freebsd-dev/sys/dev/pccbb/pccbb.c

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/*
* Copyright (c) 2000,2001 Jonathan Chen.
* All rights reserved.
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions
* are met:
* 1. Redistributions of source code must retain the above copyright
* notice, this list of conditions, and the following disclaimer,
* without modification, immediately at the beginning of the file.
* 2. Redistributions in binary form must reproduce the above copyright
* notice, this list of conditions and the following disclaimer in
* the documentation and/or other materials provided with the
* distribution.
*
* THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
* ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
* ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR
* ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
* OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
* HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
* LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
* SUCH DAMAGE.
*
* $FreeBSD$
*/
/*
* Driver for PCI to Cardbus Bridge chips
*
* References:
* TI Datasheets:
* http://www-s.ti.com/cgi-bin/sc/generic2.cgi?family=PCI+CARDBUS+CONTROLLERS
*
* Written by Jonathan Chen <jon@freebsd.org>
* The author would like to acknowledge:
* * HAYAKAWA Koichi: Author of the NetBSD code for the same thing
* * Warner Losh: Newbus/newcard guru and author of the pccard side of things
* * YAMAMOTO Shigeru: Author of another FreeBSD cardbus driver
* * David Cross: Author of the initial ugly hack for a specific cardbus card
*/
#include <sys/param.h>
#include <sys/systm.h>
#include <sys/errno.h>
#include <sys/kernel.h>
#include <sys/kthread.h>
#include <sys/lock.h>
#include <sys/malloc.h>
#include <sys/mutex.h>
#include <sys/sysctl.h>
#include <sys/bus.h>
#include <machine/bus.h>
#include <sys/rman.h>
#include <machine/resource.h>
#include <pci/pcireg.h>
#include <pci/pcivar.h>
#include <machine/clock.h>
#include <dev/pccard/pccardreg.h>
#include <dev/pccard/pccardvar.h>
#include <dev/exca/excareg.h>
#include <dev/exca/excavar.h>
#include <dev/pccbb/pccbbreg.h>
#include <dev/pccbb/pccbbvar.h>
#include "power_if.h"
#include "card_if.h"
#include "pcib_if.h"
#if defined CBB_DEBUG
#define DPRINTF(x) printf x
#define DEVPRINTF(x) device_printf x
#else
#define DPRINTF(x)
#define DEVPRINTF(x)
#endif
#define PCI_MASK_CONFIG(DEV,REG,MASK,SIZE) \
pci_write_config(DEV, REG, pci_read_config(DEV, REG, SIZE) MASK, SIZE)
#define PCI_MASK2_CONFIG(DEV,REG,MASK1,MASK2,SIZE) \
pci_write_config(DEV, REG, ( \
pci_read_config(DEV, REG, SIZE) MASK1) MASK2, SIZE)
#define PCCBB_START_MEM 0x84000000
#define PCCBB_START_IO 0x1000
struct pccbb_sclist {
struct pccbb_softc *sc;
STAILQ_ENTRY(pccbb_sclist) entries;
};
static STAILQ_HEAD(, pccbb_sclist) softcs;
static int softcs_init = 0;
struct yenta_chipinfo {
uint32_t yc_id;
const char *yc_name;
int yc_chiptype;
int yc_flags;
} yc_chipsets[] = {
/* Texas Instruments chips */
{PCI_DEVICE_ID_PCIC_TI1031, "TI1031 PCI-PCCard Bridge", CB_TI113X, 0},
{PCI_DEVICE_ID_PCIC_TI1130, "TI1130 PCI-CardBus Bridge", CB_TI113X, 0},
{PCI_DEVICE_ID_PCIC_TI1131, "TI1131 PCI-CardBus Bridge", CB_TI113X, 0},
{PCI_DEVICE_ID_PCIC_TI1210, "TI1210 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1211, "TI1211 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1220, "TI1220 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1221, "TI1221 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1225, "TI1225 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1250, "TI1250 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1251, "TI1251 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1251B,"TI1251B PCI-CardBus Bridge",CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1260, "TI1260 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1260B, "TI1260B PCI-CardBus Bridge", CB_TI12XX,
0},
{PCI_DEVICE_ID_PCIC_TI1410, "TI1410 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1420, "TI1420 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1421, "TI1421 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1450, "TI1450 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI1451, "TI1451 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI4410, "TI4410 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI4450, "TI4450 PCI-CardBus Bridge", CB_TI12XX, 0},
{PCI_DEVICE_ID_PCIC_TI4451, "TI4451 PCI-CardBus Bridge", CB_TI12XX, 0},
/* Ricoh chips */
{PCI_DEVICE_ID_RICOH_RL5C465, "RF5C465 PCI-CardBus Bridge",
CB_RF5C46X, 0},
{PCI_DEVICE_ID_RICOH_RL5C466, "RF5C466 PCI-CardBus Bridge",
CB_RF5C46X, 0},
{PCI_DEVICE_ID_RICOH_RL5C475, "RF5C475 PCI-CardBus Bridge",
CB_RF5C47X, 0},
{PCI_DEVICE_ID_RICOH_RL5C476, "RF5C476 PCI-CardBus Bridge",
CB_RF5C47X, 0},
{PCI_DEVICE_ID_RICOH_RL5C478, "RF5C478 PCI-CardBus Bridge",
CB_RF5C47X, 0},
/* Toshiba products */
{PCI_DEVICE_ID_TOSHIBA_TOPIC95, "ToPIC95 PCI-CardBus Bridge",
CB_TOPIC95, 0},
{PCI_DEVICE_ID_TOSHIBA_TOPIC95B, "ToPIC95B PCI-CardBus Bridge",
CB_TOPIC95B, 0},
{PCI_DEVICE_ID_TOSHIBA_TOPIC97, "ToPIC97 PCI-CardBus Bridge",
CB_TOPIC97, 0},
{PCI_DEVICE_ID_TOSHIBA_TOPIC100, "ToPIC100 PCI-CardBus Bridge",
CB_TOPIC97, 0},
/* Cirrus Logic */
{PCI_DEVICE_ID_PCIC_CLPD6832, "CLPD6832 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_CLPD6833, "CLPD6833 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_CLPD6834, "CLPD6834 PCI-CardBus Bridge",
CB_CIRRUS, 0},
/* 02Micro */
{PCI_DEVICE_ID_PCIC_OZ6832, "O2Mirco OZ6832/6833 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_OZ6860, "O2Mirco OZ6836/6860 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_OZ6872, "O2Mirco OZ6812/6872 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_OZ6912, "O2Mirco OZ6912/6972 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_OZ6922, "O2Mirco OZ6822 PCI-CardBus Bridge",
CB_CIRRUS, 0},
{PCI_DEVICE_ID_PCIC_OZ6933, "O2Mirco OZ6833 PCI-CardBus Bridge",
CB_CIRRUS, 0},
/* sentinel */
{0 /* null id */, "unknown",
CB_UNKNOWN, 0},
};
/* sysctl vars */
SYSCTL_NODE(_hw, OID_AUTO, pccbb, CTLFLAG_RD, 0, "PCCBB parameters");
/* There's no way to say TUNEABLE_LONG to get the right types */
u_long pccbb_start_mem = PCCBB_START_MEM;
TUNABLE_INT("hw.pccbb.start_memory", (int *)&pccbb_start_mem);
SYSCTL_ULONG(_hw_pccbb, OID_AUTO, start_mem, CTLFLAG_RD,
&pccbb_start_mem, PCCBB_START_MEM,
"Starting address for memory allocations");
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static int pccbb_chipset(uint32_t pci_id, const char **namep, int *flagp);
static int pccbb_probe(device_t brdev);
static void pccbb_chipinit(struct pccbb_softc *sc);
static int pccbb_attach(device_t brdev);
static int pccbb_detach(device_t brdev);
static int pccbb_shutdown(device_t brdev);
static void pccbb_driver_added(device_t brdev, driver_t *driver);
