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/*
 * This file is subject to the terms and conditions of the GNU General Public
 * License.  See the file "COPYING" in the main directory of this archive
 * for more details.
 *
 * KVM/MIPS: MIPS specific KVM APIs
 *
 * Copyright (C) 2012-2014 Imagination Technologies Ltd.
 * Authors: Sanjay Lal <sanjayl@kymasys.com>
*/

#include <sys/types.h>
#include <sys/ioctl.h>
#include <sys/mman.h>

#include <linux/kvm.h>

#include "qemu-common.h"
#include "qemu/error-report.h"
#include "qemu/timer.h"
#include "sysemu/sysemu.h"
#include "sysemu/kvm.h"
#include "cpu.h"
#include "sysemu/cpus.h"
#include "kvm_mips.h"
#include "exec/memattrs.h"

#define DEBUG_KVM 0

#define DPRINTF(fmt, ...) \
    do { if (DEBUG_KVM) { fprintf(stderr, fmt, ## __VA_ARGS__); } } while (0)

const KVMCapabilityInfo kvm_arch_required_capabilities[] = {
    KVM_CAP_LAST_INFO
};

static void kvm_mips_update_state(void *opaque, int running, RunState state);

unsigned long kvm_arch_vcpu_id(CPUState *cs)
{
    return cs->cpu_index;
}

int kvm_arch_init(MachineState *ms, KVMState *s)
{
    /* MIPS has 128 signals */
    kvm_set_sigmask_len(s, 16);

    DPRINTF("%s\n", __func__);
    return 0;
}

int kvm_arch_init_vcpu(CPUState *cs)
{
    int ret = 0;

    qemu_add_vm_change_state_handler(kvm_mips_update_state, cs);

    DPRINTF("%s\n", __func__);
    return ret;
}

void kvm_mips_reset_vcpu(MIPSCPU *cpu)
{
    CPUMIPSState *env = &cpu->env;

    if (env->CP0_Config1 & (1 << CP0C1_FP)) {
        fprintf(stderr, "Warning: FPU not supported with KVM, disabling\n");
        env->CP0_Config1 &= ~(1 << CP0C1_FP);
    }

    DPRINTF("%s\n", __func__);
}

int kvm_arch_insert_sw_breakpoint(CPUState *cs, struct kvm_sw_breakpoint *bp)
{
    DPRINTF("%s\n", __func__);
    return 0;
}

int kvm_arch_remove_sw_breakpoint(CPUState *cs, struct kvm_sw_breakpoint *bp)
{
    DPRINTF("%s\n", __func__);
    return 0;
}

static inline int cpu_mips_io_interrupts_pending(MIPSCPU *cpu)
{
    CPUMIPSState *env = &cpu->env;

    DPRINTF("%s: %#x\n", __func__, env->CP0_Cause & (1 << (2 + CP0Ca_IP)));
    return env->CP0_Cause & (0x1 << (2 + CP0Ca_IP));
}


void kvm_arch_pre_run(CPUState *cs, struct kvm_run *run)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    int r;
    struct kvm_mips_interrupt intr;

    qemu_mutex_lock_iothread();

    if ((cs->interrupt_request & CPU_INTERRUPT_HARD) &&
            cpu_mips_io_interrupts_pending(cpu)) {
        intr.cpu = -1;
        intr.irq = 2;
        r = kvm_vcpu_ioctl(cs, KVM_INTERRUPT, &intr);
        if (r < 0) {
            error_report("%s: cpu %d: failed to inject IRQ %x",
                         __func__, cs->cpu_index, intr.irq);
        }
    }

    qemu_mutex_unlock_iothread();
}

MemTxAttrs kvm_arch_post_run(CPUState *cs, struct kvm_run *run)
{
    DPRINTF("%s\n", __func__);
    return MEMTXATTRS_UNSPECIFIED;
}

int kvm_arch_process_async_events(CPUState *cs)
{
    return cs->halted;
}

int kvm_arch_handle_exit(CPUState *cs, struct kvm_run *run)
{
    int ret;

