrll /*
244 1.34 skrll * Set SLHCI_WAIT_SIZE to the desired maximum size of single FS transfer
245 1.12 kiyohara * to poll for after starting a transfer. 64 gets all full speed transfers.
246 1.36 skrll * Note that even if 0 polling will occur if data equal or greater than the
247 1.12 kiyohara * transfer size is copied to the chip while the transfer is in progress.
248 1.12 kiyohara * Setting SLHCI_WAIT_TIME to -12000 will disable polling.
249 1.12 kiyohara */
250 1.12 kiyohara #ifndef SLHCI_WAIT_SIZE
251 1.12 kiyohara #define SLHCI_WAIT_SIZE 8
252 1.12 kiyohara #endif
253 1.12 kiyohara #ifndef SLHCI_WAIT_TIME
254 1.12 kiyohara #define SLHCI_WAIT_TIME (SLHCI_FS_CONST + \
255 1.12 kiyohara SLHCI_FS_DATA_TIME(SLHCI_WAIT_SIZE))
256 1.12 kiyohara #endif
257 1.12 kiyohara const int slhci_wait_time = SLHCI_WAIT_TIME;
258 1.1 isaki
259 1.12 kiyohara #ifndef SLHCI_MAX_RETRIES
260 1.12 kiyohara #define SLHCI_MAX_RETRIES 3
261 1.12 kiyohara #endif
262 1.1 isaki
263 1.12 kiyohara /* Check IER values for corruption after this many unrecognized interrupts. */
264 1.12 kiyohara #ifndef SLHCI_IER_CHECK_FREQUENCY
265 1.1 isaki #ifdef SLHCI_DEBUG
266 1.12 kiyohara #define SLHCI_IER_CHECK_FREQUENCY 1
267 1.1 isaki #else
268 1.12 kiyohara #define SLHCI_IER_CHECK_FREQUENCY 100
269 1.1 isaki #endif
270 1.12 kiyohara #endif
271 1.12 kiyohara
272 1.12 kiyohara /* Note that buffer points to the start of the buffer for this transfer. */
273 1.12 kiyohara struct slhci_pipe {
274 1.12 kiyohara struct usbd_pipe pipe;
275 1.12 kiyohara struct usbd_xfer *xfer; /* xfer in progress */
276 1.12 kiyohara uint8_t *buffer; /* I/O buffer (if needed) */
277 1.12 kiyohara struct gcq ap; /* All pipes */
278 1.12 kiyohara struct gcq to; /* Timeout list */
279 1.12 kiyohara struct gcq xq; /* Xfer queues */
280 1.12 kiyohara unsigned int pflags; /* Pipe flags */
281 1.12 kiyohara #define PF_GONE (0x01) /* Pipe is on disabled device */
282 1.12 kiyohara #define PF_TOGGLE (0x02) /* Data toggle status */
283 1.12 kiyohara #define PF_LS (0x04) /* Pipe is low speed */
284 1.12 kiyohara #define PF_PREAMBLE (0x08) /* Needs preamble */
285 1.12 kiyohara Frame to_frame; /* Frame number for timeout */
286 1.12 kiyohara Frame frame; /* Frame number for intr xfer */
287 1.12 kiyohara Frame lastframe; /* Previous frame number for intr */
288 1.12 kiyohara uint16_t bustime; /* Worst case bus time usage */
289 1.12 kiyohara uint16_t newbustime[2]; /* new bustimes (see index below) */
290 1.12 kiyohara uint8_t tregs[4]; /* ADR, LEN, PID, DEV */
291 1.12 kiyohara uint8_t newlen[2]; /* 0 = short data, 1 = ctrl data */
292 1.12 kiyohara uint8_t newpid; /* for ctrl */
293 1.12 kiyohara uint8_t wantshort; /* last xfer must be short */
294 1.12 kiyohara uint8_t control; /* Host control register settings */
295 1.12 kiyohara uint8_t nerrs; /* Current number of errors */
296 1.12 kiyohara uint8_t ptype; /* Pipe type */
297 1.12 kiyohara };
298 1.1 isaki
299 1.48 skrll #define SLHCI_BUS2SC(bus) ((bus)->ub_hcpriv)
300 1.48 skrll #define SLHCI_PIPE2SC(pipe) SLHCI_BUS2SC((pipe)->up_dev->ud_bus)
301 1.48 skrll #define SLHCI_XFER2SC(xfer) SLHCI_BUS2SC((xfer)->ux_bus)
302 1.48 skrll
303 1.48 skrll #define SLHCI_PIPE2SPIPE(pipe) ((struct slhci_pipe *)(pipe))
304 1.55 skrll #define SLHCI_XFER2SPIPE(xfer) SLHCI_PIPE2SPIPE((xfer)->ux_pipe)
305 1.55 skrll
306 1.55 skrll #define SLHCI_XFER_TYPE(x) (SLHCI_XFER2SPIPE(xfer)->ptype)
307 1.48 skrll
308 1.12 kiyohara #ifdef SLHCI_PROFILE_TRANSFER
309 1.12 kiyohara #if defined(__mips__)
310 1.34 skrll /*
311 1.34 skrll * MIPS cycle counter does not directly count cpu cycles but is a different
312 1.34 skrll * fraction of cpu cycles depending on the cpu.
313 1.34 skrll */
314 1.48 skrll typedef uint32_t cc_type;
315 1.12 kiyohara #define CC_TYPE_FMT "%u"
316 1.12 kiyohara #define slhci_cc_set(x) __asm volatile ("mfc0 %[cc], $9\n\tnop\n\tnop\n\tnop" \
317 1.12 kiyohara : [cc] "=r"(x))
318 1.12 kiyohara #elif defined(__i386__)
319 1.48 skrll typedef uint64_t cc_type;
320 1.12 kiyohara #define CC_TYPE_FMT "%llu"
321 1.12 kiyohara #define slhci_cc_set(x) __asm volatile ("rdtsc" : "=A"(x))
322 1.12 kiyohara #else
323 1.12 kiyohara #error "SLHCI_PROFILE_TRANSFER not implemented on this MACHINE_ARCH (see sys/dev/ic/sl811hs.c)"
324 1.12 kiyohara #endif
325 1.12 kiyohara struct slhci_cc_time {
326 1.12 kiyohara cc_type start;
327 1.12 kiyohara cc_type stop;
328 1.12 kiyohara unsigned int miscdata;
329 1.12 kiyohara };
330 1.12 kiyohara #ifndef SLHCI_N_TIMES
331 1.12 kiyohara #define SLHCI_N_TIMES 200
332 1.12 kiyohara #endif
333 1.12 kiyohara struct slhci_cc_times {
334 1.12 kiyohara struct slhci_cc_time times[SLHCI_N_TIMES];
335 1.12 kiyohara int current;
336 1.12 kiyohara int wraparound;
337 1.1 isaki };
338 1.1 isaki
339 1.12 kiyohara static struct slhci_cc_times t_ab[2];
340 1.12 kiyohara static struct slhci_cc_times t_abdone;
341 1.12 kiyohara static struct slhci_cc_times t_copy_to_dev;
342 1.12 kiyohara static struct slhci_cc_times t_copy_from_dev;
343 1.12 kiyohara static struct slhci_cc_times t_intr;
344 1.12 kiyohara static struct slhci_cc_times t_lock;
345 1.12 kiyohara static struct slhci_cc_times t_delay;
346 1.12 kiyohara static struct slhci_cc_times t_hard_int;
347 1.12 kiyohara static struct slhci_cc_times t_callback;
348 1.12 kiyohara
349 1.12 kiyohara static inline void
350 1.12 kiyohara start_cc_time(struct slhci_cc_times *times, unsigned int misc) {
351 1.12 kiyohara times->times[times->current].miscdata = misc;
352 1.12 kiyohara slhci_cc_set(times->times[times->current].start);
353 1.12 kiyohara }
354 1.12 kiyohara static inline void
355 1.12 kiyohara stop_cc_time(struct slhci_cc_times *times) {
356 1.12 kiyohara slhci_cc_set(times->times[times->current].stop);
357 1.12 kiyohara if (++times->current >= SLHCI_N_TIMES) {
358 1.12 kiyohara times->current = 0;
359 1.12 kiyohara times->wraparound = 1;
360 1.12 kiyohara }
361 1.12 kiyohara }
362 1.12 kiyohara
363 1.12 kiyohara void slhci_dump_cc_times(int);
364 1.12 kiyohara
365 1.12 kiyohara void
366 1.12 kiyohara slhci_dump_cc_times(int n) {
367 1.12 kiyohara struct slhci_cc_times *times;
368 1.12 kiyohara int i;
369 1.12 kiyohara
370 1.12 kiyohara switch (n) {
371 1.12 kiyohara default:
372 1.12 kiyohara case 0:
373 1.12 kiyohara printf("USBA start transfer to intr:\n");
374 1.12 kiyohara times = &t_ab[A];
375 1.12 kiyohara break;
376 1.12 kiyohara case 1:
377 1.12 kiyohara printf("USBB start transfer to intr:\n");
378 1.12 kiyohara times = &t_ab[B];
379 1.12 kiyohara break;
380 1.12 kiyohara case 2:
381 1.12 kiyohara printf("abdone:\n");
382 1.12 kiyohara times = &t_abdone;
383 1.12 kiyohara break;
384 1.12 kiyohara case 3:
385 1.12 kiyohara printf("copy to device:\n");
386 1.12 kiyohara times = &t_copy_to_dev;
387 1.12 kiyohara break;
388 1.12 kiyohara case 4:
389 1.12 kiyohara printf("copy from device:\n");
390 1.12 kiyohara times = &t_copy_from_dev;
391 1.12 kiyohara break;
392 1.12 kiyohara case 5:
393 1.12 kiyohara printf("intr to intr:\n");
394 1.12 kiyohara times = &t_intr;
395 1.12 kiyohara break;
396 1.12 kiyohara case 6:
397 1.12 kiyohara printf("lock to release:\n");
398 1.12 kiyohara times = &t_lock;
399 1.12 kiyohara break;
400 1.12 kiyohara case 7:
401 1.12 kiyohara printf("delay time:\n");
402 1.12 kiyohara times = &t_delay;
403 1.12 kiyohara break;
404 1.12 kiyohara case 8:
405 1.12 kiyohara printf("hard interrupt enter to exit:\n");
406 1.12 kiyohara times = &t_hard_int;
407 1.12 kiyohara break;
408 1.12 kiyohara case 9:
409 1.12 kiyohara printf("callback:\n");
410 1.12 kiyohara times = &t_callback;
411 1.12 kiyohara break;
412 1.12 kiyohara }
413 1.12 kiyohara
414 1.12 kiyohara if (times->wraparound)
415 1.12 kiyohara for (i = times->current + 1; i < SLHCI_N_TIMES; i++)
416 1.36 skrll printf("start " CC_TYPE_FMT " stop " CC_TYPE_FMT
417 1.36 skrll " difference %8i miscdata %#x\n",
418 1.36 skrll times->times[i].start, times->times[i].stop,
419 1.36 skrll (int)(times->times[i].stop -
420 1.12 kiyohara times->times[i].start), times->times[i].miscdata);
421 1.12 kiyohara
422 1.12 kiyohara for (i = 0; i < times->current; i++)
423 1.36 skrll printf("start " CC_TYPE_FMT " stop " CC_TYPE_FMT
424 1.36 skrll " difference %8i miscdata %#x\n", times->times[i].start,
425 1.36 skrll times->times[i].stop, (int)(times->times[i].stop -
426 1.12 kiyohara times->times[i].start), times->times[i].miscdata);
427 1.12 kiyohara }
428 1.12 kiyohara #else
429 1.12 kiyohara #define start_cc_time(x, y)
430 1.12 kiyohara #define stop_cc_time(x)
431 1.12 kiyohara #endif /* SLHCI_PROFILE_TRANSFER */
432 1.12 kiyohara
433 1.36 skrll typedef usbd_status (*LockCallFunc)(struct slhci_softc *, struct slhci_pipe
434 1.12 kiyohara *, struct usbd_xfer *);
435 1.12 kiyohara
436 1.48 skrll struct usbd_xfer * slhci_allocx(struct usbd_bus *, unsigned int);
437 1.12 kiyohara void slhci_freex(struct usbd_bus *, struct usbd_xfer *);
438 1.41 skrll static void slhci_get_lock(struct usbd_bus *, kmutex_t **);
439 1.12 kiyohara
440 1.12 kiyohara usbd_status slhci_transfer(struct usbd_xfer *);
441 1.12 kiyohara usbd_status slhci_start(struct usbd_xfer *);
442 1.12 kiyohara usbd_status slhci_root_start(struct usbd_xfer *);
443 1.12 kiyohara usbd_status slhci_open(struct usbd_pipe *);
444 1.12 kiyohara
445 1.48 skrll static int slhci_roothub_ctrl(struct usbd_bus *, usb_device_request_t *,
446 1.48 skrll void *, int);
447 1.48 skrll
448 1.34 skrll /*
449 1.34 skrll * slhci_supported_rev, slhci_preinit, slhci_attach, slhci_detach,
450 1.34 skrll * slhci_activate
451 1.34 skrll */
452 1.12 kiyohara
453 1.12 kiyohara void slhci_abort(struct usbd_xfer *);
454 1.12 kiyohara void slhci_close(struct usbd_pipe *);
455 1.12 kiyohara void slhci_clear_toggle(struct usbd_pipe *);
456 1.12 kiyohara void slhci_poll(struct usbd_bus *);
457 1.12 kiyohara void slhci_done(struct usbd_xfer *);
458 1.12 kiyohara void slhci_void(void *);
459 1.12 kiyohara
460 1.12 kiyohara /* lock entry functions */
461 1.12 kiyohara
462 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
463 1.12 kiyohara void slhci_mem_use(struct usbd_bus *, int);
464 1.12 kiyohara #endif
465 1.12 kiyohara
466 1.12 kiyohara void slhci_reset_entry(void *);
467 1.36 skrll usbd_status slhci_lock_call(struct slhci_softc *, LockCallFunc,
468 1.12 kiyohara struct slhci_pipe *, struct usbd_xfer *);
469 1.12 kiyohara void slhci_start_entry(struct slhci_softc *, struct slhci_pipe *);
470 1.12 kiyohara void slhci_callback_entry(void *arg);
471 1.41 skrll void slhci_do_callback(struct slhci_softc *, struct usbd_xfer *);
472 1.12 kiyohara
473 1.12 kiyohara /* slhci_intr */
474 1.12 kiyohara
475 1.41 skrll void slhci_main(struct slhci_softc *);
476 1.12 kiyohara
477 1.12 kiyohara /* in lock functions */
478 1.12 kiyohara
479 1.12 kiyohara static void slhci_write(struct slhci_softc *, uint8_t, uint8_t);
480 1.12 kiyohara static uint8_t slhci_read(struct slhci_softc *, uint8_t);
481 1.12 kiyohara static void slhci_write_multi(struct slhci_softc *, uint8_t, uint8_t *, int);
482 1.12 kiyohara static void slhci_read_multi(struct slhci_softc *, uint8_t, uint8_t *, int);
483 1.12 kiyohara
484 1.12 kiyohara static void slhci_waitintr(struct slhci_softc *, int);
485 1.12 kiyohara static int slhci_dointr(struct slhci_softc *);
486 1.12 kiyohara static void slhci_abdone(struct slhci_softc *, int);
487 1.12 kiyohara static void slhci_tstart(struct slhci_softc *);
488 1.12 kiyohara static void slhci_dotransfer(struct slhci_softc *);
489 1.12 kiyohara
490 1.41 skrll static void slhci_callback(struct slhci_softc *);
491 1.12 kiyohara static void slhci_enter_xfer(struct slhci_softc *, struct slhci_pipe *);
492 1.12 kiyohara static void slhci_enter_xfers(struct slhci_softc *);
493 1.12 kiyohara static void slhci_queue_timed(struct slhci_softc *, struct slhci_pipe *);
494 1.12 kiyohara static void slhci_xfer_timer(struct slhci_softc *, struct slhci_pipe *);
495 1.12 kiyohara
496 1.12 kiyohara static void slhci_callback_schedule(struct slhci_softc *);
497 1.12 kiyohara static void slhci_do_callback_schedule(struct slhci_softc *);
498 1.12 kiyohara #if 0
499 1.41 skrll void slhci_pollxfer(struct slhci_softc *, struct usbd_xfer *); /* XXX */
500 1.12 kiyohara #endif
501 1.12 kiyohara
502 1.36 skrll static usbd_status slhci_do_poll(struct slhci_softc *, struct slhci_pipe *,
503 1.12 kiyohara struct usbd_xfer *);
504 1.36 skrll static usbd_status slhci_lsvh_warn(struct slhci_softc *, struct slhci_pipe *,
505 1.12 kiyohara struct usbd_xfer *);
506 1.36 skrll static usbd_status slhci_isoc_warn(struct slhci_softc *, struct slhci_pipe *,
507 1.12 kiyohara struct usbd_xfer *);
508 1.36 skrll static usbd_status slhci_open_pipe(struct slhci_softc *, struct slhci_pipe *,
509 1.12 kiyohara struct usbd_xfer *);
510 1.36 skrll static usbd_status slhci_close_pipe(struct slhci_softc *, struct slhci_pipe *,
511 1.12 kiyohara struct usbd_xfer *);
512 1.36 skrll static usbd_status slhci_do_abort(struct slhci_softc *, struct slhci_pipe *,
513 1.12 kiyohara struct usbd_xfer *);
514 1.36 skrll static usbd_status slhci_halt(struct slhci_softc *, struct slhci_pipe *,
515 1.12 kiyohara struct usbd_xfer *);
516 1.12 kiyohara
517 1.12 kiyohara static void slhci_intrchange(struct slhci_softc *, uint8_t);
518 1.12 kiyohara static void slhci_drain(struct slhci_softc *);
519 1.12 kiyohara static void slhci_reset(struct slhci_softc *);
520 1.36 skrll static int slhci_reserve_bustime(struct slhci_softc *, struct slhci_pipe *,
521 1.12 kiyohara int);
522 1.12 kiyohara static void slhci_insert(struct slhci_softc *);
523 1.12 kiyohara
524 1.12 kiyohara static usbd_status slhci_clear_feature(struct slhci_softc *, unsigned int);
525 1.12 kiyohara static usbd_status slhci_set_feature(struct slhci_softc *, unsigned int);
526 1.12 kiyohara static void slhci_get_status(struct slhci_softc *, usb_port_status_t *);
527 1.36 skrll static usbd_status slhci_root(struct slhci_softc *, struct slhci_pipe *,
528 1.12 kiyohara struct usbd_xfer *);
529 1.12 kiyohara
530 1.56 skrll #define SLHCIHIST_FUNC() USBHIST_FUNC()
531 1.56 skrll #define SLHCIHIST_CALLED() USBHIST_CALLED(slhcidebug)
532 1.56 skrll
533 1.12 kiyohara #ifdef SLHCI_DEBUG
534 1.12 kiyohara void slhci_log_buffer(struct usbd_xfer *);
535 1.12 kiyohara void slhci_log_req(usb_device_request_t *);
536 1.12 kiyohara void slhci_log_req_hub(usb_device_request_t *);
537 1.12 kiyohara void slhci_log_dumpreg(void);
538 1.12 kiyohara void slhci_log_xfer(struct usbd_xfer *);
539 1.12 kiyohara void slhci_log_spipe(struct slhci_pipe *);
540 1.12 kiyohara void slhci_print_intr(void);
541 1.12 kiyohara void slhci_log_sc(void);
542 1.12 kiyohara void slhci_log_slreq(struct slhci_pipe *);
543 1.12 kiyohara
544 1.12 kiyohara /* Constified so you can read the values from ddb */
545 1.12 kiyohara const int SLHCI_D_TRACE = 0x0001;
546 1.12 kiyohara const int SLHCI_D_MSG = 0x0002;
547 1.12 kiyohara const int SLHCI_D_XFER = 0x0004;
548 1.12 kiyohara const int SLHCI_D_MEM = 0x0008;
549 1.12 kiyohara const int SLHCI_D_INTR = 0x0010;
550 1.12 kiyohara const int SLHCI_D_SXFER = 0x0020;
551 1.12 kiyohara const int SLHCI_D_ERR = 0x0080;
552 1.12 kiyohara const int SLHCI_D_BUF = 0x0100;
553 1.12 kiyohara const int SLHCI_D_SOFT = 0x0200;
554 1.12 kiyohara const int SLHCI_D_WAIT = 0x0400;
555 1.12 kiyohara const int SLHCI_D_ROOT = 0x0800;
556 1.12 kiyohara /* SOF/NAK alone normally ignored, SOF also needs D_INTR */
557 1.12 kiyohara const int SLHCI_D_SOF = 0x1000;
558 1.12 kiyohara const int SLHCI_D_NAK = 0x2000;
559 1.12 kiyohara
560 1.51 skrll int slhcidebug = 0x1cbc; /* 0xc8c; */ /* 0xffff; */ /* 0xd8c; */
561 1.12 kiyohara
562 1.56 skrll SYSCTL_SETUP(sysctl_hw_slhci_setup, "sysctl hw.slhci setup")
563 1.56 skrll {
564 1.56 skrll int err;
565 1.56 skrll const struct sysctlnode *rnode;
566 1.56 skrll const struct sysctlnode *cnode;
567 1.56 skrll
568 1.56 skrll err = sysctl_createv(clog, 0, NULL, &rnode,
569 1.56 skrll CTLFLAG_PERMANENT, CTLTYPE_NODE, "slhci",
570 1.56 skrll SYSCTL_DESCR("slhci global controls"),
571 1.56 skrll NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL);
572 1.56 skrll
573 1.56 skrll if (err)
574 1.56 skrll goto fail;
575 1.56 skrll
576 1.56 skrll /* control debugging printfs */
577 1.56 skrll err = sysctl_createv(clog, 0, &rnode, &cnode,
578 1.56 skrll CTLFLAG_PERMANENT|CTLFLAG_READWRITE, CTLTYPE_INT,
579 1.56 skrll "debug", SYSCTL_DESCR("Enable debugging output"),
580 1.56 skrll NULL, 0, &slhcidebug, sizeof(slhcidebug), CTL_CREATE, CTL_EOL);
581 1.56 skrll if (err)
582 1.56 skrll goto fail;
583 1.56 skrll
584 1.56 skrll return;
585 1.56 skrll fail:
586 1.56 skrll aprint_error("%s: sysctl_createv failed (err = %d)\n", __func__, err);
587 1.56 skrll }
588 1.28 mrg
589 1.56 skrll struct slhci_softc *ssc;
590 1.12 kiyohara
591 1.51 skrll #define SLHCI_DEXEC(x, y) do { if ((slhcidebug & SLHCI_ ## x)) { y; } \
592 1.12 kiyohara } while (/*CONSTCOND*/ 0)
593 1.56 skrll #define DDOLOG(f, a, b, c, d) do { KERNHIST_LOG(usbhist, f, a, b, c, d); \
594 1.12 kiyohara } while (/*CONSTCOND*/0)
595 1.12 kiyohara #define DLOG(x, f, a, b, c, d) SLHCI_DEXEC(x, DDOLOG(f, a, b, c, d))
596 1.34 skrll /*
597 1.34 skrll * DLOGFLAG8 is a macro not a function so that flag name expressions are not
598 1.37 skrll * evaluated unless the flag bit is set (which could save a register read).
599 1.37 skrll * x is debug mask, y is flag identifier, z is flag variable,
600 1.34 skrll * a-h are flag names (must evaluate to string constants, msb first).
601 1.34 skrll */
602 1.12 kiyohara #define DDOLOGFLAG8(y, z, a, b, c, d, e, f, g, h) do { uint8_t _DLF8 = (z); \
603 1.56 skrll if (_DLF8 & 0xf0) KERNHIST_LOG(usbhist, y " %s %s %s %s", _DLF8 & 0x80 ? \
604 1.12 kiyohara (a) : "", _DLF8 & 0x40 ? (b) : "", _DLF8 & 0x20 ? (c) : "", _DLF8 & 0x10 ? \
605 1.56 skrll (d) : ""); if (_DLF8 & 0x0f) KERNHIST_LOG(usbhist, y " %s %s %s %s", \
606 1.12 kiyohara _DLF8 & 0x08 ? (e) : "", _DLF8 & 0x04 ? (f) : "", _DLF8 & 0x02 ? (g) : "", \
607 1.12 kiyohara _DLF8 & 0x01 ? (h) : ""); \
608 1.12 kiyohara } while (/*CONSTCOND*/ 0)
609 1.12 kiyohara #define DLOGFLAG8(x, y, z, a, b, c, d, e, f, g, h) \
610 1.12 kiyohara SLHCI_DEXEC(x, DDOLOGFLAG8(y, z, a, b, c, d, e, f, g, h))
611 1.34 skrll /*
612 1.34 skrll * DDOLOGBUF logs a buffer up to 8 bytes at a time. No identifier so that we
613 1.34 skrll * can make it a real function.