static void pccbb_child_detached(device_t brdev, device_t child);
static int pccbb_card_reprobe(device_t brdev, device_t busdev);
static void pccbb_event_thread(void *arg);
static void pccbb_create_event_thread(struct pccbb_softc *sc);
static void pccbb_start_threads(void *arg);
static void pccbb_insert(struct pccbb_softc *sc);
static void pccbb_removal(struct pccbb_softc *sc);
static void pccbb_intr(void *arg);
static int pccbb_detect_voltage(device_t brdev);
static int pccbb_power(device_t brdev, int volts);
static void pccbb_cardbus_reset(device_t brdev);
static int pccbb_cardbus_power_enable_socket(device_t brdev,
device_t child);
static void pccbb_cardbus_power_disable_socket(device_t brdev,
device_t child);
static int pccbb_cardbus_io_open(device_t brdev, int win, uint32_t start,
uint32_t end);
static int pccbb_cardbus_mem_open(device_t brdev, int win,
uint32_t start, uint32_t end);
static void pccbb_cardbus_auto_open(struct pccbb_softc *sc, int type);
static int pccbb_cardbus_activate_resource(device_t brdev, device_t child,
int type, int rid, struct resource *res);
static int pccbb_cardbus_deactivate_resource(device_t brdev,
device_t child, int type, int rid, struct resource *res);
static struct resource *pccbb_cardbus_alloc_resource(device_t brdev,
device_t child, int type, int *rid, u_long start,
u_long end, u_long count, uint flags);
static int pccbb_cardbus_release_resource(device_t brdev, device_t child,
int type, int rid, struct resource *res);
static int pccbb_power_enable_socket(device_t brdev, device_t child);
static void pccbb_power_disable_socket(device_t brdev, device_t child);
static int pccbb_activate_resource(device_t brdev, device_t child,
int type, int rid, struct resource *r);
static int pccbb_deactivate_resource(device_t brdev, device_t child,
int type, int rid, struct resource *r);
static struct resource *pccbb_alloc_resource(device_t brdev, device_t child,
int type, int *rid, u_long start, u_long end, u_long count,
uint flags);
static int pccbb_release_resource(device_t brdev, device_t child,
int type, int rid, struct resource *r);
static int pccbb_read_ivar(device_t brdev, device_t child, int which,
uintptr_t *result);
static int pccbb_write_ivar(device_t brdev, device_t child, int which,
uintptr_t value);
static int pccbb_maxslots(device_t brdev);
static uint32_t pccbb_read_config(device_t brdev, int b, int s, int f,
int reg, int width);
static void pccbb_write_config(device_t brdev, int b, int s, int f,
int reg, uint32_t val, int width);
/*
*/
static __inline void
pccbb_set(struct pccbb_softc *sc, uint32_t reg, uint32_t val)
{
bus_space_write_4(sc->sc_bst, sc->sc_bsh, reg, val);
}
static __inline uint32_t
pccbb_get(struct pccbb_softc *sc, uint32_t reg)
{
return (bus_space_read_4(sc->sc_bst, sc->sc_bsh, reg));
}
static __inline void
pccbb_setb(struct pccbb_softc *sc, uint32_t reg, uint32_t bits)
{
pccbb_set(sc, reg, pccbb_get(sc, reg) | bits);
}
static __inline void
pccbb_clrb(struct pccbb_softc *sc, uint32_t reg, uint32_t bits)
{
pccbb_set(sc, reg, pccbb_get(sc, reg) & ~bits);
}
static __inline uint8_t
pccbb_pcic_read(struct exca_softc *sc, int reg)
{
return (bus_space_read_1(sc->bst, sc->bsh, sc->offset + reg));
}
static __inline void
pccbb_pcic_write(struct exca_softc *sc, int reg, uint8_t val)
{
return (bus_space_write_1(sc->bst, sc->bsh, sc->offset + reg, val));
}
static void
pccbb_remove_res(struct pccbb_softc *sc, struct resource *res)
{
struct pccbb_reslist *rle;
SLIST_FOREACH(rle, &sc->rl, link) {
if (rle->res == res) {
SLIST_REMOVE(&sc->rl, rle, pccbb_reslist, link);
free(rle, M_DEVBUF);
return;
}
}
}
static struct resource *
pccbb_find_res(struct pccbb_softc *sc, int type, int rid)
{
struct pccbb_reslist *rle;
SLIST_FOREACH(rle, &sc->rl, link)
if (SYS_RES_MEMORY == rle->type && rid == rle->rid)
return (rle->res);
return (NULL);
}
static void
pccbb_insert_res(struct pccbb_softc *sc, struct resource *res, int type,
int rid)
{
struct pccbb_reslist *rle;
/*
* Need to record allocated resource so we can iterate through
* it later.
*/
rle = malloc(sizeof(struct pccbb_reslist), M_DEVBUF, M_NOWAIT);
if (!res)
panic("pccbb_cardbus_alloc_resource: can't record entry!");
rle->res = res;
rle->type = type;
rle->rid = rid;
SLIST_INSERT_HEAD(&sc->rl, rle, link);
}
static void
pccbb_destroy_res(struct pccbb_softc *sc)
{
struct pccbb_reslist *rle;
while ((rle = SLIST_FIRST(&sc->rl)) != NULL) {
device_printf(sc->sc_dev, "Danger Will Robinson: Resource "
"left allocated! This is a bug... "
"(rid=%x, type=%d, addr=%lx)\n", rle->rid, rle->type,
rman_get_start(rle->res));
SLIST_REMOVE_HEAD(&sc->rl, link);
free(rle, M_DEVBUF);
}
}
/************************************************************************/
/* Probe/Attach */
/************************************************************************/
static int
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pccbb_chipset(uint32_t pci_id, const char **namep, int *flagp)
{
int loopend = sizeof(yc_chipsets)/sizeof(yc_chipsets[0]);
struct yenta_chipinfo *ycp, *ycend;
ycend = yc_chipsets + loopend;
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for (ycp = yc_chipsets; ycp < ycend && pci_id != ycp->yc_id; ++ycp)
continue;
if (ycp == ycend)
/* not found */
ycp = yc_chipsets + loopend - 1; /* to point the sentinel */
if (namep != NULL)
*namep = ycp->yc_name;
if (flagp != NULL)
*flagp = ycp->yc_flags;
return (ycp->yc_chiptype);
}
static int
pccbb_probe(device_t brdev)
{
const char *name;
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if (pccbb_chipset(pci_get_devid(brdev), &name, NULL) == CB_UNKNOWN)
return (ENXIO);
device_set_desc(brdev, name);
return (0);
}
static void
pccbb_chipinit(struct pccbb_softc *sc)
{
/* Set CardBus latency timer */
if (pci_read_config(sc->sc_dev, PCIR_SECLAT_1, 1) < 0x20)
pci_write_config(sc->sc_dev, PCIR_SECLAT_1, 0x20, 1);
/* Set PCI latency timer */
if (pci_read_config(sc->sc_dev, PCIR_LATTIMER, 1) < 0x20)
pci_write_config(sc->sc_dev, PCIR_LATTIMER, 0x20, 1);
/* Enable memory access */
PCI_MASK_CONFIG(sc->sc_dev, PCIR_COMMAND,
| PCIM_CMD_MEMEN
| PCIM_CMD_PORTEN
| PCIM_CMD_BUSMASTEREN, 2);
/* disable Legacy IO */
switch (sc->sc_chipset) {
case CB_RF5C46X:
PCI_MASK_CONFIG(sc->sc_dev, PCCBBR_BRIDGECTRL,
& ~(PCCBBM_BRIDGECTRL_RL_3E0_EN |
PCCBBM_BRIDGECTRL_RL_3E2_EN), 2);
break;
default:
pci_write_config(sc->sc_dev, PCCBBR_LEGACY, 0x0, 4);
break;
}
/* Use PCI interrupt for interrupt routing */
PCI_MASK2_CONFIG(sc->sc_dev, PCCBBR_BRIDGECTRL,
& ~(PCCBBM_BRIDGECTRL_MASTER_ABORT |
PCCBBM_BRIDGECTRL_INTR_IREQ_EN),
| PCCBBM_BRIDGECTRL_WRITE_POST_EN,
2);
/* XXX this should be a function table, ala OLDCARD. */
switch (sc->sc_chipset) {
case CB_TI113X:
/*
* The TI 1031, TI 1130 and TI 1131 all require another bit
* be set to enable PCI routing of interrupts, and then
* a bit for each of the CSC and Function interrupts we
* want routed.