    DPRINTF("%s\n", __func__);
    switch (run->exit_reason) {
    default:
        error_report("%s: unknown exit reason %d",
                     __func__, run->exit_reason);
        ret = -1;
        break;
    }

    return ret;
}

bool kvm_arch_stop_on_emulation_error(CPUState *cs)
{
    DPRINTF("%s\n", __func__);
    return true;
}

int kvm_arch_on_sigbus_vcpu(CPUState *cs, int code, void *addr)
{
    DPRINTF("%s\n", __func__);
    return 1;
}

int kvm_arch_on_sigbus(int code, void *addr)
{
    DPRINTF("%s\n", __func__);
    return 1;
}

void kvm_arch_init_irq_routing(KVMState *s)
{
}

int kvm_mips_set_interrupt(MIPSCPU *cpu, int irq, int level)
{
    CPUState *cs = CPU(cpu);
    struct kvm_mips_interrupt intr;

    if (!kvm_enabled()) {
        return 0;
    }

    intr.cpu = -1;

    if (level) {
        intr.irq = irq;
    } else {
        intr.irq = -irq;
    }

    kvm_vcpu_ioctl(cs, KVM_INTERRUPT, &intr);

    return 0;
}

int kvm_mips_set_ipi_interrupt(MIPSCPU *cpu, int irq, int level)
{
    CPUState *cs = current_cpu;
    CPUState *dest_cs = CPU(cpu);
    struct kvm_mips_interrupt intr;

    if (!kvm_enabled()) {
        return 0;
    }

    intr.cpu = dest_cs->cpu_index;

    if (level) {
        intr.irq = irq;
    } else {
        intr.irq = -irq;
    }

    DPRINTF("%s: CPU %d, IRQ: %d\n", __func__, intr.cpu, intr.irq);

    kvm_vcpu_ioctl(cs, KVM_INTERRUPT, &intr);

    return 0;
}

#define MIPS_CP0_32(_R, _S)                                     \
    (KVM_REG_MIPS_CP0 | KVM_REG_SIZE_U32 | (8 * (_R) + (_S)))

#define MIPS_CP0_64(_R, _S)                                     \
    (KVM_REG_MIPS_CP0 | KVM_REG_SIZE_U64 | (8 * (_R) + (_S)))

#define KVM_REG_MIPS_CP0_INDEX          MIPS_CP0_32(0, 0)
#define KVM_REG_MIPS_CP0_CONTEXT        MIPS_CP0_64(4, 0)
#define KVM_REG_MIPS_CP0_USERLOCAL      MIPS_CP0_64(4, 2)
#define KVM_REG_MIPS_CP0_PAGEMASK       MIPS_CP0_32(5, 0)
#define KVM_REG_MIPS_CP0_WIRED          MIPS_CP0_32(6, 0)
#define KVM_REG_MIPS_CP0_HWRENA         MIPS_CP0_32(7, 0)
#define KVM_REG_MIPS_CP0_BADVADDR       MIPS_CP0_64(8, 0)
#define KVM_REG_MIPS_CP0_COUNT          MIPS_CP0_32(9, 0)
#define KVM_REG_MIPS_CP0_ENTRYHI        MIPS_CP0_64(10, 0)
#define KVM_REG_MIPS_CP0_COMPARE        MIPS_CP0_32(11, 0)
#define KVM_REG_MIPS_CP0_STATUS         MIPS_CP0_32(12, 0)
#define KVM_REG_MIPS_CP0_CAUSE          MIPS_CP0_32(13, 0)
#define KVM_REG_MIPS_CP0_EPC            MIPS_CP0_64(14, 0)
#define KVM_REG_MIPS_CP0_ERROREPC       MIPS_CP0_64(30, 0)

static inline int kvm_mips_put_one_reg(CPUState *cs, uint64_t reg_id,
                                       int32_t *addr)
{
    struct kvm_one_reg cp0reg = {
        .id = reg_id,
        .addr = (uintptr_t)addr
    };

