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cz.c revision 1.15
      1 /*	$NetBSD: cz.c,v 1.15 2001/01/20 19:10:36 thorpej Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 2000 Zembu Labs, Inc.
      5  * All rights reserved.
      6  *
      7  * Authors: Jason R. Thorpe <thorpej (at) zembu.com>
      8  *          Bill Studenmund <wrstuden (at) zembu.com>
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  * 3. All advertising materials mentioning features or use of this software
     19  *    must display the following acknowledgement:
     20  *	This product includes software developed by Zembu Labs, Inc.
     21  * 4. Neither the name of Zembu Labs nor the names of its employees may
     22  *    be used to endorse or promote products derived from this software
     23  *    without specific prior written permission.
     24  *
     25  * THIS SOFTWARE IS PROVIDED BY ZEMBU LABS, INC. ``AS IS'' AND ANY EXPRESS
     26  * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WAR-
     27  * RANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DIS-
     28  * CLAIMED.  IN NO EVENT SHALL ZEMBU LABS BE LIABLE FOR ANY DIRECT, INDIRECT,
     29  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     30  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     31  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     32  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     33  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     34  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     35  */
     36 
     37 /*
     38  * Cyclades-Z series multi-port serial adapter driver for NetBSD.
     39  *
     40  * Some notes:
     41  *
     42  *	- The Cyclades-Z has fully automatic hardware (and software!)
     43  *	  flow control.  We only utilize RTS/CTS flow control here,
     44  *	  and it is implemented in a very simplistic manner.  This
     45  *	  may be an area of future work.
     46  *
     47  *	- The PLX can map the either the board's RAM or host RAM
     48  *	  into the MIPS's memory window.  This would enable us to
     49  *	  use less expensive (for us) memory reads/writes to host
     50  *	  RAM, rather than time-consuming reads/writes to PCI
     51  *	  memory space.  However, the PLX can only map a 0-128M
     52  *	  window, so we would have to ensure that the DMA address
     53  *	  of the host RAM fits there.  This is kind of a pain,
     54  *	  so we just don't bother right now.
     55  *
     56  *	- In a perfect world, we would use the autoconfiguration
     57  *	  mechanism to attach the TTYs that we find.  However,
     58  *	  that leads to somewhat icky looking autoconfiguration
     59  *	  messages (one for every TTY, up to 64 per board!).  So
     60  *	  we don't do it that way, but assign minors as if there
     61  *	  were the max of 64 ports per board.
     62  *
     63  *	- We don't bother with PPS support here.  There are so many
     64  *	  ports, each with a large amount of buffer space, that the
     65  *	  normal mode of operation is to poll the boards regularly
     66  *	  (generally, every 20ms or so).  This makes this driver
     67  *	  unsuitable for PPS, as the latency will be generally too
     68  *	  high.
     69  */
     70 /*
     71  * This driver inspired by the FreeBSD driver written by Brian J. McGovern
     72  * for FreeBSD 3.2.
     73  */
     74 
     75 #include <sys/param.h>
     76 #include <sys/systm.h>
     77 #include <sys/proc.h>
     78 #include <sys/device.h>
     79 #include <sys/malloc.h>
     80 #include <sys/tty.h>
     81 #include <sys/conf.h>
     82 #include <sys/time.h>
     83 #include <sys/kernel.h>
     84 #include <sys/fcntl.h>
     85 #include <sys/syslog.h>
     86 
     87 #include <sys/callout.h>
     88 
     89 #include <dev/pci/pcireg.h>
     90 #include <dev/pci/pcivar.h>
     91 #include <dev/pci/pcidevs.h>
     92 #include <dev/pci/czreg.h>
     93 
     94 #include <dev/pci/plx9060reg.h>
     95 #include <dev/pci/plx9060var.h>
     96 
     97 #include <dev/microcode/cyclades-z/cyzfirm.h>
     98 
     99 #define	CZ_DRIVER_VERSION	0x20000411
    100 
    101 #define CZ_POLL_MS			20
    102 
    103 /* These are the interrupts we always use. */
    104 #define	CZ_INTERRUPTS							\
    105 	(C_IN_MDSR | C_IN_MRI | C_IN_MRTS | C_IN_MCTS | C_IN_TXBEMPTY |	\
    106 	 C_IN_TXFEMPTY | C_IN_TXLOWWM | C_IN_RXHIWM | C_IN_RXNNDT |	\
    107 	 C_IN_MDCD | C_IN_PR_ERROR | C_IN_FR_ERROR | C_IN_OVR_ERROR |	\
    108 	 C_IN_RXOFL | C_IN_IOCTLW | C_IN_RXBRK)
    109 
    110 /*
    111  * cztty_softc:
    112  *
    113  *	Per-channel (TTY) state.
    114  */
    115 struct cztty_softc {
    116 	struct cz_softc *sc_parent;
    117 	struct tty *sc_tty;
    118 
    119 	struct callout sc_diag_ch;
    120 
    121 	int sc_channel;			/* Also used to flag unattached chan */
    122 #define CZTTY_CHANNEL_DEAD	-1
    123 
    124 	bus_space_tag_t sc_chan_st;	/* channel space tag */
    125 	bus_space_handle_t sc_chan_sh;	/* channel space handle */
    126 	bus_space_handle_t sc_buf_sh;	/* buffer space handle */
    127 
    128 	u_int sc_overflows,
    129 	      sc_parity_errors,
    130 	      sc_framing_errors,
    131 	      sc_errors;
    132 
    133 	int sc_swflags;
    134 
    135 	u_int32_t sc_rs_control_dtr,
    136 		  sc_chanctl_hw_flow,
    137 		  sc_chanctl_comm_baud,
    138 		  sc_chanctl_rs_control,
    139 		  sc_chanctl_comm_data_l,
    140 		  sc_chanctl_comm_parity;
    141 };
    142 
    143 /*
    144  * cz_softc:
    145  *
    146  *	Per-board state.
    147  */
    148 struct cz_softc {
    149 	struct device cz_dev;		/* generic device info */
    150 	struct plx9060_config cz_plx;	/* PLX 9060 config info */
    151 	bus_space_tag_t cz_win_st;	/* window space tag */
    152 	bus_space_handle_t cz_win_sh;	/* window space handle */
    153 	struct callout cz_callout;	/* callout for polling-mode */
    154 
    155 	void *cz_ih;			/* interrupt handle */
    156 
    157 	u_int32_t cz_mailbox0;		/* our MAILBOX0 value */
    158 	int cz_nchannels;		/* number of channels */
    159 	int cz_nopenchan;		/* number of open channels */
    160 	struct cztty_softc *cz_ports;	/* our array of ports */
    161 
    162 	bus_addr_t cz_fwctl;		/* offset of firmware control */
    163 };
    164 
    165 int	cz_match(struct device *, struct cfdata *, void *);
    166 void	cz_attach(struct device *, struct device *, void *);
    167 int	cz_wait_pci_doorbell(struct cz_softc *, const char *);
    168 
    169 struct cfattach cz_ca = {
    170 	sizeof(struct cz_softc), cz_match, cz_attach
    171 };
    172 
    173 void	cz_reset_board(struct cz_softc *);
    174 int	cz_load_firmware(struct cz_softc *);
    175 
    176 int	cz_intr(void *);
    177 void	cz_poll(void *);
    178 int	cztty_transmit(struct cztty_softc *, struct tty *);
    179 int	cztty_receive(struct cztty_softc *, struct tty *);
    180 
    181 struct	cztty_softc * cztty_getttysoftc(dev_t dev);
    182 int	cztty_findmajor(void);
    183 int	cztty_major;
    184 int	cztty_attached_ttys;
    185 int	cz_timeout_ticks;
    186 
    187 cdev_decl(cztty);
    188 
    189 void    czttystart(struct tty *tp);
    190 int	czttyparam(struct tty *tp, struct termios *t);
    191 void    cztty_shutdown(struct cztty_softc *sc);
    192 void	cztty_modem(struct cztty_softc *sc, int onoff);
    193 void	cztty_break(struct cztty_softc *sc, int onoff);
    194 void	tiocm_to_cztty(struct cztty_softc *sc, u_long how, int ttybits);
    195 int	cztty_to_tiocm(struct cztty_softc *sc);
    196 void	cztty_diag(void *arg);
    197 
    198 extern struct cfdriver cz_cd;
    199 
    200 /* Macros to clear/set/test flags. */
    201 #define SET(t, f)       (t) |= (f)
    202 #define CLR(t, f)       (t) &= ~(f)
    203 #define ISSET(t, f)     ((t) & (f))
    204 
    205 /*
    206  * Macros to read and write the PLX.