*/
PCI_MASK_CONFIG(sc->sc_dev, PCCBBR_CBCTRL,
| PCCBBM_CBCTRL_113X_PCI_INTR |
PCCBBM_CBCTRL_113X_PCI_CSC | PCCBBM_CBCTRL_113X_PCI_IRQ_EN,
1);
PCI_MASK_CONFIG(sc->sc_dev, PCCBBR_DEVCTRL,
& ~(PCCBBM_DEVCTRL_INT_SERIAL |
PCCBBM_DEVCTRL_INT_PCI), 1);
exca_write(&sc->exca, EXCA_INTR, EXCA_INTR_ENABLE);
exca_write(&sc->exca, EXCA_CSC_INTR, 0);
break;
case CB_TI12XX:
exca_write(&sc->exca, EXCA_INTR, EXCA_INTR_ENABLE);
exca_write(&sc->exca, EXCA_CSC_INTR, 0);
break;
case CB_TOPIC95B:
PCI_MASK_CONFIG(sc->sc_dev, PCCBBR_TOPIC_SOCKETCTRL,
| PCCBBM_TOPIC_SOCKETCTRL_SCR_IRQSEL, 4);
PCI_MASK2_CONFIG(sc->sc_dev, PCCBBR_TOPIC_SLOTCTRL,
| PCCBBM_TOPIC_SLOTCTRL_SLOTON |
PCCBBM_TOPIC_SLOTCTRL_SLOTEN |
PCCBBM_TOPIC_SLOTCTRL_ID_LOCK |
PCCBBM_TOPIC_SLOTCTRL_CARDBUS,
& ~PCCBBM_TOPIC_SLOTCTRL_SWDETECT, 4);
break;
}
/* close all memory and io windows */
pci_write_config(sc->sc_dev, PCCBBR_MEMBASE0, 0xffffffff, 4);
pci_write_config(sc->sc_dev, PCCBBR_MEMLIMIT0, 0, 4);
pci_write_config(sc->sc_dev, PCCBBR_MEMBASE1, 0xffffffff, 4);
pci_write_config(sc->sc_dev, PCCBBR_MEMLIMIT1, 0, 4);
pci_write_config(sc->sc_dev, PCCBBR_IOBASE0, 0xffffffff, 4);
pci_write_config(sc->sc_dev, PCCBBR_IOLIMIT0, 0, 4);
pci_write_config(sc->sc_dev, PCCBBR_IOBASE1, 0xffffffff, 4);
pci_write_config(sc->sc_dev, PCCBBR_IOLIMIT1, 0, 4);
}
static int
pccbb_attach(device_t brdev)
{
struct pccbb_softc *sc = (struct pccbb_softc *)device_get_softc(brdev);
int rid;
uint32_t sockbase;
struct pccbb_sclist *sclist;
if (!softcs_init) {
softcs_init = 1;
STAILQ_INIT(&softcs);
}
mtx_init(&sc->sc_mtx, device_get_nameunit(brdev), MTX_DEF);
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sc->sc_chipset = pccbb_chipset(pci_get_devid(brdev), NULL, &sc->sc_flags);
sc->sc_dev = brdev;
sc->sc_cbdev = NULL;
sc->sc_pccarddev = NULL;
sc->sc_secbus = pci_read_config(brdev, PCIR_SECBUS_2, 1);
sc->sc_subbus = pci_read_config(brdev, PCIR_SUBBUS_2, 1);
SLIST_INIT(&sc->rl);
/*
* The PCI bus code should assign us memory in the absense
* of the BIOS doing so. However, 'should' isn't 'is,' so we hack
* up something here until the PCI code is up to snuff.
*/
rid = PCCBBR_SOCKBASE;
sc->sc_base_res = bus_alloc_resource(brdev, SYS_RES_MEMORY, &rid,
0, ~0, 1, RF_ACTIVE);
if (!sc->sc_base_res) {
/*
* XXX EVILE HACK BAD THING! XXX
* The pci bus device should do this for us.
* Some BIOSes doesn't assign a memory space properly.
* So we try to manually put one in...
*/
sockbase = pci_read_config(brdev, rid, 4);
if (sockbase < 0x100000 || sockbase >= 0xfffffff0) {
pci_write_config(brdev, rid, 0xffffffff, 4);
sockbase = pci_read_config(brdev, rid, 4);
sockbase = (sockbase & 0xfffffff0) &
-(sockbase & 0xfffffff0);
sc->sc_base_res = bus_generic_alloc_resource(
device_get_parent(brdev), brdev, SYS_RES_MEMORY,
&rid, pccbb_start_mem, ~0, sockbase,
RF_ACTIVE|rman_make_alignment_flags(sockbase));
if (!sc->sc_base_res){
device_printf(brdev,
"Could not grab register memory\n");
mtx_destroy(&sc->sc_mtx);
return (ENOMEM);
}
pci_write_config(brdev, PCCBBR_SOCKBASE,
rman_get_start(sc->sc_base_res), 4);
DEVPRINTF((brdev, "PCI Memory allocated: %08lx\n",
rman_get_start(sc->sc_base_res)));
} else {
device_printf(brdev, "Could not map register memory\n");
mtx_destroy(&sc->sc_mtx);
return (ENOMEM);
}
}
sc->sc_bst = rman_get_bustag(sc->sc_base_res);
sc->sc_bsh = rman_get_bushandle(sc->sc_base_res);
exca_init(&sc->exca, brdev, &pccbb_pcic_write, &pccbb_pcic_read,
sc->sc_bst, sc->sc_bsh, 0x800);
pccbb_chipinit(sc);
/* CSC Interrupt: Card detect interrupt on */
pccbb_setb(sc, PCCBB_SOCKET_MASK, PCCBB_SOCKET_MASK_CD);
/* reset interrupt */
pccbb_set(sc, PCCBB_SOCKET_EVENT, pccbb_get(sc, PCCBB_SOCKET_EVENT));
/* Map and establish the interrupt. */
rid = 0;
sc->sc_irq_res = bus_alloc_resource(brdev, SYS_RES_IRQ, &rid, 0, ~0, 1,
RF_SHAREABLE | RF_ACTIVE);
if (sc->sc_irq_res == NULL) {
printf("pccbb: Unable to map IRQ...\n");
bus_release_resource(brdev, SYS_RES_MEMORY, PCCBBR_SOCKBASE,
sc->sc_base_res);
mtx_destroy(&sc->sc_mtx);
return (ENOMEM);
}
if (bus_setup_intr(brdev, sc->sc_irq_res, INTR_TYPE_AV, pccbb_intr, sc,
&sc->sc_intrhand)) {
device_printf(brdev, "couldn't establish interrupt");
bus_release_resource(brdev, SYS_RES_IRQ, 0, sc->sc_irq_res);
bus_release_resource(brdev, SYS_RES_MEMORY, PCCBBR_SOCKBASE,
sc->sc_base_res);
mtx_destroy(&sc->sc_mtx);
return (ENOMEM);
}
/* attach children */
sc->sc_cbdev = device_add_child(brdev, "cardbus", -1);
if (sc->sc_cbdev == NULL)
DEVPRINTF((brdev, "WARNING: cannot add cardbus bus.\n"));
else if (device_probe_and_attach(sc->sc_cbdev) != 0) {
DEVPRINTF((brdev, "WARNING: cannot attach cardbus bus!\n"));
sc->sc_cbdev = NULL;
}
sc->sc_pccarddev = device_add_child(brdev, "pccard", -1);
if (sc->sc_pccarddev == NULL)
DEVPRINTF((brdev, "WARNING: cannot add pccard bus.\n"));
else if (device_probe_and_attach(sc->sc_pccarddev) != 0) {
DEVPRINTF((brdev, "WARNING: cannot attach pccard bus.\n"));
sc->sc_pccarddev = NULL;
}
sclist = malloc(sizeof(struct pccbb_sclist), M_DEVBUF, M_WAITOK);
sclist->sc = sc;
STAILQ_INSERT_TAIL(&softcs, sclist, entries);
return (0);
}
static int
pccbb_detach(device_t brdev)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int numdevs;
device_t *devlist;
int tmp;
int error;
device_get_children(brdev, &devlist, &numdevs);
error = 0;
for (tmp = 0; tmp < numdevs; tmp++) {
if (device_detach(devlist[tmp]) == 0)
device_delete_child(brdev, devlist[tmp]);
else
error++;
}
free(devlist, M_TEMP);
if (error > 0)
return (ENXIO);
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_lock(&sc->sc_mtx);
bus_teardown_intr(brdev, sc->sc_irq_res, sc->sc_intrhand);
sc->sc_flags |= PCCBB_KTHREAD_DONE;
if (sc->sc_flags & PCCBB_KTHREAD_RUNNING) {
wakeup(sc);
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_unlock(&sc->sc_mtx);
DEVPRINTF((brdev, "waiting for kthread exit..."));
error = tsleep(sc, PWAIT, "pccbb-detach-wait", 60 * hz);
if (error)
DPRINTF(("timeout\n"));
else
DPRINTF(("done\n"));
} else {
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_unlock(&sc->sc_mtx);
}
bus_release_resource(brdev, SYS_RES_IRQ, 0, sc->sc_irq_res);
bus_release_resource(brdev, SYS_RES_MEMORY, PCCBBR_SOCKBASE,
sc->sc_base_res);
mtx_destroy(&sc->sc_mtx);
return (0);
}
static int
pccbb_shutdown(device_t brdev)
{
struct pccbb_softc *sc = (struct pccbb_softc *)device_get_softc(brdev);
/* properly reset everything at shutdown */
PCI_MASK_CONFIG(brdev, PCCBBR_BRIDGECTRL, |PCCBBM_BRIDGECTRL_RESET, 2);
exca_clrb(&sc->exca, EXCA_INTR, EXCA_INTR_RESET);
pccbb_set(sc, PCCBB_SOCKET_MASK, 0);
pccbb_power(brdev, CARD_VCC_0V | CARD_VPP_0V);
exca_write(&sc->exca, EXCA_ADDRWIN_ENABLE, 0);
pci_write_config(brdev, PCCBBR_MEMBASE0, 0, 4);
pci_write_config(brdev, PCCBBR_MEMLIMIT0, 0, 4);
pci_write_config(brdev, PCCBBR_MEMBASE1, 0, 4);
pci_write_config(brdev, PCCBBR_MEMLIMIT1, 0, 4);
pci_write_config(brdev, PCCBBR_IOBASE0, 0, 4);
pci_write_config(brdev, PCCBBR_IOLIMIT0, 0, 4);
pci_write_config(brdev, PCCBBR_IOBASE1, 0, 4);
pci_write_config(brdev, PCCBBR_IOLIMIT1, 0, 4);
pci_write_config(brdev, PCIR_COMMAND, 0, 2);
return (0);
}
static int
pccbb_setup_intr(device_t dev, device_t child, struct resource *irq,
int flags, driver_intr_t *intr, void *arg, void **cookiep)
{
int err;
/*
* You aren't allowed to have fast interrupts for pccard/cardbus
* things since those interrupts are PCI and shared. Since we use
* the PCI interrupt for the status change interrupts, it can't be
* free for use by the driver. Fast interrupts must not be shared.