    return kvm_vcpu_ioctl(cs, KVM_SET_ONE_REG, &cp0reg);
}

static inline int kvm_mips_put_one_ulreg(CPUState *cs, uint64_t reg_id,
                                         target_ulong *addr)
{
    uint64_t val64 = *addr;
    struct kvm_one_reg cp0reg = {
        .id = reg_id,
        .addr = (uintptr_t)&val64
    };

    return kvm_vcpu_ioctl(cs, KVM_SET_ONE_REG, &cp0reg);
}

static inline int kvm_mips_put_one_reg64(CPUState *cs, uint64_t reg_id,
                                         uint64_t *addr)
{
    struct kvm_one_reg cp0reg = {
        .id = reg_id,
        .addr = (uintptr_t)addr
    };

    return kvm_vcpu_ioctl(cs, KVM_SET_ONE_REG, &cp0reg);
}

static inline int kvm_mips_get_one_reg(CPUState *cs, uint64_t reg_id,
                                       int32_t *addr)
{
    struct kvm_one_reg cp0reg = {
        .id = reg_id,
        .addr = (uintptr_t)addr
    };

    return kvm_vcpu_ioctl(cs, KVM_GET_ONE_REG, &cp0reg);
}

static inline int kvm_mips_get_one_ulreg(CPUState *cs, uint64 reg_id,
                                         target_ulong *addr)
{
    int ret;
    uint64_t val64 = 0;
    struct kvm_one_reg cp0reg = {
        .id = reg_id,
        .addr = (uintptr_t)&val64
    };

    ret = kvm_vcpu_ioctl(cs, KVM_GET_ONE_REG, &cp0reg);
    if (ret >= 0) {
        *addr = val64;
    }
    return ret;
}

static inline int kvm_mips_get_one_reg64(CPUState *cs, uint64 reg_id,
                                         uint64_t *addr)
{
    struct kvm_one_reg cp0reg = {
        .id = reg_id,
        .addr = (uintptr_t)addr
    };

    return kvm_vcpu_ioctl(cs, KVM_GET_ONE_REG, &cp0reg);
}

/*
 * We freeze the KVM timer when either the VM clock is stopped or the state is
 * saved (the state is dirty).
 */

/*
 * Save the state of the KVM timer when VM clock is stopped or state is synced
 * to QEMU.
 */
static int kvm_mips_save_count(CPUState *cs)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    CPUMIPSState *env = &cpu->env;
    uint64_t count_ctl;
    int err, ret = 0;

    /* freeze KVM timer */
    err = kvm_mips_get_one_reg64(cs, KVM_REG_MIPS_COUNT_CTL, &count_ctl);
    if (err < 0) {
        DPRINTF("%s: Failed to get COUNT_CTL (%d)\n", __func__, err);
        ret = err;
    } else if (!(count_ctl & KVM_REG_MIPS_COUNT_CTL_DC)) {
        count_ctl |= KVM_REG_MIPS_COUNT_CTL_DC;
        err = kvm_mips_put_one_reg64(cs, KVM_REG_MIPS_COUNT_CTL, &count_ctl);
        if (err < 0) {
            DPRINTF("%s: Failed to set COUNT_CTL.DC=1 (%d)\n", __func__, err);
            ret = err;
        }
    }

    /* read CP0_Cause */
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_CAUSE, &env->CP0_Cause);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_CAUSE (%d)\n", __func__, err);
        ret = err;
    }

    /* read CP0_Count */
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_COUNT, &env->CP0_Count);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_COUNT (%d)\n", __func__, err);
        ret = err;
    }

    return ret;
}

/*
 * Restore the state of the KVM timer when VM clock is restarted or state is
 * synced to KVM.
 */
static int kvm_mips_restore_count(CPUState *cs)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    CPUMIPSState *env = &cpu->env;
    uint64_t count_ctl;
    int err_dc, err, ret = 0;