614 1.34 skrll */
615 1.12 kiyohara static void
616 1.12 kiyohara DDOLOGBUF(uint8_t *buf, unsigned int length)
617 1.12 kiyohara {
618 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
619 1.12 kiyohara int i;
620 1.12 kiyohara
621 1.12 kiyohara for(i=0; i+8 <= length; i+=8)
622 1.12 kiyohara DDOLOG("%.4x %.4x %.4x %.4x", (buf[i] << 8) | buf[i+1],
623 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], (buf[i+4] << 8) | buf[i+5],
624 1.12 kiyohara (buf[i+6] << 8) | buf[i+7]);
625 1.12 kiyohara if (length == i+7)
626 1.12 kiyohara DDOLOG("%.4x %.4x %.4x %.2x", (buf[i] << 8) | buf[i+1],
627 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], (buf[i+4] << 8) | buf[i+5],
628 1.12 kiyohara buf[i+6]);
629 1.12 kiyohara else if (length == i+6)
630 1.12 kiyohara DDOLOG("%.4x %.4x %.4x", (buf[i] << 8) | buf[i+1],
631 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], (buf[i+4] << 8) | buf[i+5], 0);
632 1.12 kiyohara else if (length == i+5)
633 1.12 kiyohara DDOLOG("%.4x %.4x %.2x", (buf[i] << 8) | buf[i+1],
634 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], buf[i+4], 0);
635 1.12 kiyohara else if (length == i+4)
636 1.12 kiyohara DDOLOG("%.4x %.4x", (buf[i] << 8) | buf[i+1],
637 1.12 kiyohara (buf[i+2] << 8) | buf[i+3], 0,0);
638 1.12 kiyohara else if (length == i+3)
639 1.12 kiyohara DDOLOG("%.4x %.2x", (buf[i] << 8) | buf[i+1], buf[i+2], 0,0);
640 1.12 kiyohara else if (length == i+2)
641 1.12 kiyohara DDOLOG("%.4x", (buf[i] << 8) | buf[i+1], 0,0,0);
642 1.12 kiyohara else if (length == i+1)
643 1.12 kiyohara DDOLOG("%.2x", buf[i], 0,0,0);
644 1.12 kiyohara }
645 1.12 kiyohara #define DLOGBUF(x, b, l) SLHCI_DEXEC(x, DDOLOGBUF(b, l))
646 1.12 kiyohara #else /* now !SLHCI_DEBUG */
647 1.56 skrll #define slhcidebug 0
648 1.12 kiyohara #define slhci_log_spipe(spipe) ((void)0)
649 1.12 kiyohara #define slhci_log_xfer(xfer) ((void)0)
650 1.12 kiyohara #define SLHCI_DEXEC(x, y) ((void)0)
651 1.12 kiyohara #define DDOLOG(f, a, b, c, d) ((void)0)
652 1.12 kiyohara #define DLOG(x, f, a, b, c, d) ((void)0)
653 1.12 kiyohara #define DDOLOGFLAG8(y, z, a, b, c, d, e, f, g, h) ((void)0)
654 1.12 kiyohara #define DLOGFLAG8(x, y, z, a, b, c, d, e, f, g, h) ((void)0)
655 1.12 kiyohara #define DDOLOGBUF(b, l) ((void)0)
656 1.12 kiyohara #define DLOGBUF(x, b, l) ((void)0)
657 1.12 kiyohara #endif /* SLHCI_DEBUG */
658 1.12 kiyohara
659 1.12 kiyohara #ifdef DIAGNOSTIC
660 1.12 kiyohara #define LK_SLASSERT(exp, sc, spipe, xfer, ext) do { \
661 1.12 kiyohara if (!(exp)) { \
662 1.12 kiyohara printf("%s: assertion %s failed line %u function %s!" \
663 1.12 kiyohara " halted\n", SC_NAME(sc), #exp, __LINE__, __func__);\
664 1.12 kiyohara DDOLOG("%s: assertion %s failed line %u function %s!" \
665 1.12 kiyohara " halted\n", SC_NAME(sc), #exp, __LINE__, __func__);\
666 1.12 kiyohara slhci_halt(sc, spipe, xfer); \
667 1.12 kiyohara ext; \
668 1.12 kiyohara } \
669 1.12 kiyohara } while (/*CONSTCOND*/0)
670 1.12 kiyohara #define UL_SLASSERT(exp, sc, spipe, xfer, ext) do { \
671 1.12 kiyohara if (!(exp)) { \
672 1.12 kiyohara printf("%s: assertion %s failed line %u function %s!" \
673 1.12 kiyohara " halted\n", SC_NAME(sc), #exp, __LINE__, __func__); \
674 1.12 kiyohara DDOLOG("%s: assertion %s failed line %u function %s!" \
675 1.12 kiyohara " halted\n", SC_NAME(sc), #exp, __LINE__, __func__); \
676 1.12 kiyohara slhci_lock_call(sc, &slhci_halt, spipe, xfer); \
677 1.12 kiyohara ext; \
678 1.12 kiyohara } \
679 1.12 kiyohara } while (/*CONSTCOND*/0)
680 1.12 kiyohara #else
681 1.12 kiyohara #define LK_SLASSERT(exp, sc, spipe, xfer, ext) ((void)0)
682 1.12 kiyohara #define UL_SLASSERT(exp, sc, spipe, xfer, ext) ((void)0)
683 1.12 kiyohara #endif
684 1.12 kiyohara
685 1.12 kiyohara const struct usbd_bus_methods slhci_bus_methods = {
686 1.48 skrll .ubm_open = slhci_open,
687 1.48 skrll .ubm_softint= slhci_void,
688 1.48 skrll .ubm_dopoll = slhci_poll,
689 1.48 skrll .ubm_allocx = slhci_allocx,
690 1.48 skrll .ubm_freex = slhci_freex,
691 1.48 skrll .ubm_getlock = slhci_get_lock,
692 1.48 skrll .ubm_rhctrl = slhci_roothub_ctrl,
693 1.1 isaki };
694 1.1 isaki
695 1.12 kiyohara const struct usbd_pipe_methods slhci_pipe_methods = {
696 1.48 skrll .upm_transfer = slhci_transfer,
697 1.48 skrll .upm_start = slhci_start,
698 1.48 skrll .upm_abort = slhci_abort,
699 1.48 skrll .upm_close = slhci_close,
700 1.48 skrll .upm_cleartoggle = slhci_clear_toggle,
701 1.48 skrll .upm_done = slhci_done,
702 1.1 isaki };
703 1.1 isaki
704 1.12 kiyohara const struct usbd_pipe_methods slhci_root_methods = {
705 1.48 skrll .upm_transfer = slhci_transfer,
706 1.48 skrll .upm_start = slhci_root_start,
707 1.48 skrll .upm_abort = slhci_abort,
708 1.48 skrll .upm_close = (void (*)(struct usbd_pipe *))slhci_void, /* XXX safe? */
709 1.48 skrll .upm_cleartoggle = slhci_clear_toggle,
710 1.48 skrll .upm_done = slhci_done,
711 1.1 isaki };
712 1.1 isaki
713 1.12 kiyohara /* Queue inlines */
714 1.12 kiyohara
715 1.12 kiyohara #define GOT_FIRST_TO(tvar, t) \
716 1.12 kiyohara GCQ_GOT_FIRST_TYPED(tvar, &(t)->to, struct slhci_pipe, to)
717 1.12 kiyohara
718 1.12 kiyohara #define FIND_TO(var, t, tvar, cond) \
719 1.12 kiyohara GCQ_FIND_TYPED(var, &(t)->to, tvar, struct slhci_pipe, to, cond)
720 1.12 kiyohara
721 1.12 kiyohara #define FOREACH_AP(var, t, tvar) \
722 1.12 kiyohara GCQ_FOREACH_TYPED(var, &(t)->ap, tvar, struct slhci_pipe, ap)
723 1.1 isaki
724 1.12 kiyohara #define GOT_FIRST_TIMED_COND(tvar, t, cond) \
725 1.12 kiyohara GCQ_GOT_FIRST_COND_TYPED(tvar, &(t)->timed, struct slhci_pipe, xq, cond)
726 1.1 isaki
727 1.12 kiyohara #define GOT_FIRST_CB(tvar, t) \
728 1.12 kiyohara GCQ_GOT_FIRST_TYPED(tvar, &(t)->q[Q_CB], struct slhci_pipe, xq)
729 1.1 isaki
730 1.12 kiyohara #define DEQUEUED_CALLBACK(tvar, t) \
731 1.12 kiyohara GCQ_DEQUEUED_FIRST_TYPED(tvar, &(t)->q[Q_CALLBACKS], struct slhci_pipe, xq)
732 1.1 isaki
733 1.12 kiyohara #define FIND_TIMED(var, t, tvar, cond) \
734 1.12 kiyohara GCQ_FIND_TYPED(var, &(t)->timed, tvar, struct slhci_pipe, xq, cond)
735 1.1 isaki
736 1.12 kiyohara #define DEQUEUED_WAITQ(tvar, sc) \
737 1.12 kiyohara GCQ_DEQUEUED_FIRST_TYPED(tvar, &(sc)->sc_waitq, struct slhci_pipe, xq)
738 1.1 isaki
739 1.12 kiyohara static inline void
740 1.12 kiyohara enter_waitq(struct slhci_softc *sc, struct slhci_pipe *spipe)
741 1.1 isaki {
742 1.12 kiyohara gcq_insert_tail(&sc->sc_waitq, &spipe->xq);
743 1.1 isaki }
744 1.1 isaki
745 1.1 isaki static inline void
746 1.12 kiyohara enter_q(struct slhci_transfers *t, struct slhci_pipe *spipe, int i)
747 1.1 isaki {
748 1.12 kiyohara gcq_insert_tail(&t->q[i], &spipe->xq);
749 1.1 isaki }
750 1.1 isaki
751 1.1 isaki static inline void
752 1.12 kiyohara enter_callback(struct slhci_transfers *t, struct slhci_pipe *spipe)
753 1.1 isaki {
754 1.12 kiyohara gcq_insert_tail(&t->q[Q_CALLBACKS], &spipe->xq);
755 1.1 isaki }
756 1.1 isaki
757 1.1 isaki static inline void
758 1.12 kiyohara enter_all_pipes(struct slhci_transfers *t, struct slhci_pipe *spipe)
759 1.1 isaki {
760 1.12 kiyohara gcq_insert_tail(&t->ap, &spipe->ap);
761 1.1 isaki }
762 1.1 isaki
763 1.12 kiyohara /* Start out of lock functions. */
764 1.12 kiyohara
765 1.12 kiyohara struct usbd_xfer *
766 1.48 skrll slhci_allocx(struct usbd_bus *bus, unsigned int nframes)
767 1.1 isaki {
768 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
769 1.12 kiyohara struct usbd_xfer *xfer;
770 1.12 kiyohara
771 1.48 skrll xfer = kmem_zalloc(sizeof(*xfer), KM_SLEEP);
772 1.1 isaki
773 1.12 kiyohara DLOG(D_MEM, "allocx %p", xfer, 0,0,0);
774 1.12 kiyohara
775 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
776 1.12 kiyohara slhci_mem_use(bus, 1);
777 1.12 kiyohara #endif
778 1.12 kiyohara #ifdef DIAGNOSTIC
779 1.12 kiyohara if (xfer != NULL)
780 1.48 skrll xfer->ux_state = XFER_BUSY;
781 1.12 kiyohara #endif
782 1.12 kiyohara return xfer;
783 1.12 kiyohara }
784 1.12 kiyohara
785 1.12 kiyohara void
786 1.12 kiyohara slhci_freex(struct usbd_bus *bus, struct usbd_xfer *xfer)
787 1.12 kiyohara {
788 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
789 1.48 skrll DLOG(D_MEM, "freex xfer %p spipe %p", xfer, xfer->ux_pipe,0,0);
790 1.1 isaki
791 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
792 1.12 kiyohara slhci_mem_use(bus, -1);
793 1.12 kiyohara #endif
794 1.12 kiyohara #ifdef DIAGNOSTIC
795 1.48 skrll if (xfer->ux_state != XFER_BUSY) {
796 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
797 1.36 skrll printf("%s: slhci_freex: xfer=%p not busy, %#08x halted\n",
798 1.48 skrll SC_NAME(sc), xfer, xfer->ux_state);
799 1.36 skrll DDOLOG("%s: slhci_freex: xfer=%p not busy, %#08x halted\n",
800 1.48 skrll SC_NAME(sc), xfer, xfer->ux_state, 0);
801 1.12 kiyohara slhci_lock_call(sc, &slhci_halt, NULL, NULL);
802 1.12 kiyohara return;
803 1.1 isaki }
804 1.48 skrll xfer->ux_state = XFER_FREE;
805 1.12 kiyohara #endif
806 1.1 isaki
807 1.48 skrll kmem_free(xfer, sizeof(*xfer));
808 1.12 kiyohara }
809 1.1 isaki
810 1.41 skrll static void
811 1.41 skrll slhci_get_lock(struct usbd_bus *bus, kmutex_t **lock)
812 1.41 skrll {
813 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
814 1.41 skrll
815 1.41 skrll *lock = &sc->sc_lock;
816 1.41 skrll }
817 1.41 skrll
818 1.12 kiyohara usbd_status
819 1.12 kiyohara slhci_transfer(struct usbd_xfer *xfer)
820 1.12 kiyohara {
821 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
822 1.48 skrll struct slhci_softc *sc = SLHCI_XFER2SC(xfer);
823 1.12 kiyohara usbd_status error;
824 1.1 isaki
825 1.36 skrll DLOG(D_TRACE, "%s transfer xfer %p spipe %p ",
826 1.48 skrll pnames(SLHCI_XFER_TYPE(xfer)), xfer, xfer->ux_pipe,0);
827 1.1 isaki
828 1.12 kiyohara /* Insert last in queue */
829 1.41 skrll mutex_enter(&sc->sc_lock);
830 1.12 kiyohara error = usb_insert_transfer(xfer);
831 1.41 skrll mutex_exit(&sc->sc_lock);
832 1.12 kiyohara if (error) {
833 1.12 kiyohara if (error != USBD_IN_PROGRESS)
834 1.36 skrll DLOG(D_ERR, "usb_insert_transfer returns %d!", error,
835 1.12 kiyohara 0,0,0);
836 1.12 kiyohara return error;
837 1.12 kiyohara }
838 1.1 isaki
839 1.12 kiyohara /*
840 1.12 kiyohara * Pipe isn't running (otherwise error would be USBD_INPROG),
841 1.12 kiyohara * so start it first.
842 1.12 kiyohara */
843 1.1 isaki
844 1.34 skrll /*
845 1.41 skrll * Start will take the lock.
846 1.34 skrll */
847 1.48 skrll error = xfer->ux_pipe->up_methods->upm_start(SIMPLEQ_FIRST(&xfer->ux_pipe->up_queue));
848 1.1 isaki
849 1.12 kiyohara return error;
850 1.1 isaki }
851 1.1 isaki
852 1.12 kiyohara /* It is not safe for start to return anything other than USBD_INPROG. */
853 1.12 kiyohara usbd_status
854 1.12 kiyohara slhci_start(struct usbd_xfer *xfer)
855 1.1 isaki {
856 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
857 1.48 skrll struct slhci_softc *sc = SLHCI_XFER2SC(xfer);
858 1.48 skrll struct usbd_pipe *pipe = xfer->ux_pipe;
859 1.48 skrll struct slhci_pipe *spipe = SLHCI_PIPE2SPIPE(pipe);
860 1.41 skrll struct slhci_transfers *t = &sc->sc_transfers;
861 1.48 skrll usb_endpoint_descriptor_t *ed = pipe->up_endpoint->ue_edesc;
862 1.12 kiyohara unsigned int max_packet;
863 1.12 kiyohara
864 1.41 skrll mutex_enter(&sc->sc_lock);
865 1.12 kiyohara
866 1.12 kiyohara max_packet = UGETW(ed->wMaxPacketSize);
867 1.12 kiyohara
868 1.36 skrll DLOG(D_TRACE, "%s start xfer %p spipe %p length %d",
869 1.48 skrll pnames(spipe->ptype), xfer, spipe, xfer->ux_length);
870 1.12 kiyohara
871 1.12 kiyohara /* root transfers use slhci_root_start */
872 1.12 kiyohara
873 1.12 kiyohara KASSERT(spipe->xfer == NULL); /* not SLASSERT */
874 1.12 kiyohara
875 1.48 skrll xfer->ux_actlen = 0;
876 1.48 skrll xfer->ux_status = USBD_IN_PROGRESS;
877 1.12 kiyohara
878 1.12 kiyohara spipe->xfer = xfer;
879 1.12 kiyohara
880 1.12 kiyohara spipe->nerrs = 0;
881 1.12 kiyohara spipe->frame = t->frame;
882 1.12 kiyohara spipe->control = SL11_EPCTRL_ARM_ENABLE;
883 1.48 skrll spipe->tregs[DEV] = pipe->up_dev->ud_addr;
884 1.36 skrll spipe->tregs[PID] = spipe->newpid = UE_GET_ADDR(ed->bEndpointAddress)
885 1.36 skrll | (UE_GET_DIR(ed->bEndpointAddress) == UE_DIR_IN ? SL11_PID_IN :
886 1.12 kiyohara SL11_PID_OUT);
887 1.48 skrll spipe->newlen[0] = xfer->ux_length % max_packet;
888 1.48 skrll spipe->newlen[1] = min(xfer->ux_length, max_packet);
889 1.12 kiyohara
890 1.12 kiyohara if (spipe->ptype == PT_BULK || spipe->ptype == PT_INTR) {
891 1.12 kiyohara if (spipe->pflags & PF_TOGGLE)
892 1.12 kiyohara spipe->control |= SL11_EPCTRL_DATATOGGLE;
893 1.12 kiyohara spipe->tregs[LEN] = spipe->newlen[1];
894 1.36 skrll if (spipe->tregs[LEN])
895 1.48 skrll spipe->buffer = xfer->ux_buf;
896 1.12 kiyohara else
897 1.12 kiyohara spipe->buffer = NULL;
898 1.12 kiyohara spipe->lastframe = t->frame;
899 1.12 kiyohara #if defined(DEBUG) || defined(SLHCI_DEBUG)
900 1.36 skrll if (__predict_false(spipe->ptype == PT_INTR &&
901 1.48 skrll xfer->ux_length > spipe->tregs[LEN])) {
902 1.12 kiyohara printf("%s: Long INTR transfer not supported!\n",
903 1.36 skrll SC_NAME(sc));
904 1.12 kiyohara DDOLOG("%s: Long INTR transfer not supported!\n",
905 1.12 kiyohara SC_NAME(sc), 0,0,0);
906 1.48 skrll xfer->ux_status = USBD_INVAL;
907 1.12 kiyohara }
908 1.1 isaki #endif
909 1.12 kiyohara } else {
910 1.12 kiyohara /* ptype may be currently set to any control transfer type. */
911 1.12 kiyohara SLHCI_DEXEC(D_TRACE, slhci_log_xfer(xfer));
912 1.1 isaki
913 1.12 kiyohara /* SETUP contains IN/OUT bits also */
914 1.12 kiyohara spipe->tregs[PID] |= SL11_PID_SETUP;
915 1.12 kiyohara spipe->tregs[LEN] = 8;
916 1.48 skrll spipe->buffer = (uint8_t *)&xfer->ux_request;
917 1.12 kiyohara DLOGBUF(D_XFER, spipe->buffer, spipe->tregs[LEN]);
918 1.12 kiyohara spipe->ptype = PT_CTRL_SETUP;
919 1.12 kiyohara spipe->newpid &= ~SL11_PID_BITS;
920 1.48 skrll if (xfer->ux_length == 0 || (xfer->ux_request.bmRequestType &
921 1.12 kiyohara UT_READ))
922 1.12 kiyohara spipe->newpid |= SL11_PID_IN;
923 1.12 kiyohara else
924 1.12 kiyohara spipe->newpid |= SL11_PID_OUT;
925 1.12 kiyohara }
926 1.12 kiyohara
927 1.48 skrll if (xfer->ux_flags & USBD_FORCE_SHORT_XFER && spipe->tregs[LEN] ==
928 1.12 kiyohara max_packet && (spipe->newpid & SL11_PID_BITS) == SL11_PID_OUT)
929 1.12 kiyohara spipe->wantshort = 1;
930 1.12 kiyohara else
931 1.12 kiyohara spipe->wantshort = 0;
932 1.12 kiyohara
933 1.34 skrll /*
934 1.34 skrll * The goal of newbustime and newlen is to avoid bustime calculation
935 1.37 skrll * in the interrupt. The calculations are not too complex, but they
936 1.37 skrll * complicate the conditional logic somewhat and doing them all in the
937 1.37 skrll * same place shares constants. Index 0 is "short length" for bulk and
938 1.37 skrll * ctrl data and 1 is "full length" for ctrl data (bulk/intr are
939 1.34 skrll * already set to full length).
940 1.34 skrll */
941 1.12 kiyohara if (spipe->pflags & PF_LS) {
942 1.34 skrll /*
943 1.48 skrll * Setting PREAMBLE for directly connected LS devices will
944 1.34 skrll * lock up the chip.
945 1.34 skrll */
946 1.12 kiyohara if (spipe->pflags & PF_PREAMBLE)
947 1.12 kiyohara spipe->control |= SL11_EPCTRL_PREAMBLE;
948 1.12 kiyohara if (max_packet <= 8) {
949 1.36 skrll spipe->bustime = SLHCI_LS_CONST +
950 1.12 kiyohara SLHCI_LS_DATA_TIME(spipe->tregs[LEN]);
951 1.36 skrll spipe->newbustime[0] = SLHCI_LS_CONST +
952 1.12 kiyohara SLHCI_LS_DATA_TIME(spipe->newlen[0]);
953 1.36 skrll spipe->newbustime[1] = SLHCI_LS_CONST +
954 1.12 kiyohara SLHCI_LS_DATA_TIME(spipe->newlen[1]);
955 1.12 kiyohara } else
956 1.48 skrll xfer->ux_status = USBD_INVAL;
957 1.12 kiyohara } else {
958 1.48 skrll UL_SLASSERT(pipe->up_dev->ud_speed == USB_SPEED_FULL, sc,
959 1.12 kiyohara spipe, xfer, return USBD_IN_PROGRESS);
960 1.12 kiyohara if (max_packet <= SL11_MAX_PACKET_SIZE) {
961 1.36 skrll spipe->bustime = SLHCI_FS_CONST +
962 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->tregs[LEN]);
963 1.36 skrll spipe->newbustime[0] = SLHCI_FS_CONST +
964 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->newlen[0]);
965 1.36 skrll spipe->newbustime[1] = SLHCI_FS_CONST +
966 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->newlen[1]);
967 1.12 kiyohara } else
968 1.48 skrll xfer->ux_status = USBD_INVAL;
969 1.12 kiyohara }
970 1.12 kiyohara
971 1.34 skrll /*
972 1.34 skrll * The datasheet incorrectly indicates that DIRECTION is for
973 1.37 skrll * "transmit to host". It is for OUT and SETUP. The app note
974 1.34 skrll * describes its use correctly.