    207  */
    208 #define	CZ_PLX_READ(cz, reg)						\
    209 	bus_space_read_4((cz)->cz_plx.plx_st, (cz)->cz_plx.plx_sh, (reg))
    210 #define	CZ_PLX_WRITE(cz, reg, val)					\
    211 	bus_space_write_4((cz)->cz_plx.plx_st, (cz)->cz_plx.plx_sh,	\
    212 	    (reg), (val))
    213 
    214 /*
    215  * Macros to read and write the FPGA.  We must already be in the FPGA
    216  * window for this.
    217  */
    218 #define	CZ_FPGA_READ(cz, reg)						\
    219 	bus_space_read_4((cz)->cz_win_st, (cz)->cz_win_sh, (reg))
    220 #define	CZ_FPGA_WRITE(cz, reg, val)					\
    221 	bus_space_write_4((cz)->cz_win_st, (cz)->cz_win_sh, (reg), (val))
    222 
    223 /*
    224  * Macros to read and write the firmware control structures in board RAM.
    225  */
    226 #define	CZ_FWCTL_READ(cz, off)						\
    227 	bus_space_read_4((cz)->cz_win_st, (cz)->cz_win_sh,		\
    228 	    (cz)->cz_fwctl + (off))
    229 
    230 #define	CZ_FWCTL_WRITE(cz, off, val)					\
    231 	bus_space_write_4((cz)->cz_win_st, (cz)->cz_win_sh,		\
    232 	    (cz)->cz_fwctl + (off), (val))
    233 
    234 /*
    235  * Convenience macros for cztty routines.  PLX window MUST be to RAM.
    236  */
    237 #define CZTTY_CHAN_READ(sc, off)					\
    238 	bus_space_read_4((sc)->sc_chan_st, (sc)->sc_chan_sh, (off))
    239 
    240 #define CZTTY_CHAN_WRITE(sc, off, val)					\
    241 	bus_space_write_4((sc)->sc_chan_st, (sc)->sc_chan_sh,		\
    242 	    (off), (val))
    243 
    244 #define CZTTY_BUF_READ(sc, off)						\
    245 	bus_space_read_4((sc)->sc_chan_st, (sc)->sc_buf_sh, (off))
    246 
    247 #define CZTTY_BUF_WRITE(sc, off, val)					\
    248 	bus_space_write_4((sc)->sc_chan_st, (sc)->sc_buf_sh,		\
    249 	    (off), (val))
    250 
    251 /*
    252  * Convenience macros.
    253  */
    254 #define	CZ_WIN_RAM(cz)							\
    255 do {									\
    256 	CZ_PLX_WRITE((cz), PLX_LAS0BA, LOCAL_ADDR0_RAM);		\
    257 	delay(100);							\
    258 } while (0)
    259 
    260 #define	CZ_WIN_FPGA(cz)							\
    261 do {									\
    262 	CZ_PLX_WRITE((cz), PLX_LAS0BA, LOCAL_ADDR0_FPGA);		\
    263 	delay(100);							\
    264 } while (0)
    265 
    266 /*****************************************************************************
    267  * Cyclades-Z controller code starts here...
    268  *****************************************************************************/
    269 
    270 /*
    271  * cz_match:
    272  *
    273  *	Determine if the given PCI device is a Cyclades-Z board.
    274  */
    275 int
    276 cz_match(struct device *parent,
    277     struct cfdata *match,
    278     void *aux)
    279 {
    280 	struct pci_attach_args *pa = aux;
    281 
    282 	if (PCI_VENDOR(pa->pa_id) == PCI_VENDOR_CYCLADES) {
    283 		switch (PCI_PRODUCT(pa->pa_id)) {
    284 		case PCI_PRODUCT_CYCLADES_CYCLOMZ_2:
    285 			return (1);
    286 		}
    287 	}
    288 
    289 	return (0);
    290 }
    291 
    292 /*
    293  * cz_attach:
    294  *
    295  *	A Cyclades-Z board was found; attach it.
    296  */
    297 void
    298 cz_attach(struct device *parent,
    299     struct device *self,
    300     void *aux)
    301 {
    302 	struct cz_softc *cz = (void *) self;
    303 	struct pci_attach_args *pa = aux;
    304 	pci_intr_handle_t ih;
    305 	const char *intrstr = NULL;
    306 	struct cztty_softc *sc;
    307 	struct tty *tp;
    308 	int i;
    309 
    310 	printf(": Cyclades-Z multiport serial\n");
    311 
    312 	cz->cz_plx.plx_pc = pa->pa_pc;
    313 	cz->cz_plx.plx_tag = pa->pa_tag;
    314 
    315 	if (pci_mapreg_map(pa, PLX_PCI_RUNTIME_MEMADDR,
    316 	    PCI_MAPREG_TYPE_MEM|PCI_MAPREG_MEM_TYPE_32BIT, 0,
    317 	    &cz->cz_plx.plx_st, &cz->cz_plx.plx_sh, NULL, NULL) != 0) {
    318 		printf("%s: unable to map PLX registers\n",
    319 		    cz->cz_dev.dv_xname);
    320 		return;
    321 	}
    322 	if (pci_mapreg_map(pa, PLX_PCI_LOCAL_ADDR0,
    323 	    PCI_MAPREG_TYPE_MEM|PCI_MAPREG_MEM_TYPE_32BIT, 0,
    324 	    &cz->cz_win_st, &cz->cz_win_sh, NULL, NULL) != 0) {
    325 		printf("%s: unable to map device window\n",
    326 		    cz->cz_dev.dv_xname);
    327 		return;
    328 	}
    329 
    330 	cz->cz_mailbox0 = CZ_PLX_READ(cz, PLX_MAILBOX0);
    331 	cz->cz_nopenchan = 0;
    332 
    333 	/*
    334 	 * Make sure that the board is completely stopped.
    335 	 */
    336 	CZ_WIN_FPGA(cz);
    337 	CZ_FPGA_WRITE(cz, FPGA_CPU_STOP, 0);
    338 
    339 	/*
    340 	 * Load the board's firmware.
    341 	 */
    342 	if (cz_load_firmware(cz) != 0)
    343 		return;
    344 
    345 	/*
    346 	 * Now that we're ready to roll, map and establish the interrupt
    347 	 * handler.
    348 	 */
    349 	if (pci_intr_map(pa, &ih) != 0) {
    350 		/*
    351 		 * The common case is for Cyclades-Z boards to run
    352 		 * in polling mode, and thus not have an interrupt
    353 		 * mapped for them.  Don't bother reporting that
    354 		 * the interrupt is not mappable, since this isn't
    355 		 * really an error.
    356 		 */
    357 		cz->cz_ih = NULL;
    358 		goto polling_mode;
    359 	} else {
    360 		intrstr = pci_intr_string(pa->pa_pc, ih);
    361 		cz->cz_ih = pci_intr_establish(pa->pa_pc, ih, IPL_TTY,
    362 		    cz_intr, cz);
    363 	}
    364 	if (cz->cz_ih == NULL) {
    365 		printf("%s: unable to establish interrupt",
    366 		    cz->cz_dev.dv_xname);
    367 		if (intrstr != NULL)
    368 			printf(" at %s", intrstr);
    369 		printf("\n");
    370 		/* We will fall-back on polling mode. */
    371 	} else
    372 		printf("%s: interrupting at %s\n",
    373 		    cz->cz_dev.dv_xname, intrstr);
    374 
    375  polling_mode:
    376 	if (cz->cz_ih == NULL) {
    377 		callout_init(&cz->cz_callout);
    378 		if (cz_timeout_ticks == 0)
    379 			cz_timeout_ticks = max(1, hz * CZ_POLL_MS / 1000);
    380 		printf("%s: polling mode, %d ms interval (%d tick%s)\n",
    381 		    cz->cz_dev.dv_xname, CZ_POLL_MS, cz_timeout_ticks,
    382 		    cz_timeout_ticks == 1 ? "" : "s");
    383 	}
    384 
    385 	if (cztty_major == 0)
    386 		cztty_major = cztty_findmajor();
    387 	/*
    388 	 * Allocate sufficient pointers for the children and
    389 	 * attach them.  Set all ports to a reasonable initial
    390 	 * configuration while we're at it:
    391 	 *
    392 	 *	disabled
    393 	 *	8N1
    394 	 *	default baud rate
    395 	 *	hardware flow control.