*/
if ((flags & INTR_FAST) != 0)
return (EINVAL);
err = bus_generic_setup_intr(dev, child, irq, flags, intr, arg,
cookiep);
/*
* XXX need to turn on ISA interrupts, if we ever support them, but
* XXX for now that's all we need to do.
*/
return (err);
}
static int
pccbb_teardown_intr(device_t dev, device_t child, struct resource *irq,
void *cookie)
{
/* XXX Need to do different things for ISA interrupts. */
return (bus_generic_teardown_intr(dev, child, irq, cookie));
}
static void
pccbb_driver_added(device_t brdev, driver_t *driver)
{
struct pccbb_softc *sc = device_get_softc(brdev);
device_t *devlist;
int tmp;
int numdevs;
int wake;
uint32_t sockstate;
DEVICE_IDENTIFY(driver, brdev);
device_get_children(brdev, &devlist, &numdevs);
wake = 0;
sockstate = pccbb_get(sc, PCCBB_SOCKET_STATE);
for (tmp = 0; tmp < numdevs; tmp++) {
if (device_get_state(devlist[tmp]) == DS_NOTPRESENT &&
device_probe_and_attach(devlist[tmp]) == 0) {
if (devlist[tmp] == NULL)
/* NOTHING */;
else if (strcmp(driver->name, "cardbus") == 0) {
sc->sc_cbdev = devlist[tmp];
if (((sockstate & PCCBB_SOCKET_STAT_CD) == 0) &&
(sockstate & PCCBB_SOCKET_STAT_CB))
wake++;
} else if (strcmp(driver->name, "pccard") == 0) {
sc->sc_pccarddev = devlist[tmp];
if (((sockstate & PCCBB_SOCKET_STAT_CD) == 0) &&
(sockstate & PCCBB_SOCKET_STAT_16BIT))
wake++;
} else
device_printf(brdev,
"Unsupported child bus: %s\n",
driver->name);
}
}
free(devlist, M_TEMP);
if (wake > 0) {
if ((pccbb_get(sc, PCCBB_SOCKET_STATE) & PCCBB_SOCKET_STAT_CD)
== 0) {
mtx_lock(&sc->sc_mtx);
wakeup(sc);
mtx_unlock(&sc->sc_mtx);
}
}
}
static void
pccbb_child_detached(device_t brdev, device_t child)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (child == sc->sc_cbdev)
sc->sc_cbdev = NULL;
else if (child == sc->sc_pccarddev)
sc->sc_pccarddev = NULL;
else
device_printf(brdev, "Unknown child detached: %s %p/%p\n",
device_get_nameunit(child), sc->sc_cbdev, sc->sc_pccarddev);
}
static int
pccbb_card_reprobe(device_t brdev, device_t busdev)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int wake = 0;
uint32_t sockstate;
sockstate = pccbb_get(sc, PCCBB_SOCKET_STATE);
if ((sockstate & PCCBB_SOCKET_STAT_CD) == 0) {
if (busdev == sc->sc_cbdev &&
(sockstate & PCCBB_SOCKET_STAT_CB))
wake++;
else if (busdev == sc->sc_pccarddev &&
(sockstate & PCCBB_SOCKET_STAT_16BIT))
wake++;
if (wake > 0) {
mtx_lock(&sc->sc_mtx);
wakeup(sc);
mtx_unlock(&sc->sc_mtx);
return (0);
}
return (EBUSY);
}
return (ENOENT);
}
/************************************************************************/
/* Kthreads */
/************************************************************************/
static void
pccbb_event_thread(void *arg)
{
struct pccbb_softc *sc = arg;
uint32_t status;
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_lock(&Giant);
for(;;) {
if (!(sc->sc_flags & PCCBB_KTHREAD_RUNNING)) {
sc->sc_flags |= PCCBB_KTHREAD_RUNNING;
} else {
tsleep (sc, PWAIT, "pccbbev", 0);
/*
* Delay 1 second, make sure the user is done with
* whatever he is doing. We tsleep on sc->sc_flags,
* which should never be woken up.
*
* XXX Note: This can cause problems on card
* removal. See OLDCARD's ISR for how you may
* have to deal with the debouncing problem. The
* crux of the issue is interrupts delivered to
* the card after eject are unstable.
*/
tsleep (&sc->sc_flags, PWAIT, "pccbbev", 1*hz);
}
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_lock(&sc->sc_mtx);
if (sc->sc_flags & PCCBB_KTHREAD_DONE)
break;
status = pccbb_get(sc, PCCBB_SOCKET_STATE);
if ((status & PCCBB_SOCKET_STAT_CD) == 0) {
pccbb_insert(sc);
} else {
pccbb_removal(sc);
}
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_unlock(&sc->sc_mtx);
}
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_unlock(&sc->sc_mtx);
sc->sc_flags &= ~PCCBB_KTHREAD_RUNNING;
wakeup(sc);
kthread_exit(0);
}
static void
pccbb_create_event_thread(struct pccbb_softc *sc)
{
if (kthread_create(pccbb_event_thread, sc, &sc->event_thread,
0, "%s%d", device_get_name(sc->sc_dev),
device_get_unit(sc->sc_dev))) {
device_printf (sc->sc_dev, "unable to create event thread.\n");
panic ("pccbb_create_event_thread");
}
}
static void
pccbb_start_threads(void *arg)
{
struct pccbb_sclist *sclist;
STAILQ_FOREACH(sclist, &softcs, entries) {
pccbb_create_event_thread(sclist->sc);
}
}
/************************************************************************/
/* Insert/removal */
/************************************************************************/
static void
pccbb_insert(struct pccbb_softc *sc)
{
uint32_t sockevent, sockstate;
int timeout = 30;
do {
sockevent = pccbb_get(sc, PCCBB_SOCKET_EVENT);
sockstate = pccbb_get(sc, PCCBB_SOCKET_STATE);
} while (sockstate & PCCBB_SOCKET_STAT_CD && --timeout > 0);
if (timeout < 0) {
device_printf (sc->sc_dev, "insert timeout");
return;
}
DEVPRINTF((sc->sc_dev, "card inserted: event=0x%08x, state=%08x\n",
sockevent, sockstate));
if (sockstate & PCCBB_SOCKET_STAT_16BIT && sc->sc_pccarddev != NULL) {
sc->sc_flags |= PCCBB_16BIT_CARD;
if (CARD_ATTACH_CARD(sc->sc_pccarddev) != 0)
device_printf(sc->sc_dev, "card activation failed\n");
} else if (sockstate & PCCBB_SOCKET_STAT_CB && sc->sc_cbdev != NULL) {
sc->sc_flags &= ~PCCBB_16BIT_CARD;
if (CARD_ATTACH_CARD(sc->sc_cbdev) != 0)
device_printf(sc->sc_dev, "card activation failed\n");
} else {
device_printf (sc->sc_dev, "Unsupported card type detected\n");
}
}
static void
pccbb_removal(struct pccbb_softc *sc)
{
if (sc->sc_flags & PCCBB_16BIT_CARD && sc->sc_pccarddev != NULL)
CARD_DETACH_CARD(sc->sc_pccarddev, DETACH_FORCE);
else if ((!(sc->sc_flags & PCCBB_16BIT_CARD)) && sc->sc_cbdev != NULL)
CARD_DETACH_CARD(sc->sc_cbdev, DETACH_FORCE);
pccbb_destroy_res(sc);
}
/************************************************************************/
/* Interrupt Handler */
/************************************************************************/
static void
pccbb_intr(void *arg)
{
struct pccbb_softc *sc = arg;
uint32_t sockevent;
if (!(sockevent = pccbb_get(sc, PCCBB_SOCKET_EVENT))) {
/* not for me. */
return;
}
/* reset bit */
pccbb_setb(sc, PCCBB_SOCKET_EVENT, 0x01); /* XXXmagic */
if (sockevent & PCCBB_SOCKET_EVENT_CD) {