975 1.34 skrll */
976 1.37 skrll if ((spipe->tregs[PID] & SL11_PID_BITS) != SL11_PID_IN)
977 1.12 kiyohara spipe->control |= SL11_EPCTRL_DIRECTION;
978 1.12 kiyohara
979 1.12 kiyohara slhci_start_entry(sc, spipe);
980 1.1 isaki
981 1.41 skrll mutex_exit(&sc->sc_lock);
982 1.41 skrll
983 1.12 kiyohara return USBD_IN_PROGRESS;
984 1.12 kiyohara }
985 1.1 isaki
986 1.12 kiyohara usbd_status
987 1.12 kiyohara slhci_root_start(struct usbd_xfer *xfer)
988 1.12 kiyohara {
989 1.58 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
990 1.12 kiyohara struct slhci_softc *sc;
991 1.12 kiyohara struct slhci_pipe *spipe;
992 1.1 isaki
993 1.48 skrll spipe = SLHCI_PIPE2SPIPE(xfer->ux_pipe);
994 1.48 skrll sc = SLHCI_XFER2SC(xfer);
995 1.1 isaki
996 1.12 kiyohara return slhci_lock_call(sc, &slhci_root, spipe, xfer);
997 1.1 isaki }
998 1.1 isaki
999 1.1 isaki usbd_status
1000 1.12 kiyohara slhci_open(struct usbd_pipe *pipe)
1001 1.1 isaki {
1002 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1003 1.12 kiyohara struct usbd_device *dev;
1004 1.12 kiyohara struct slhci_softc *sc;
1005 1.12 kiyohara struct slhci_pipe *spipe;
1006 1.12 kiyohara usb_endpoint_descriptor_t *ed;
1007 1.12 kiyohara unsigned int max_packet, pmaxpkt;
1008 1.48 skrll uint8_t rhaddr;
1009 1.12 kiyohara
1010 1.48 skrll dev = pipe->up_dev;
1011 1.48 skrll sc = SLHCI_PIPE2SC(pipe);
1012 1.48 skrll spipe = SLHCI_PIPE2SPIPE(pipe);
1013 1.48 skrll ed = pipe->up_endpoint->ue_edesc;
1014 1.48 skrll rhaddr = dev->ud_bus->ub_rhaddr;
1015 1.12 kiyohara
1016 1.12 kiyohara DLOG(D_TRACE, "slhci_open(addr=%d,ep=%d,rootaddr=%d)",
1017 1.48 skrll dev->ud_addr, ed->bEndpointAddress, rhaddr, 0);
1018 1.12 kiyohara
1019 1.12 kiyohara spipe->pflags = 0;
1020 1.12 kiyohara spipe->frame = 0;
1021 1.12 kiyohara spipe->lastframe = 0;
1022 1.12 kiyohara spipe->xfer = NULL;
1023 1.12 kiyohara spipe->buffer = NULL;
1024 1.12 kiyohara
1025 1.12 kiyohara gcq_init(&spipe->ap);
1026 1.12 kiyohara gcq_init(&spipe->to);
1027 1.12 kiyohara gcq_init(&spipe->xq);
1028 1.12 kiyohara
1029 1.34 skrll /*
1030 1.34 skrll * The endpoint descriptor will not have been set up yet in the case
1031 1.37 skrll * of the standard control pipe, so the max packet checks are also
1032 1.34 skrll * necessary in start.
1033 1.34 skrll */
1034 1.12 kiyohara
1035 1.12 kiyohara max_packet = UGETW(ed->wMaxPacketSize);
1036 1.12 kiyohara
1037 1.48 skrll if (dev->ud_speed == USB_SPEED_LOW) {
1038 1.12 kiyohara spipe->pflags |= PF_LS;
1039 1.48 skrll if (dev->ud_myhub->ud_addr != rhaddr) {
1040 1.12 kiyohara spipe->pflags |= PF_PREAMBLE;
1041 1.12 kiyohara if (!slhci_try_lsvh)
1042 1.36 skrll return slhci_lock_call(sc, &slhci_lsvh_warn,
1043 1.12 kiyohara spipe, NULL);
1044 1.12 kiyohara }
1045 1.12 kiyohara pmaxpkt = 8;
1046 1.12 kiyohara } else
1047 1.12 kiyohara pmaxpkt = SL11_MAX_PACKET_SIZE;
1048 1.12 kiyohara
1049 1.12 kiyohara if (max_packet > pmaxpkt) {
1050 1.36 skrll DLOG(D_ERR, "packet too large! size %d spipe %p", max_packet,
1051 1.12 kiyohara spipe, 0,0);
1052 1.12 kiyohara return USBD_INVAL;
1053 1.12 kiyohara }
1054 1.1 isaki
1055 1.48 skrll if (dev->ud_addr == rhaddr) {
1056 1.1 isaki switch (ed->bEndpointAddress) {
1057 1.1 isaki case USB_CONTROL_ENDPOINT:
1058 1.12 kiyohara spipe->ptype = PT_ROOT_CTRL;
1059 1.48 skrll pipe->up_interval = 0;
1060 1.48 skrll pipe->up_methods = &roothub_ctrl_methods;
1061 1.1 isaki break;
1062 1.48 skrll case UE_DIR_IN | USBROOTHUB_INTR_ENDPT:
1063 1.12 kiyohara spipe->ptype = PT_ROOT_INTR;
1064 1.48 skrll pipe->up_interval = 1;
1065 1.48 skrll pipe->up_methods = &slhci_root_methods;
1066 1.1 isaki break;
1067 1.1 isaki default:
1068 1.12 kiyohara printf("%s: Invalid root endpoint!\n", SC_NAME(sc));
1069 1.36 skrll DDOLOG("%s: Invalid root endpoint!\n", SC_NAME(sc),
1070 1.12 kiyohara 0,0,0);
1071 1.1 isaki return USBD_INVAL;
1072 1.1 isaki }
1073 1.12 kiyohara return USBD_NORMAL_COMPLETION;
1074 1.1 isaki } else {
1075 1.1 isaki switch (ed->bmAttributes & UE_XFERTYPE) {
1076 1.1 isaki case UE_CONTROL:
1077 1.12 kiyohara spipe->ptype = PT_CTRL_SETUP;
1078 1.48 skrll pipe->up_interval = 0;
1079 1.1 isaki break;
1080 1.1 isaki case UE_INTERRUPT:
1081 1.12 kiyohara spipe->ptype = PT_INTR;
1082 1.48 skrll if (pipe->up_interval == USBD_DEFAULT_INTERVAL)
1083 1.48 skrll pipe->up_interval = ed->bInterval;
1084 1.1 isaki break;
1085 1.1 isaki case UE_ISOCHRONOUS:
1086 1.36 skrll return slhci_lock_call(sc, &slhci_isoc_warn, spipe,
1087 1.12 kiyohara NULL);
1088 1.1 isaki case UE_BULK:
1089 1.12 kiyohara spipe->ptype = PT_BULK;
1090 1.48 skrll pipe->up_interval = 0;
1091 1.1 isaki break;
1092 1.1 isaki }
1093 1.12 kiyohara
1094 1.36 skrll DLOG(D_MSG, "open pipe %s interval %d", pnames(spipe->ptype),
1095 1.48 skrll pipe->up_interval, 0,0);
1096 1.12 kiyohara
1097 1.48 skrll pipe->up_methods = __UNCONST(&slhci_pipe_methods);
1098 1.12 kiyohara
1099 1.12 kiyohara return slhci_lock_call(sc, &slhci_open_pipe, spipe, NULL);
1100 1.1 isaki }
1101 1.1 isaki }
1102 1.1 isaki
1103 1.12 kiyohara int
1104 1.12 kiyohara slhci_supported_rev(uint8_t rev)
1105 1.1 isaki {
1106 1.48 skrll return rev >= SLTYPE_SL811HS_R12 && rev <= SLTYPE_SL811HS_R15;
1107 1.1 isaki }
1108 1.1 isaki
1109 1.34 skrll /*
1110 1.34 skrll * Must be called before the ISR is registered. Interrupts can be shared so
1111 1.37 skrll * slhci_intr could be called as soon as the ISR is registered.
1112 1.34 skrll * Note max_current argument is actual current, but stored as current/2
1113 1.34 skrll */
1114 1.1 isaki void
1115 1.36 skrll slhci_preinit(struct slhci_softc *sc, PowerFunc pow, bus_space_tag_t iot,
1116 1.29 kiyohara bus_space_handle_t ioh, uint16_t max_current, uint32_t stride)
1117 1.1 isaki {
1118 1.12 kiyohara struct slhci_transfers *t;
1119 1.12 kiyohara int i;
1120 1.12 kiyohara
1121 1.12 kiyohara t = &sc->sc_transfers;
1122 1.12 kiyohara
1123 1.41 skrll mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_SOFTUSB);
1124 1.57 skrll mutex_init(&sc->sc_intr_lock, MUTEX_DEFAULT, IPL_USB);
1125 1.41 skrll
1126 1.12 kiyohara /* sc->sc_ier = 0; */
1127 1.12 kiyohara /* t->rootintr = NULL; */
1128 1.12 kiyohara t->flags = F_NODEV|F_UDISABLED;
1129 1.12 kiyohara t->pend = INT_MAX;
1130 1.12 kiyohara KASSERT(slhci_wait_time != INT_MAX);
1131 1.12 kiyohara t->len[0] = t->len[1] = -1;
1132 1.12 kiyohara if (max_current > 500)
1133 1.12 kiyohara max_current = 500;
1134 1.12 kiyohara t->max_current = (uint8_t)(max_current / 2);
1135 1.12 kiyohara sc->sc_enable_power = pow;
1136 1.12 kiyohara sc->sc_iot = iot;
1137 1.12 kiyohara sc->sc_ioh = ioh;
1138 1.12 kiyohara sc->sc_stride = stride;
1139 1.12 kiyohara
1140 1.12 kiyohara KASSERT(Q_MAX+1 == sizeof(t->q) / sizeof(t->q[0]));
1141 1.12 kiyohara
1142 1.12 kiyohara for (i = 0; i <= Q_MAX; i++)
1143 1.12 kiyohara gcq_init_head(&t->q[i]);
1144 1.12 kiyohara gcq_init_head(&t->timed);
1145 1.12 kiyohara gcq_init_head(&t->to);
1146 1.12 kiyohara gcq_init_head(&t->ap);
1147 1.12 kiyohara gcq_init_head(&sc->sc_waitq);
1148 1.1 isaki }
1149 1.1 isaki
1150 1.12 kiyohara int
1151 1.12 kiyohara slhci_attach(struct slhci_softc *sc)
1152 1.1 isaki {
1153 1.41 skrll struct slhci_transfers *t;
1154 1.41 skrll const char *rev;
1155 1.41 skrll
1156 1.41 skrll t = &sc->sc_transfers;
1157 1.41 skrll
1158 1.41 skrll /* Detect and check the controller type */
1159 1.41 skrll t->sltype = SL11_GET_REV(slhci_read(sc, SL11_REV));
1160 1.41 skrll
1161 1.41 skrll /* SL11H not supported */
1162 1.41 skrll if (!slhci_supported_rev(t->sltype)) {
1163 1.41 skrll if (t->sltype == SLTYPE_SL11H)
1164 1.41 skrll printf("%s: SL11H unsupported or bus error!\n",
1165 1.41 skrll SC_NAME(sc));
1166 1.41 skrll else
1167 1.41 skrll printf("%s: Unknown chip revision!\n", SC_NAME(sc));
1168 1.12 kiyohara return -1;
1169 1.41 skrll }
1170 1.41 skrll
1171 1.41 skrll callout_init(&sc->sc_timer, CALLOUT_MPSAFE);
1172 1.41 skrll callout_setfunc(&sc->sc_timer, slhci_reset_entry, sc);
1173 1.41 skrll
1174 1.41 skrll /*
1175 1.41 skrll * It is not safe to call the soft interrupt directly as
1176 1.48 skrll * usb_schedsoftintr does in the ub_usepolling case (due to locking).
1177 1.41 skrll */
1178 1.41 skrll sc->sc_cb_softintr = softint_establish(SOFTINT_NET,
1179 1.41 skrll slhci_callback_entry, sc);
1180 1.41 skrll
1181 1.41 skrll #ifdef SLHCI_DEBUG
1182 1.41 skrll ssc = sc;
1183 1.41 skrll #endif
1184 1.41 skrll
1185 1.41 skrll if (t->sltype == SLTYPE_SL811HS_R12)
1186 1.54 skrll rev = "(rev 1.2)";
1187 1.41 skrll else if (t->sltype == SLTYPE_SL811HS_R14)
1188 1.54 skrll rev = "(rev 1.4 or 1.5)";
1189 1.41 skrll else
1190 1.54 skrll rev = "(unknown revision)";
1191 1.41 skrll
1192 1.41 skrll aprint_normal("%s: ScanLogic SL811HS/T USB Host Controller %s\n",
1193 1.41 skrll SC_NAME(sc), rev);
1194 1.41 skrll
1195 1.41 skrll aprint_normal("%s: Max Current %u mA (value by code, not by probe)\n",
1196 1.41 skrll SC_NAME(sc), t->max_current * 2);
1197 1.41 skrll
1198 1.41 skrll #if defined(SLHCI_DEBUG) || defined(SLHCI_NO_OVERTIME) || \
1199 1.41 skrll defined(SLHCI_TRY_LSVH) || defined(SLHCI_PROFILE_TRANSFER)
1200 1.41 skrll aprint_normal("%s: driver options:"
1201 1.41 skrll #ifdef SLHCI_DEBUG
1202 1.41 skrll " SLHCI_DEBUG"
1203 1.41 skrll #endif
1204 1.41 skrll #ifdef SLHCI_TRY_LSVH
1205 1.41 skrll " SLHCI_TRY_LSVH"
1206 1.41 skrll #endif
1207 1.41 skrll #ifdef SLHCI_NO_OVERTIME
1208 1.41 skrll " SLHCI_NO_OVERTIME"
1209 1.41 skrll #endif
1210 1.41 skrll #ifdef SLHCI_PROFILE_TRANSFER
1211 1.41 skrll " SLHCI_PROFILE_TRANSFER"
1212 1.41 skrll #endif
1213 1.41 skrll "\n", SC_NAME(sc));
1214 1.41 skrll #endif
1215 1.48 skrll sc->sc_bus.ub_revision = USBREV_1_1;
1216 1.48 skrll sc->sc_bus.ub_methods = __UNCONST(&slhci_bus_methods);
1217 1.48 skrll sc->sc_bus.ub_pipesize = sizeof(struct slhci_pipe);
1218 1.48 skrll sc->sc_bus.ub_usedma = false;
1219 1.41 skrll
1220 1.41 skrll if (!sc->sc_enable_power)
1221 1.41 skrll t->flags |= F_REALPOWER;
1222 1.41 skrll
1223 1.41 skrll t->flags |= F_ACTIVE;
1224 1.1 isaki
1225 1.12 kiyohara /* Attach usb and uhub. */
1226 1.12 kiyohara sc->sc_child = config_found(SC_DEV(sc), &sc->sc_bus, usbctlprint);
1227 1.1 isaki
1228 1.12 kiyohara if (!sc->sc_child)
1229 1.12 kiyohara return -1;
1230 1.12 kiyohara else
1231 1.12 kiyohara return 0;
1232 1.1 isaki }
1233 1.1 isaki
1234 1.12 kiyohara int
1235 1.12 kiyohara slhci_detach(struct slhci_softc *sc, int flags)
1236 1.1 isaki {
1237 1.12 kiyohara struct slhci_transfers *t;
1238 1.12 kiyohara int ret;
1239 1.1 isaki
1240 1.12 kiyohara t = &sc->sc_transfers;
1241 1.12 kiyohara
1242 1.12 kiyohara /* By this point bus access is no longer allowed. */
1243 1.12 kiyohara
1244 1.12 kiyohara KASSERT(!(t->flags & F_ACTIVE));
1245 1.12 kiyohara
1246 1.34 skrll /*
1247 1.34 skrll * To be MPSAFE is not sufficient to cancel callouts and soft
1248 1.13 kiyohara * interrupts and assume they are dead since the code could already be
1249 1.34 skrll * running or about to run. Wait until they are known to be done.
1250 1.34 skrll */
1251 1.12 kiyohara while (t->flags & (F_RESET|F_CALLBACK))
1252 1.12 kiyohara tsleep(&sc, PPAUSE, "slhci_detach", hz);
1253 1.12 kiyohara
1254 1.16 ad softint_disestablish(sc->sc_cb_softintr);
1255 1.12 kiyohara
1256 1.41 skrll mutex_destroy(&sc->sc_lock);
1257 1.41 skrll mutex_destroy(&sc->sc_intr_lock);
1258 1.41 skrll
1259 1.12 kiyohara ret = 0;
1260 1.12 kiyohara
1261 1.12 kiyohara if (sc->sc_child)
1262 1.12 kiyohara ret = config_detach(sc->sc_child, flags);
1263 1.12 kiyohara
1264 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
1265 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1266 1.12 kiyohara if (sc->sc_mem_use) {
1267 1.12 kiyohara printf("%s: Memory still in use after detach! mem_use (count)"
1268 1.12 kiyohara " = %d\n", SC_NAME(sc), sc->sc_mem_use);
1269 1.12 kiyohara DDOLOG("%s: Memory still in use after detach! mem_use (count)"
1270 1.12 kiyohara " = %d\n", SC_NAME(sc), sc->sc_mem_use, 0,0);
1271 1.12 kiyohara }
1272 1.12 kiyohara #endif
1273 1.12 kiyohara
1274 1.12 kiyohara return ret;
1275 1.12 kiyohara }
1276 1.12 kiyohara
1277 1.12 kiyohara int
1278 1.23 cegger slhci_activate(device_t self, enum devact act)
1279 1.12 kiyohara {
1280 1.24 dyoung struct slhci_softc *sc = device_private(self);
1281 1.12 kiyohara
1282 1.24 dyoung switch (act) {
1283 1.24 dyoung case DVACT_DEACTIVATE:
1284 1.24 dyoung slhci_lock_call(sc, &slhci_halt, NULL, NULL);
1285 1.24 dyoung return 0;
1286 1.24 dyoung default:
1287 1.12 kiyohara return EOPNOTSUPP;
1288 1.24 dyoung }
1289 1.12 kiyohara }
1290 1.1 isaki
1291 1.1 isaki void
1292 1.12 kiyohara slhci_abort(struct usbd_xfer *xfer)
1293 1.1 isaki {
1294 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1295 1.12 kiyohara struct slhci_softc *sc;
1296 1.12 kiyohara struct slhci_pipe *spipe;
1297 1.12 kiyohara
1298 1.48 skrll spipe = SLHCI_PIPE2SPIPE(xfer->ux_pipe);
1299 1.12 kiyohara
1300 1.12 kiyohara if (spipe == NULL)
1301 1.12 kiyohara goto callback;
1302 1.12 kiyohara
1303 1.48 skrll sc = SLHCI_XFER2SC(xfer);
1304 1.46 joerg KASSERT(mutex_owned(&sc->sc_lock));
1305 1.46 joerg
1306 1.36 skrll DLOG(D_TRACE, "%s abort xfer %p spipe %p spipe->xfer %p",
1307 1.12 kiyohara pnames(spipe->ptype), xfer, spipe, spipe->xfer);
1308 1.12 kiyohara
1309 1.12 kiyohara slhci_lock_call(sc, &slhci_do_abort, spipe, xfer);
1310 1.1 isaki
1311 1.12 kiyohara callback:
1312 1.48 skrll xfer->ux_status = USBD_CANCELLED;
1313 1.12 kiyohara usb_transfer_complete(xfer);
1314 1.1 isaki }
1315 1.1 isaki
1316 1.12 kiyohara void
1317 1.12 kiyohara slhci_close(struct usbd_pipe *pipe)
1318 1.1 isaki {
1319 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1320 1.12 kiyohara struct slhci_softc *sc;
1321 1.12 kiyohara struct slhci_pipe *spipe;
1322 1.1 isaki
1323 1.48 skrll sc = SLHCI_PIPE2SC(pipe);
1324 1.48 skrll spipe = SLHCI_PIPE2SPIPE(pipe);
1325 1.1 isaki
1326 1.36 skrll DLOG(D_TRACE, "%s close spipe %p spipe->xfer %p",
1327 1.12 kiyohara pnames(spipe->ptype), spipe, spipe->xfer, 0);
1328 1.1 isaki
1329 1.12 kiyohara slhci_lock_call(sc, &slhci_close_pipe, spipe, NULL);
1330 1.1 isaki }
1331 1.1 isaki
1332 1.1 isaki void
1333 1.12 kiyohara slhci_clear_toggle(struct usbd_pipe *pipe)
1334 1.1 isaki {
1335 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1336 1.12 kiyohara struct slhci_pipe *spipe;
1337 1.12 kiyohara
1338 1.48 skrll spipe = SLHCI_PIPE2SPIPE(pipe);
1339 1.12 kiyohara
1340 1.36 skrll DLOG(D_TRACE, "%s toggle spipe %p", pnames(spipe->ptype),
1341 1.12 kiyohara spipe,0,0);
1342 1.1 isaki
1343 1.12 kiyohara spipe->pflags &= ~PF_TOGGLE;
1344 1.2 isaki
1345 1.2 isaki #ifdef DIAGNOSTIC
1346 1.12 kiyohara if (spipe->xfer != NULL) {
1347 1.36 skrll struct slhci_softc *sc = (struct slhci_softc
1348 1.48 skrll *)pipe->up_dev->ud_bus;
1349 1.12 kiyohara
1350 1.36 skrll printf("%s: Clear toggle on transfer in progress! halted\n",
1351 1.12 kiyohara SC_NAME(sc));
1352 1.36 skrll DDOLOG("%s: Clear toggle on transfer in progress! halted\n",
1353 1.12 kiyohara SC_NAME(sc), 0,0,0);
1354 1.12 kiyohara slhci_halt(sc, NULL, NULL);
1355 1.2 isaki }
1356 1.2 isaki #endif
1357 1.1 isaki }
1358 1.1 isaki
1359 1.1 isaki void
1360 1.12 kiyohara slhci_poll(struct usbd_bus *bus) /* XXX necessary? */
1361 1.1 isaki {
1362 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1363 1.12 kiyohara struct slhci_softc *sc;
1364 1.12 kiyohara
1365 1.48 skrll sc = SLHCI_BUS2SC(bus);
1366 1.12 kiyohara
1367 1.12 kiyohara DLOG(D_TRACE, "slhci_poll", 0,0,0,0);
1368 1.12 kiyohara
1369 1.12 kiyohara slhci_lock_call(sc, &slhci_do_poll, NULL, NULL);
1370 1.1 isaki }
1371 1.1 isaki
1372 1.12 kiyohara void
1373 1.12 kiyohara slhci_done(struct usbd_xfer *xfer)
1374 1.12 kiyohara {
1375 1.12 kiyohara /* xfer may not be valid here */
1376 1.12 kiyohara }
1377 1.1 isaki
1378 1.12 kiyohara void
1379 1.12 kiyohara slhci_void(void *v) {}
1380 1.1 isaki
1381 1.12 kiyohara /* End out of lock functions. Start lock entry functions. */
1382 1.1 isaki
1383 1.12 kiyohara #ifdef SLHCI_MEM_ACCOUNTING
1384 1.12 kiyohara void
1385 1.12 kiyohara slhci_mem_use(struct usbd_bus *bus, int val)
1386 1.12 kiyohara {
1387 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
1388 1.1 isaki
1389 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1390 1.12 kiyohara sc->sc_mem_use += val;
1391 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1392 1.12 kiyohara }
1393 1.12 kiyohara #endif
1394 1.1 isaki
1395 1.12 kiyohara void
1396 1.12 kiyohara slhci_reset_entry(void *arg)
1397 1.1 isaki {
1398 1.59 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1399 1.41 skrll struct slhci_softc *sc = arg;
1400 1.12 kiyohara
1401 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1402 1.12 kiyohara slhci_reset(sc);
1403 1.34 skrll /*
1404 1.39 skrll * We cannot call the callback directly since we could then be reset
1405 1.37 skrll * again before finishing and need the callout delay for timing.
1406 1.37 skrll * Scheduling the callout again before we exit would defeat the reap
1407 1.37 skrll * mechanism since we could be unlocked while the reset flag is not
1408 1.34 skrll * set. The callback code will check the wait queue.