    396 	 */
    397 	CZ_WIN_RAM(cz);
    398 
    399 	if (cz->cz_nchannels == 0) {
    400 		/* No channels?  No more work to do! */
    401 		return;
    402 	}
    403 
    404 	cz->cz_ports = malloc(sizeof(struct cztty_softc) * cz->cz_nchannels,
    405 	    M_DEVBUF, M_WAITOK);
    406 	cztty_attached_ttys += cz->cz_nchannels;
    407 	memset(cz->cz_ports, 0,
    408 	    sizeof(struct cztty_softc) * cz->cz_nchannels);
    409 
    410 	for (i = 0; i < cz->cz_nchannels; i++) {
    411 		sc = &cz->cz_ports[i];
    412 
    413 		sc->sc_channel = i;
    414 		sc->sc_chan_st = cz->cz_win_st;
    415 		sc->sc_parent = cz;
    416 
    417 		if (bus_space_subregion(cz->cz_win_st, cz->cz_win_sh,
    418 		    cz->cz_fwctl + ZFIRM_CHNCTL_OFF(i, 0),
    419 		    ZFIRM_CHNCTL_SIZE, &sc->sc_chan_sh)) {
    420 			printf("%s: unable to subregion channel %d control\n",
    421 			    cz->cz_dev.dv_xname, i);
    422 			sc->sc_channel = CZTTY_CHANNEL_DEAD;
    423 			continue;
    424 		}
    425 		if (bus_space_subregion(cz->cz_win_st, cz->cz_win_sh,
    426 		    cz->cz_fwctl + ZFIRM_BUFCTL_OFF(i, 0),
    427 		    ZFIRM_BUFCTL_SIZE, &sc->sc_buf_sh)) {
    428 			printf("%s: unable to subregion channel %d buffer\n",
    429 			    cz->cz_dev.dv_xname, i);
    430 			sc->sc_channel = CZTTY_CHANNEL_DEAD;
    431 			continue;
    432 		}
    433 
    434 		callout_init(&sc->sc_diag_ch);
    435 
    436 		tp = ttymalloc();
    437 		tp->t_dev = makedev(cztty_major,
    438 		    (cz->cz_dev.dv_unit * ZFIRM_MAX_CHANNELS) + i);
    439 		tp->t_oproc = czttystart;
    440 		tp->t_param = czttyparam;
    441 		tty_attach(tp);
    442 
    443 		sc->sc_tty = tp;
    444 
    445 		CZTTY_CHAN_WRITE(sc, CHNCTL_OP_MODE, C_CH_DISABLE);
    446 		CZTTY_CHAN_WRITE(sc, CHNCTL_INTR_ENABLE, CZ_INTERRUPTS);
    447 		CZTTY_CHAN_WRITE(sc, CHNCTL_SW_FLOW, 0);
    448 		CZTTY_CHAN_WRITE(sc, CHNCTL_FLOW_XON, 0x11);
    449 		CZTTY_CHAN_WRITE(sc, CHNCTL_FLOW_XOFF, 0x13);
    450 		CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_BAUD, TTYDEF_SPEED);
    451 		CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_PARITY, C_PR_NONE);
    452 		CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_DATA_L, C_DL_CS8 | C_DL_1STOP);
    453 		CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_FLAGS, 0);
    454 		CZTTY_CHAN_WRITE(sc, CHNCTL_HW_FLOW, C_RS_CTS | C_RS_RTS);
    455 		CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, 0);
    456 	}
    457 }
    458 
    459 /*
    460  * cz_reset_board:
    461  *
    462  *	Reset the board via the PLX.
    463  */
    464 void
    465 cz_reset_board(struct cz_softc *cz)
    466 {
    467 	u_int32_t reg;
    468 
    469 	reg = CZ_PLX_READ(cz, PLX_CONTROL);
    470 	CZ_PLX_WRITE(cz, PLX_CONTROL, reg | CONTROL_SWR);
    471 	delay(1000);
    472 
    473 	CZ_PLX_WRITE(cz, PLX_CONTROL, reg);
    474 	delay(1000);
    475 
    476 	/* Now reload the PLX from its EEPROM. */
    477 	reg = CZ_PLX_READ(cz, PLX_CONTROL);
    478 	CZ_PLX_WRITE(cz, PLX_CONTROL, reg | CONTROL_RELOADCFG);
    479 	delay(1000);
    480 	CZ_PLX_WRITE(cz, PLX_CONTROL, reg);
    481 }
    482 
    483 /*
    484  * cz_load_firmware:
    485  *
    486  *	Load the ZFIRM firmware into the board's RAM and start it
    487  *	running.
    488  */
    489 int
    490 cz_load_firmware(struct cz_softc *cz)
    491 {
    492 	struct zfirm_header *zfh;
    493 	struct zfirm_config *zfc;
    494 	struct zfirm_block *zfb, *zblocks;
    495 	const u_int8_t *cp;
    496 	const char *board;
    497 	u_int32_t fid;
    498 	int i, j, nconfigs, nblocks, nbytes;
    499 
    500 	zfh = (struct zfirm_header *) cycladesz_firmware;
    501 
    502 	/* Find the config header. */
    503 	if (le32toh(zfh->zfh_configoff) & (sizeof(u_int32_t) - 1)) {
    504 		printf("%s: bad ZFIRM config offset: 0x%x\n",
    505 		    cz->cz_dev.dv_xname, le32toh(zfh->zfh_configoff));
    506 		return (EIO);
    507 	}
    508 	zfc = (struct zfirm_config *)(cycladesz_firmware +
    509 	    le32toh(zfh->zfh_configoff));
    510 	nconfigs = le32toh(zfh->zfh_nconfig);
    511 
    512 	/* Locate the correct configuration for our board. */
    513 	for (i = 0; i < nconfigs; i++, zfc++) {
    514 		if (le32toh(zfc->zfc_mailbox) == cz->cz_mailbox0 &&
    515 		    le32toh(zfc->zfc_function) == ZFC_FUNCTION_NORMAL)
    516 			break;
    517 	}
    518 	if (i == nconfigs) {
    519 		printf("%s: unable to locate config header\n",
    520 		    cz->cz_dev.dv_xname);
    521 		return (EIO);
    522 	}
    523 
    524 	nblocks = le32toh(zfc->zfc_nblocks);
    525 	zblocks = (struct zfirm_block *)(cycladesz_firmware +
    526 	    le32toh(zfh->zfh_blockoff));
    527 
    528 	/*
    529 	 * 8Zo ver. 1 doesn't have an FPGA.  Load it on all others if
    530 	 * necessary.
    531 	 */
    532 	if (cz->cz_mailbox0 != MAILBOX0_8Zo_V1
    533 #if 0
    534 	    && ((CZ_PLX_READ(cz, PLX_CONTROL) & CONTROL_FPGA_LOADED) == 0)
    535 #endif
    536 								) {
    537 #ifdef CZ_DEBUG
    538 		printf("%s: Loading FPGA...", cz->cz_dev.dv_xname);
    539 #endif
    540 		CZ_WIN_FPGA(cz);
    541 		for (i = 0; i < nblocks; i++) {
    542 			/* zfb = zblocks + le32toh(zfc->zfc_blocklist[i]) ?? */
    543 			zfb = &zblocks[le32toh(zfc->zfc_blocklist[i])];
    544 			if (le32toh(zfb->zfb_type) == ZFB_TYPE_FPGA) {
    545 				nbytes = le32toh(zfb->zfb_size);
    546 				cp = &cycladesz_firmware[
    547 				    le32toh(zfb->zfb_fileoff)];
    548 				for (j = 0; j < nbytes; j++, cp++) {
    549 					bus_space_write_1(cz->cz_win_st,
    550 					    cz->cz_win_sh, 0, *cp);
    551 					/* FPGA needs 30-100us to settle. */
    552 					delay(10);
    553 				}
    554 			}
    555 		}
    556 #ifdef CZ_DEBUG
    557 		printf("done\n");
    558 #endif
    559 	}
    560 
    561 	/* Now load the firmware. */
    562 	CZ_WIN_RAM(cz);
    563 
    564 	for (i = 0; i < nblocks; i++) {
    565 		/* zfb = zblocks + le32toh(zfc->zfc_blocklist[i]) ?? */
    566 		zfb = &zblocks[le32toh(zfc->zfc_blocklist[i])];
    567 		if (le32toh(zfb->zfb_type) == ZFB_TYPE_FIRMWARE) {
    568 			const u_int32_t *lp;
    569 			u_int32_t ro = le32toh(zfb->zfb_ramoff);
    570 			nbytes = le32toh(zfb->zfb_size);
    571 			lp = (const u_int32_t *)
    572 			    &cycladesz_firmware[le32toh(zfb->zfb_fileoff)];
    573 			for (j = 0; j < nbytes; j += 4, lp++) {
    574 				bus_space_write_4(cz->cz_win_st, cz->cz_win_sh,
    575 				    ro + j, le32toh(*lp));
    576 				delay(10);
    577 			}
    578 		}
    579 	}
    580 
    581 	/* Now restart the MIPS. */
    582 	CZ_WIN_FPGA(cz);
    583 	CZ_FPGA_WRITE(cz, FPGA_CPU_START, 0);
    584 
    585 	/* Wait for the MIPS to start, then report the results. */
    586 	CZ_WIN_RAM(cz);
    587 
    588 #ifdef CZ_DEBUG
    589 	printf("%s: waiting for MIPS to start", cz->cz_dev.dv_xname);
    590 #endif
    591 	for (i = 0; i < 100; i++) {
    592 		fid = bus_space_read_4(cz->cz_win_st, cz->cz_win_sh,
    593 		    ZFIRM_SIG_OFF);
    594 		if (fid == ZFIRM_SIG) {
    595 			/* MIPS has booted. */
    596 			break;
    597 		} else if (fid == ZFIRM_HLT) {
    598 			/*
    599 			 * The MIPS has halted, usually due to a power
    600 			 * shortage on the expansion module.