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_lock(&sc->sc_mtx);
wakeup(sc);
Change and clean the mutex lock interface. mtx_enter(lock, type) becomes: mtx_lock(lock) for sleep locks (MTX_DEF-initialized locks) mtx_lock_spin(lock) for spin locks (MTX_SPIN-initialized) similarily, for releasing a lock, we now have: mtx_unlock(lock) for MTX_DEF and mtx_unlock_spin(lock) for MTX_SPIN. We change the caller interface for the two different types of locks because the semantics are entirely different for each case, and this makes it explicitly clear and, at the same time, it rids us of the extra `type' argument. The enter->lock and exit->unlock change has been made with the idea that we're "locking data" and not "entering locked code" in mind. Further, remove all additional "flags" previously passed to the lock acquire/release routines with the exception of two: MTX_QUIET and MTX_NOSWITCH The functionality of these flags is preserved and they can be passed to the lock/unlock routines by calling the corresponding wrappers: mtx_{lock, unlock}_flags(lock, flag(s)) and mtx_{lock, unlock}_spin_flags(lock, flag(s)) for MTX_DEF and MTX_SPIN locks, respectively. Re-inline some lock acq/rel code; in the sleep lock case, we only inline the _obtain_lock()s in order to ensure that the inlined code fits into a cache line. In the spin lock case, we inline recursion and actually only perform a function call if we need to spin. This change has been made with the idea that we generally tend to avoid spin locks and that also the spin locks that we do have and are heavily used (i.e. sched_lock) do recurse, and therefore in an effort to reduce function call overhead for some architectures (such as alpha), we inline recursion for this case. Create a new malloc type for the witness code and retire from using the M_DEV type. The new type is called M_WITNESS and is only declared if WITNESS is enabled. Begin cleaning up some machdep/mutex.h code - specifically updated the "optimized" inlined code in alpha/mutex.h and wrote MTX_LOCK_SPIN and MTX_UNLOCK_SPIN asm macros for the i386/mutex.h as we presently need those. Finally, caught up to the interface changes in all sys code. Contributors: jake, jhb, jasone (in no particular order)
2001-02-09 06:11:45 +00:00
mtx_unlock(&sc->sc_mtx);
} else {
if (sockevent & PCCBB_SOCKET_EVENT_CSTS) {
DPRINTF(("csts event occurred, state = 0x%08x\n",
pccbb_get(sc, PCCBB_SOCKET_STATE)));
}
if (sockevent & PCCBB_SOCKET_EVENT_POWER) {
DPRINTF(("power event occurred, state = 0x%08x\n",
pccbb_get(sc, PCCBB_SOCKET_STATE)));
}
}
}
/************************************************************************/
/* Generic Power functions */
/************************************************************************/
static int
pccbb_detect_voltage(device_t brdev)
{
struct pccbb_softc *sc = device_get_softc(brdev);
uint32_t psr;
int vol = CARD_UKN_CARD;
psr = pccbb_get(sc, PCCBB_SOCKET_STATE);
if (psr & PCCBB_SOCKET_STAT_5VCARD)
vol |= CARD_5V_CARD;
if (psr & PCCBB_SOCKET_STAT_3VCARD)
vol |= CARD_3V_CARD;
if (psr & PCCBB_SOCKET_STAT_XVCARD)
vol |= CARD_XV_CARD;
if (psr & PCCBB_SOCKET_STAT_YVCARD)
vol |= CARD_YV_CARD;
return (vol);
}
static int
pccbb_power(device_t brdev, int volts)
{
uint32_t status, sock_ctrl;
struct pccbb_softc *sc = device_get_softc(brdev);
int timeout;
uint32_t sockevent;
DEVPRINTF((sc->sc_dev, "pccbb_power: %s and %s [%x]\n",
(volts & CARD_VCCMASK) == CARD_VCC_UC ? "CARD_VCC_UC" :
(volts & CARD_VCCMASK) == CARD_VCC_5V ? "CARD_VCC_5V" :
(volts & CARD_VCCMASK) == CARD_VCC_3V ? "CARD_VCC_3V" :
(volts & CARD_VCCMASK) == CARD_VCC_XV ? "CARD_VCC_XV" :
(volts & CARD_VCCMASK) == CARD_VCC_YV ? "CARD_VCC_YV" :
(volts & CARD_VCCMASK) == CARD_VCC_0V ? "CARD_VCC_0V" :
"VCC-UNKNOWN",
(volts & CARD_VPPMASK) == CARD_VPP_UC ? "CARD_VPP_UC" :
(volts & CARD_VPPMASK) == CARD_VPP_12V ? "CARD_VPP_12V" :
(volts & CARD_VPPMASK) == CARD_VPP_VCC ? "CARD_VPP_VCC" :
(volts & CARD_VPPMASK) == CARD_VPP_0V ? "CARD_VPP_0V" :
"VPP-UNKNOWN",
volts));
status = pccbb_get(sc, PCCBB_SOCKET_STATE);
sock_ctrl = pccbb_get(sc, PCCBB_SOCKET_CONTROL);
switch (volts & CARD_VCCMASK) {
case CARD_VCC_UC:
break;
case CARD_VCC_5V:
if (PCCBB_SOCKET_STAT_5VCARD & status) { /* check 5 V card */
sock_ctrl &= ~PCCBB_SOCKET_CTRL_VCCMASK;
sock_ctrl |= PCCBB_SOCKET_CTRL_VCC_5V;
} else {
device_printf(sc->sc_dev,
"BAD voltage request: no 5 V card\n");
}
break;
case CARD_VCC_3V:
if (PCCBB_SOCKET_STAT_3VCARD & status) {
sock_ctrl &= ~PCCBB_SOCKET_CTRL_VCCMASK;
sock_ctrl |= PCCBB_SOCKET_CTRL_VCC_3V;
} else {
device_printf(sc->sc_dev,
"BAD voltage request: no 3.3 V card\n");
}
break;
case CARD_VCC_0V:
sock_ctrl &= ~PCCBB_SOCKET_CTRL_VCCMASK;
break;
default:
return (0); /* power NEVER changed */
break;
}
switch (volts & CARD_VPPMASK) {
case CARD_VPP_UC:
break;
case CARD_VPP_0V:
sock_ctrl &= ~PCCBB_SOCKET_CTRL_VPPMASK;
break;
case CARD_VPP_VCC:
sock_ctrl &= ~PCCBB_SOCKET_CTRL_VPPMASK;
sock_ctrl |= ((sock_ctrl >> 4) & 0x07);
break;
case CARD_VPP_12V:
sock_ctrl &= ~PCCBB_SOCKET_CTRL_VPPMASK;
sock_ctrl |= PCCBB_SOCKET_CTRL_VPP_12V;
break;
}
if (pccbb_get(sc, PCCBB_SOCKET_CONTROL) == sock_ctrl)
return (1); /* no change necessary */
pccbb_set(sc, PCCBB_SOCKET_CONTROL, sock_ctrl);
status = pccbb_get(sc, PCCBB_SOCKET_STATE);
2001-09-06 20:43:12 +00:00
/*
* XXX This busy wait is bogus. We should wait for a power
* interrupt and then whine if the status is bad. If we're
* worried about the card not coming up, then we should also
* schedule a timeout which we can cacel in the power interrupt.
*/
timeout = 20;
do {
DELAY(20*1000);
sockevent = pccbb_get(sc, PCCBB_SOCKET_EVENT);
} while (!(sockevent & PCCBB_SOCKET_EVENT_POWER) && --timeout > 0);
/* reset event status */
/* XXX should only reset EVENT_POWER */
pccbb_set(sc, PCCBB_SOCKET_EVENT, sockevent);
if (timeout < 0) {
printf ("VCC supply failed.\n");
return (0);
}
/* XXX
* delay 400 ms: thgough the standard defines that the Vcc set-up time
* is 20 ms, some PC-Card bridge requires longer duration.
2001-09-06 20:43:12 +00:00
* XXX Note: We should check the stutus AFTER the delay to give time
* for things to stabilize.