1409 1.34 skrll */
1410 1.12 kiyohara slhci_callback_schedule(sc);
1411 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1412 1.1 isaki }
1413 1.1 isaki
1414 1.1 isaki usbd_status
1415 1.36 skrll slhci_lock_call(struct slhci_softc *sc, LockCallFunc lcf, struct slhci_pipe
1416 1.12 kiyohara *spipe, struct usbd_xfer *xfer)
1417 1.12 kiyohara {
1418 1.12 kiyohara usbd_status ret;
1419 1.12 kiyohara
1420 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1421 1.12 kiyohara ret = (*lcf)(sc, spipe, xfer);
1422 1.41 skrll slhci_main(sc);
1423 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1424 1.12 kiyohara
1425 1.12 kiyohara return ret;
1426 1.12 kiyohara }
1427 1.12 kiyohara
1428 1.12 kiyohara void
1429 1.12 kiyohara slhci_start_entry(struct slhci_softc *sc, struct slhci_pipe *spipe)
1430 1.1 isaki {
1431 1.12 kiyohara struct slhci_transfers *t;
1432 1.1 isaki
1433 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1434 1.12 kiyohara t = &sc->sc_transfers;
1435 1.1 isaki
1436 1.41 skrll if (!(t->flags & (F_AINPROG|F_BINPROG))) {
1437 1.12 kiyohara slhci_enter_xfer(sc, spipe);
1438 1.12 kiyohara slhci_dotransfer(sc);
1439 1.41 skrll slhci_main(sc);
1440 1.12 kiyohara } else {
1441 1.12 kiyohara enter_waitq(sc, spipe);
1442 1.1 isaki }
1443 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1444 1.1 isaki }
1445 1.1 isaki
1446 1.12 kiyohara void
1447 1.12 kiyohara slhci_callback_entry(void *arg)
1448 1.1 isaki {
1449 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1450 1.12 kiyohara struct slhci_softc *sc;
1451 1.12 kiyohara struct slhci_transfers *t;
1452 1.1 isaki
1453 1.41 skrll sc = (struct slhci_softc *)arg;
1454 1.1 isaki
1455 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1456 1.12 kiyohara t = &sc->sc_transfers;
1457 1.12 kiyohara DLOG(D_SOFT, "callback_entry flags %#x", t->flags, 0,0,0);
1458 1.1 isaki
1459 1.12 kiyohara repeat:
1460 1.41 skrll slhci_callback(sc);
1461 1.1 isaki
1462 1.12 kiyohara if (!gcq_empty(&sc->sc_waitq)) {
1463 1.12 kiyohara slhci_enter_xfers(sc);
1464 1.12 kiyohara slhci_dotransfer(sc);
1465 1.12 kiyohara slhci_waitintr(sc, 0);
1466 1.12 kiyohara goto repeat;
1467 1.12 kiyohara }
1468 1.1 isaki
1469 1.12 kiyohara t->flags &= ~F_CALLBACK;
1470 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1471 1.1 isaki }
1472 1.1 isaki
1473 1.1 isaki void
1474 1.41 skrll slhci_do_callback(struct slhci_softc *sc, struct usbd_xfer *xfer)
1475 1.1 isaki {
1476 1.62 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1477 1.43 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1478 1.12 kiyohara
1479 1.12 kiyohara start_cc_time(&t_callback, (u_int)xfer);
1480 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1481 1.12 kiyohara
1482 1.41 skrll mutex_enter(&sc->sc_lock);
1483 1.12 kiyohara usb_transfer_complete(xfer);
1484 1.41 skrll mutex_exit(&sc->sc_lock);
1485 1.12 kiyohara
1486 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1487 1.12 kiyohara stop_cc_time(&t_callback);
1488 1.1 isaki }
1489 1.1 isaki
1490 1.12 kiyohara int
1491 1.12 kiyohara slhci_intr(void *arg)
1492 1.1 isaki {
1493 1.58 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1494 1.41 skrll struct slhci_softc *sc = arg;
1495 1.12 kiyohara int ret;
1496 1.12 kiyohara
1497 1.12 kiyohara start_cc_time(&t_hard_int, (unsigned int)arg);
1498 1.41 skrll mutex_enter(&sc->sc_intr_lock);
1499 1.12 kiyohara
1500 1.12 kiyohara ret = slhci_dointr(sc);
1501 1.41 skrll slhci_main(sc);
1502 1.41 skrll mutex_exit(&sc->sc_intr_lock);
1503 1.12 kiyohara
1504 1.12 kiyohara stop_cc_time(&t_hard_int);
1505 1.12 kiyohara return ret;
1506 1.1 isaki }
1507 1.1 isaki
1508 1.12 kiyohara /* called with main lock only held, returns with locks released. */
1509 1.1 isaki void
1510 1.41 skrll slhci_main(struct slhci_softc *sc)
1511 1.1 isaki {
1512 1.58 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1513 1.12 kiyohara struct slhci_transfers *t;
1514 1.12 kiyohara
1515 1.12 kiyohara t = &sc->sc_transfers;
1516 1.1 isaki
1517 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1518 1.1 isaki
1519 1.12 kiyohara waitcheck:
1520 1.12 kiyohara slhci_waitintr(sc, slhci_wait_time);
1521 1.1 isaki
1522 1.1 isaki /*
1523 1.48 skrll * The direct call is needed in the ub_usepolling and disabled cases
1524 1.36 skrll * since the soft interrupt is not available. In the disabled case,
1525 1.36 skrll * this code can be reached from the usb detach, after the reaping of
1526 1.41 skrll * the soft interrupt. That test could be !F_ACTIVE, but there is no
1527 1.41 skrll * reason not to make the callbacks directly in the other DISABLED
1528 1.41 skrll * cases.
1529 1.1 isaki */
1530 1.12 kiyohara if ((t->flags & F_ROOTINTR) || !gcq_empty(&t->q[Q_CALLBACKS])) {
1531 1.48 skrll if (__predict_false(sc->sc_bus.ub_usepolling ||
1532 1.41 skrll t->flags & F_DISABLED))
1533 1.41 skrll slhci_callback(sc);
1534 1.12 kiyohara else
1535 1.12 kiyohara slhci_callback_schedule(sc);
1536 1.12 kiyohara }
1537 1.12 kiyohara
1538 1.12 kiyohara if (!gcq_empty(&sc->sc_waitq)) {
1539 1.12 kiyohara slhci_enter_xfers(sc);
1540 1.12 kiyohara slhci_dotransfer(sc);
1541 1.12 kiyohara goto waitcheck;
1542 1.12 kiyohara }
1543 1.1 isaki }
1544 1.1 isaki
1545 1.12 kiyohara /* End lock entry functions. Start in lock function. */
1546 1.12 kiyohara
1547 1.12 kiyohara /* Register read/write routines and barriers. */
1548 1.12 kiyohara #ifdef SLHCI_BUS_SPACE_BARRIERS
1549 1.12 kiyohara #define BSB(a, b, c, d, e) bus_space_barrier(a, b, c, d, BUS_SPACE_BARRIER_ # e)
1550 1.12 kiyohara #define BSB_SYNC(a, b, c, d) bus_space_barrier(a, b, c, d, BUS_SPACE_BARRIER_SYNC)
1551 1.12 kiyohara #else /* now !SLHCI_BUS_SPACE_BARRIERS */
1552 1.47 christos #define BSB(a, b, c, d, e) __USE(d)
1553 1.12 kiyohara #define BSB_SYNC(a, b, c, d)
1554 1.12 kiyohara #endif /* SLHCI_BUS_SPACE_BARRIERS */
1555 1.12 kiyohara
1556 1.12 kiyohara static void
1557 1.12 kiyohara slhci_write(struct slhci_softc *sc, uint8_t addr, uint8_t data)
1558 1.1 isaki {
1559 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1560 1.12 kiyohara bus_space_tag_t iot;
1561 1.12 kiyohara bus_space_handle_t ioh;
1562 1.12 kiyohara
1563 1.12 kiyohara paddr = pst = 0;
1564 1.12 kiyohara pdata = sc->sc_stride;
1565 1.12 kiyohara psz = pdata * 2;
1566 1.12 kiyohara iot = sc->sc_iot;
1567 1.12 kiyohara ioh = sc->sc_ioh;
1568 1.12 kiyohara
1569 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1570 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1571 1.12 kiyohara bus_space_write_1(iot, ioh, pdata, data);
1572 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1573 1.12 kiyohara }
1574 1.12 kiyohara
1575 1.12 kiyohara static uint8_t
1576 1.12 kiyohara slhci_read(struct slhci_softc *sc, uint8_t addr)
1577 1.12 kiyohara {
1578 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1579 1.12 kiyohara bus_space_tag_t iot;
1580 1.12 kiyohara bus_space_handle_t ioh;
1581 1.12 kiyohara uint8_t data;
1582 1.12 kiyohara
1583 1.12 kiyohara paddr = pst = 0;
1584 1.12 kiyohara pdata = sc->sc_stride;
1585 1.12 kiyohara psz = pdata * 2;
1586 1.12 kiyohara iot = sc->sc_iot;
1587 1.12 kiyohara ioh = sc->sc_ioh;
1588 1.12 kiyohara
1589 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1590 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_READ);
1591 1.12 kiyohara data = bus_space_read_1(iot, ioh, pdata);
1592 1.12 kiyohara BSB(iot, ioh, pst, psz, READ_BEFORE_WRITE);
1593 1.12 kiyohara return data;
1594 1.12 kiyohara }
1595 1.1 isaki
1596 1.12 kiyohara #if 0 /* auto-increment mode broken, see errata doc */
1597 1.12 kiyohara static void
1598 1.12 kiyohara slhci_write_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1599 1.12 kiyohara {
1600 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1601 1.12 kiyohara bus_space_tag_t iot;
1602 1.12 kiyohara bus_space_handle_t ioh;
1603 1.12 kiyohara
1604 1.12 kiyohara paddr = pst = 0;
1605 1.12 kiyohara pdata = sc->sc_stride;
1606 1.12 kiyohara psz = pdata * 2;
1607 1.12 kiyohara iot = sc->sc_iot;
1608 1.12 kiyohara ioh = sc->sc_ioh;
1609 1.12 kiyohara
1610 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1611 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1612 1.12 kiyohara bus_space_write_multi_1(iot, ioh, pdata, buf, l);
1613 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1614 1.12 kiyohara }
1615 1.1 isaki
1616 1.12 kiyohara static void
1617 1.12 kiyohara slhci_read_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1618 1.12 kiyohara {
1619 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1620 1.12 kiyohara bus_space_tag_t iot;
1621 1.12 kiyohara bus_space_handle_t ioh;
1622 1.12 kiyohara
1623 1.12 kiyohara paddr = pst = 0;
1624 1.12 kiyohara pdata = sc->sc_stride;
1625 1.12 kiyohara psz = pdata * 2;
1626 1.12 kiyohara iot = sc->sc_iot;
1627 1.12 kiyohara ioh = sc->sc_ioh;
1628 1.12 kiyohara
1629 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1630 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_READ);
1631 1.12 kiyohara bus_space_read_multi_1(iot, ioh, pdata, buf, l);
1632 1.12 kiyohara BSB(iot, ioh, pst, psz, READ_BEFORE_WRITE);
1633 1.1 isaki }
1634 1.12 kiyohara #else
1635 1.1 isaki static void
1636 1.12 kiyohara slhci_write_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1637 1.1 isaki {
1638 1.12 kiyohara #if 1
1639 1.12 kiyohara for (; l; addr++, buf++, l--)
1640 1.12 kiyohara slhci_write(sc, addr, *buf);
1641 1.12 kiyohara #else
1642 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1643 1.12 kiyohara bus_space_tag_t iot;
1644 1.12 kiyohara bus_space_handle_t ioh;
1645 1.12 kiyohara
1646 1.12 kiyohara paddr = pst = 0;
1647 1.12 kiyohara pdata = sc->sc_stride;
1648 1.12 kiyohara psz = pdata * 2;
1649 1.12 kiyohara iot = sc->sc_iot;
1650 1.12 kiyohara ioh = sc->sc_ioh;
1651 1.12 kiyohara
1652 1.12 kiyohara for (; l; addr++, buf++, l--) {
1653 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1654 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1655 1.12 kiyohara bus_space_write_1(iot, ioh, pdata, *buf);
1656 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_WRITE);
1657 1.12 kiyohara }
1658 1.12 kiyohara #endif
1659 1.1 isaki }
1660 1.1 isaki
1661 1.1 isaki static void
1662 1.12 kiyohara slhci_read_multi(struct slhci_softc *sc, uint8_t addr, uint8_t *buf, int l)
1663 1.1 isaki {
1664 1.12 kiyohara #if 1
1665 1.12 kiyohara for (; l; addr++, buf++, l--)
1666 1.12 kiyohara *buf = slhci_read(sc, addr);
1667 1.12 kiyohara #else
1668 1.12 kiyohara bus_size_t paddr, pdata, pst, psz;
1669 1.12 kiyohara bus_space_tag_t iot;
1670 1.12 kiyohara bus_space_handle_t ioh;
1671 1.12 kiyohara
1672 1.12 kiyohara paddr = pst = 0;
1673 1.12 kiyohara pdata = sc->sc_stride;
1674 1.12 kiyohara psz = pdata * 2;
1675 1.12 kiyohara iot = sc->sc_iot;
1676 1.12 kiyohara ioh = sc->sc_ioh;
1677 1.12 kiyohara
1678 1.12 kiyohara for (; l; addr++, buf++, l--) {
1679 1.12 kiyohara bus_space_write_1(iot, ioh, paddr, addr);
1680 1.12 kiyohara BSB(iot, ioh, pst, psz, WRITE_BEFORE_READ);
1681 1.12 kiyohara *buf = bus_space_read_1(iot, ioh, pdata);
1682 1.12 kiyohara BSB(iot, ioh, pst, psz, READ_BEFORE_WRITE);
1683 1.12 kiyohara }
1684 1.12 kiyohara #endif
1685 1.12 kiyohara }
1686 1.12 kiyohara #endif
1687 1.12 kiyohara
1688 1.34 skrll /*
1689 1.34 skrll * After calling waitintr it is necessary to either call slhci_callback or
1690 1.37 skrll * schedule the callback if necessary. The callback cannot be called directly
1691 1.37 skrll * from the hard interrupt since it interrupts at a high IPL and callbacks
1692 1.34 skrll * can do copyout and such.
1693 1.34 skrll */
1694 1.12 kiyohara static void
1695 1.12 kiyohara slhci_waitintr(struct slhci_softc *sc, int wait_time)
1696 1.12 kiyohara {
1697 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1698 1.12 kiyohara struct slhci_transfers *t;
1699 1.12 kiyohara
1700 1.12 kiyohara t = &sc->sc_transfers;
1701 1.12 kiyohara
1702 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1703 1.12 kiyohara
1704 1.48 skrll if (__predict_false(sc->sc_bus.ub_usepolling))
1705 1.12 kiyohara wait_time = 12000;
1706 1.12 kiyohara
1707 1.12 kiyohara while (t->pend <= wait_time) {
1708 1.36 skrll DLOG(D_WAIT, "waiting... frame %d pend %d flags %#x",
1709 1.12 kiyohara t->frame, t->pend, t->flags, 0);
1710 1.12 kiyohara LK_SLASSERT(t->flags & F_ACTIVE, sc, NULL, NULL, return);
1711 1.36 skrll LK_SLASSERT(t->flags & (F_AINPROG|F_BINPROG), sc, NULL, NULL,
1712 1.12 kiyohara return);
1713 1.12 kiyohara slhci_dointr(sc);
1714 1.12 kiyohara }
1715 1.12 kiyohara }
1716 1.12 kiyohara
1717 1.12 kiyohara static int
1718 1.12 kiyohara slhci_dointr(struct slhci_softc *sc)
1719 1.12 kiyohara {
1720 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1721 1.12 kiyohara struct slhci_transfers *t;
1722 1.12 kiyohara struct slhci_pipe *tosp;
1723 1.12 kiyohara uint8_t r;
1724 1.12 kiyohara
1725 1.12 kiyohara t = &sc->sc_transfers;
1726 1.12 kiyohara
1727 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1728 1.12 kiyohara
1729 1.12 kiyohara if (sc->sc_ier == 0)
1730 1.12 kiyohara return 0;
1731 1.12 kiyohara
1732 1.12 kiyohara r = slhci_read(sc, SL11_ISR);
1733 1.12 kiyohara
1734 1.12 kiyohara #ifdef SLHCI_DEBUG
1735 1.51 skrll if (slhcidebug & SLHCI_D_INTR && r & sc->sc_ier &&
1736 1.51 skrll ((r & ~(SL11_ISR_SOF|SL11_ISR_DATA)) || slhcidebug &
1737 1.12 kiyohara SLHCI_D_SOF)) {
1738 1.12 kiyohara uint8_t e, f;
1739 1.12 kiyohara
1740 1.12 kiyohara e = slhci_read(sc, SL11_IER);
1741 1.12 kiyohara f = slhci_read(sc, SL11_CTRL);
1742 1.12 kiyohara DDOLOG("Flags=%#x IER=%#x ISR=%#x", t->flags, e, r, 0);
1743 1.36 skrll DDOLOGFLAG8("Status=", r, "D+", (f & SL11_CTRL_SUSPEND) ?
1744 1.36 skrll "RESUME" : "NODEV", "INSERT", "SOF", "res", "BABBLE",
1745 1.12 kiyohara "USBB", "USBA");
1746 1.12 kiyohara }
1747 1.12 kiyohara #endif
1748 1.12 kiyohara
1749 1.40 skrll /*
1750 1.40 skrll * check IER for corruption occasionally. Assume that the above
1751 1.40 skrll * sc_ier == 0 case works correctly.
1752 1.40 skrll */
1753 1.12 kiyohara if (__predict_false(sc->sc_ier_check++ > SLHCI_IER_CHECK_FREQUENCY)) {
1754 1.12 kiyohara sc->sc_ier_check = 0;
1755 1.12 kiyohara if (sc->sc_ier != slhci_read(sc, SL11_IER)) {
1756 1.36 skrll printf("%s: IER value corrupted! halted\n",
1757 1.12 kiyohara SC_NAME(sc));
1758 1.36 skrll DDOLOG("%s: IER value corrupted! halted\n",
1759 1.12 kiyohara SC_NAME(sc), 0,0,0);
1760 1.36 skrll slhci_halt(sc, NULL, NULL);
1761 1.12 kiyohara return 1;
1762 1.12 kiyohara }
1763 1.12 kiyohara }
1764 1.12 kiyohara
1765 1.12 kiyohara r &= sc->sc_ier;
1766 1.12 kiyohara
1767 1.12 kiyohara if (r == 0)
1768 1.12 kiyohara return 0;
1769 1.12 kiyohara
1770 1.12 kiyohara sc->sc_ier_check = 0;
1771 1.12 kiyohara
1772 1.12 kiyohara slhci_write(sc, SL11_ISR, r);
1773 1.12 kiyohara BSB_SYNC(sc->iot, sc->ioh, sc->pst, sc->psz);
1774 1.12 kiyohara
1775 1.12 kiyohara /* If we have an insertion event we do not care about anything else. */
1776 1.12 kiyohara if (__predict_false(r & SL11_ISR_INSERT)) {
1777 1.12 kiyohara slhci_insert(sc);
1778 1.12 kiyohara return 1;
1779 1.12 kiyohara }
1780 1.12 kiyohara
1781 1.12 kiyohara stop_cc_time(&t_intr);
1782 1.12 kiyohara start_cc_time(&t_intr, r);
1783 1.12 kiyohara
1784 1.12 kiyohara if (r & SL11_ISR_SOF) {
1785 1.12 kiyohara t->frame++;
1786 1.12 kiyohara
1787 1.12 kiyohara gcq_merge_tail(&t->q[Q_CB], &t->q[Q_NEXT_CB]);
1788 1.12 kiyohara
1789 1.34 skrll /*
1790 1.34 skrll * SOFCHECK flags are cleared in tstart. Two flags are needed
1791 1.37 skrll * since the first SOF interrupt processed after the transfer
1792 1.37 skrll * is started might have been generated before the transfer
1793 1.34 skrll * was started.
1794 1.34 skrll */
1795 1.37 skrll if (__predict_false(t->flags & F_SOFCHECK2 && t->flags &
1796 1.12 kiyohara (F_AINPROG|F_BINPROG))) {
1797 1.12 kiyohara printf("%s: Missed transfer completion. halted\n",
1798 1.12 kiyohara SC_NAME(sc));
1799 1.12 kiyohara DDOLOG("%s: Missed transfer completion. halted\n",
1800 1.12 kiyohara SC_NAME(sc), 0,0,0);
1801 1.12 kiyohara slhci_halt(sc, NULL, NULL);
1802 1.12 kiyohara return 1;
1803 1.12 kiyohara } else if (t->flags & F_SOFCHECK1) {
1804 1.12 kiyohara t->flags |= F_SOFCHECK2;
1805 1.12 kiyohara } else
1806 1.12 kiyohara t->flags |= F_SOFCHECK1;
1807 1.12 kiyohara
1808 1.12 kiyohara if (t->flags & F_CHANGE)
1809 1.12 kiyohara t->flags |= F_ROOTINTR;
1810 1.12 kiyohara
1811 1.12 kiyohara while (__predict_true(GOT_FIRST_TO(tosp, t)) &&
1812 1.12 kiyohara __predict_false(tosp->to_frame <= t->frame)) {
1813 1.48 skrll tosp->xfer->ux_status = USBD_TIMEOUT;
1814 1.12 kiyohara slhci_do_abort(sc, tosp, tosp->xfer);
1815 1.12 kiyohara enter_callback(t, tosp);
1816 1.12 kiyohara }
1817 1.12 kiyohara
1818 1.34 skrll /*
1819 1.34 skrll * Start any waiting transfers right away. If none, we will
1820 1.34 skrll * start any new transfers later.
1821 1.34 skrll */
1822 1.12 kiyohara slhci_tstart(sc);
1823 1.12 kiyohara }
1824 1.12 kiyohara
1825 1.12 kiyohara if (r & (SL11_ISR_USBA|SL11_ISR_USBB)) {
1826 1.12 kiyohara int ab;
1827 1.12 kiyohara
1828 1.36 skrll if ((r & (SL11_ISR_USBA|SL11_ISR_USBB)) ==
1829 1.12 kiyohara (SL11_ISR_USBA|SL11_ISR_USBB)) {
1830 1.12 kiyohara if (!(t->flags & (F_AINPROG|F_BINPROG)))
1831 1.12 kiyohara return 1; /* presume card pulled */
1832 1.12 kiyohara
1833 1.36 skrll LK_SLASSERT((t->flags & (F_AINPROG|F_BINPROG)) !=
1834 1.12 kiyohara (F_AINPROG|F_BINPROG), sc, NULL, NULL, return 1);
1835 1.12 kiyohara
1836 1.34 skrll /*
1837 1.34 skrll * This should never happen (unless card removal just
1838 1.12 kiyohara * occurred) but appeared frequently when both
1839 1.36 skrll * transfers were started at the same time and was
1840 1.36 skrll * accompanied by data corruption. It still happens
1841 1.36 skrll * at times. I have not seen data correption except
1842 1.36 skrll * when the STATUS bit gets set, which now causes the
1843 1.36 skrll * driver to halt, however this should still not
1844 1.36 skrll * happen so the warning is kept. See comment in
1845 1.12 kiyohara * abdone, below.
1846 1.12 kiyohara */
1847 1.12 kiyohara printf("%s: Transfer reported done but not started! "
1848 1.12 kiyohara "Verify data integrity if not detaching. "
1849 1.12 kiyohara " flags %#x r %x\n", SC_NAME(sc), t->flags, r);
1850 1.12 kiyohara
1851 1.12 kiyohara if (!(t->flags & F_AINPROG))
1852 1.12 kiyohara r &= ~SL11_ISR_USBA;
1853 1.12 kiyohara else
1854 1.12 kiyohara r &= ~SL11_ISR_USBB;
1855 1.12 kiyohara }
1856 1.12 kiyohara t->pend = INT_MAX;
1857 1.12 kiyohara
1858 1.12 kiyohara if (r & SL11_ISR_USBA)
1859 1.12 kiyohara ab = A;
1860 1.36 skrll else
1861 1.12 kiyohara ab = B;
1862 1.12 kiyohara
1863 1.34 skrll /*
1864 1.34 skrll * This happens when a low speed device is attached to
1865 1.37 skrll * a hub with chip rev 1.5. SOF stops, but a few transfers
1866 1.12 kiyohara * still work before causing this error.
1867 1.12 kiyohara */
1868 1.12 kiyohara if (!(t->flags & (ab ? F_BINPROG : F_AINPROG))) {
1869 1.36 skrll printf("%s: %s done but not in progress! halted\n",
1870 1.12 kiyohara SC_NAME(sc), ab ? "B" : "A");
1871 1.36 skrll DDOLOG("%s: %s done but not in progress! halted\n",
1872 1.12 kiyohara SC_NAME(sc), ab ? "B" : "A", 0,0);
1873 1.12 kiyohara slhci_halt(sc, NULL, NULL);
1874 1.12 kiyohara return 1;
1875 1.12 kiyohara }
1876 1.12 kiyohara
1877 1.12 kiyohara t->flags &= ~(ab ? F_BINPROG : F_AINPROG);
1878 1.12 kiyohara slhci_tstart(sc);
1879 1.12 kiyohara stop_cc_time(&t_ab[ab]);
1880 1.12 kiyohara start_cc_time(&t_abdone, t->flags);
1881 1.12 kiyohara slhci_abdone(sc, ab);
1882 1.12 kiyohara stop_cc_time(&t_abdone);
1883 1.12 kiyohara }
1884 1.12 kiyohara
1885 1.12 kiyohara slhci_dotransfer(sc);
1886 1.12 kiyohara
1887 1.12 kiyohara return 1;
1888 1.12 kiyohara }
1889 1.12 kiyohara
1890 1.12 kiyohara static void
1891 1.12 kiyohara slhci_abdone(struct slhci_softc *sc, int ab)
1892 1.12 kiyohara {
1893 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
1894 1.12 kiyohara struct slhci_transfers *t;
1895 1.12 kiyohara struct slhci_pipe *spipe;
1896 1.12 kiyohara struct usbd_xfer *xfer;
1897 1.36 skrll uint8_t status, buf_start;
1898 1.12 kiyohara uint8_t *target_buf;
1899 1.12 kiyohara unsigned int actlen;
1900 1.12 kiyohara int head;
1901 1.12 kiyohara
1902 1.12 kiyohara t = &sc->sc_transfers;
1903 1.12 kiyohara
1904 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
1905 1.12 kiyohara
1906 1.12 kiyohara DLOG(D_TRACE, "ABDONE flags %#x", t->flags, 0,0,0);
1907 1.12 kiyohara
1908 1.36 skrll DLOG(D_MSG, "DONE %s spipe %p len %d xfer %p", ab ? "B" : "A",
1909 1.36 skrll t->spipe[ab], t->len[ab], t->spipe[ab] ?