    601 			 */
    602 			printf("%s: MIPS halted; possible power supply "
    603 			    "problem\n", cz->cz_dev.dv_xname);
    604 			return (EIO);
    605 		} else {
    606 #ifdef CZ_DEBUG
    607 			if ((i % 8) == 0)
    608 				printf(".");
    609 #endif
    610 			delay(250000);
    611 		}
    612 	}
    613 #ifdef CZ_DEBUG
    614 	printf("\n");
    615 #endif
    616 	if (i == 100) {
    617 		CZ_WIN_FPGA(cz);
    618 		printf("%s: MIPS failed to start; wanted 0x%08x got 0x%08x\n",
    619 		    cz->cz_dev.dv_xname, ZFIRM_SIG, fid);
    620 		printf("%s: FPGA ID 0x%08x, FPGA version 0x%08x\n",
    621 		    cz->cz_dev.dv_xname, CZ_FPGA_READ(cz, FPGA_ID),
    622 		    CZ_FPGA_READ(cz, FPGA_VERSION));
    623 		return (EIO);
    624 	}
    625 
    626 	/*
    627 	 * Locate the firmware control structures.
    628 	 */
    629 	cz->cz_fwctl = bus_space_read_4(cz->cz_win_st, cz->cz_win_sh,
    630 	    ZFIRM_CTRLADDR_OFF);
    631 #ifdef CZ_DEBUG
    632 	printf("%s: FWCTL structure at offset 0x%08lx\n",
    633 	    cz->cz_dev.dv_xname, cz->cz_fwctl);
    634 #endif
    635 
    636 	CZ_FWCTL_WRITE(cz, BRDCTL_C_OS, C_OS_BSD);
    637 	CZ_FWCTL_WRITE(cz, BRDCTL_DRVERSION, CZ_DRIVER_VERSION);
    638 
    639 	cz->cz_nchannels = CZ_FWCTL_READ(cz, BRDCTL_NCHANNEL);
    640 
    641 	switch (cz->cz_mailbox0) {
    642 	case MAILBOX0_8Zo_V1:
    643 		board = "Cyclades-8Zo ver. 1";
    644 		break;
    645 
    646 	case MAILBOX0_8Zo_V2:
    647 		board = "Cyclades-8Zo ver. 2";
    648 		break;
    649 
    650 	case MAILBOX0_Ze_V1:
    651 		board = "Cyclades-Ze";
    652 		break;
    653 
    654 	default:
    655 		board = "unknown Cyclades Z-series";
    656 		break;
    657 	}
    658 
    659 	fid = CZ_FWCTL_READ(cz, BRDCTL_FWVERSION);
    660 	printf("%s: %s, ", cz->cz_dev.dv_xname, board);
    661 	if (cz->cz_nchannels == 0)
    662 		printf("no channels attached, ");
    663 	else
    664 		printf("%d channels (ttyCZ%04d..ttyCZ%04d), ",
    665 		    cz->cz_nchannels, cztty_attached_ttys,
    666 		    cztty_attached_ttys + (cz->cz_nchannels - 1));
    667 	printf("firmware %x.%x.%x\n",
    668 	    (fid >> 8) & 0xf, (fid >> 4) & 0xf, fid & 0xf);
    669 
    670 	return (0);
    671 }
    672 
    673 /*
    674  * cz_poll:
    675  *
    676  * This card doesn't do interrupts, so scan it for activity every CZ_POLL_MS
    677  * ms.
    678  */
    679 void
    680 cz_poll(void *arg)
    681 {
    682 	int s = spltty();
    683 	struct cz_softc *cz = arg;
    684 
    685 	cz_intr(cz);
    686 	callout_reset(&cz->cz_callout, cz_timeout_ticks, cz_poll, cz);
    687 
    688 	splx(s);
    689 }
    690 
    691 /*
    692  * cz_intr:
    693  *
    694  *	Interrupt service routine.
    695  *
    696  * We either are receiving an interrupt directly from the board, or we are
    697  * in polling mode and it's time to poll.
    698  */
    699 int
    700 cz_intr(void *arg)
    701 {
    702 	int	rval = 0;
    703 	u_int	command, channel, param;
    704 	struct	cz_softc *cz = arg;
    705 	struct	cztty_softc *sc;
    706 	struct	tty *tp;
    707 
    708 	while ((command = (CZ_PLX_READ(cz, PLX_LOCAL_PCI_DOORBELL) & 0xff))) {
    709 		rval = 1;
    710 		channel = CZ_FWCTL_READ(cz, BRDCTL_FWCMD_CHANNEL);
    711 		param = CZ_FWCTL_READ(cz, BRDCTL_FWCMD_PARAM);
    712 
    713 		/* now clear this interrupt, posslibly enabling another */
    714 		CZ_PLX_WRITE(cz, PLX_LOCAL_PCI_DOORBELL, command);
    715 
    716 		if (cz->cz_ports == NULL) {
    717 #ifdef CZ_DEBUG
    718 			printf("%s: interrupt on channel %d, but no channels\n",
    719 			    cz->cz_dev.dv_xname, channel);
    720 #endif
    721 			continue;
    722 		}
    723 
    724 		sc = &cz->cz_ports[channel];
    725 
    726 		if (sc->sc_channel == CZTTY_CHANNEL_DEAD)
    727 			break;
    728 
    729 		tp = sc->sc_tty;
    730 
    731 		switch (command) {
    732 		case C_CM_TXFEMPTY:		/* transmit cases */
    733 		case C_CM_TXBEMPTY:
    734 		case C_CM_TXLOWWM:
    735 		case C_CM_INTBACK:
    736 			if (!ISSET(tp->t_state, TS_ISOPEN)) {
    737 #ifdef CZ_DEBUG
    738 				printf("%s: tx intr on closed channel %d\n",
    739 				    cz->cz_dev.dv_xname, channel);
    740 #endif
    741 				break;
    742 			}
    743 
    744 			if (cztty_transmit(sc, tp)) {
    745 				/*
    746 				 * Do wakeup stuff here.
    747 				 */
    748 				ttwakeup(tp);
    749 				wakeup(tp);
    750 			}
    751 			break;
    752 
    753 		case C_CM_RXNNDT:		/* receive cases */
    754 		case C_CM_RXHIWM:
    755 		case C_CM_INTBACK2:		/* from restart ?? */
    756 #if 0
    757 		case C_CM_ICHAR:
    758 #endif
    759 			if (!ISSET(tp->t_state, TS_ISOPEN)) {
    760 				CZTTY_BUF_WRITE(sc, BUFCTL_RX_GET,
    761 				    CZTTY_BUF_READ(sc, BUFCTL_RX_PUT));
    762 				break;
    763 			}
    764 
    765 			if (cztty_receive(sc, tp)) {
    766 				/*
    767 				 * Do wakeup stuff here.