*/
DELAY(400*1000);
if (status & PCCBB_SOCKET_STAT_BADVCC) {
device_printf(sc->sc_dev,
"bad Vcc request. ctrl=0x%x, status=0x%x\n",
sock_ctrl ,status);
printf("pccbb_power: %s and %s [%x]\n",
(volts & CARD_VCCMASK) == CARD_VCC_UC ? "CARD_VCC_UC" :
(volts & CARD_VCCMASK) == CARD_VCC_5V ? "CARD_VCC_5V" :
(volts & CARD_VCCMASK) == CARD_VCC_3V ? "CARD_VCC_3V" :
(volts & CARD_VCCMASK) == CARD_VCC_XV ? "CARD_VCC_XV" :
(volts & CARD_VCCMASK) == CARD_VCC_YV ? "CARD_VCC_YV" :
(volts & CARD_VCCMASK) == CARD_VCC_0V ? "CARD_VCC_0V" :
"VCC-UNKNOWN",
(volts & CARD_VPPMASK) == CARD_VPP_UC ? "CARD_VPP_UC" :
(volts & CARD_VPPMASK) == CARD_VPP_12V ? "CARD_VPP_12V":
(volts & CARD_VPPMASK) == CARD_VPP_VCC ? "CARD_VPP_VCC":
(volts & CARD_VPPMASK) == CARD_VPP_0V ? "CARD_VPP_0V" :
"VPP-UNKNOWN",
volts);
return (0);
}
return (1); /* power changed correctly */
}
/************************************************************************/
/* Cardbus power functions */
/************************************************************************/
static void
pccbb_cardbus_reset(device_t brdev)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int delay_us;
delay_us = sc->sc_chipset == CB_RF5C47X ? 400*1000 : 20*1000;
PCI_MASK_CONFIG(brdev, PCCBBR_BRIDGECTRL, |PCCBBM_BRIDGECTRL_RESET, 2);
DELAY(delay_us);
/* If a card exists, unreset it! */
if ((pccbb_get(sc, PCCBB_SOCKET_STATE) & PCCBB_SOCKET_STAT_CD) == 0) {
PCI_MASK_CONFIG(brdev, PCCBBR_BRIDGECTRL,
&~PCCBBM_BRIDGECTRL_RESET, 2);
DELAY(delay_us);
}
}
static int
pccbb_cardbus_power_enable_socket(device_t brdev, device_t child)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int voltage;
if ((pccbb_get(sc, PCCBB_SOCKET_STATE) & PCCBB_SOCKET_STAT_CD) ==
PCCBB_SOCKET_STAT_CD)
return (ENODEV);
voltage = pccbb_detect_voltage(brdev);
pccbb_power(brdev, CARD_VCC_0V | CARD_VPP_0V);
if (voltage & CARD_5V_CARD)
pccbb_power(brdev, CARD_VCC_5V | CARD_VPP_VCC);
else if (voltage & CARD_3V_CARD)
pccbb_power(brdev, CARD_VCC_3V | CARD_VPP_VCC);
else {
device_printf(brdev, "Unknown card voltage\n");
return (ENXIO);
}
pccbb_cardbus_reset(brdev);
return (0);
}
static void
pccbb_cardbus_power_disable_socket(device_t brdev, device_t child)
{
pccbb_power(brdev, CARD_VCC_0V | CARD_VPP_0V);
pccbb_cardbus_reset(brdev);
}
/************************************************************************/
/* Cardbus Resource */
/************************************************************************/
static int
pccbb_cardbus_io_open(device_t brdev, int win, uint32_t start, uint32_t end)
{
int basereg;
int limitreg;
if ((win < 0) || (win > 1)) {
DEVPRINTF((brdev,
"pccbb_cardbus_io_open: window out of range %d\n", win));
return (EINVAL);
}
basereg = win*8 + PCCBBR_IOBASE0;
limitreg = win*8 + PCCBBR_IOLIMIT0;
pci_write_config(brdev, basereg, start, 4);
pci_write_config(brdev, limitreg, end, 4);
return (0);
}
static int
pccbb_cardbus_mem_open(device_t brdev, int win, uint32_t start, uint32_t end)
{
int basereg;
int limitreg;
if ((win < 0) || (win > 1)) {
DEVPRINTF((brdev,
"pccbb_cardbus_mem_open: window out of range %d\n", win));
return (EINVAL);
}
basereg = win*8 + PCCBBR_MEMBASE0;
limitreg = win*8 + PCCBBR_MEMLIMIT0;
pci_write_config(brdev, basereg, start, 4);
pci_write_config(brdev, limitreg, end, 4);
return (0);
}
2002-01-15 20:41:39 +00:00
/*
* XXX The following function belongs in the pci bus layer.
*/
static void
pccbb_cardbus_auto_open(struct pccbb_softc *sc, int type)
{
uint32_t starts[2];
uint32_t ends[2];
struct pccbb_reslist *rle;
int align;
int prefetchable[2];
uint32_t reg;
starts[0] = starts[1] = 0xffffffff;
ends[0] = ends[1] = 0;
if (type == SYS_RES_MEMORY)
align = PCCBB_MEMALIGN;
else if (type == SYS_RES_IOPORT)
align = PCCBB_IOALIGN;
else
align = 1;
SLIST_FOREACH(rle, &sc->rl, link) {
if (rle->type != type)
;
else if (rle->res == NULL) {
device_printf(sc->sc_dev, "WARNING: Resource not reserved? "
"(type=%d, addr=%lx)\n",
rle->type, rman_get_start(rle->res));
} else if (!(rman_get_flags(rle->res) & RF_ACTIVE)) {
/* XXX */
} else if (starts[0] == 0xffffffff) {
starts[0] = rman_get_start(rle->res);
ends[0] = rman_get_end(rle->res);
prefetchable[0] =
rman_get_flags(rle->res) & RF_PREFETCHABLE;
} else if (rman_get_end(rle->res) > ends[0] &&
rman_get_start(rle->res) - ends[0] <
PCCBB_AUTO_OPEN_SMALLHOLE && prefetchable[0] ==
(rman_get_flags(rle->res) & RF_PREFETCHABLE)) {
ends[0] = rman_get_end(rle->res);
} else if (rman_get_start(rle->res) < starts[0] &&
starts[0] - rman_get_end(rle->res) <
PCCBB_AUTO_OPEN_SMALLHOLE && prefetchable[0] ==
(rman_get_flags(rle->res) & RF_PREFETCHABLE)) {
starts[0] = rman_get_start(rle->res);
} else if (starts[1] == 0xffffffff) {
starts[1] = rman_get_start(rle->res);
ends[1] = rman_get_end(rle->res);
prefetchable[1] =
rman_get_flags(rle->res) & RF_PREFETCHABLE;
} else if (rman_get_end(rle->res) > ends[1] &&
rman_get_start(rle->res) - ends[1] <
PCCBB_AUTO_OPEN_SMALLHOLE && prefetchable[1] ==
(rman_get_flags(rle->res) & RF_PREFETCHABLE)) {
ends[1] = rman_get_end(rle->res);
} else if (rman_get_start(rle->res) < starts[1] &&
starts[1] - rman_get_end(rle->res) <
PCCBB_AUTO_OPEN_SMALLHOLE && prefetchable[1] ==
(rman_get_flags(rle->res) & RF_PREFETCHABLE)) {
starts[1] = rman_get_start(rle->res);
} else {
uint32_t diffs[2];
int win;
diffs[0] = diffs[1] = 0xffffffff;
if (rman_get_start(rle->res) > ends[0])
diffs[0] = rman_get_start(rle->res) - ends[0];
else if (rman_get_end(rle->res) < starts[0])
diffs[0] = starts[0] - rman_get_end(rle->res);
if (rman_get_start(rle->res) > ends[1])
diffs[1] = rman_get_start(rle->res) - ends[1];
else if (rman_get_end(rle->res) < starts[1])
diffs[1] = starts[1] - rman_get_end(rle->res);
win = (diffs[0] <= diffs[1])?0:1;
if (rman_get_start(rle->res) > ends[win])
ends[win] = rman_get_end(rle->res);
else if (rman_get_end(rle->res) < starts[win])
starts[win] = rman_get_start(rle->res);
if (!(rman_get_flags(rle->res) & RF_PREFETCHABLE))
prefetchable[win] = 0;
}
if (starts[0] != 0xffffffff)
starts[0] -= starts[0] % align;
if (starts[1] != 0xffffffff)
starts[1] -= starts[1] % align;
if (ends[0] % align != 0)
ends[0] += align - ends[0]%align - 1;
if (ends[1] % align != 0)
ends[1] += align - ends[1]%align - 1;
}
if (type == SYS_RES_MEMORY) {
pccbb_cardbus_mem_open(sc->sc_dev, 0, starts[0], ends[0]);
pccbb_cardbus_mem_open(sc->sc_dev, 1, starts[1], ends[1]);
reg = pci_read_config(sc->sc_dev, PCCBBR_BRIDGECTRL, 2);
reg &= ~(PCCBBM_BRIDGECTRL_PREFETCH_0|
PCCBBM_BRIDGECTRL_PREFETCH_1);
reg |= (prefetchable[0]?PCCBBM_BRIDGECTRL_PREFETCH_0:0)|
(prefetchable[1]?PCCBBM_BRIDGECTRL_PREFETCH_1:0);
pci_write_config(sc->sc_dev, PCCBBR_BRIDGECTRL, reg, 2);
} else if (type == SYS_RES_IOPORT) {
pccbb_cardbus_io_open(sc->sc_dev, 0, starts[0], ends[0]);
pccbb_cardbus_io_open(sc->sc_dev, 1, starts[1], ends[1]);
}
}
static int
pccbb_cardbus_activate_resource(device_t brdev, device_t child, int type,
int rid, struct resource *res)
{
int ret;