1910 1.12 kiyohara t->spipe[ab]->xfer : NULL);
1911 1.12 kiyohara
1912 1.12 kiyohara spipe = t->spipe[ab];
1913 1.12 kiyohara
1914 1.34 skrll /*
1915 1.34 skrll * skip this one if aborted; do not call return from the rest of the
1916 1.34 skrll * function unless halting, else t->len will not be cleared.
1917 1.34 skrll */
1918 1.12 kiyohara if (spipe == NULL)
1919 1.12 kiyohara goto done;
1920 1.12 kiyohara
1921 1.12 kiyohara t->spipe[ab] = NULL;
1922 1.12 kiyohara
1923 1.12 kiyohara xfer = spipe->xfer;
1924 1.12 kiyohara
1925 1.12 kiyohara gcq_remove(&spipe->to);
1926 1.12 kiyohara
1927 1.12 kiyohara LK_SLASSERT(xfer != NULL, sc, spipe, NULL, return);
1928 1.12 kiyohara
1929 1.12 kiyohara status = slhci_read(sc, slhci_tregs[ab][STAT]);
1930 1.12 kiyohara
1931 1.12 kiyohara /*
1932 1.36 skrll * I saw no status or remaining length greater than the requested
1933 1.36 skrll * length in early driver versions in circumstances I assumed caused
1934 1.36 skrll * excess power draw. I am no longer able to reproduce this when
1935 1.36 skrll * causing excess power draw circumstances.
1936 1.36 skrll *
1937 1.36 skrll * Disabling a power check and attaching aue to a keyboard and hub
1938 1.36 skrll * that is directly attached (to CFU1U, 100mA max, aue 160mA, keyboard
1939 1.36 skrll * 98mA) sometimes works and sometimes fails to configure. After
1940 1.36 skrll * removing the aue and attaching a self-powered umass dvd reader
1941 1.36 skrll * (unknown if it draws power from the host also) soon a single Error
1942 1.36 skrll * status occurs then only timeouts. The controller soon halts freeing
1943 1.36 skrll * memory due to being ONQU instead of BUSY. This may be the same
1944 1.36 skrll * basic sequence that caused the no status/bad length errors. The
1945 1.36 skrll * umass device seems to work (better at least) with the keyboard hub
1946 1.36 skrll * when not first attaching aue (tested once reading an approximately
1947 1.12 kiyohara * 200MB file).
1948 1.36 skrll *
1949 1.36 skrll * Overflow can indicate that the device and host disagree about how
1950 1.36 skrll * much data has been transfered. This may indicate a problem at any
1951 1.36 skrll * point during the transfer, not just when the error occurs. It may
1952 1.12 kiyohara * indicate data corruption. A warning message is printed.
1953 1.12 kiyohara *
1954 1.36 skrll * Trying to use both A and B transfers at the same time results in
1955 1.36 skrll * incorrect transfer completion ISR reports and the status will then
1956 1.36 skrll * include SL11_EPSTAT_SETUP, which is apparently set while the
1957 1.36 skrll * transfer is in progress. I also noticed data corruption, even
1958 1.36 skrll * after waiting for the transfer to complete. The driver now avoids
1959 1.12 kiyohara * trying to start both at the same time.
1960 1.12 kiyohara *
1961 1.36 skrll * I had accidently initialized the B registers before they were valid
1962 1.36 skrll * in some driver versions. Since every other performance enhancing
1963 1.36 skrll * feature has been confirmed buggy in the errata doc, I have not
1964 1.12 kiyohara * tried both transfers at once again with the documented
1965 1.12 kiyohara * initialization order.
1966 1.36 skrll *
1967 1.36 skrll * However, I have seen this problem again ("done but not started"
1968 1.36 skrll * errors), which in some cases cases the SETUP status bit to remain
1969 1.36 skrll * set on future transfers. In other cases, the SETUP bit is not set
1970 1.36 skrll * and no data corruption occurs. This occured while using both umass
1971 1.36 skrll * and aue on a powered hub (maybe triggered by some local activity
1972 1.36 skrll * also) and needs several reads of the 200MB file to trigger. The
1973 1.12 kiyohara * driver now halts if SETUP is detected.
1974 1.12 kiyohara */
1975 1.12 kiyohara
1976 1.12 kiyohara actlen = 0;
1977 1.12 kiyohara
1978 1.12 kiyohara if (__predict_false(!status)) {
1979 1.12 kiyohara DDOLOG("no status! xfer %p spipe %p", xfer, spipe, 0,0);
1980 1.12 kiyohara printf("%s: no status! halted\n", SC_NAME(sc));
1981 1.12 kiyohara slhci_halt(sc, spipe, xfer);
1982 1.12 kiyohara return;
1983 1.36 skrll }
1984 1.12 kiyohara
1985 1.12 kiyohara #ifdef SLHCI_DEBUG
1986 1.51 skrll if (slhcidebug & SLHCI_D_NAK || (status & SL11_EPSTAT_ERRBITS) !=
1987 1.12 kiyohara SL11_EPSTAT_NAK)
1988 1.36 skrll DLOGFLAG8(D_XFER, "STATUS=", status, "STALL", "NAK",
1989 1.36 skrll "Overflow", "Setup", "Data Toggle", "Timeout", "Error",
1990 1.12 kiyohara "ACK");
1991 1.12 kiyohara #endif
1992 1.12 kiyohara
1993 1.12 kiyohara if (!(status & SL11_EPSTAT_ERRBITS)) {
1994 1.12 kiyohara unsigned int cont;
1995 1.12 kiyohara cont = slhci_read(sc, slhci_tregs[ab][CONT]);
1996 1.12 kiyohara if (cont != 0)
1997 1.36 skrll DLOG(D_XFER, "cont %d len %d", cont,
1998 1.12 kiyohara spipe->tregs[LEN], 0,0);
1999 1.12 kiyohara if (__predict_false(cont > spipe->tregs[LEN])) {
2000 1.48 skrll DDOLOG("cont > len! cont %d len %d xfer->ux_length %d "
2001 1.48 skrll "spipe %p", cont, spipe->tregs[LEN], xfer->ux_length,
2002 1.12 kiyohara spipe);
2003 1.48 skrll printf("%s: cont > len! cont %d len %d xfer->ux_length "
2004 1.36 skrll "%d", SC_NAME(sc), cont, spipe->tregs[LEN],
2005 1.48 skrll xfer->ux_length);
2006 1.12 kiyohara slhci_halt(sc, spipe, xfer);
2007 1.12 kiyohara return;
2008 1.12 kiyohara } else {
2009 1.12 kiyohara spipe->nerrs = 0;
2010 1.12 kiyohara actlen = spipe->tregs[LEN] - cont;
2011 1.12 kiyohara }
2012 1.12 kiyohara }
2013 1.12 kiyohara
2014 1.12 kiyohara /* Actual copyin done after starting next transfer. */
2015 1.12 kiyohara if (actlen && (spipe->tregs[PID] & SL11_PID_BITS) == SL11_PID_IN) {
2016 1.12 kiyohara target_buf = spipe->buffer;
2017 1.12 kiyohara buf_start = spipe->tregs[ADR];
2018 1.12 kiyohara } else {
2019 1.12 kiyohara target_buf = NULL;
2020 1.12 kiyohara buf_start = 0; /* XXX gcc uninitialized warnings */
2021 1.12 kiyohara }
2022 1.12 kiyohara
2023 1.12 kiyohara if (status & SL11_EPSTAT_ERRBITS) {
2024 1.12 kiyohara status &= SL11_EPSTAT_ERRBITS;
2025 1.12 kiyohara if (status & SL11_EPSTAT_SETUP) {
2026 1.12 kiyohara printf("%s: Invalid controller state detected! "
2027 1.12 kiyohara "halted\n", SC_NAME(sc));
2028 1.12 kiyohara DDOLOG("%s: Invalid controller state detected! "
2029 1.12 kiyohara "halted\n", SC_NAME(sc), 0,0,0);
2030 1.12 kiyohara slhci_halt(sc, spipe, xfer);
2031 1.12 kiyohara return;
2032 1.48 skrll } else if (__predict_false(sc->sc_bus.ub_usepolling)) {
2033 1.12 kiyohara if (status == SL11_EPSTAT_STALL)
2034 1.48 skrll xfer->ux_status = USBD_STALLED;
2035 1.12 kiyohara else if (status == SL11_EPSTAT_TIMEOUT)
2036 1.48 skrll xfer->ux_status = USBD_TIMEOUT;
2037 1.12 kiyohara else if (status == SL11_EPSTAT_NAK)
2038 1.48 skrll xfer->ux_status = USBD_TIMEOUT; /*XXX*/
2039 1.12 kiyohara else
2040 1.48 skrll xfer->ux_status = USBD_IOERROR;
2041 1.12 kiyohara head = Q_CALLBACKS;
2042 1.12 kiyohara } else if (status == SL11_EPSTAT_NAK) {
2043 1.48 skrll if (spipe->pipe.up_interval) {
2044 1.36 skrll spipe->lastframe = spipe->frame =
2045 1.48 skrll t->frame + spipe->pipe.up_interval;
2046 1.12 kiyohara slhci_queue_timed(sc, spipe);
2047 1.12 kiyohara goto queued;
2048 1.12 kiyohara }
2049 1.12 kiyohara head = Q_NEXT_CB;
2050 1.36 skrll } else if (++spipe->nerrs > SLHCI_MAX_RETRIES ||
2051 1.12 kiyohara status == SL11_EPSTAT_STALL) {
2052 1.12 kiyohara if (status == SL11_EPSTAT_STALL)
2053 1.48 skrll xfer->ux_status = USBD_STALLED;
2054 1.12 kiyohara else if (status == SL11_EPSTAT_TIMEOUT)
2055 1.48 skrll xfer->ux_status = USBD_TIMEOUT;
2056 1.12 kiyohara else
2057 1.48 skrll xfer->ux_status = USBD_IOERROR;
2058 1.12 kiyohara
2059 1.12 kiyohara DLOG(D_ERR, "Max retries reached! status %#x "
2060 1.48 skrll "xfer->ux_status %#x", status, xfer->ux_status, 0,0);
2061 1.36 skrll DLOGFLAG8(D_ERR, "STATUS=", status, "STALL",
2062 1.36 skrll "NAK", "Overflow", "Setup", "Data Toggle",
2063 1.12 kiyohara "Timeout", "Error", "ACK");
2064 1.12 kiyohara
2065 1.12 kiyohara if (status == SL11_EPSTAT_OVERFLOW &&
2066 1.36 skrll ratecheck(&sc->sc_overflow_warn_rate,
2067 1.12 kiyohara &overflow_warn_rate)) {
2068 1.12 kiyohara printf("%s: Overflow condition: "
2069 1.36 skrll "data corruption possible\n",
2070 1.12 kiyohara SC_NAME(sc));
2071 1.12 kiyohara DDOLOG("%s: Overflow condition: "
2072 1.36 skrll "data corruption possible\n",
2073 1.12 kiyohara SC_NAME(sc), 0,0,0);
2074 1.12 kiyohara }
2075 1.12 kiyohara head = Q_CALLBACKS;
2076 1.12 kiyohara } else {
2077 1.12 kiyohara head = Q_NEXT_CB;
2078 1.12 kiyohara }
2079 1.12 kiyohara } else if (spipe->ptype == PT_CTRL_SETUP) {
2080 1.12 kiyohara spipe->tregs[PID] = spipe->newpid;
2081 1.12 kiyohara
2082 1.48 skrll if (xfer->ux_length) {
2083 1.36 skrll LK_SLASSERT(spipe->newlen[1] != 0, sc, spipe, xfer,
2084 1.12 kiyohara return);
2085 1.12 kiyohara spipe->tregs[LEN] = spipe->newlen[1];
2086 1.12 kiyohara spipe->bustime = spipe->newbustime[1];
2087 1.48 skrll spipe->buffer = xfer->ux_buf;
2088 1.12 kiyohara spipe->ptype = PT_CTRL_DATA;
2089 1.12 kiyohara } else {
2090 1.12 kiyohara status_setup:
2091 1.12 kiyohara /* CTRL_DATA swaps direction in PID then jumps here */
2092 1.12 kiyohara spipe->tregs[LEN] = 0;
2093 1.12 kiyohara if (spipe->pflags & PF_LS)
2094 1.12 kiyohara spipe->bustime = SLHCI_LS_CONST;
2095 1.12 kiyohara else
2096 1.12 kiyohara spipe->bustime = SLHCI_FS_CONST;
2097 1.12 kiyohara spipe->ptype = PT_CTRL_STATUS;
2098 1.12 kiyohara spipe->buffer = NULL;
2099 1.12 kiyohara }
2100 1.12 kiyohara
2101 1.12 kiyohara /* Status or first data packet must be DATA1. */
2102 1.12 kiyohara spipe->control |= SL11_EPCTRL_DATATOGGLE;
2103 1.12 kiyohara if ((spipe->tregs[PID] & SL11_PID_BITS) == SL11_PID_IN)
2104 1.12 kiyohara spipe->control &= ~SL11_EPCTRL_DIRECTION;
2105 1.36 skrll else
2106 1.12 kiyohara spipe->control |= SL11_EPCTRL_DIRECTION;
2107 1.12 kiyohara
2108 1.12 kiyohara head = Q_CB;
2109 1.12 kiyohara } else if (spipe->ptype == PT_CTRL_STATUS) {
2110 1.12 kiyohara head = Q_CALLBACKS;
2111 1.12 kiyohara } else { /* bulk, intr, control data */
2112 1.48 skrll xfer->ux_actlen += actlen;
2113 1.12 kiyohara spipe->control ^= SL11_EPCTRL_DATATOGGLE;
2114 1.12 kiyohara
2115 1.48 skrll if (actlen == spipe->tregs[LEN] && (xfer->ux_length >
2116 1.48 skrll xfer->ux_actlen || spipe->wantshort)) {
2117 1.12 kiyohara spipe->buffer += actlen;
2118 1.48 skrll LK_SLASSERT(xfer->ux_length >= xfer->ux_actlen, sc,
2119 1.12 kiyohara spipe, xfer, return);
2120 1.48 skrll if (xfer->ux_length - xfer->ux_actlen < actlen) {
2121 1.12 kiyohara spipe->wantshort = 0;
2122 1.12 kiyohara spipe->tregs[LEN] = spipe->newlen[0];
2123 1.12 kiyohara spipe->bustime = spipe->newbustime[0];
2124 1.48 skrll LK_SLASSERT(xfer->ux_actlen +
2125 1.48 skrll spipe->tregs[LEN] == xfer->ux_length, sc,
2126 1.12 kiyohara spipe, xfer, return);
2127 1.12 kiyohara }
2128 1.12 kiyohara head = Q_CB;
2129 1.12 kiyohara } else if (spipe->ptype == PT_CTRL_DATA) {
2130 1.12 kiyohara spipe->tregs[PID] ^= SLHCI_PID_SWAP_IN_OUT;
2131 1.12 kiyohara goto status_setup;
2132 1.12 kiyohara } else {
2133 1.12 kiyohara if (spipe->ptype == PT_INTR) {
2134 1.36 skrll spipe->lastframe +=
2135 1.48 skrll spipe->pipe.up_interval;
2136 1.34 skrll /*
2137 1.34 skrll * If ack, we try to keep the
2138 1.37 skrll * interrupt rate by using lastframe
2139 1.34 skrll * instead of the current frame.
2140 1.34 skrll */
2141 1.12 kiyohara spipe->frame = spipe->lastframe +
2142 1.48 skrll spipe->pipe.up_interval;
2143 1.12 kiyohara }
2144 1.12 kiyohara
2145 1.34 skrll /*
2146 1.34 skrll * Set the toggle for the next transfer. It
2147 1.37 skrll * has already been toggled above, so the
2148 1.37 skrll * current setting will apply to the next
2149 1.34 skrll * transfer.
2150 1.34 skrll */
2151 1.12 kiyohara if (spipe->control & SL11_EPCTRL_DATATOGGLE)
2152 1.12 kiyohara spipe->pflags |= PF_TOGGLE;
2153 1.12 kiyohara else
2154 1.12 kiyohara spipe->pflags &= ~PF_TOGGLE;
2155 1.12 kiyohara
2156 1.12 kiyohara head = Q_CALLBACKS;
2157 1.12 kiyohara }
2158 1.12 kiyohara }
2159 1.12 kiyohara
2160 1.12 kiyohara if (head == Q_CALLBACKS) {
2161 1.12 kiyohara gcq_remove(&spipe->to);
2162 1.12 kiyohara
2163 1.48 skrll if (xfer->ux_status == USBD_IN_PROGRESS) {
2164 1.48 skrll LK_SLASSERT(xfer->ux_actlen <= xfer->ux_length, sc,
2165 1.12 kiyohara spipe, xfer, return);
2166 1.48 skrll xfer->ux_status = USBD_NORMAL_COMPLETION;
2167 1.12 kiyohara #if 0 /* usb_transfer_complete will do this */
2168 1.48 skrll if (xfer->ux_length == xfer->ux_actlen || xfer->ux_flags &
2169 1.12 kiyohara USBD_SHORT_XFER_OK)
2170 1.48 skrll xfer->ux_status = USBD_NORMAL_COMPLETION;
2171 1.12 kiyohara else
2172 1.48 skrll xfer->ux_status = USBD_SHORT_XFER;
2173 1.12 kiyohara #endif
2174 1.12 kiyohara }
2175 1.12 kiyohara }
2176 1.12 kiyohara
2177 1.12 kiyohara enter_q(t, spipe, head);
2178 1.12 kiyohara
2179 1.12 kiyohara queued:
2180 1.12 kiyohara if (target_buf != NULL) {
2181 1.12 kiyohara slhci_dotransfer(sc);
2182 1.12 kiyohara start_cc_time(&t_copy_from_dev, actlen);
2183 1.12 kiyohara slhci_read_multi(sc, buf_start, target_buf, actlen);
2184 1.12 kiyohara stop_cc_time(&t_copy_from_dev);
2185 1.12 kiyohara DLOGBUF(D_BUF, target_buf, actlen);
2186 1.12 kiyohara t->pend -= SLHCI_FS_CONST + SLHCI_FS_DATA_TIME(actlen);
2187 1.12 kiyohara }
2188 1.12 kiyohara
2189 1.12 kiyohara done:
2190 1.12 kiyohara t->len[ab] = -1;
2191 1.12 kiyohara }
2192 1.12 kiyohara
2193 1.12 kiyohara static void
2194 1.12 kiyohara slhci_tstart(struct slhci_softc *sc)
2195 1.12 kiyohara {
2196 1.12 kiyohara struct slhci_transfers *t;
2197 1.12 kiyohara struct slhci_pipe *spipe;
2198 1.12 kiyohara int remaining_bustime;
2199 1.12 kiyohara
2200 1.12 kiyohara t = &sc->sc_transfers;
2201 1.12 kiyohara
2202 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2203 1.12 kiyohara
2204 1.12 kiyohara if (!(t->flags & (F_AREADY|F_BREADY)))
2205 1.12 kiyohara return;
2206 1.12 kiyohara
2207 1.12 kiyohara if (t->flags & (F_AINPROG|F_BINPROG|F_DISABLED))
2208 1.12 kiyohara return;
2209 1.12 kiyohara
2210 1.34 skrll /*
2211 1.34 skrll * We have about 6 us to get from the bus time check to
2212 1.37 skrll * starting the transfer or we might babble or the chip might fail to
2213 1.37 skrll * signal transfer complete. This leaves no time for any other
2214 1.25 rmind * interrupts.
2215 1.25 rmind */
2216 1.12 kiyohara remaining_bustime = (int)(slhci_read(sc, SL811_CSOF)) << 6;
2217 1.12 kiyohara remaining_bustime -= SLHCI_END_BUSTIME;
2218 1.12 kiyohara
2219 1.34 skrll /*
2220 1.34 skrll * Start one transfer only, clearing any aborted transfers that are
2221 1.37 skrll * not yet in progress and skipping missed isoc. It is easier to copy
2222 1.37 skrll * & paste most of the A/B sections than to make the logic work
2223 1.34 skrll * otherwise and this allows better constant use.