    768 				 */
    769 				ttwakeup(tp);
    770 				wakeup(tp);
    771 			}
    772 			break;
    773 
    774 		case C_CM_MDCD:
    775 			if (!ISSET(tp->t_state, TS_ISOPEN))
    776 				break;
    777 
    778 			(void) (*tp->t_linesw->l_modem)(tp,
    779 			    ISSET(C_RS_DCD, CZTTY_CHAN_READ(sc,
    780 			    CHNCTL_RS_STATUS)));
    781 			break;
    782 
    783 		case C_CM_MDSR:
    784 		case C_CM_MRI:
    785 		case C_CM_MCTS:
    786 		case C_CM_MRTS:
    787 			break;
    788 
    789 		case C_CM_IOCTLW:
    790 			break;
    791 
    792 		case C_CM_PR_ERROR:
    793 			sc->sc_parity_errors++;
    794 			goto error_common;
    795 
    796 		case C_CM_FR_ERROR:
    797 			sc->sc_framing_errors++;
    798 			goto error_common;
    799 
    800 		case C_CM_OVR_ERROR:
    801 			sc->sc_overflows++;
    802  error_common:
    803 			if (sc->sc_errors++ == 0)
    804 				callout_reset(&sc->sc_diag_ch, 60 * hz,
    805 				    cztty_diag, sc);
    806 			break;
    807 
    808 		case C_CM_RXBRK:
    809 			if (!ISSET(tp->t_state, TS_ISOPEN))
    810 				break;
    811 
    812 			/*
    813 			 * A break is a \000 character with TTY_FE error
    814 			 * flags set. So TTY_FE by itself works.
    815 			 */
    816 			(*tp->t_linesw->l_rint)(TTY_FE, tp);
    817 			ttwakeup(tp);
    818 			wakeup(tp);
    819 			break;
    820 
    821 		default:
    822 #ifdef CZ_DEBUG
    823 			printf("%s: channel %d: Unknown interrupt 0x%x\n",
    824 			    cz->cz_dev.dv_xname, sc->sc_channel, command);
    825 #endif
    826 			break;
    827 		}
    828 	}
    829 
    830 	return (rval);
    831 }
    832 
    833 /*
    834  * cz_wait_pci_doorbell:
    835  *
    836  *	Wait for the pci doorbell to be clear - wait for pending
    837  *	activity to drain.
    838  */
    839 int
    840 cz_wait_pci_doorbell(struct cz_softc *cz, const char *wstring)
    841 {
    842 	int	error;
    843 
    844 	while (CZ_PLX_READ(cz, PLX_PCI_LOCAL_DOORBELL)) {
    845 		error = tsleep(cz, TTIPRI | PCATCH, wstring, max(1, hz/100));
    846 		if ((error != 0) && (error != EWOULDBLOCK))
    847 			return (error);
    848 	}
    849 	return (0);
    850 }
    851 
    852 /*****************************************************************************
    853  * Cyclades-Z TTY code starts here...
    854  *****************************************************************************/
    855 
    856 #define CZTTYDIALOUT_MASK	0x80000
    857 
    858 #define	CZTTY_DIALOUT(dev)	(minor((dev)) & CZTTYDIALOUT_MASK)
    859 #define	CZTTY_CZ(sc)		((sc)->sc_parent)
    860 
    861 #define	CZTTY_SOFTC(dev)	cztty_getttysoftc(dev)
    862 
    863 struct cztty_softc *
    864 cztty_getttysoftc(dev_t dev)
    865 {
    866 	int i, j, k, u = minor(dev) & ~CZTTYDIALOUT_MASK;
    867 	struct cz_softc *cz;
    868 
    869 	for (i = 0, j = 0; i < cz_cd.cd_ndevs; i++) {
    870 		k = j;
    871 		cz = device_lookup(&cz_cd, i);
    872 		if (cz == NULL)
    873 			continue;
    874 		if (cz->cz_ports == NULL)
    875 			continue;
    876 		j += cz->cz_nchannels;
    877 		if (j > u)
    878 			break;
    879 	}
    880 
    881 	if (i >= cz_cd.cd_ndevs)
    882 		return (NULL);
    883 	else
    884 		return (&cz->cz_ports[u - k]);
    885 }
    886 
    887 int
    888 cztty_findmajor(void)
    889 {
    890 	int	maj;
    891 
    892 	for (maj = 0; maj < nchrdev; maj++) {
    893 		if (cdevsw[maj].d_open == czttyopen)
    894 			break;
    895 	}
    896 
    897 	return (maj == nchrdev) ? 0 : maj;
    898 }
    899 
    900 /*
    901  * czttytty:
    902  *
    903  *	Return a pointer to our tty.
    904  */
    905 struct tty *
    906 czttytty(dev_t dev)
    907 {
    908 	struct cztty_softc *sc = CZTTY_SOFTC(dev);
    909 
    910 #ifdef DIAGNOSTIC
    911 	if (sc == NULL)
    912 		panic("czttytty");
    913 #endif
    914 
    915 	return (sc->sc_tty);
    916 }
    917 
    918 /*
    919  * cztty_shutdown:
    920  *
    921  *	Shut down a port.
    922  */
    923 void
    924 cztty_shutdown(struct cztty_softc *sc)
    925 {
    926 	struct cz_softc *cz = CZTTY_CZ(sc);
    927 	struct tty *tp = sc->sc_tty;
    928 	int s;
    929 
    930 	s = spltty();
    931 
    932 	/* Clear any break condition set with TIOCSBRK. */
    933 	cztty_break(sc, 0);
    934 
    935 	/*
    936 	 * Hang up if necessary.  Wait a bit, so the other side has time to
    937 	 * notice even if we immediately open the port again.
    938 	 */
    939 	if (ISSET(tp->t_cflag, HUPCL)) {
    940 		cztty_modem(sc, 0);
    941 		(void) tsleep(tp, TTIPRI, ttclos, hz);
    942 	}
    943 
    944 	/* Disable the channel. */
    945 	cz_wait_pci_doorbell(cz, "czdis");
    946 	CZTTY_CHAN_WRITE(sc, CHNCTL_OP_MODE, C_CH_DISABLE);
    947 	CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
    948 	CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTL);
    949 
    950 	if ((--cz->cz_nopenchan == 0) && (cz->cz_ih == NULL)) {
    951 #ifdef CZ_DEBUG
    952 		printf("%s: Disabling polling\n", cz->cz_dev.dv_xname);
    953 #endif
    954 		callout_stop(&cz->cz_callout);
    955 	}
    956 
    957 	splx(s);
    958 }
    959 
    960 /*
    961  * czttyopen:
    962  *
    963  *	Open a Cyclades-Z serial port.
    964  */
    965 int
    966 czttyopen(dev_t dev, int flags, int mode, struct proc *p)
    967 {
    968 	struct cztty_softc *sc = CZTTY_SOFTC(dev);
    969 	struct cz_softc *cz;
    970 	struct tty *tp;
    971 	int s, error;
    972 
    973 	if (sc == NULL)
    974 		return (ENXIO);
    975 
    976 	if (sc->sc_channel == CZTTY_CHANNEL_DEAD)
    977 		return (ENXIO);
    978 
    979 	cz = CZTTY_CZ(sc);
    980 	tp = sc->sc_tty;
    981 
    982 	if (ISSET(tp->t_state, TS_ISOPEN) &&
    983 	    ISSET(tp->t_state, TS_XCLUDE) &&
    984 	    p->p_ucred->cr_uid != 0)
    985 		return (EBUSY);
    986 
    987 	s = spltty();
    988 
    989 	/*
    990 	 * Do the following iff this is a first open.
    991 	 */
    992 	if (!ISSET(tp->t_state, TS_ISOPEN) && (tp->t_wopen == 0)) {
    993 		struct termios t;
    994 
    995 		tp->t_dev = dev;
    996 
    997 		/* If we're turning things on, enable interrupts */
    998 		if ((cz->cz_nopenchan++ == 0) && (cz->cz_ih == NULL)) {
    999 #ifdef CZ_DEBUG
   1000 			printf("%s: Enabling polling.\n",
   1001 			    cz->cz_dev.dv_xname);
   1002 #endif
   1003 			callout_reset(&cz->cz_callout, cz_timeout_ticks,
   1004 			    cz_poll, cz);
   1005 		}
   1006 
   1007 		/*
   1008 		 * Enable the channel.  Don't actually ring the
   1009 		 * doorbell here; czttyparam() will do it for us.
   1010 		 */
   1011 		cz_wait_pci_doorbell(cz, "czopen");
   1012 
   1013 		CZTTY_CHAN_WRITE(sc, CHNCTL_OP_MODE, C_CH_ENABLE);
   1014 
   1015 		/*
   1016 		 * Initialize the termios status to the defaults.  Add in the
   1017 		 * sticky bits from TIOCSFLAGS.