ret = BUS_ACTIVATE_RESOURCE(device_get_parent(brdev), child,
type, rid, res);
if (ret != 0)
return (ret);
pccbb_cardbus_auto_open(device_get_softc(brdev), type);
return (0);
}
static int
pccbb_cardbus_deactivate_resource(device_t brdev, device_t child, int type,
int rid, struct resource *res)
{
int ret;
ret = BUS_DEACTIVATE_RESOURCE(device_get_parent(brdev), child,
type, rid, res);
if (ret != 0)
return (ret);
pccbb_cardbus_auto_open(device_get_softc(brdev), type);
return (0);
}
static struct resource *
pccbb_cardbus_alloc_resource(device_t brdev, device_t child, int type, int *rid,
u_long start, u_long end, u_long count, uint flags)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int tmp;
struct resource *res;
switch (type) {
case SYS_RES_IRQ:
tmp = rman_get_start(sc->sc_irq_res);
if (start > tmp || end < tmp || count != 1) {
device_printf(child, "requested interrupt %ld-%ld,"
"count = %ld not supported by pccbb\n",
start, end, count);
return (NULL);
}
start = end = tmp;
break;
case SYS_RES_IOPORT:
if (start <= PCCBB_START_IO)
start = PCCBB_START_IO;
if (end < start)
end = start;
break;
case SYS_RES_MEMORY:
if (start <= pccbb_start_mem)
start = pccbb_start_mem;
if (end < start)
end = start;
break;
}
res = BUS_ALLOC_RESOURCE(device_get_parent(brdev), child, type, rid,
start, end, count, flags & ~RF_ACTIVE);
if (res == NULL) {
printf("pccbb alloc res fail\n");
return (NULL);
}
pccbb_insert_res(sc, res, type, *rid);
if (flags & RF_ACTIVE)
if (bus_activate_resource(child, type, *rid, res) != 0) {
bus_release_resource(child, type, *rid, res);
return (NULL);
}
return (res);
}
static int
pccbb_cardbus_release_resource(device_t brdev, device_t child, int type,
int rid, struct resource *res)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int error;
if (rman_get_flags(res) & RF_ACTIVE) {
error = bus_deactivate_resource(child, type, rid, res);
if (error != 0)
return (error);
}
pccbb_remove_res(sc, res);
return (BUS_RELEASE_RESOURCE(device_get_parent(brdev), child,
type, rid, res));
}
/************************************************************************/
/* PC Card Power Functions */
/************************************************************************/
static int
pccbb_pcic_power_enable_socket(device_t brdev, device_t child)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int voltage;
DPRINTF(("pccbb_pcic_socket_enable:\n"));
/* power down/up the socket to reset */
voltage = pccbb_detect_voltage(brdev);
pccbb_power(brdev, CARD_VCC_0V | CARD_VPP_0V);
if (voltage & CARD_5V_CARD)
pccbb_power(brdev, CARD_VCC_5V | CARD_VPP_VCC);
else if (voltage & CARD_3V_CARD)
pccbb_power(brdev, CARD_VCC_3V | CARD_VPP_VCC);
else {
device_printf(brdev, "Unknown card voltage\n");
return (ENXIO);
}
exca_reset(&sc->exca, child);
return (0);
}
static void
pccbb_pcic_power_disable_socket(device_t brdev, device_t child)
{
struct pccbb_softc *sc = device_get_softc(brdev);
DPRINTF(("pccbb_pcic_socket_disable\n"));
/* reset signal asserting... */
exca_clrb(&sc->exca, EXCA_INTR, EXCA_INTR_RESET);
DELAY(2*1000);
/* power down the socket */
pccbb_power(brdev, CARD_VCC_0V | CARD_VPP_0V);
exca_clrb(&sc->exca, EXCA_PWRCTL, EXCA_PWRCTL_OE);
/* wait 300ms until power fails (Tpf). */
DELAY(300 * 1000);
}
/************************************************************************/
/* POWER methods */
/************************************************************************/
static int
pccbb_power_enable_socket(device_t brdev, device_t child)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (sc->sc_flags & PCCBB_16BIT_CARD)
return (pccbb_pcic_power_enable_socket(brdev, child));
else
return (pccbb_cardbus_power_enable_socket(brdev, child));
}
static void
pccbb_power_disable_socket(device_t brdev, device_t child)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (sc->sc_flags & PCCBB_16BIT_CARD)
pccbb_pcic_power_disable_socket(brdev, child);
else
pccbb_cardbus_power_disable_socket(brdev, child);
}
static int
pccbb_pcic_activate_resource(device_t brdev, device_t child, int type, int rid,
struct resource *res)
{
int err;
struct pccbb_softc *sc = device_get_softc(brdev);
if (!(rman_get_flags(res) & RF_ACTIVE)) { /* not already activated */
switch (type) {
case SYS_RES_IOPORT:
err = exca_io_map(&sc->exca, 0, res);
break;
case SYS_RES_MEMORY:
err = exca_mem_map(&sc->exca, 0, res);
break;
default:
err = 0;
break;
}
if (err)
return (err);
}
return (BUS_ACTIVATE_RESOURCE(device_get_parent(brdev), child,
type, rid, res));
}
static int
pccbb_pcic_deactivate_resource(device_t brdev, device_t child, int type,
int rid, struct resource *res)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (rman_get_flags(res) & RF_ACTIVE) { /* if activated */
switch (type) {
case SYS_RES_IOPORT:
if (exca_io_unmap_res(&sc->exca, res))
return (ENOENT);
break;
case SYS_RES_MEMORY:
if (exca_mem_unmap_res(&sc->exca, res))
return (ENOENT);
break;
}
}
return (BUS_DEACTIVATE_RESOURCE(device_get_parent(brdev), child,
type, rid, res));
}
static struct resource *
pccbb_pcic_alloc_resource(device_t brdev, device_t child, int type, int *rid,
u_long start, u_long end, u_long count, uint flags)
{
struct resource *res = NULL;
struct pccbb_softc *sc = device_get_softc(brdev);
int tmp;
switch (type) {
case SYS_RES_MEMORY:
if (start < pccbb_start_mem)
start = pccbb_start_mem;
if (end < start)
end = start;
flags = (flags & ~RF_ALIGNMENT_MASK) |
rman_make_alignment_flags(PCCBB_MEMALIGN);
break;
case SYS_RES_IOPORT:
if (start < 0x100)
start = 0x100; /* XXX tweakable? */
if (end < start)
end = start;
break;
case SYS_RES_IRQ:
tmp = rman_get_start(sc->sc_irq_res);
if (start > tmp || end < tmp || count != 1) {
device_printf(child, "requested interrupt %ld-%ld,"
"count = %ld not supported by pccbb\n",
start, end, count);
return (NULL);
}
flags |= RF_SHAREABLE;
start = end = rman_get_start(sc->sc_irq_res);
break;
}
res = BUS_ALLOC_RESOURCE(device_get_parent(brdev), child, type, rid,
start, end, count, flags & ~RF_ACTIVE);
if (res == NULL)
return (NULL);
pccbb_insert_res(sc, res, type, *rid);
if (flags & RF_ACTIVE) {
if (bus_activate_resource(child, type, *rid, res) != 0) {
bus_release_resource(child, type, *rid, res);
return (NULL);
}
}
return (res);
}
static int
pccbb_pcic_release_resource(device_t brdev, device_t child, int type,
int rid, struct resource *res)
{
struct pccbb_softc *sc = device_get_softc(brdev);
int error;
if (rman_get_flags(res) & RF_ACTIVE) {
error = bus_deactivate_resource(child, type, rid, res);
if (error != 0)
return (error);
}
pccbb_remove_res(sc, res);
return (BUS_RELEASE_RESOURCE(device_get_parent(brdev), child,
type, rid, res));
}
/************************************************************************/
/* PC Card methods */
/************************************************************************/
static int
pccbb_pcic_set_res_flags(device_t brdev, device_t child, int type, int rid,
uint32_t flags)
{
struct pccbb_softc *sc = device_get_softc(brdev);