2224 1.34 skrll */
2225 1.12 kiyohara if (t->flags & F_AREADY) {
2226 1.12 kiyohara spipe = t->spipe[A];
2227 1.12 kiyohara if (spipe == NULL) {
2228 1.12 kiyohara t->flags &= ~F_AREADY;
2229 1.12 kiyohara t->len[A] = -1;
2230 1.12 kiyohara } else if (remaining_bustime >= spipe->bustime) {
2231 1.12 kiyohara t->flags &= ~(F_AREADY|F_SOFCHECK1|F_SOFCHECK2);
2232 1.12 kiyohara t->flags |= F_AINPROG;
2233 1.12 kiyohara start_cc_time(&t_ab[A], spipe->tregs[LEN]);
2234 1.12 kiyohara slhci_write(sc, SL11_E0CTRL, spipe->control);
2235 1.12 kiyohara goto pend;
2236 1.36 skrll }
2237 1.12 kiyohara }
2238 1.12 kiyohara if (t->flags & F_BREADY) {
2239 1.12 kiyohara spipe = t->spipe[B];
2240 1.12 kiyohara if (spipe == NULL) {
2241 1.12 kiyohara t->flags &= ~F_BREADY;
2242 1.12 kiyohara t->len[B] = -1;
2243 1.12 kiyohara } else if (remaining_bustime >= spipe->bustime) {
2244 1.12 kiyohara t->flags &= ~(F_BREADY|F_SOFCHECK1|F_SOFCHECK2);
2245 1.12 kiyohara t->flags |= F_BINPROG;
2246 1.12 kiyohara start_cc_time(&t_ab[B], spipe->tregs[LEN]);
2247 1.12 kiyohara slhci_write(sc, SL11_E1CTRL, spipe->control);
2248 1.12 kiyohara pend:
2249 1.12 kiyohara t->pend = spipe->bustime;
2250 1.12 kiyohara }
2251 1.12 kiyohara }
2252 1.12 kiyohara }
2253 1.12 kiyohara
2254 1.12 kiyohara static void
2255 1.12 kiyohara slhci_dotransfer(struct slhci_softc *sc)
2256 1.12 kiyohara {
2257 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2258 1.12 kiyohara struct slhci_transfers *t;
2259 1.12 kiyohara struct slhci_pipe *spipe;
2260 1.12 kiyohara int ab, i;
2261 1.12 kiyohara
2262 1.12 kiyohara t = &sc->sc_transfers;
2263 1.12 kiyohara
2264 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2265 1.12 kiyohara
2266 1.12 kiyohara while ((t->len[A] == -1 || t->len[B] == -1) &&
2267 1.36 skrll (GOT_FIRST_TIMED_COND(spipe, t, spipe->frame <= t->frame) ||
2268 1.12 kiyohara GOT_FIRST_CB(spipe, t))) {
2269 1.12 kiyohara LK_SLASSERT(spipe->xfer != NULL, sc, spipe, NULL, return);
2270 1.36 skrll LK_SLASSERT(spipe->ptype != PT_ROOT_CTRL && spipe->ptype !=
2271 1.36 skrll PT_ROOT_INTR, sc, spipe, NULL, return);
2272 1.36 skrll
2273 1.36 skrll /* Check that this transfer can fit in the remaining memory. */
2274 1.37 skrll if (t->len[A] + t->len[B] + spipe->tregs[LEN] + 1 >
2275 1.12 kiyohara SL11_MAX_PACKET_SIZE) {
2276 1.12 kiyohara DLOG(D_XFER, "Transfer does not fit. alen %d blen %d "
2277 1.37 skrll "len %d", t->len[A], t->len[B], spipe->tregs[LEN],
2278 1.12 kiyohara 0);
2279 1.12 kiyohara return;
2280 1.12 kiyohara }
2281 1.12 kiyohara
2282 1.12 kiyohara gcq_remove(&spipe->xq);
2283 1.12 kiyohara
2284 1.12 kiyohara if (t->len[A] == -1) {
2285 1.12 kiyohara ab = A;
2286 1.12 kiyohara spipe->tregs[ADR] = SL11_BUFFER_START;
2287 1.12 kiyohara } else {
2288 1.12 kiyohara ab = B;
2289 1.37 skrll spipe->tregs[ADR] = SL11_BUFFER_END -
2290 1.12 kiyohara spipe->tregs[LEN];
2291 1.12 kiyohara }
2292 1.12 kiyohara
2293 1.12 kiyohara t->len[ab] = spipe->tregs[LEN];
2294 1.12 kiyohara
2295 1.37 skrll if (spipe->tregs[LEN] && (spipe->tregs[PID] & SL11_PID_BITS)
2296 1.12 kiyohara != SL11_PID_IN) {
2297 1.37 skrll start_cc_time(&t_copy_to_dev,
2298 1.12 kiyohara spipe->tregs[LEN]);
2299 1.37 skrll slhci_write_multi(sc, spipe->tregs[ADR],
2300 1.12 kiyohara spipe->buffer, spipe->tregs[LEN]);
2301 1.12 kiyohara stop_cc_time(&t_copy_to_dev);
2302 1.37 skrll t->pend -= SLHCI_FS_CONST +
2303 1.12 kiyohara SLHCI_FS_DATA_TIME(spipe->tregs[LEN]);
2304 1.12 kiyohara }
2305 1.12 kiyohara
2306 1.37 skrll DLOG(D_MSG, "NEW TRANSFER %s flags %#x alen %d blen %d",
2307 1.12 kiyohara ab ? "B" : "A", t->flags, t->len[0], t->len[1]);
2308 1.12 kiyohara
2309 1.12 kiyohara if (spipe->tregs[LEN])
2310 1.12 kiyohara i = 0;
2311 1.12 kiyohara else
2312 1.12 kiyohara i = 1;
2313 1.12 kiyohara
2314 1.12 kiyohara for (; i <= 3; i++)
2315 1.12 kiyohara if (t->current_tregs[ab][i] != spipe->tregs[i]) {
2316 1.12 kiyohara t->current_tregs[ab][i] = spipe->tregs[i];
2317 1.37 skrll slhci_write(sc, slhci_tregs[ab][i],
2318 1.12 kiyohara spipe->tregs[i]);
2319 1.12 kiyohara }
2320 1.12 kiyohara
2321 1.37 skrll DLOG(D_SXFER, "Transfer len %d pid %#x dev %d type %s",
2322 1.37 skrll spipe->tregs[LEN], spipe->tregs[PID], spipe->tregs[DEV],
2323 1.12 kiyohara pnames(spipe->ptype));
2324 1.12 kiyohara
2325 1.12 kiyohara t->spipe[ab] = spipe;
2326 1.12 kiyohara t->flags |= ab ? F_BREADY : F_AREADY;
2327 1.12 kiyohara
2328 1.12 kiyohara slhci_tstart(sc);
2329 1.12 kiyohara }
2330 1.12 kiyohara }
2331 1.12 kiyohara
2332 1.34 skrll /*
2333 1.34 skrll * slhci_callback is called after the lock is taken from splusb.
2334 1.34 skrll */
2335 1.12 kiyohara static void
2336 1.41 skrll slhci_callback(struct slhci_softc *sc)
2337 1.12 kiyohara {
2338 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2339 1.12 kiyohara struct slhci_transfers *t;
2340 1.12 kiyohara struct slhci_pipe *spipe;
2341 1.12 kiyohara struct usbd_xfer *xfer;
2342 1.12 kiyohara
2343 1.12 kiyohara t = &sc->sc_transfers;
2344 1.12 kiyohara
2345 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2346 1.12 kiyohara
2347 1.12 kiyohara DLOG(D_SOFT, "CB flags %#x", t->flags, 0,0,0);
2348 1.12 kiyohara for (;;) {
2349 1.12 kiyohara if (__predict_false(t->flags & F_ROOTINTR)) {
2350 1.12 kiyohara t->flags &= ~F_ROOTINTR;
2351 1.12 kiyohara if (t->rootintr != NULL) {
2352 1.12 kiyohara u_char *p;
2353 1.12 kiyohara
2354 1.48 skrll p = t->rootintr->ux_buf;
2355 1.12 kiyohara p[0] = 2;
2356 1.48 skrll t->rootintr->ux_actlen = 1;
2357 1.48 skrll t->rootintr->ux_status = USBD_NORMAL_COMPLETION;
2358 1.12 kiyohara xfer = t->rootintr;
2359 1.12 kiyohara goto do_callback;
2360 1.12 kiyohara }
2361 1.37 skrll }
2362 1.12 kiyohara
2363 1.12 kiyohara
2364 1.12 kiyohara if (!DEQUEUED_CALLBACK(spipe, t))
2365 1.12 kiyohara return;
2366 1.12 kiyohara
2367 1.12 kiyohara xfer = spipe->xfer;
2368 1.12 kiyohara LK_SLASSERT(xfer != NULL, sc, spipe, NULL, return);
2369 1.12 kiyohara spipe->xfer = NULL;
2370 1.12 kiyohara DLOG(D_XFER, "xfer callback length %d actlen %d spipe %x "
2371 1.48 skrll "type %s", xfer->ux_length, xfer->ux_actlen, spipe,
2372 1.12 kiyohara pnames(spipe->ptype));
2373 1.12 kiyohara do_callback:
2374 1.41 skrll slhci_do_callback(sc, xfer);
2375 1.12 kiyohara }
2376 1.12 kiyohara }
2377 1.12 kiyohara
2378 1.12 kiyohara static void
2379 1.12 kiyohara slhci_enter_xfer(struct slhci_softc *sc, struct slhci_pipe *spipe)
2380 1.12 kiyohara {
2381 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2382 1.12 kiyohara struct slhci_transfers *t;
2383 1.12 kiyohara
2384 1.12 kiyohara t = &sc->sc_transfers;
2385 1.12 kiyohara
2386 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2387 1.12 kiyohara
2388 1.37 skrll if (__predict_false(t->flags & F_DISABLED) ||
2389 1.12 kiyohara __predict_false(spipe->pflags & PF_GONE)) {
2390 1.12 kiyohara DLOG(D_MSG, "slhci_enter_xfer: DISABLED or GONE", 0,0,0,0);
2391 1.48 skrll spipe->xfer->ux_status = USBD_CANCELLED;
2392 1.12 kiyohara }
2393 1.12 kiyohara
2394 1.48 skrll if (spipe->xfer->ux_status == USBD_IN_PROGRESS) {
2395 1.48 skrll if (spipe->xfer->ux_timeout) {
2396 1.48 skrll spipe->to_frame = t->frame + spipe->xfer->ux_timeout;
2397 1.37 skrll slhci_xfer_timer(sc, spipe);
2398 1.12 kiyohara }
2399 1.48 skrll if (spipe->pipe.up_interval)
2400 1.12 kiyohara slhci_queue_timed(sc, spipe);
2401 1.12 kiyohara else
2402 1.12 kiyohara enter_q(t, spipe, Q_CB);
2403 1.12 kiyohara } else
2404 1.12 kiyohara enter_callback(t, spipe);
2405 1.12 kiyohara }
2406 1.12 kiyohara
2407 1.12 kiyohara static void
2408 1.12 kiyohara slhci_enter_xfers(struct slhci_softc *sc)
2409 1.12 kiyohara {
2410 1.12 kiyohara struct slhci_pipe *spipe;
2411 1.12 kiyohara
2412 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2413 1.12 kiyohara
2414 1.12 kiyohara while (DEQUEUED_WAITQ(spipe, sc))
2415 1.12 kiyohara slhci_enter_xfer(sc, spipe);
2416 1.12 kiyohara }
2417 1.12 kiyohara
2418 1.12 kiyohara static void
2419 1.12 kiyohara slhci_queue_timed(struct slhci_softc *sc, struct slhci_pipe *spipe)
2420 1.12 kiyohara {
2421 1.12 kiyohara struct slhci_transfers *t;
2422 1.12 kiyohara struct gcq *q;
2423 1.12 kiyohara struct slhci_pipe *spp;
2424 1.12 kiyohara
2425 1.12 kiyohara t = &sc->sc_transfers;
2426 1.12 kiyohara
2427 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2428 1.12 kiyohara
2429 1.12 kiyohara FIND_TIMED(q, t, spp, spp->frame > spipe->frame);
2430 1.12 kiyohara gcq_insert_before(q, &spipe->xq);
2431 1.12 kiyohara }
2432 1.12 kiyohara
2433 1.12 kiyohara static void
2434 1.12 kiyohara slhci_xfer_timer(struct slhci_softc *sc, struct slhci_pipe *spipe)
2435 1.12 kiyohara {
2436 1.12 kiyohara struct slhci_transfers *t;
2437 1.12 kiyohara struct gcq *q;
2438 1.12 kiyohara struct slhci_pipe *spp;
2439 1.12 kiyohara
2440 1.12 kiyohara t = &sc->sc_transfers;
2441 1.12 kiyohara
2442 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2443 1.12 kiyohara
2444 1.12 kiyohara FIND_TO(q, t, spp, spp->to_frame >= spipe->to_frame);
2445 1.12 kiyohara gcq_insert_before(q, &spipe->to);
2446 1.12 kiyohara }
2447 1.12 kiyohara
2448 1.12 kiyohara static void
2449 1.12 kiyohara slhci_callback_schedule(struct slhci_softc *sc)
2450 1.12 kiyohara {
2451 1.12 kiyohara struct slhci_transfers *t;
2452 1.12 kiyohara
2453 1.12 kiyohara t = &sc->sc_transfers;
2454 1.12 kiyohara
2455 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2456 1.12 kiyohara
2457 1.12 kiyohara if (t->flags & F_ACTIVE)
2458 1.12 kiyohara slhci_do_callback_schedule(sc);
2459 1.12 kiyohara }
2460 1.12 kiyohara
2461 1.12 kiyohara static void
2462 1.12 kiyohara slhci_do_callback_schedule(struct slhci_softc *sc)
2463 1.12 kiyohara {
2464 1.59 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2465 1.12 kiyohara struct slhci_transfers *t;
2466 1.12 kiyohara
2467 1.12 kiyohara t = &sc->sc_transfers;
2468 1.12 kiyohara
2469 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2470 1.12 kiyohara
2471 1.59 skrll DLOG(D_MSG, "flags %#x", t->flags, 0, 0, 0);
2472 1.12 kiyohara if (!(t->flags & F_CALLBACK)) {
2473 1.12 kiyohara t->flags |= F_CALLBACK;
2474 1.16 ad softint_schedule(sc->sc_cb_softintr);
2475 1.12 kiyohara }
2476 1.12 kiyohara }
2477 1.12 kiyohara
2478 1.12 kiyohara #if 0
2479 1.41 skrll /* must be called with lock taken from IPL_USB */
2480 1.12 kiyohara /* XXX static */ void
2481 1.41 skrll slhci_pollxfer(struct slhci_softc *sc, struct usbd_xfer *xfer)
2482 1.12 kiyohara {
2483 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2484 1.12 kiyohara slhci_dotransfer(sc);
2485 1.12 kiyohara do {
2486 1.12 kiyohara slhci_dointr(sc);
2487 1.48 skrll } while (xfer->ux_status == USBD_IN_PROGRESS);
2488 1.41 skrll slhci_do_callback(sc, xfer);
2489 1.12 kiyohara }
2490 1.12 kiyohara #endif
2491 1.12 kiyohara
2492 1.12 kiyohara static usbd_status
2493 1.37 skrll slhci_do_poll(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2494 1.12 kiyohara usbd_xfer *xfer)
2495 1.12 kiyohara {
2496 1.12 kiyohara slhci_waitintr(sc, 0);
2497 1.12 kiyohara
2498 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2499 1.12 kiyohara }
2500 1.12 kiyohara
2501 1.12 kiyohara static usbd_status
2502 1.37 skrll slhci_lsvh_warn(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2503 1.12 kiyohara usbd_xfer *xfer)
2504 1.12 kiyohara {
2505 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2506 1.12 kiyohara struct slhci_transfers *t;
2507 1.12 kiyohara
2508 1.12 kiyohara t = &sc->sc_transfers;
2509 1.12 kiyohara
2510 1.12 kiyohara if (!(t->flags & F_LSVH_WARNED)) {
2511 1.12 kiyohara printf("%s: Low speed device via hub disabled, "
2512 1.12 kiyohara "see slhci(4)\n", SC_NAME(sc));
2513 1.12 kiyohara DDOLOG("%s: Low speed device via hub disabled, "
2514 1.12 kiyohara "see slhci(4)\n", SC_NAME(sc), 0,0,0);
2515 1.12 kiyohara t->flags |= F_LSVH_WARNED;
2516 1.12 kiyohara }
2517 1.12 kiyohara return USBD_INVAL;
2518 1.12 kiyohara }
2519 1.12 kiyohara
2520 1.12 kiyohara static usbd_status
2521 1.37 skrll slhci_isoc_warn(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2522 1.12 kiyohara usbd_xfer *xfer)
2523 1.12 kiyohara {
2524 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2525 1.12 kiyohara struct slhci_transfers *t;
2526 1.12 kiyohara
2527 1.12 kiyohara t = &sc->sc_transfers;
2528 1.12 kiyohara
2529 1.12 kiyohara if (!(t->flags & F_ISOC_WARNED)) {
2530 1.12 kiyohara printf("%s: ISOC transfer not supported "
2531 1.12 kiyohara "(see slhci(4))\n", SC_NAME(sc));
2532 1.12 kiyohara DDOLOG("%s: ISOC transfer not supported "
2533 1.12 kiyohara "(see slhci(4))\n", SC_NAME(sc), 0,0,0);
2534 1.12 kiyohara t->flags |= F_ISOC_WARNED;
2535 1.12 kiyohara }
2536 1.12 kiyohara return USBD_INVAL;
2537 1.12 kiyohara }
2538 1.12 kiyohara
2539 1.12 kiyohara static usbd_status
2540 1.37 skrll slhci_open_pipe(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2541 1.12 kiyohara usbd_xfer *xfer)
2542 1.12 kiyohara {
2543 1.12 kiyohara struct slhci_transfers *t;
2544 1.12 kiyohara struct usbd_pipe *pipe;
2545 1.12 kiyohara
2546 1.12 kiyohara t = &sc->sc_transfers;
2547 1.12 kiyohara pipe = &spipe->pipe;
2548 1.12 kiyohara
2549 1.12 kiyohara if (t->flags & F_DISABLED)
2550 1.12 kiyohara return USBD_CANCELLED;
2551 1.48 skrll else if (pipe->up_interval && !slhci_reserve_bustime(sc, spipe, 1))
2552 1.12 kiyohara return USBD_PENDING_REQUESTS;
2553 1.12 kiyohara else {
2554 1.12 kiyohara enter_all_pipes(t, spipe);
2555 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2556 1.12 kiyohara }
2557 1.12 kiyohara }
2558 1.12 kiyohara
2559 1.12 kiyohara static usbd_status
2560 1.37 skrll slhci_close_pipe(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2561 1.12 kiyohara usbd_xfer *xfer)
2562 1.12 kiyohara {
2563 1.12 kiyohara struct usbd_pipe *pipe;
2564 1.12 kiyohara
2565 1.12 kiyohara pipe = &spipe->pipe;
2566 1.12 kiyohara
2567 1.48 skrll if (pipe->up_interval && spipe->ptype != PT_ROOT_INTR)
2568 1.12 kiyohara slhci_reserve_bustime(sc, spipe, 0);
2569 1.12 kiyohara gcq_remove(&spipe->ap);
2570 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2571 1.12 kiyohara }
2572 1.12 kiyohara
2573 1.12 kiyohara static usbd_status
2574 1.37 skrll slhci_do_abort(struct slhci_softc *sc, struct slhci_pipe *spipe, struct
2575 1.12 kiyohara usbd_xfer *xfer)
2576 1.12 kiyohara {
2577 1.12 kiyohara struct slhci_transfers *t;
2578 1.12 kiyohara
2579 1.12 kiyohara t = &sc->sc_transfers;
2580 1.12 kiyohara
2581 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2582 1.12 kiyohara
2583 1.12 kiyohara if (spipe->xfer == xfer) {
2584 1.12 kiyohara if (spipe->ptype == PT_ROOT_INTR) {
2585 1.12 kiyohara if (t->rootintr == spipe->xfer) /* XXX assert? */
2586 1.12 kiyohara t->rootintr = NULL;
2587 1.12 kiyohara } else {
2588 1.12 kiyohara gcq_remove(&spipe->to);
2589 1.12 kiyohara gcq_remove(&spipe->xq);
2590 1.12 kiyohara
2591 1.12 kiyohara if (t->spipe[A] == spipe) {
2592 1.12 kiyohara t->spipe[A] = NULL;
2593 1.12 kiyohara if (!(t->flags & F_AINPROG))
2594 1.12 kiyohara t->len[A] = -1;
2595 1.12 kiyohara } else if (t->spipe[B] == spipe) {
2596 1.12 kiyohara t->spipe[B] = NULL;
2597 1.12 kiyohara if (!(t->flags & F_BINPROG))
2598 1.12 kiyohara t->len[B] = -1;
2599 1.12 kiyohara }
2600 1.12 kiyohara }
2601 1.12 kiyohara
2602 1.48 skrll if (xfer->ux_status != USBD_TIMEOUT) {
2603 1.12 kiyohara spipe->xfer = NULL;
2604 1.48 skrll spipe->pipe.up_repeat = 0; /* XXX timeout? */
2605 1.12 kiyohara }
2606 1.12 kiyohara }
2607 1.12 kiyohara
2608 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2609 1.12 kiyohara }
2610 1.12 kiyohara
2611 1.34 skrll /*
2612 1.41 skrll * Called to deactivate or stop use of the controller instead of panicking.
2613 1.12 kiyohara * Will cancel the xfer correctly even when not on a list.
2614 1.12 kiyohara */
2615 1.12 kiyohara static usbd_status
2616 1.48 skrll slhci_halt(struct slhci_softc *sc, struct slhci_pipe *spipe,
2617 1.48 skrll struct usbd_xfer *xfer)
2618 1.12 kiyohara {
2619 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2620 1.12 kiyohara struct slhci_transfers *t;
2621 1.12 kiyohara
2622 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2623 1.12 kiyohara
2624 1.12 kiyohara t = &sc->sc_transfers;
2625 1.12 kiyohara
2626 1.12 kiyohara DDOLOG("Halt! sc %p spipe %p xfer %p", sc, spipe, xfer, 0);
2627 1.12 kiyohara
2628 1.12 kiyohara if (spipe != NULL)
2629 1.12 kiyohara slhci_log_spipe(spipe);
2630 1.12 kiyohara
2631 1.12 kiyohara if (xfer != NULL)
2632 1.12 kiyohara slhci_log_xfer(xfer);
2633 1.12 kiyohara
2634 1.37 skrll if (spipe != NULL && xfer != NULL && spipe->xfer == xfer &&
2635 1.37 skrll !gcq_onlist(&spipe->xq) && t->spipe[A] != spipe && t->spipe[B] !=
2636 1.12 kiyohara spipe) {
2637 1.48 skrll xfer->ux_status = USBD_CANCELLED;
2638 1.12 kiyohara enter_callback(t, spipe);
2639 1.12 kiyohara }
2640 1.12 kiyohara
2641 1.12 kiyohara if (t->flags & F_ACTIVE) {
2642 1.12 kiyohara slhci_intrchange(sc, 0);
2643 1.34 skrll /*
2644 1.34 skrll * leave power on when halting in case flash devices or disks
2645 1.37 skrll * are attached, which may be writing and could be damaged
2646 1.37 skrll * by abrupt power loss. The root hub clear power feature
2647 1.12 kiyohara * should still work after halting.
2648 1.12 kiyohara */
2649 1.12 kiyohara }
2650 1.12 kiyohara
2651 1.12 kiyohara t->flags &= ~F_ACTIVE;
2652 1.12 kiyohara t->flags |= F_UDISABLED;
2653 1.12 kiyohara if (!(t->flags & F_NODEV))
2654 1.12 kiyohara t->flags |= F_NODEV|F_CCONNECT|F_ROOTINTR;
2655 1.12 kiyohara slhci_drain(sc);
2656 1.1 isaki
2657 1.12 kiyohara /* One last callback for the drain and device removal. */
2658 1.12 kiyohara slhci_do_callback_schedule(sc);
2659 1.1 isaki
2660 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2661 1.1 isaki }
2662 1.1 isaki
2663 1.34 skrll /*
2664 1.34 skrll * There are three interrupt states: no interrupts during reset and after
2665 1.37 skrll * device deactivation, INSERT only for no device present but power on, and
2666 1.12 kiyohara * SOF, INSERT, ADONE, and BDONE when device is present.
2667 1.12 kiyohara */
2668 1.1 isaki static void
2669 1.12 kiyohara slhci_intrchange(struct slhci_softc *sc, uint8_t new_ier)
2670 1.1 isaki {
2671 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2672 1.12 kiyohara if (sc->sc_ier != new_ier) {
2673 1.12 kiyohara sc->sc_ier = new_ier;
2674 1.12 kiyohara slhci_write(sc, SL11_IER, new_ier);
2675 1.12 kiyohara BSB_SYNC(sc->iot, sc->ioh, sc->pst, sc->psz);
2676 1.12 kiyohara }
2677 1.1 isaki }
2678 1.1 isaki
2679 1.34 skrll /*
2680 1.34 skrll * Drain: cancel all pending transfers and put them on the callback list and
2681 1.34 skrll * set the UDISABLED flag. UDISABLED is cleared only by reset.
2682 1.34 skrll */
2683 1.12 kiyohara static void
2684 1.12 kiyohara slhci_drain(struct slhci_softc *sc)
2685 1.1 isaki {
2686 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2687 1.12 kiyohara struct slhci_transfers *t;
2688 1.12 kiyohara struct slhci_pipe *spipe;
2689 1.12 kiyohara struct gcq *q;
2690 1.12 kiyohara int i;
2691 1.1 isaki
2692 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2693 1.1 isaki
2694 1.12 kiyohara t = &sc->sc_transfers;
2695 1.1 isaki
2696 1.12 kiyohara DLOG(D_MSG, "DRAIN flags %#x", t->flags, 0,0,0);
2697 1.1 isaki
2698 1.12 kiyohara t->pend = INT_MAX;
2699 1.1 isaki
2700 1.12 kiyohara for (i=0; i<=1; i++) {
2701 1.12 kiyohara t->len[i] = -1;
2702 1.12 kiyohara if (t->spipe[i] != NULL) {
2703 1.12 kiyohara enter_callback(t, t->spipe[i]);
2704 1.12 kiyohara t->spipe[i] = NULL;
2705 1.12 kiyohara }
2706 1.1 isaki }
2707 1.1 isaki
2708 1.12 kiyohara /* Merge the queues into the callback queue. */
2709 1.12 kiyohara gcq_merge_tail(&t->q[Q_CALLBACKS], &t->q[Q_CB]);
2710 1.12 kiyohara gcq_merge_tail(&t->q[Q_CALLBACKS], &t->q[Q_NEXT_CB]);
2711 1.12 kiyohara gcq_merge_tail(&t->q[Q_CALLBACKS], &t->timed);
2712 1.1 isaki
2713 1.34 skrll /*
2714 1.34 skrll * Cancel all pipes. Note that not all of these may be on the
2715 1.34 skrll * callback queue yet; some could be in slhci_start, for example.
2716 1.34 skrll */
2717 1.12 kiyohara FOREACH_AP(q, t, spipe) {
2718 1.27 kiyohara spipe->pflags |= PF_GONE;
2719 1.48 skrll spipe->pipe.up_repeat = 0;
2720 1.48 skrll spipe->pipe.up_aborting = 1;
2721 1.12 kiyohara if (spipe->xfer != NULL)
2722 1.48 skrll spipe->xfer->ux_status = USBD_CANCELLED;
2723 1.1 isaki }
2724 1.1 isaki
2725 1.12 kiyohara gcq_remove_all(&t->to);
2726 1.1 isaki
2727 1.12 kiyohara t->flags |= F_UDISABLED;
2728 1.12 kiyohara t->flags &= ~(F_AREADY|F_BREADY|F_AINPROG|F_BINPROG|F_LOWSPEED);
2729 1.1 isaki }
2730 1.1 isaki
2731 1.34 skrll /*
2732 1.34 skrll * RESET: SL11_CTRL_RESETENGINE=1 and SL11_CTRL_JKSTATE=0 for 50ms
2733 1.12 kiyohara * reconfigure SOF after reset, must wait 2.5us before USB bus activity (SOF)
2734 1.37 skrll * check attached device speed.