   1018 		 */
   1019 		t.c_ispeed = 0;
   1020 		t.c_ospeed = TTYDEF_SPEED;
   1021 		t.c_cflag = TTYDEF_CFLAG;
   1022 		if (ISSET(sc->sc_swflags, TIOCFLAG_CLOCAL))
   1023 			SET(t.c_cflag, CLOCAL);
   1024 		if (ISSET(sc->sc_swflags, TIOCFLAG_CRTSCTS))
   1025 			SET(t.c_cflag, CRTSCTS);
   1026 
   1027 		/*
   1028 		 * Reset the input and output rings.  Do this before
   1029 		 * we call czttyparam(), as that function enables
   1030 		 * the channel.
   1031 		 */
   1032 		CZTTY_BUF_WRITE(sc, BUFCTL_RX_GET,
   1033 		    CZTTY_BUF_READ(sc, BUFCTL_RX_PUT));
   1034 		CZTTY_BUF_WRITE(sc, BUFCTL_TX_PUT,
   1035 		    CZTTY_BUF_READ(sc, BUFCTL_TX_GET));
   1036 
   1037 		/* Make sure czttyparam() will see changes. */
   1038 		tp->t_ospeed = 0;
   1039 		(void) czttyparam(tp, &t);
   1040 		tp->t_iflag = TTYDEF_IFLAG;
   1041 		tp->t_oflag = TTYDEF_OFLAG;
   1042 		tp->t_lflag = TTYDEF_LFLAG;
   1043 		ttychars(tp);
   1044 		ttsetwater(tp);
   1045 
   1046 		/*
   1047 		 * Turn on DTR.  We must always do this, even if carrier is not
   1048 		 * present, because otherwise we'd have to use TIOCSDTR
   1049 		 * immediately after setting CLOCAL, which applications do not
   1050 		 * expect.  We always assert DTR while the device is open
   1051 		 * unless explicitly requested to deassert it.
   1052 		 */
   1053 		cztty_modem(sc, 1);
   1054 	}
   1055 
   1056 	splx(s);
   1057 
   1058 	error = ttyopen(tp, CZTTY_DIALOUT(dev), ISSET(flags, O_NONBLOCK));
   1059 	if (error)
   1060 		goto bad;
   1061 
   1062 	error = (*tp->t_linesw->l_open)(dev, tp);
   1063 	if (error)
   1064 		goto bad;
   1065 
   1066 	return (0);
   1067 
   1068  bad:
   1069 	if (!ISSET(tp->t_state, TS_ISOPEN) && tp->t_wopen == 0) {
   1070 		/*
   1071 		 * We failed to open the device, and nobody else had it opened.
   1072 		 * Clean up the state as appropriate.
   1073 		 */
   1074 		cztty_shutdown(sc);
   1075 	}
   1076 
   1077 	return (error);
   1078 }
   1079 
   1080 /*
   1081  * czttyclose:
   1082  *
   1083  *	Close a Cyclades-Z serial port.
   1084  */
   1085 int
   1086 czttyclose(dev_t dev, int flags, int mode, struct proc *p)
   1087 {
   1088 	struct cztty_softc *sc = CZTTY_SOFTC(dev);
   1089 	struct tty *tp = sc->sc_tty;
   1090 
   1091 	/* XXX This is for cons.c. */
   1092 	if (!ISSET(tp->t_state, TS_ISOPEN))
   1093 		return (0);
   1094 
   1095 	(*tp->t_linesw->l_close)(tp, flags);
   1096 	ttyclose(tp);
   1097 
   1098 	if (!ISSET(tp->t_state, TS_ISOPEN) && tp->t_wopen == 0) {
   1099 		/*
   1100 		 * Although we got a last close, the device may still be in
   1101 		 * use; e.g. if this was the dialout node, and there are still
   1102 		 * processes waiting for carrier on the non-dialout node.
   1103 		 */
   1104 		cztty_shutdown(sc);
   1105 	}
   1106 
   1107 	return (0);
   1108 }
   1109 
   1110 /*
   1111  * czttyread:
   1112  *
   1113  *	Read from a Cyclades-Z serial port.
   1114  */
   1115 int
   1116 czttyread(dev_t dev, struct uio *uio, int flags)
   1117 {
   1118 	struct cztty_softc *sc = CZTTY_SOFTC(dev);
   1119 	struct tty *tp = sc->sc_tty;
   1120 
   1121 	return ((*tp->t_linesw->l_read)(tp, uio, flags));
   1122 }
   1123 
   1124 /*
   1125  * czttywrite:
   1126  *
   1127  *	Write to a Cyclades-Z serial port.
   1128  */
   1129 int
   1130 czttywrite(dev_t dev, struct uio *uio, int flags)
   1131 {
   1132 	struct cztty_softc *sc = CZTTY_SOFTC(dev);
   1133 	struct tty *tp = sc->sc_tty;
   1134 
   1135 	return ((*tp->t_linesw->l_write)(tp, uio, flags));
   1136 }
   1137 
   1138 /*
   1139  * czttyioctl:
   1140  *
   1141  *	Perform a control operation on a Cyclades-Z serial port.
   1142  */
   1143 int
   1144 czttyioctl(dev_t dev, u_long cmd, caddr_t data, int flag, struct proc *p)
   1145 {
   1146 	struct cztty_softc *sc = CZTTY_SOFTC(dev);
   1147 	struct tty *tp = sc->sc_tty;
   1148 	int s, error;
   1149 
   1150 	error = (*tp->t_linesw->l_ioctl)(tp, cmd, data, flag, p);
   1151 	if (error >= 0)
   1152 		return (error);
   1153 
   1154 	error = ttioctl(tp, cmd, data, flag, p);
   1155 	if (error >= 0)
   1156 		return (error);
   1157 
   1158 	error = 0;
   1159 
   1160 	s = spltty();
   1161 
   1162 	switch (cmd) {
   1163 	case TIOCSBRK:
   1164 		cztty_break(sc, 1);
   1165 		break;
   1166 
   1167 	case TIOCCBRK:
   1168 		cztty_break(sc, 0);
   1169 		break;
   1170 
   1171 	case TIOCGFLAGS:
   1172 		*(int *)data = sc->sc_swflags;
   1173 		break;
   1174 
   1175 	case TIOCSFLAGS:
   1176 		error = suser(p->p_ucred, &p->p_acflag);
   1177 		if (error)
   1178 			break;
   1179 		sc->sc_swflags = *(int *)data;
   1180 		break;
   1181 
   1182 	case TIOCSDTR:
   1183 		cztty_modem(sc, 1);
   1184 		break;
   1185 
   1186 	case TIOCCDTR:
   1187 		cztty_modem(sc, 0);
   1188 		break;
   1189 
   1190 	case TIOCMSET:
   1191 	case TIOCMBIS:
   1192 	case TIOCMBIC:
   1193 		tiocm_to_cztty(sc, cmd, *(int *)data);
   1194 		break;
   1195 
   1196 	case TIOCMGET:
   1197 		*(int *)data = cztty_to_tiocm(sc);
   1198 		break;
   1199 
   1200 	default:
   1201 		error = ENOTTY;
   1202 		break;
   1203 	}
   1204 
   1205 	splx(s);
   1206 
   1207 	return (error);
   1208 }
   1209 
   1210 /*
   1211  * cztty_break:
   1212  *
   1213  *	Set or clear BREAK on a port.
   1214  */
   1215 void
   1216 cztty_break(struct cztty_softc *sc, int onoff)
   1217 {
   1218 	struct cz_softc *cz = CZTTY_CZ(sc);
   1219 
   1220 	cz_wait_pci_doorbell(cz, "czbreak");
   1221 
   1222 	CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
   1223 	CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL,
   1224 	    onoff ? C_CM_SET_BREAK : C_CM_CLR_BREAK);
   1225 }
   1226 
   1227 /*
   1228  * cztty_modem:
   1229  *
   1230  *	Set or clear DTR on a port.
   1231  */
   1232 void
   1233 cztty_modem(struct cztty_softc *sc, int onoff)
   1234 {
   1235 	struct cz_softc *cz = CZTTY_CZ(sc);
   1236 
   1237 	if (sc->sc_rs_control_dtr == 0)
   1238 		return;
   1239 
   1240 	cz_wait_pci_doorbell(cz, "czmod");
   1241 
   1242 	if (onoff)
   1243 		sc->sc_chanctl_rs_control |= sc->sc_rs_control_dtr;
   1244 	else
   1245 		sc->sc_chanctl_rs_control &= ~sc->sc_rs_control_dtr;
   1246 	CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, sc->sc_chanctl_rs_control);
   1247 
   1248 	CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
   1249 	CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLM);
   1250 }
   1251 
   1252 /*
   1253  * tiocm_to_cztty:
   1254  *
   1255  *	Process TIOCM* ioctls.