struct resource *res;
if (type != SYS_RES_MEMORY)
return (EINVAL);
res = pccbb_find_res(sc, type, rid);
if (res == NULL) {
device_printf(brdev,
"set_res_flags: specified rid not found\n");
return (ENOENT);
}
return (exca_mem_set_flags(&sc->exca, res, flags));
}
static int
pccbb_pcic_set_memory_offset(device_t brdev, device_t child, int rid,
uint32_t cardaddr, uint32_t *deltap)
{
struct pccbb_softc *sc = device_get_softc(brdev);
struct resource *res;
res = pccbb_find_res(sc, SYS_RES_MEMORY, rid);
if (res == NULL) {
device_printf(brdev,
"set_memory_offset: specified rid not found\n");
return (ENOENT);
}
return (exca_mem_set_offset(&sc->exca, res, cardaddr, deltap));
}
/************************************************************************/
/* BUS Methods */
/************************************************************************/
static int
pccbb_activate_resource(device_t brdev, device_t child, int type, int rid,
struct resource *r)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (sc->sc_flags & PCCBB_16BIT_CARD)
return (pccbb_pcic_activate_resource(brdev, child, type, rid, r));
else
return (pccbb_cardbus_activate_resource(brdev, child, type, rid,
r));
}
static int
pccbb_deactivate_resource(device_t brdev, device_t child, int type,
int rid, struct resource *r)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (sc->sc_flags & PCCBB_16BIT_CARD)
return (pccbb_pcic_deactivate_resource(brdev, child, type,
rid, r));
else
return (pccbb_cardbus_deactivate_resource(brdev, child, type,
rid, r));
}
static struct resource *
pccbb_alloc_resource(device_t brdev, device_t child, int type, int *rid,
u_long start, u_long end, u_long count, uint flags)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (sc->sc_flags & PCCBB_16BIT_CARD)
return (pccbb_pcic_alloc_resource(brdev, child, type, rid,
start, end, count, flags));
else
return (pccbb_cardbus_alloc_resource(brdev, child, type, rid,
start, end, count, flags));
}
static int
pccbb_release_resource(device_t brdev, device_t child, int type, int rid,
struct resource *r)
{
struct pccbb_softc *sc = device_get_softc(brdev);
if (sc->sc_flags & PCCBB_16BIT_CARD)
return (pccbb_pcic_release_resource(brdev, child, type,
rid, r));
else
return (pccbb_cardbus_release_resource(brdev, child, type,
rid, r));
}
static int
pccbb_read_ivar(device_t brdev, device_t child, int which, uintptr_t *result)
{
struct pccbb_softc *sc = device_get_softc(brdev);
switch (which) {
case PCIB_IVAR_BUS:
*result = sc->sc_secbus;
return (0);
}
return (ENOENT);
}
static int
pccbb_write_ivar(device_t brdev, device_t child, int which, uintptr_t value)
{
struct pccbb_softc *sc = device_get_softc(brdev);
switch (which) {
case PCIB_IVAR_BUS:
sc->sc_secbus = value;
break;
}
return (ENOENT);
}
/************************************************************************/
/* PCI compat methods */
/************************************************************************/
static int
pccbb_maxslots(device_t brdev)
{
return (0);
}
static uint32_t
pccbb_read_config(device_t brdev, int b, int s, int f, int reg, int width)
{
/*
* Pass through to the next ppb up the chain (i.e. our grandparent).
*/
return (PCIB_READ_CONFIG(device_get_parent(device_get_parent(brdev)),
b, s, f, reg, width));
}
static void
pccbb_write_config(device_t brdev, int b, int s, int f, int reg, uint32_t val,
int width)
{
/*
* Pass through to the next ppb up the chain (i.e. our grandparent).
*/
PCIB_WRITE_CONFIG(device_get_parent(device_get_parent(brdev)),
b, s, f, reg, val, width);
}
static int
pccbb_suspend(device_t self)
{
int error = 0;
struct pccbb_softc* sc = device_get_softc(self);
bus_teardown_intr(self, sc->sc_irq_res, sc->sc_intrhand);
error = bus_generic_suspend(self);
return (error);
}
static int
pccbb_resume(device_t self)
{
int error = 0;
struct pccbb_softc *sc = (struct pccbb_softc *)device_get_softc(self);
uint32_t tmp;
pci_write_config(self, PCCBBR_SOCKBASE,
rman_get_start(sc->sc_base_res), 4);
DEVPRINTF((self, "PCI Memory allocated: %08lx\n",
rman_get_start(sc->sc_base_res)));
pccbb_chipinit(sc);
/* CSC Interrupt: Card detect interrupt on */
pccbb_setb(sc, PCCBB_SOCKET_MASK, PCCBB_SOCKET_MASK_CD);
/* reset interrupt */
tmp = pccbb_get(sc, PCCBB_SOCKET_EVENT);
pccbb_set(sc, PCCBB_SOCKET_EVENT, tmp);
/* re-establish the interrupt. */
if (bus_setup_intr(self, sc->sc_irq_res, INTR_TYPE_AV, pccbb_intr, sc,
&sc->sc_intrhand)) {
device_printf(self, "couldn't re-establish interrupt");
bus_release_resource(self, SYS_RES_IRQ, 0, sc->sc_irq_res);
bus_release_resource(self, SYS_RES_MEMORY, PCCBBR_SOCKBASE,
sc->sc_base_res);
mtx_destroy(&sc->sc_mtx);
error = ENOMEM;
}
/*
* Some BIOSes will not save the BARs for the pci chips, so we
* must do it ourselves. If the BAR is reset to 0 for an I/O
* device, it will read back as 0x1, so no explicit test for
* memory devices are needed.
*
* Note: The PCI bus code should do this automatically for us on
* suspend/resume, but until it does, we have to cope.
*/
if (pci_read_config(self, PCCBBR_SOCKBASE, 4) == 0)
pci_write_config(self, PCCBBR_SOCKBASE,
rman_get_start(sc->sc_base_res), 4);
error = bus_generic_resume(self);
/* wakeup thread */
if (!error) {
mtx_lock(&sc->sc_mtx);
wakeup(sc);
mtx_unlock(&sc->sc_mtx);
}
return (error);
}
static device_method_t pccbb_methods[] = {
/* Device interface */
DEVMETHOD(device_probe, pccbb_probe),
DEVMETHOD(device_attach, pccbb_attach),
DEVMETHOD(device_detach, pccbb_detach),
DEVMETHOD(device_shutdown, pccbb_shutdown),
DEVMETHOD(device_suspend, pccbb_suspend),
DEVMETHOD(device_resume, pccbb_resume),
/* bus methods */
DEVMETHOD(bus_print_child, bus_generic_print_child),
DEVMETHOD(bus_read_ivar, pccbb_read_ivar),
DEVMETHOD(bus_write_ivar, pccbb_write_ivar),
DEVMETHOD(bus_alloc_resource, pccbb_alloc_resource),
DEVMETHOD(bus_release_resource, pccbb_release_resource),
DEVMETHOD(bus_activate_resource, pccbb_activate_resource),
DEVMETHOD(bus_deactivate_resource, pccbb_deactivate_resource),
DEVMETHOD(bus_driver_added, pccbb_driver_added),
DEVMETHOD(bus_child_detached, pccbb_child_detached),
DEVMETHOD(bus_setup_intr, pccbb_setup_intr),
DEVMETHOD(bus_teardown_intr, pccbb_teardown_intr),
/* 16-bit card interface */
DEVMETHOD(card_set_res_flags, pccbb_pcic_set_res_flags),
DEVMETHOD(card_set_memory_offset, pccbb_pcic_set_memory_offset),
DEVMETHOD(card_reprobe_card, pccbb_card_reprobe),
/* power interface */
DEVMETHOD(power_enable_socket, pccbb_power_enable_socket),
DEVMETHOD(power_disable_socket, pccbb_power_disable_socket),
/* pcib compatibility interface */
DEVMETHOD(pcib_maxslots, pccbb_maxslots),
DEVMETHOD(pcib_read_config, pccbb_read_config),
DEVMETHOD(pcib_write_config, pccbb_write_config),
{0,0}
};
static driver_t pccbb_driver = {
"pccbb",
pccbb_methods,
sizeof(struct pccbb_softc)
};
static devclass_t pccbb_devclass;
DRIVER_MODULE(pccbb, pci, pccbb_driver, pccbb_devclass, 0, 0);
SYSINIT(pccbb, SI_SUB_KTHREAD_IDLE, SI_ORDER_ANY, pccbb_start_threads, 0);