2735 1.37 skrll * must wait 100ms before USB transaction according to app note, 10ms
2736 1.12 kiyohara * by spec. uhub does this delay
2737 1.12 kiyohara *
2738 1.12 kiyohara * Started from root hub set feature reset, which does step one.
2739 1.48 skrll * ub_usepolling will call slhci_reset directly, otherwise the callout goes
2740 1.12 kiyohara * through slhci_reset_entry.
2741 1.12 kiyohara */
2742 1.12 kiyohara void
2743 1.12 kiyohara slhci_reset(struct slhci_softc *sc)
2744 1.1 isaki {
2745 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2746 1.12 kiyohara struct slhci_transfers *t;
2747 1.27 kiyohara struct slhci_pipe *spipe;
2748 1.27 kiyohara struct gcq *q;
2749 1.12 kiyohara uint8_t r, pol, ctrl;
2750 1.1 isaki
2751 1.12 kiyohara t = &sc->sc_transfers;
2752 1.41 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2753 1.1 isaki
2754 1.12 kiyohara stop_cc_time(&t_delay);
2755 1.1 isaki
2756 1.12 kiyohara KASSERT(t->flags & F_ACTIVE);
2757 1.1 isaki
2758 1.12 kiyohara start_cc_time(&t_delay, 0);
2759 1.12 kiyohara stop_cc_time(&t_delay);
2760 1.1 isaki
2761 1.12 kiyohara slhci_write(sc, SL11_CTRL, 0);
2762 1.12 kiyohara start_cc_time(&t_delay, 3);
2763 1.12 kiyohara DELAY(3);
2764 1.12 kiyohara stop_cc_time(&t_delay);
2765 1.12 kiyohara slhci_write(sc, SL11_ISR, 0xff);
2766 1.1 isaki
2767 1.12 kiyohara r = slhci_read(sc, SL11_ISR);
2768 1.1 isaki
2769 1.12 kiyohara if (r & SL11_ISR_INSERT)
2770 1.12 kiyohara slhci_write(sc, SL11_ISR, SL11_ISR_INSERT);
2771 1.1 isaki
2772 1.12 kiyohara if (r & SL11_ISR_NODEV) {
2773 1.12 kiyohara DLOG(D_MSG, "NC", 0,0,0,0);
2774 1.34 skrll /*
2775 1.34 skrll * Normally, the hard interrupt insert routine will issue
2776 1.37 skrll * CCONNECT, however we need to do it here if the detach
2777 1.34 skrll * happened during reset.
2778 1.34 skrll */
2779 1.12 kiyohara if (!(t->flags & F_NODEV))
2780 1.12 kiyohara t->flags |= F_CCONNECT|F_ROOTINTR|F_NODEV;
2781 1.12 kiyohara slhci_intrchange(sc, SL11_IER_INSERT);
2782 1.12 kiyohara } else {
2783 1.12 kiyohara if (t->flags & F_NODEV)
2784 1.12 kiyohara t->flags |= F_CCONNECT;
2785 1.12 kiyohara t->flags &= ~(F_NODEV|F_LOWSPEED);
2786 1.12 kiyohara if (r & SL11_ISR_DATA) {
2787 1.12 kiyohara DLOG(D_MSG, "FS", 0,0,0,0);
2788 1.12 kiyohara pol = ctrl = 0;
2789 1.12 kiyohara } else {
2790 1.12 kiyohara DLOG(D_MSG, "LS", 0,0,0,0);
2791 1.12 kiyohara pol = SL811_CSOF_POLARITY;
2792 1.12 kiyohara ctrl = SL11_CTRL_LOWSPEED;
2793 1.12 kiyohara t->flags |= F_LOWSPEED;
2794 1.12 kiyohara }
2795 1.1 isaki
2796 1.12 kiyohara /* Enable SOF auto-generation */
2797 1.12 kiyohara t->frame = 0; /* write to SL811_CSOF will reset frame */
2798 1.12 kiyohara slhci_write(sc, SL11_SOFTIME, 0xe0);
2799 1.12 kiyohara slhci_write(sc, SL811_CSOF, pol|SL811_CSOF_MASTER|0x2e);
2800 1.12 kiyohara slhci_write(sc, SL11_CTRL, ctrl|SL11_CTRL_ENABLESOF);
2801 1.12 kiyohara
2802 1.34 skrll /*
2803 1.34 skrll * According to the app note, ARM must be set
2804 1.37 skrll * for SOF generation to work. We initialize all
2805 1.34 skrll * USBA registers here for current_tregs.
2806 1.34 skrll */
2807 1.12 kiyohara slhci_write(sc, SL11_E0ADDR, SL11_BUFFER_START);
2808 1.12 kiyohara slhci_write(sc, SL11_E0LEN, 0);
2809 1.12 kiyohara slhci_write(sc, SL11_E0PID, SL11_PID_SOF);
2810 1.12 kiyohara slhci_write(sc, SL11_E0DEV, 0);
2811 1.12 kiyohara slhci_write(sc, SL11_E0CTRL, SL11_EPCTRL_ARM);
2812 1.12 kiyohara
2813 1.34 skrll /*
2814 1.34 skrll * Initialize B registers. This can't be done earlier since
2815 1.37 skrll * they are not valid until the SL811_CSOF register is written
2816 1.34 skrll * above due to SL11H compatability.
2817 1.34 skrll */
2818 1.12 kiyohara slhci_write(sc, SL11_E1ADDR, SL11_BUFFER_END - 8);
2819 1.12 kiyohara slhci_write(sc, SL11_E1LEN, 0);
2820 1.12 kiyohara slhci_write(sc, SL11_E1PID, 0);
2821 1.12 kiyohara slhci_write(sc, SL11_E1DEV, 0);
2822 1.12 kiyohara
2823 1.12 kiyohara t->current_tregs[0][ADR] = SL11_BUFFER_START;
2824 1.12 kiyohara t->current_tregs[0][LEN] = 0;
2825 1.12 kiyohara t->current_tregs[0][PID] = SL11_PID_SOF;
2826 1.12 kiyohara t->current_tregs[0][DEV] = 0;
2827 1.12 kiyohara t->current_tregs[1][ADR] = SL11_BUFFER_END - 8;
2828 1.12 kiyohara t->current_tregs[1][LEN] = 0;
2829 1.12 kiyohara t->current_tregs[1][PID] = 0;
2830 1.12 kiyohara t->current_tregs[1][DEV] = 0;
2831 1.12 kiyohara
2832 1.12 kiyohara /* SOF start will produce USBA interrupt */
2833 1.12 kiyohara t->len[A] = 0;
2834 1.12 kiyohara t->flags |= F_AINPROG;
2835 1.12 kiyohara
2836 1.12 kiyohara slhci_intrchange(sc, SLHCI_NORMAL_INTERRUPTS);
2837 1.12 kiyohara }
2838 1.12 kiyohara
2839 1.12 kiyohara t->flags &= ~(F_UDISABLED|F_RESET);
2840 1.12 kiyohara t->flags |= F_CRESET|F_ROOTINTR;
2841 1.27 kiyohara FOREACH_AP(q, t, spipe) {
2842 1.27 kiyohara spipe->pflags &= ~PF_GONE;
2843 1.48 skrll spipe->pipe.up_aborting = 0;
2844 1.27 kiyohara }
2845 1.12 kiyohara DLOG(D_MSG, "RESET done flags %#x", t->flags, 0,0,0);
2846 1.1 isaki }
2847 1.1 isaki
2848 1.12 kiyohara /* returns 1 if succeeded, 0 if failed, reserve == 0 is unreserve */
2849 1.12 kiyohara static int
2850 1.37 skrll slhci_reserve_bustime(struct slhci_softc *sc, struct slhci_pipe *spipe, int
2851 1.12 kiyohara reserve)
2852 1.1 isaki {
2853 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2854 1.12 kiyohara struct slhci_transfers *t;
2855 1.12 kiyohara int bustime, max_packet;
2856 1.12 kiyohara
2857 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2858 1.12 kiyohara
2859 1.12 kiyohara t = &sc->sc_transfers;
2860 1.48 skrll max_packet = UGETW(spipe->pipe.up_endpoint->ue_edesc->wMaxPacketSize);
2861 1.12 kiyohara
2862 1.12 kiyohara if (spipe->pflags & PF_LS)
2863 1.12 kiyohara bustime = SLHCI_LS_CONST + SLHCI_LS_DATA_TIME(max_packet);
2864 1.12 kiyohara else
2865 1.12 kiyohara bustime = SLHCI_FS_CONST + SLHCI_FS_DATA_TIME(max_packet);
2866 1.1 isaki
2867 1.12 kiyohara if (!reserve) {
2868 1.12 kiyohara t->reserved_bustime -= bustime;
2869 1.12 kiyohara #ifdef DIAGNOSTIC
2870 1.12 kiyohara if (t->reserved_bustime < 0) {
2871 1.37 skrll printf("%s: reserved_bustime %d < 0!\n",
2872 1.12 kiyohara SC_NAME(sc), t->reserved_bustime);
2873 1.37 skrll DDOLOG("%s: reserved_bustime %d < 0!\n",
2874 1.12 kiyohara SC_NAME(sc), t->reserved_bustime, 0,0);
2875 1.12 kiyohara t->reserved_bustime = 0;
2876 1.12 kiyohara }
2877 1.12 kiyohara #endif
2878 1.12 kiyohara return 1;
2879 1.12 kiyohara }
2880 1.1 isaki
2881 1.12 kiyohara if (t->reserved_bustime + bustime > SLHCI_RESERVED_BUSTIME) {
2882 1.37 skrll if (ratecheck(&sc->sc_reserved_warn_rate,
2883 1.12 kiyohara &reserved_warn_rate))
2884 1.12 kiyohara #ifdef SLHCI_NO_OVERTIME
2885 1.12 kiyohara {
2886 1.12 kiyohara printf("%s: Max reserved bus time exceeded! "
2887 1.12 kiyohara "Erroring request.\n", SC_NAME(sc));
2888 1.12 kiyohara DDOLOG("%s: Max reserved bus time exceeded! "
2889 1.12 kiyohara "Erroring request.\n", SC_NAME(sc), 0,0,0);
2890 1.12 kiyohara }
2891 1.12 kiyohara return 0;
2892 1.12 kiyohara #else
2893 1.12 kiyohara {
2894 1.37 skrll printf("%s: Reserved bus time exceeds %d!\n",
2895 1.12 kiyohara SC_NAME(sc), SLHCI_RESERVED_BUSTIME);
2896 1.37 skrll DDOLOG("%s: Reserved bus time exceeds %d!\n",
2897 1.12 kiyohara SC_NAME(sc), SLHCI_RESERVED_BUSTIME, 0,0);
2898 1.12 kiyohara }
2899 1.12 kiyohara #endif
2900 1.1 isaki }
2901 1.1 isaki
2902 1.12 kiyohara t->reserved_bustime += bustime;
2903 1.12 kiyohara return 1;
2904 1.1 isaki }
2905 1.1 isaki
2906 1.12 kiyohara /* Device insertion/removal interrupt */
2907 1.1 isaki static void
2908 1.12 kiyohara slhci_insert(struct slhci_softc *sc)
2909 1.1 isaki {
2910 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2911 1.12 kiyohara struct slhci_transfers *t;
2912 1.12 kiyohara
2913 1.12 kiyohara t = &sc->sc_transfers;
2914 1.1 isaki
2915 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2916 1.1 isaki
2917 1.12 kiyohara if (t->flags & F_NODEV)
2918 1.12 kiyohara slhci_intrchange(sc, 0);
2919 1.12 kiyohara else {
2920 1.12 kiyohara slhci_drain(sc);
2921 1.12 kiyohara slhci_intrchange(sc, SL11_IER_INSERT);
2922 1.1 isaki }
2923 1.12 kiyohara t->flags ^= F_NODEV;
2924 1.12 kiyohara t->flags |= F_ROOTINTR|F_CCONNECT;
2925 1.12 kiyohara DLOG(D_MSG, "INSERT intr: flags after %#x", t->flags, 0,0,0);
2926 1.1 isaki }
2927 1.1 isaki
2928 1.12 kiyohara /*
2929 1.12 kiyohara * Data structures and routines to emulate the root hub.
2930 1.12 kiyohara */
2931 1.12 kiyohara
2932 1.1 isaki static usbd_status
2933 1.12 kiyohara slhci_clear_feature(struct slhci_softc *sc, unsigned int what)
2934 1.1 isaki {
2935 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2936 1.12 kiyohara struct slhci_transfers *t;
2937 1.12 kiyohara usbd_status error;
2938 1.1 isaki
2939 1.12 kiyohara t = &sc->sc_transfers;
2940 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
2941 1.1 isaki
2942 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2943 1.1 isaki
2944 1.12 kiyohara if (what == UHF_PORT_POWER) {
2945 1.12 kiyohara DLOG(D_MSG, "POWER_OFF", 0,0,0,0);
2946 1.12 kiyohara t->flags &= ~F_POWER;
2947 1.12 kiyohara if (!(t->flags & F_NODEV))
2948 1.12 kiyohara t->flags |= F_NODEV|F_CCONNECT|F_ROOTINTR;
2949 1.12 kiyohara /* for x68k Nereid USB controller */
2950 1.12 kiyohara if (sc->sc_enable_power && (t->flags & F_REALPOWER)) {
2951 1.12 kiyohara t->flags &= ~F_REALPOWER;
2952 1.12 kiyohara sc->sc_enable_power(sc, POWER_OFF);
2953 1.12 kiyohara }
2954 1.12 kiyohara slhci_intrchange(sc, 0);
2955 1.37 skrll slhci_drain(sc);
2956 1.12 kiyohara } else if (what == UHF_C_PORT_CONNECTION) {
2957 1.12 kiyohara t->flags &= ~F_CCONNECT;
2958 1.12 kiyohara } else if (what == UHF_C_PORT_RESET) {
2959 1.12 kiyohara t->flags &= ~F_CRESET;
2960 1.12 kiyohara } else if (what == UHF_PORT_ENABLE) {
2961 1.12 kiyohara slhci_drain(sc);
2962 1.12 kiyohara } else if (what != UHF_PORT_SUSPEND) {
2963 1.12 kiyohara DDOLOG("ClrPortFeatERR:value=%#.4x", what, 0,0,0);
2964 1.12 kiyohara error = USBD_IOERROR;
2965 1.12 kiyohara }
2966 1.1 isaki
2967 1.12 kiyohara return error;
2968 1.1 isaki }
2969 1.1 isaki
2970 1.1 isaki static usbd_status
2971 1.12 kiyohara slhci_set_feature(struct slhci_softc *sc, unsigned int what)
2972 1.1 isaki {
2973 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
2974 1.12 kiyohara struct slhci_transfers *t;
2975 1.12 kiyohara uint8_t r;
2976 1.12 kiyohara
2977 1.12 kiyohara t = &sc->sc_transfers;
2978 1.12 kiyohara
2979 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
2980 1.12 kiyohara
2981 1.12 kiyohara if (what == UHF_PORT_RESET) {
2982 1.12 kiyohara if (!(t->flags & F_ACTIVE)) {
2983 1.37 skrll DDOLOG("SET PORT_RESET when not ACTIVE!",
2984 1.12 kiyohara 0,0,0,0);
2985 1.12 kiyohara return USBD_INVAL;
2986 1.12 kiyohara }
2987 1.12 kiyohara if (!(t->flags & F_POWER)) {
2988 1.12 kiyohara DDOLOG("SET PORT_RESET without PORT_POWER! flags %p",
2989 1.12 kiyohara t->flags, 0,0,0);
2990 1.12 kiyohara return USBD_INVAL;
2991 1.12 kiyohara }
2992 1.12 kiyohara if (t->flags & F_RESET)
2993 1.12 kiyohara return USBD_NORMAL_COMPLETION;
2994 1.12 kiyohara DLOG(D_MSG, "RESET flags %#x", t->flags, 0,0,0);
2995 1.12 kiyohara slhci_intrchange(sc, 0);
2996 1.37 skrll slhci_drain(sc);
2997 1.12 kiyohara slhci_write(sc, SL11_CTRL, SL11_CTRL_RESETENGINE);
2998 1.12 kiyohara /* usb spec says delay >= 10ms, app note 50ms */
2999 1.12 kiyohara start_cc_time(&t_delay, 50000);
3000 1.48 skrll if (sc->sc_bus.ub_usepolling) {
3001 1.12 kiyohara DELAY(50000);
3002 1.12 kiyohara slhci_reset(sc);
3003 1.12 kiyohara } else {
3004 1.12 kiyohara t->flags |= F_RESET;
3005 1.12 kiyohara callout_schedule(&sc->sc_timer, max(mstohz(50), 2));
3006 1.12 kiyohara }
3007 1.12 kiyohara } else if (what == UHF_PORT_SUSPEND) {
3008 1.12 kiyohara printf("%s: USB Suspend not implemented!\n", SC_NAME(sc));
3009 1.37 skrll DDOLOG("%s: USB Suspend not implemented!\n", SC_NAME(sc),
3010 1.12 kiyohara 0,0,0);
3011 1.12 kiyohara } else if (what == UHF_PORT_POWER) {
3012 1.12 kiyohara DLOG(D_MSG, "PORT_POWER", 0,0,0,0);
3013 1.12 kiyohara /* for x68k Nereid USB controller */
3014 1.12 kiyohara if (!(t->flags & F_ACTIVE))
3015 1.12 kiyohara return USBD_INVAL;
3016 1.12 kiyohara if (t->flags & F_POWER)
3017 1.12 kiyohara return USBD_NORMAL_COMPLETION;
3018 1.12 kiyohara if (!(t->flags & F_REALPOWER)) {
3019 1.12 kiyohara if (sc->sc_enable_power)
3020 1.12 kiyohara sc->sc_enable_power(sc, POWER_ON);
3021 1.12 kiyohara t->flags |= F_REALPOWER;
3022 1.12 kiyohara }
3023 1.12 kiyohara t->flags |= F_POWER;
3024 1.12 kiyohara r = slhci_read(sc, SL11_ISR);
3025 1.12 kiyohara if (r & SL11_ISR_INSERT)
3026 1.12 kiyohara slhci_write(sc, SL11_ISR, SL11_ISR_INSERT);
3027 1.12 kiyohara if (r & SL11_ISR_NODEV) {
3028 1.12 kiyohara slhci_intrchange(sc, SL11_IER_INSERT);
3029 1.12 kiyohara t->flags |= F_NODEV;
3030 1.12 kiyohara } else {
3031 1.12 kiyohara t->flags &= ~F_NODEV;
3032 1.12 kiyohara t->flags |= F_CCONNECT|F_ROOTINTR;
3033 1.12 kiyohara }
3034 1.12 kiyohara } else {
3035 1.12 kiyohara DDOLOG("SetPortFeatERR=%#.8x", what, 0,0,0);
3036 1.12 kiyohara return USBD_IOERROR;
3037 1.12 kiyohara }
3038 1.1 isaki
3039 1.1 isaki return USBD_NORMAL_COMPLETION;
3040 1.1 isaki }
3041 1.1 isaki
3042 1.1 isaki static void
3043 1.12 kiyohara slhci_get_status(struct slhci_softc *sc, usb_port_status_t *ps)
3044 1.1 isaki {
3045 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3046 1.12 kiyohara struct slhci_transfers *t;
3047 1.12 kiyohara unsigned int status, change;
3048 1.12 kiyohara
3049 1.12 kiyohara t = &sc->sc_transfers;
3050 1.12 kiyohara
3051 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
3052 1.1 isaki
3053 1.34 skrll /*
3054 1.34 skrll * We do not have a way to detect over current or bable and
3055 1.37 skrll * suspend is currently not implemented, so connect and reset
3056 1.34 skrll * are the only changes that need to be reported.
3057 1.34 skrll */
3058 1.12 kiyohara change = 0;
3059 1.12 kiyohara if (t->flags & F_CCONNECT)
3060 1.12 kiyohara change |= UPS_C_CONNECT_STATUS;
3061 1.12 kiyohara if (t->flags & F_CRESET)
3062 1.12 kiyohara change |= UPS_C_PORT_RESET;
3063 1.12 kiyohara
3064 1.12 kiyohara status = 0;
3065 1.12 kiyohara if (!(t->flags & F_NODEV))
3066 1.12 kiyohara status |= UPS_CURRENT_CONNECT_STATUS;
3067 1.12 kiyohara if (!(t->flags & F_UDISABLED))
3068 1.12 kiyohara status |= UPS_PORT_ENABLED;
3069 1.12 kiyohara if (t->flags & F_RESET)
3070 1.12 kiyohara status |= UPS_RESET;
3071 1.12 kiyohara if (t->flags & F_POWER)
3072 1.12 kiyohara status |= UPS_PORT_POWER;
3073 1.12 kiyohara if (t->flags & F_LOWSPEED)
3074 1.12 kiyohara status |= UPS_LOW_SPEED;
3075 1.37 skrll USETW(ps->wPortStatus, status);
3076 1.12 kiyohara USETW(ps->wPortChange, change);
3077 1.12 kiyohara DLOG(D_ROOT, "status=%#.4x, change=%#.4x", status, change, 0,0);
3078 1.1 isaki }
3079 1.1 isaki
3080 1.12 kiyohara static usbd_status
3081 1.48 skrll slhci_root(struct slhci_softc *sc, struct slhci_pipe *spipe,
3082 1.48 skrll struct usbd_xfer *xfer)
3083 1.1 isaki {
3084 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3085 1.12 kiyohara struct slhci_transfers *t;
3086 1.1 isaki
3087 1.12 kiyohara t = &sc->sc_transfers;
3088 1.1 isaki
3089 1.37 skrll LK_SLASSERT(spipe != NULL && xfer != NULL, sc, spipe, xfer, return
3090 1.12 kiyohara USBD_CANCELLED);
3091 1.1 isaki
3092 1.12 kiyohara DLOG(D_TRACE, "%s start", pnames(SLHCI_XFER_TYPE(xfer)), 0,0,0);
3093 1.44 skrll KASSERT(mutex_owned(&sc->sc_intr_lock));
3094 1.1 isaki
3095 1.48 skrll KASSERT(spipe->ptype == PT_ROOT_INTR);
3096 1.48 skrll LK_SLASSERT(t->rootintr == NULL, sc, spipe, xfer, return
3097 1.48 skrll USBD_CANCELLED);
3098 1.48 skrll t->rootintr = xfer;
3099 1.48 skrll if (t->flags & F_CHANGE)
3100 1.48 skrll t->flags |= F_ROOTINTR;
3101 1.48 skrll return USBD_IN_PROGRESS;
3102 1.48 skrll }
3103 1.1 isaki
3104 1.48 skrll static int
3105 1.48 skrll slhci_roothub_ctrl(struct usbd_bus *bus, usb_device_request_t *req,
3106 1.48 skrll void *buf, int buflen)
3107 1.48 skrll {
3108 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3109 1.48 skrll struct slhci_softc *sc = SLHCI_BUS2SC(bus);
3110 1.48 skrll struct slhci_transfers *t = &sc->sc_transfers;
3111 1.48 skrll usbd_status error = USBD_IOERROR; /* XXX should be STALL */
3112 1.48 skrll uint16_t len, value, index;
3113 1.48 skrll uint8_t type;
3114 1.48 skrll int actlen = 0;
3115 1.12 kiyohara
3116 1.12 kiyohara len = UGETW(req->wLength);
3117 1.12 kiyohara value = UGETW(req->wValue);
3118 1.12 kiyohara index = UGETW(req->wIndex);
3119 1.1 isaki
3120 1.37 skrll type = req->bmRequestType;
3121 1.1 isaki
3122 1.12 kiyohara SLHCI_DEXEC(D_TRACE, slhci_log_req_hub(req));
3123 1.1 isaki
3124 1.12 kiyohara /*
3125 1.12 kiyohara * USB requests for hubs have two basic types, standard and class.