   1256  */
   1257 void
   1258 tiocm_to_cztty(struct cztty_softc *sc, u_long how, int ttybits)
   1259 {
   1260 	struct cz_softc *cz = CZTTY_CZ(sc);
   1261 	u_int32_t czttybits;
   1262 
   1263 	czttybits = 0;
   1264 	if (ISSET(ttybits, TIOCM_DTR))
   1265 		SET(czttybits, C_RS_DTR);
   1266 	if (ISSET(ttybits, TIOCM_RTS))
   1267 		SET(czttybits, C_RS_RTS);
   1268 
   1269 	cz_wait_pci_doorbell(cz, "cztiocm");
   1270 
   1271 	switch (how) {
   1272 	case TIOCMBIC:
   1273 		CLR(sc->sc_chanctl_rs_control, czttybits);
   1274 		break;
   1275 
   1276 	case TIOCMBIS:
   1277 		SET(sc->sc_chanctl_rs_control, czttybits);
   1278 		break;
   1279 
   1280 	case TIOCMSET:
   1281 		CLR(sc->sc_chanctl_rs_control, C_RS_DTR | C_RS_RTS);
   1282 		SET(sc->sc_chanctl_rs_control, czttybits);
   1283 		break;
   1284 	}
   1285 
   1286 	CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, sc->sc_chanctl_rs_control);
   1287 
   1288 	CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
   1289 	CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLM);
   1290 }
   1291 
   1292 /*
   1293  * cztty_to_tiocm:
   1294  *
   1295  *	Process the TIOCMGET ioctl.
   1296  */
   1297 int
   1298 cztty_to_tiocm(struct cztty_softc *sc)
   1299 {
   1300 	struct cz_softc *cz = CZTTY_CZ(sc);
   1301 	u_int32_t rs_status, op_mode;
   1302 	int ttybits = 0;
   1303 
   1304 	cz_wait_pci_doorbell(cz, "cztty");
   1305 
   1306 	rs_status = CZTTY_CHAN_READ(sc, CHNCTL_RS_STATUS);
   1307 	op_mode = CZTTY_CHAN_READ(sc, CHNCTL_OP_MODE);
   1308 
   1309 	if (ISSET(rs_status, C_RS_RTS))
   1310 		SET(ttybits, TIOCM_RTS);
   1311 	if (ISSET(rs_status, C_RS_CTS))
   1312 		SET(ttybits, TIOCM_CTS);
   1313 	if (ISSET(rs_status, C_RS_DCD))
   1314 		SET(ttybits, TIOCM_CAR);
   1315 	if (ISSET(rs_status, C_RS_DTR))
   1316 		SET(ttybits, TIOCM_DTR);
   1317 	if (ISSET(rs_status, C_RS_RI))
   1318 		SET(ttybits, TIOCM_RNG);
   1319 	if (ISSET(rs_status, C_RS_DSR))
   1320 		SET(ttybits, TIOCM_DSR);
   1321 
   1322 	if (ISSET(op_mode, C_CH_ENABLE))
   1323 		SET(ttybits, TIOCM_LE);
   1324 
   1325 	return (ttybits);
   1326 }
   1327 
   1328 /*
   1329  * czttyparam:
   1330  *
   1331  *	Set Cyclades-Z serial port parameters from termios.
   1332  *
   1333  *	XXX Should just copy the whole termios after making
   1334  *	XXX sure all the changes could be done.
   1335  */
   1336 int
   1337 czttyparam(struct tty *tp, struct termios *t)
   1338 {
   1339 	struct cztty_softc *sc = CZTTY_SOFTC(tp->t_dev);
   1340 	struct cz_softc *cz = CZTTY_CZ(sc);
   1341 	u_int32_t rs_status;
   1342 	int ospeed, cflag;
   1343 
   1344 	ospeed = t->c_ospeed;
   1345 	cflag = t->c_cflag;
   1346 
   1347 	/* Check requested parameters. */
   1348 	if (ospeed < 0)
   1349 		return (EINVAL);
   1350 	if (t->c_ispeed && t->c_ispeed != ospeed)
   1351 		return (EINVAL);
   1352 
   1353 	if (ISSET(sc->sc_swflags, TIOCFLAG_SOFTCAR)) {
   1354 		SET(cflag, CLOCAL);
   1355 		CLR(cflag, HUPCL);
   1356 	}
   1357 
   1358 	/*
   1359 	 * If there were no changes, don't do anything.  This avoids dropping
   1360 	 * input and improves performance when all we did was frob things like
   1361 	 * VMIN and VTIME.
   1362 	 */
   1363 	if (tp->t_ospeed == ospeed &&
   1364 	    tp->t_cflag == cflag)
   1365 		return (0);
   1366 
   1367 	/* Data bits. */
   1368 	sc->sc_chanctl_comm_data_l = 0;
   1369 	switch (t->c_cflag & CSIZE) {
   1370 	case CS5:
   1371 		sc->sc_chanctl_comm_data_l |= C_DL_CS5;
   1372 		break;
   1373 
   1374 	case CS6:
   1375 		sc->sc_chanctl_comm_data_l |= C_DL_CS6;
   1376 		break;
   1377 
   1378 	case CS7:
   1379 		sc->sc_chanctl_comm_data_l |= C_DL_CS7;
   1380 		break;
   1381 
   1382 	case CS8:
   1383 		sc->sc_chanctl_comm_data_l |= C_DL_CS8;
   1384 		break;
   1385 	}
   1386 
   1387 	/* Stop bits. */
   1388 	if (t->c_cflag & CSTOPB) {
   1389 		if ((sc->sc_chanctl_comm_data_l & C_DL_CS) == C_DL_CS5)
   1390 			sc->sc_chanctl_comm_data_l |= C_DL_15STOP;
   1391 		else
   1392 			sc->sc_chanctl_comm_data_l |= C_DL_2STOP;
   1393 	} else
   1394 		sc->sc_chanctl_comm_data_l |= C_DL_1STOP;
   1395 
   1396 	/* Parity. */
   1397 	if (t->c_cflag & PARENB) {
   1398 		if (t->c_cflag & PARODD)
   1399 			sc->sc_chanctl_comm_parity = C_PR_ODD;
   1400 		else
   1401 			sc->sc_chanctl_comm_parity = C_PR_EVEN;
   1402 	} else
   1403 		sc->sc_chanctl_comm_parity = C_PR_NONE;
   1404 
   1405 	/*
   1406 	 * Initialize flow control pins depending on the current flow control
   1407 	 * mode.
   1408 	 */
   1409 	if (ISSET(t->c_cflag, CRTSCTS)) {
   1410 		sc->sc_rs_control_dtr = C_RS_DTR;
   1411 		sc->sc_chanctl_hw_flow = C_RS_CTS | C_RS_RTS;
   1412 	} else if (ISSET(t->c_cflag, MDMBUF)) {
   1413 		sc->sc_rs_control_dtr = 0;
   1414 		sc->sc_chanctl_hw_flow = C_RS_DCD | C_RS_DTR;
   1415 	} else {
   1416 		/*
   1417 		 * If no flow control, then always set RTS.  This will make
   1418 		 * the other side happy if it mistakenly thinks we're doing
   1419 		 * RTS/CTS flow control.
   1420 		 */
   1421 		sc->sc_rs_control_dtr = C_RS_DTR | C_RS_RTS;
   1422 		sc->sc_chanctl_hw_flow = 0;
   1423 		if (ISSET(sc->sc_chanctl_rs_control, C_RS_DTR))
   1424 			SET(sc->sc_chanctl_rs_control, C_RS_RTS);
   1425 		else
   1426 			CLR(sc->sc_chanctl_rs_control, C_RS_RTS);
   1427 	}
   1428 
   1429 	/* Baud rate. */
   1430 	sc->sc_chanctl_comm_baud = ospeed;
   1431 
   1432 	/* Copy to tty. */
   1433 	tp->t_ispeed =  0;
   1434 	tp->t_ospeed = t->c_ospeed;
   1435 	tp->t_cflag = t->c_cflag;
   1436 
   1437 	/*
   1438 	 * Now load the channel control structure.
   1439 	 */
   1440 
   1441 	cz_wait_pci_doorbell(cz, "czparam");
   1442 
   1443 	CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_BAUD, sc->sc_chanctl_comm_baud);
   1444 	CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_DATA_L, sc->sc_chanctl_comm_data_l);
   1445 	CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_PARITY, sc->sc_chanctl_comm_parity);
   1446 	CZTTY_CHAN_WRITE(sc, CHNCTL_HW_FLOW, sc->sc_chanctl_hw_flow);
   1447 	CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, sc->sc_chanctl_rs_control);
   1448 
   1449 	CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
   1450 	CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLW);
   1451 
   1452 	cz_wait_pci_doorbell(cz, "czparam");
   1453 
   1454 	CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
   1455 	CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLM);
   1456 
   1457 	cz_wait_pci_doorbell(cz, "czparam");
   1458 
   1459 	/*
   1460 	 * Update the tty layer's idea of the carrier bit, in case we changed
   1461 	 * CLOCAL.  We don't hang up here; we only do that by explicit
   1462 	 * request.