3126 1.37 skrll * Each could potentially have recipients of device, interface,
3127 1.12 kiyohara * endpoint, or other. For the hub class, CLASS_OTHER means the port
3128 1.12 kiyohara * and CLASS_DEVICE means the hub. For standard requests, OTHER
3129 1.37 skrll * is not used. Standard request are described in section 9.4 of the
3130 1.37 skrll * standard, hub class requests in 11.16. Each request is either read
3131 1.12 kiyohara * or write.
3132 1.12 kiyohara *
3133 1.37 skrll * Clear Feature, Set Feature, and Status are defined for each of the
3134 1.37 skrll * used recipients. Get Descriptor and Set Descriptor are defined for
3135 1.37 skrll * both standard and hub class types with different descriptors.
3136 1.37 skrll * Other requests have only one defined recipient and type. These
3137 1.37 skrll * include: Get/Set Address, Get/Set Configuration, Get/Set Interface,
3138 1.37 skrll * and Synch Frame for standard requests and Get Bus State for hub
3139 1.12 kiyohara * class.
3140 1.12 kiyohara *
3141 1.37 skrll * When a device is first powered up it has address 0 until the
3142 1.12 kiyohara * address is set.
3143 1.37 skrll *
3144 1.37 skrll * Hubs are only allowed to support one interface and may not have
3145 1.37 skrll * isochronous endpoints. The results of the related requests are
3146 1.12 kiyohara * undefined.
3147 1.12 kiyohara *
3148 1.37 skrll * The standard requires invalid or unsupported requests to return
3149 1.37 skrll * STALL in the data stage, however this does not work well with
3150 1.12 kiyohara * current error handling. XXX
3151 1.12 kiyohara *
3152 1.12 kiyohara * Some unsupported fields:
3153 1.12 kiyohara * Clear Hub Feature is for C_HUB_LOCAL_POWER and C_HUB_OVER_CURRENT
3154 1.12 kiyohara * Set Device Features is for ENDPOINT_HALT and DEVICE_REMOTE_WAKEUP
3155 1.12 kiyohara * Get Bus State is optional sample of D- and D+ at EOF2
3156 1.12 kiyohara */
3157 1.1 isaki
3158 1.12 kiyohara switch (req->bRequest) {
3159 1.12 kiyohara /* Write Requests */
3160 1.12 kiyohara case UR_CLEAR_FEATURE:
3161 1.12 kiyohara if (type == UT_WRITE_CLASS_OTHER) {
3162 1.12 kiyohara if (index == 1 /* Port */)
3163 1.12 kiyohara error = slhci_clear_feature(sc, value);
3164 1.12 kiyohara else
3165 1.12 kiyohara DLOG(D_ROOT, "Clear Port Feature "
3166 1.12 kiyohara "index = %#.4x", index, 0,0,0);
3167 1.12 kiyohara }
3168 1.12 kiyohara break;
3169 1.12 kiyohara case UR_SET_FEATURE:
3170 1.12 kiyohara if (type == UT_WRITE_CLASS_OTHER) {
3171 1.12 kiyohara if (index == 1 /* Port */)
3172 1.12 kiyohara error = slhci_set_feature(sc, value);
3173 1.12 kiyohara else
3174 1.12 kiyohara DLOG(D_ROOT, "Set Port Feature "
3175 1.12 kiyohara "index = %#.4x", index, 0,0,0);
3176 1.12 kiyohara } else if (type != UT_WRITE_CLASS_DEVICE)
3177 1.12 kiyohara DLOG(D_ROOT, "Set Device Feature "
3178 1.12 kiyohara "ENDPOINT_HALT or DEVICE_REMOTE_WAKEUP "
3179 1.12 kiyohara "not supported", 0,0,0,0);
3180 1.12 kiyohara break;
3181 1.48 skrll
3182 1.12 kiyohara /* Read Requests */
3183 1.12 kiyohara case UR_GET_STATUS:
3184 1.12 kiyohara if (type == UT_READ_CLASS_OTHER) {
3185 1.12 kiyohara if (index == 1 /* Port */ && len == /* XXX >=? */
3186 1.12 kiyohara sizeof(usb_port_status_t)) {
3187 1.12 kiyohara slhci_get_status(sc, (usb_port_status_t *)
3188 1.12 kiyohara buf);
3189 1.12 kiyohara actlen = sizeof(usb_port_status_t);
3190 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3191 1.37 skrll } else
3192 1.37 skrll DLOG(D_ROOT, "Get Port Status index = %#.4x "
3193 1.12 kiyohara "len = %#.4x", index, len, 0,0);
3194 1.12 kiyohara } else if (type == UT_READ_CLASS_DEVICE) { /* XXX index? */
3195 1.12 kiyohara if (len == sizeof(usb_hub_status_t)) {
3196 1.37 skrll DLOG(D_ROOT, "Get Hub Status",
3197 1.12 kiyohara 0,0,0,0);
3198 1.12 kiyohara actlen = sizeof(usb_hub_status_t);
3199 1.12 kiyohara memset(buf, 0, actlen);
3200 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3201 1.12 kiyohara } else
3202 1.12 kiyohara DLOG(D_ROOT, "Get Hub Status bad len %#.4x",
3203 1.12 kiyohara len, 0,0,0);
3204 1.12 kiyohara }
3205 1.12 kiyohara break;
3206 1.12 kiyohara case UR_GET_DESCRIPTOR:
3207 1.12 kiyohara if (type == UT_READ_DEVICE) {
3208 1.12 kiyohara /* value is type (&0xff00) and index (0xff) */
3209 1.12 kiyohara if (value == (UDESC_DEVICE<<8)) {
3210 1.48 skrll usb_device_descriptor_t devd;
3211 1.48 skrll
3212 1.48 skrll actlen = min(buflen, sizeof(devd));
3213 1.48 skrll memcpy(&devd, buf, actlen);
3214 1.48 skrll USETW(devd.idVendor, USB_VENDOR_SCANLOGIC);
3215 1.48 skrll memcpy(buf, &devd, actlen);
3216 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3217 1.12 kiyohara } else if (value == (UDESC_CONFIG<<8)) {
3218 1.48 skrll struct usb_roothub_descriptors confd;
3219 1.48 skrll
3220 1.48 skrll actlen = min(buflen, sizeof(confd));
3221 1.48 skrll memcpy(&confd, buf, actlen);
3222 1.48 skrll
3223 1.48 skrll /* 2 mA units */
3224 1.48 skrll confd.urh_confd.bMaxPower = t->max_current;
3225 1.48 skrll memcpy(buf, &confd, actlen);
3226 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3227 1.12 kiyohara } else if (value == ((UDESC_STRING<<8)|1)) {
3228 1.12 kiyohara /* Vendor */
3229 1.20 isaki actlen = usb_makestrdesc((usb_string_descriptor_t *)
3230 1.12 kiyohara buf, len, "ScanLogic/Cypress");
3231 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3232 1.12 kiyohara } else if (value == ((UDESC_STRING<<8)|2)) {
3233 1.12 kiyohara /* Product */
3234 1.20 isaki actlen = usb_makestrdesc((usb_string_descriptor_t *)
3235 1.12 kiyohara buf, len, "SL811HS/T root hub");
3236 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3237 1.12 kiyohara } else
3238 1.12 kiyohara DDOLOG("Unknown Get Descriptor %#.4x",
3239 1.12 kiyohara value, 0,0,0);
3240 1.12 kiyohara } else if (type == UT_READ_CLASS_DEVICE) {
3241 1.12 kiyohara /* Descriptor number is 0 */
3242 1.12 kiyohara if (value == (UDESC_HUB<<8)) {
3243 1.48 skrll usb_hub_descriptor_t hubd;
3244 1.48 skrll
3245 1.48 skrll actlen = min(buflen, sizeof(hubd));
3246 1.48 skrll memcpy(&hubd, buf, actlen);
3247 1.48 skrll hubd.bHubContrCurrent =
3248 1.48 skrll 500 - t->max_current;
3249 1.48 skrll memcpy(buf, &hubd, actlen);
3250 1.12 kiyohara error = USBD_NORMAL_COMPLETION;
3251 1.12 kiyohara } else
3252 1.12 kiyohara DDOLOG("Unknown Get Hub Descriptor %#.4x",
3253 1.12 kiyohara value, 0,0,0);
3254 1.12 kiyohara }
3255 1.12 kiyohara break;
3256 1.48 skrll default:
3257 1.48 skrll /* default from usbroothub */
3258 1.48 skrll return buflen;
3259 1.1 isaki }
3260 1.1 isaki
3261 1.12 kiyohara if (error == USBD_NORMAL_COMPLETION)
3262 1.48 skrll return actlen;
3263 1.12 kiyohara
3264 1.48 skrll return -1;
3265 1.1 isaki }
3266 1.1 isaki
3267 1.12 kiyohara /* End in lock functions. Start debug functions. */
3268 1.12 kiyohara
3269 1.12 kiyohara #ifdef SLHCI_DEBUG
3270 1.1 isaki void
3271 1.12 kiyohara slhci_log_buffer(struct usbd_xfer *xfer)
3272 1.1 isaki {
3273 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3274 1.12 kiyohara u_char *buf;
3275 1.1 isaki
3276 1.48 skrll if(xfer->ux_length > 0 &&
3277 1.48 skrll UE_GET_DIR(xfer->ux_pipe->up_endpoint->ue_edesc->bEndpointAddress) ==
3278 1.12 kiyohara UE_DIR_IN) {
3279 1.48 skrll buf = xfer->ux_buf;
3280 1.48 skrll DDOLOGBUF(buf, xfer->ux_actlen);
3281 1.48 skrll DDOLOG("len %d actlen %d short %d", xfer->ux_length,
3282 1.48 skrll xfer->ux_actlen, xfer->ux_length - xfer->ux_actlen, 0);
3283 1.12 kiyohara }
3284 1.1 isaki }
3285 1.1 isaki
3286 1.1 isaki void
3287 1.12 kiyohara slhci_log_req(usb_device_request_t *r)
3288 1.1 isaki {
3289 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3290 1.12 kiyohara static const char *xmes[]={
3291 1.1 isaki "GETSTAT",
3292 1.1 isaki "CLRFEAT",
3293 1.1 isaki "res",
3294 1.1 isaki "SETFEAT",
3295 1.1 isaki "res",
3296 1.1 isaki "SETADDR",
3297 1.1 isaki "GETDESC",
3298 1.1 isaki "SETDESC",
3299 1.1 isaki "GETCONF",
3300 1.1 isaki "SETCONF",
3301 1.1 isaki "GETIN/F",
3302 1.1 isaki "SETIN/F",
3303 1.12 kiyohara "SYNC_FR",
3304 1.12 kiyohara "UNKNOWN"
3305 1.1 isaki };
3306 1.12 kiyohara int req, mreq, type, value, index, len;
3307 1.1 isaki
3308 1.1 isaki req = r->bRequest;
3309 1.12 kiyohara mreq = (req > 13) ? 13 : req;
3310 1.1 isaki type = r->bmRequestType;
3311 1.1 isaki value = UGETW(r->wValue);
3312 1.1 isaki index = UGETW(r->wIndex);
3313 1.1 isaki len = UGETW(r->wLength);
3314 1.1 isaki
3315 1.12 kiyohara DDOLOG("request: %s %#x", xmes[mreq], type, 0,0);
3316 1.12 kiyohara DDOLOG("request: r=%d,v=%d,i=%d,l=%d ", req, value, index, len);
3317 1.1 isaki }
3318 1.1 isaki
3319 1.1 isaki void
3320 1.12 kiyohara slhci_log_req_hub(usb_device_request_t *r)
3321 1.1 isaki {
3322 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3323 1.12 kiyohara static const struct {
3324 1.1 isaki int req;
3325 1.1 isaki int type;
3326 1.9 christos const char *str;
3327 1.1 isaki } conf[] = {
3328 1.1 isaki { 1, 0x20, "ClrHubFeat" },
3329 1.1 isaki { 1, 0x23, "ClrPortFeat" },
3330 1.1 isaki { 2, 0xa3, "GetBusState" },
3331 1.1 isaki { 6, 0xa0, "GetHubDesc" },
3332 1.1 isaki { 0, 0xa0, "GetHubStat" },
3333 1.1 isaki { 0, 0xa3, "GetPortStat" },
3334 1.1 isaki { 7, 0x20, "SetHubDesc" },
3335 1.1 isaki { 3, 0x20, "SetHubFeat" },
3336 1.1 isaki { 3, 0x23, "SetPortFeat" },
3337 1.1 isaki {-1, 0, NULL},
3338 1.1 isaki };
3339 1.1 isaki int i;
3340 1.1 isaki int value, index, len;
3341 1.12 kiyohara const char *str;
3342 1.1 isaki
3343 1.1 isaki value = UGETW(r->wValue);
3344 1.1 isaki index = UGETW(r->wIndex);
3345 1.1 isaki len = UGETW(r->wLength);
3346 1.1 isaki for (i = 0; ; i++) {
3347 1.12 kiyohara if (conf[i].req == -1 ) {
3348 1.12 kiyohara slhci_log_req(r);
3349 1.12 kiyohara return;
3350 1.12 kiyohara }
3351 1.1 isaki if (r->bmRequestType == conf[i].type && r->bRequest == conf[i].req) {
3352 1.12 kiyohara str = conf[i].str;
3353 1.1 isaki break;
3354 1.1 isaki }
3355 1.1 isaki }
3356 1.12 kiyohara DDOLOG("hub request: %s v=%d,i=%d,l=%d ", str, value, index, len);
3357 1.1 isaki }
3358 1.1 isaki
3359 1.1 isaki void
3360 1.12 kiyohara slhci_log_dumpreg(void)
3361 1.1 isaki {
3362 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3363 1.12 kiyohara uint8_t r;
3364 1.12 kiyohara unsigned int aaddr, alen, baddr, blen;
3365 1.12 kiyohara static u_char buf[240];
3366 1.12 kiyohara
3367 1.12 kiyohara r = slhci_read(ssc, SL11_E0CTRL);
3368 1.12 kiyohara DDOLOG("USB A Host Control = %#.2x", r, 0,0,0);
3369 1.37 skrll DDOLOGFLAG8("E0CTRL=", r, "Preamble", "Data Toggle", "SOF Sync",
3370 1.12 kiyohara "ISOC", "res", "Out", "Enable", "Arm");
3371 1.12 kiyohara aaddr = slhci_read(ssc, SL11_E0ADDR);
3372 1.12 kiyohara DDOLOG("USB A Base Address = %u", aaddr, 0,0,0);
3373 1.12 kiyohara alen = slhci_read(ssc, SL11_E0LEN);
3374 1.12 kiyohara DDOLOG("USB A Length = %u", alen, 0,0,0);
3375 1.12 kiyohara r = slhci_read(ssc, SL11_E0STAT);
3376 1.12 kiyohara DDOLOG("USB A Status = %#.2x", r, 0,0,0);
3377 1.12 kiyohara DDOLOGFLAG8("E0STAT=", r, "STALL", "NAK", "Overflow", "Setup",
3378 1.12 kiyohara "Data Toggle", "Timeout", "Error", "ACK");
3379 1.12 kiyohara r = slhci_read(ssc, SL11_E0CONT);
3380 1.12 kiyohara DDOLOG("USB A Remaining or Overflow Length = %u", r, 0,0,0);
3381 1.12 kiyohara r = slhci_read(ssc, SL11_E1CTRL);
3382 1.12 kiyohara DDOLOG("USB B Host Control = %#.2x", r, 0,0,0);
3383 1.37 skrll DDOLOGFLAG8("E1CTRL=", r, "Preamble", "Data Toggle", "SOF Sync",
3384 1.12 kiyohara "ISOC", "res", "Out", "Enable", "Arm");
3385 1.12 kiyohara baddr = slhci_read(ssc, SL11_E1ADDR);
3386 1.12 kiyohara DDOLOG("USB B Base Address = %u", baddr, 0,0,0);
3387 1.12 kiyohara blen = slhci_read(ssc, SL11_E1LEN);
3388 1.12 kiyohara DDOLOG("USB B Length = %u", blen, 0,0,0);
3389 1.12 kiyohara r = slhci_read(ssc, SL11_E1STAT);
3390 1.12 kiyohara DDOLOG("USB B Status = %#.2x", r, 0,0,0);
3391 1.12 kiyohara DDOLOGFLAG8("E1STAT=", r, "STALL", "NAK", "Overflow", "Setup",
3392 1.12 kiyohara "Data Toggle", "Timeout", "Error", "ACK");
3393 1.12 kiyohara r = slhci_read(ssc, SL11_E1CONT);
3394 1.12 kiyohara DDOLOG("USB B Remaining or Overflow Length = %u", r, 0,0,0);
3395 1.12 kiyohara
3396 1.12 kiyohara r = slhci_read(ssc, SL11_CTRL);
3397 1.12 kiyohara DDOLOG("Control = %#.2x", r, 0,0,0);
3398 1.37 skrll DDOLOGFLAG8("CTRL=", r, "res", "Suspend", "LOW Speed",
3399 1.12 kiyohara "J-K State Force", "Reset", "res", "res", "SOF");
3400 1.12 kiyohara r = slhci_read(ssc, SL11_IER);
3401 1.12 kiyohara DDOLOG("Interrupt Enable = %#.2x", r, 0,0,0);
3402 1.12 kiyohara DDOLOGFLAG8("IER=", r, "D+ **IER!**", "Device Detect/Resume",
3403 1.12 kiyohara "Insert/Remove", "SOF", "res", "res", "USBB", "USBA");
3404 1.12 kiyohara r = slhci_read(ssc, SL11_ISR);
3405 1.12 kiyohara DDOLOG("Interrupt Status = %#.2x", r, 0,0,0);
3406 1.12 kiyohara DDOLOGFLAG8("ISR=", r, "D+", "Device Detect/Resume",
3407 1.12 kiyohara "Insert/Remove", "SOF", "res", "res", "USBB", "USBA");
3408 1.12 kiyohara r = slhci_read(ssc, SL11_REV);
3409 1.12 kiyohara DDOLOG("Revision = %#.2x", r, 0,0,0);
3410 1.12 kiyohara r = slhci_read(ssc, SL811_CSOF);
3411 1.12 kiyohara DDOLOG("SOF Counter = %#.2x", r, 0,0,0);
3412 1.12 kiyohara
3413 1.37 skrll if (alen && aaddr >= SL11_BUFFER_START && aaddr < SL11_BUFFER_END &&
3414 1.12 kiyohara alen <= SL11_MAX_PACKET_SIZE && aaddr + alen <= SL11_BUFFER_END) {
3415 1.12 kiyohara slhci_read_multi(ssc, aaddr, buf, alen);
3416 1.12 kiyohara DDOLOG("USBA Buffer: start %u len %u", aaddr, alen, 0,0);
3417 1.12 kiyohara DDOLOGBUF(buf, alen);
3418 1.12 kiyohara } else if (alen)
3419 1.12 kiyohara DDOLOG("USBA Buffer Invalid", 0,0,0,0);
3420 1.12 kiyohara
3421 1.37 skrll if (blen && baddr >= SL11_BUFFER_START && baddr < SL11_BUFFER_END &&
3422 1.12 kiyohara blen <= SL11_MAX_PACKET_SIZE && baddr + blen <= SL11_BUFFER_END) {
3423 1.12 kiyohara slhci_read_multi(ssc, baddr, buf, blen);
3424 1.12 kiyohara DDOLOG("USBB Buffer: start %u len %u", baddr, blen, 0,0);
3425 1.12 kiyohara DDOLOGBUF(buf, blen);
3426 1.12 kiyohara } else if (blen)
3427 1.12 kiyohara DDOLOG("USBB Buffer Invalid", 0,0,0,0);
3428 1.1 isaki }
3429 1.1 isaki
3430 1.1 isaki void
3431 1.12 kiyohara slhci_log_xfer(struct usbd_xfer *xfer)
3432 1.1 isaki {
3433 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3434 1.12 kiyohara DDOLOG("xfer: length=%u, actlen=%u, flags=%#x, timeout=%u,",
3435 1.48 skrll xfer->ux_length, xfer->ux_actlen, xfer->ux_flags, xfer->ux_timeout);
3436 1.56 skrll DDOLOG("buffer=%p", xfer->ux_buf, 0,0,0);
3437 1.48 skrll slhci_log_req_hub(&xfer->ux_request);
3438 1.12 kiyohara }
3439 1.12 kiyohara
3440 1.12 kiyohara void
3441 1.12 kiyohara slhci_log_spipe(struct slhci_pipe *spipe)
3442 1.12 kiyohara {
3443 1.56 skrll SLHCIHIST_FUNC(); SLHCIHIST_CALLED();
3444 1.37 skrll DDOLOG("spipe %p onlists: %s %s %s", spipe, gcq_onlist(&spipe->ap) ?
3445 1.37 skrll "AP" : "", gcq_onlist(&spipe->to) ? "TO" : "",
3446 1.12 kiyohara gcq_onlist(&spipe->xq) ? "XQ" : "");
3447 1.12 kiyohara DDOLOG("spipe: xfer %p buffer %p pflags %#x ptype %s",
3448 1.12 kiyohara spipe->xfer, spipe->buffer, spipe->pflags, pnames(spipe->ptype));
3449 1.12 kiyohara }
3450 1.12 kiyohara
3451 1.12 kiyohara void
3452 1.12 kiyohara slhci_print_intr(void)
3453 1.12 kiyohara {
3454 1.12 kiyohara unsigned int ier, isr;
3455 1.12 kiyohara ier = slhci_read(ssc, SL11_IER);
3456 1.12 kiyohara isr = slhci_read(ssc, SL11_ISR);
3457 1.12 kiyohara printf("IER: %#x ISR: %#x \n", ier, isr);
3458 1.12 kiyohara }
3459 1.12 kiyohara
3460 1.12 kiyohara #if 0
3461 1.12 kiyohara void
3462 1.22 cegger slhci_log_sc(void)
3463 1.12 kiyohara {
3464 1.12 kiyohara struct slhci_transfers *t;
3465 1.12 kiyohara int i;
3466 1.12 kiyohara
3467 1.12 kiyohara t = &ssc->sc_transfers;
3468 1.12 kiyohara
3469 1.12 kiyohara DDOLOG("Flags=%#x", t->flags, 0,0,0);
3470 1.37 skrll DDOLOG("a = %p Alen=%d b = %p Blen=%d", t->spipe[0], t->len[0],
3471 1.12 kiyohara t->spipe[1], t->len[1]);
3472 1.12 kiyohara
3473 1.37 skrll for (i=0; i<=Q_MAX; i++)
3474 1.12 kiyohara DDOLOG("Q %d: %p", i, gcq_first(&t->q[i]), 0,0);
3475 1.12 kiyohara
3476 1.37 skrll DDOLOG("TIMED: %p", GCQ_ITEM(gcq_first(&t->to),
3477 1.12 kiyohara struct slhci_pipe, to), 0,0,0);
3478 1.12 kiyohara
3479 1.12 kiyohara DDOLOG("frame=%d rootintr=%p", t->frame, t->rootintr, 0,0);
3480 1.12 kiyohara
3481 1.48 skrll DDOLOG("ub_usepolling=%d", ssc->sc_bus.ub_usepolling, 0, 0, 0);
3482 1.12 kiyohara }
3483 1.12 kiyohara
3484 1.12 kiyohara void
3485 1.12 kiyohara slhci_log_slreq(struct slhci_pipe *r)
3486 1.12 kiyohara {
3487 1.12 kiyohara DDOLOG("next: %p", r->q.next.sqe_next, 0,0,0);
3488 1.12 kiyohara DDOLOG("xfer: %p", r->xfer, 0,0,0);
3489 1.12 kiyohara DDOLOG("buffer: %p", r->buffer, 0,0,0);
3490 1.12 kiyohara DDOLOG("bustime: %u", r->bustime, 0,0,0);
3491 1.12 kiyohara DDOLOG("control: %#x", r->control, 0,0,0);
3492 1.37 skrll DDOLOGFLAG8("control=", r->control, "Preamble", "Data Toggle",
3493 1.12 kiyohara "SOF Sync", "ISOC", "res", "Out", "Enable", "Arm");
3494 1.12 kiyohara DDOLOG("pid: %#x", r->tregs[PID], 0,0,0);
3495 1.12 kiyohara DDOLOG("dev: %u", r->tregs[DEV], 0,0,0);
3496 1.12 kiyohara DDOLOG("len: %u", r->tregs[LEN], 0,0,0);
3497 1.12 kiyohara
3498 1.12 kiyohara if (r->xfer)
3499 1.12 kiyohara slhci_log_xfer(r->xfer);
3500 1.1 isaki }
3501 1.12 kiyohara #endif
3502 1.1 isaki #endif /* SLHCI_DEBUG */
3503 1.12 kiyohara /* End debug functions. */
3504