   1463 	 */
   1464 	rs_status = CZTTY_CHAN_READ(sc, CHNCTL_RS_STATUS);
   1465 	(void) (*tp->t_linesw->l_modem)(tp, ISSET(rs_status, C_RS_DCD));
   1466 
   1467 	return (0);
   1468 }
   1469 
   1470 /*
   1471  * czttystart:
   1472  *
   1473  *	Start or restart transmission.
   1474  */
   1475 void
   1476 czttystart(struct tty *tp)
   1477 {
   1478 	struct cztty_softc *sc = CZTTY_SOFTC(tp->t_dev);
   1479 	int s;
   1480 
   1481 	s = spltty();
   1482 	if (ISSET(tp->t_state, TS_BUSY | TS_TIMEOUT | TS_TTSTOP))
   1483 		goto out;
   1484 
   1485 	if (tp->t_outq.c_cc <= tp->t_lowat) {
   1486 		if (ISSET(tp->t_state, TS_ASLEEP)) {
   1487 			CLR(tp->t_state, TS_ASLEEP);
   1488 			wakeup(&tp->t_outq);
   1489 		}
   1490 		selwakeup(&tp->t_wsel);
   1491 		if (tp->t_outq.c_cc == 0)
   1492 			goto out;
   1493 	}
   1494 
   1495 	cztty_transmit(sc, tp);
   1496  out:
   1497 	splx(s);
   1498 }
   1499 
   1500 /*
   1501  * czttystop:
   1502  *
   1503  *	Stop output, e.g., for ^S or output flush.
   1504  */
   1505 void
   1506 czttystop(struct tty *tp, int flag)
   1507 {
   1508 
   1509 	/*
   1510 	 * XXX We don't do anything here, yet.  Mostly, I don't know
   1511 	 * XXX exactly how this should be implemented on this device.
   1512 	 * XXX We've given a big chunk of data to the MIPS already,
   1513 	 * XXX and I don't know how we request the MIPS to stop sending
   1514 	 * XXX the data.  So, punt for now.  --thorpej
   1515 	 */
   1516 }
   1517 
   1518 /*
   1519  * cztty_diag:
   1520  *
   1521  *	Issue a scheduled diagnostic message.
   1522  */
   1523 void
   1524 cztty_diag(void *arg)
   1525 {
   1526 	struct cztty_softc *sc = arg;
   1527 	struct cz_softc *cz = CZTTY_CZ(sc);
   1528 	u_int overflows, parity_errors, framing_errors;
   1529 	int s;
   1530 
   1531 	s = spltty();
   1532 
   1533 	overflows = sc->sc_overflows;
   1534 	sc->sc_overflows = 0;
   1535 
   1536 	parity_errors = sc->sc_parity_errors;
   1537 	sc->sc_parity_errors = 0;
   1538 
   1539 	framing_errors = sc->sc_framing_errors;
   1540 	sc->sc_framing_errors = 0;
   1541 
   1542 	sc->sc_errors = 0;
   1543 
   1544 	splx(s);
   1545 
   1546 	log(LOG_WARNING,
   1547 	    "%s: channel %d: %u overflow%s, %u parity, %u framing error%s\n",
   1548 	    cz->cz_dev.dv_xname, sc->sc_channel,
   1549 	    overflows, overflows == 1 ? "" : "s",
   1550 	    parity_errors,
   1551 	    framing_errors, framing_errors == 1 ? "" : "s");
   1552 }
   1553 
   1554 /*
   1555  * tx and rx ring buffer size macros:
   1556  *
   1557  * The transmitter and receiver both use ring buffers. For each one, there
   1558  * is a get (consumer) and a put (producer) offset. The get value is the
   1559  * next byte to be read from the ring, and the put is the next one to be
   1560  * put into the ring.  get == put means the ring is empty.
   1561  *
   1562  * For each ring, the firmware controls one of (get, put) and this driver
   1563  * controls the other. For transmission, this driver updates put to point
   1564  * past the valid data, and the firmware moves get as bytes are sent. Likewise
   1565  * for receive, the driver controls put, and this driver controls get.
   1566  */
   1567 #define	TX_MOVEABLE(g, p, s)	(((g) > (p)) ? ((g) - (p) - 1) : ((s) - (p)))
   1568 #define RX_MOVEABLE(g, p, s)	(((g) > (p)) ? ((s) - (g)) : ((p) - (g)))
   1569 
   1570 /*
   1571  * cztty_transmit()
   1572  *
   1573  * Look at the tty for this port and start sending.
   1574  */
   1575 int
   1576 cztty_transmit(struct cztty_softc *sc, struct tty *tp)
   1577 {
   1578 	struct cz_softc *cz = CZTTY_CZ(sc);
   1579 	u_int move, get, put, size, address;
   1580 #ifdef HOSTRAMCODE
   1581 	int error, done = 0;
   1582 #else
   1583 	int done = 0;
   1584 #endif
   1585 
   1586 	size	= CZTTY_BUF_READ(sc, BUFCTL_TX_BUFSIZE);
   1587 	get	= CZTTY_BUF_READ(sc, BUFCTL_TX_GET);
   1588 	put	= CZTTY_BUF_READ(sc, BUFCTL_TX_PUT);
   1589 	address	= CZTTY_BUF_READ(sc, BUFCTL_TX_BUFADDR);
   1590 
   1591 	while ((tp->t_outq.c_cc > 0) && ((move = TX_MOVEABLE(get, put, size)))){
   1592 #ifdef HOSTRAMCODE
   1593 		if (0) {
   1594 			move = min(tp->t_outq.c_cc, move);
   1595 			error = q_to_b(&tp->t_outq, 0, move);
   1596 			if (error != move) {
   1597 				printf("%s: channel %d: error moving to "
   1598 				    "transmit buf\n", cz->cz_dev.dv_xname,
   1599 				    sc->sc_channel);
   1600 				move = error;
   1601 			}
   1602 		} else {
   1603 #endif
   1604 			move = min(ndqb(&tp->t_outq, 0), move);
   1605 			bus_space_write_region_1(cz->cz_win_st, cz->cz_win_sh,
   1606 			    address + put, tp->t_outq.c_cf, move);
   1607 			ndflush(&tp->t_outq, move);
   1608 #ifdef HOSTRAMCODE
   1609 		}
   1610 #endif
   1611 
   1612 		put = ((put + move) % size);
   1613 		done = 1;
   1614 	}
   1615 	if (done) {
   1616 		CZTTY_BUF_WRITE(sc, BUFCTL_TX_PUT, put);
   1617 	}
   1618 	return (done);
   1619 }
   1620 
   1621 int
   1622 cztty_receive(struct cztty_softc *sc, struct tty *tp)
   1623 {
   1624 	struct cz_softc *cz = CZTTY_CZ(sc);
   1625 	u_int get, put, size, address;
   1626 	int done = 0, ch;
   1627 
   1628 	size	= CZTTY_BUF_READ(sc, BUFCTL_RX_BUFSIZE);
   1629 	get	= CZTTY_BUF_READ(sc, BUFCTL_RX_GET);
   1630 	put	= CZTTY_BUF_READ(sc, BUFCTL_RX_PUT);
   1631 	address	= CZTTY_BUF_READ(sc, BUFCTL_RX_BUFADDR);
   1632 
   1633 	while ((get != put) && ((tp->t_canq.c_cc + tp->t_rawq.c_cc) < tp->t_hiwat)) {
   1634 #ifdef HOSTRAMCODE
   1635 		if (hostram)
   1636 			ch = ((char *)fifoaddr)[get];
   1637 		} else {
   1638 #endif
   1639 			ch = bus_space_read_1(cz->cz_win_st, cz->cz_win_sh,
   1640 			    address + get);
   1641 #ifdef HOSTRAMCODE
   1642 		}
   1643 #endif
   1644 		(*tp->t_linesw->l_rint)(ch, tp);
   1645 		get = (get + 1) % size;
   1646 		done = 1;
   1647 	}
   1648 	if (done) {
   1649 		CZTTY_BUF_WRITE(sc, BUFCTL_RX_GET, get);
   1650 	}
   1651 	return (done);
   1652 }
   1653