    /* check the timer is frozen */
    err_dc = kvm_mips_get_one_reg64(cs, KVM_REG_MIPS_COUNT_CTL, &count_ctl);
    if (err_dc < 0) {
        DPRINTF("%s: Failed to get COUNT_CTL (%d)\n", __func__, err_dc);
        ret = err_dc;
    } else if (!(count_ctl & KVM_REG_MIPS_COUNT_CTL_DC)) {
        /* freeze timer (sets COUNT_RESUME for us) */
        count_ctl |= KVM_REG_MIPS_COUNT_CTL_DC;
        err = kvm_mips_put_one_reg64(cs, KVM_REG_MIPS_COUNT_CTL, &count_ctl);
        if (err < 0) {
            DPRINTF("%s: Failed to set COUNT_CTL.DC=1 (%d)\n", __func__, err);
            ret = err;
        }
    }

    /* load CP0_Cause */
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_CAUSE, &env->CP0_Cause);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_CAUSE (%d)\n", __func__, err);
        ret = err;
    }

    /* load CP0_Count */
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_COUNT, &env->CP0_Count);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_COUNT (%d)\n", __func__, err);
        ret = err;
    }

    /* resume KVM timer */
    if (err_dc >= 0) {
        count_ctl &= ~KVM_REG_MIPS_COUNT_CTL_DC;
        err = kvm_mips_put_one_reg64(cs, KVM_REG_MIPS_COUNT_CTL, &count_ctl);
        if (err < 0) {
            DPRINTF("%s: Failed to set COUNT_CTL.DC=0 (%d)\n", __func__, err);
            ret = err;
        }
    }

    return ret;
}

/*
 * Handle the VM clock being started or stopped
 */
static void kvm_mips_update_state(void *opaque, int running, RunState state)
{
    CPUState *cs = opaque;
    int ret;
    uint64_t count_resume;

    /*
     * If state is already dirty (synced to QEMU) then the KVM timer state is
     * already saved and can be restored when it is synced back to KVM.
     */
    if (!running) {
        if (!cs->kvm_vcpu_dirty) {
            ret = kvm_mips_save_count(cs);
            if (ret < 0) {
                fprintf(stderr, "Failed saving count\n");
            }
        }
    } else {
        /* Set clock restore time to now */
        count_resume = qemu_clock_get_ns(QEMU_CLOCK_REALTIME);
        ret = kvm_mips_put_one_reg64(cs, KVM_REG_MIPS_COUNT_RESUME,
                                     &count_resume);
        if (ret < 0) {
            fprintf(stderr, "Failed setting COUNT_RESUME\n");
            return;
        }

        if (!cs->kvm_vcpu_dirty) {
            ret = kvm_mips_restore_count(cs);
            if (ret < 0) {
                fprintf(stderr, "Failed restoring count\n");
            }
        }
    }
}

static int kvm_mips_put_cp0_registers(CPUState *cs, int level)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    CPUMIPSState *env = &cpu->env;
    int err, ret = 0;

    (void)level;

    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_INDEX, &env->CP0_Index);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_INDEX (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_ulreg(cs, KVM_REG_MIPS_CP0_CONTEXT,
                                 &env->CP0_Context);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_CONTEXT (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_ulreg(cs, KVM_REG_MIPS_CP0_USERLOCAL,
                                 &env->active_tc.CP0_UserLocal);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_USERLOCAL (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_PAGEMASK,
                               &env->CP0_PageMask);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_PAGEMASK (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_WIRED, &env->CP0_Wired);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_WIRED (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_HWRENA, &env->CP0_HWREna);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_HWRENA (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_ulreg(cs, KVM_REG_MIPS_CP0_BADVADDR,
                                 &env->CP0_BadVAddr);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_BADVADDR (%d)\n", __func__, err);
        ret = err;
    }

    /* If VM clock stopped then state will be restored when it is restarted */
    if (runstate_is_running()) {
        err = kvm_mips_restore_count(cs);
        if (err < 0) {
            ret = err;
        }
    }

    err = kvm_mips_put_one_ulreg(cs, KVM_REG_MIPS_CP0_ENTRYHI,
                                 &env->CP0_EntryHi);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_ENTRYHI (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_COMPARE,
                               &env->CP0_Compare);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_COMPARE (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_reg(cs, KVM_REG_MIPS_CP0_STATUS, &env->CP0_Status);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_STATUS (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_ulreg(cs, KVM_REG_MIPS_CP0_EPC, &env->CP0_EPC);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_EPC (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_put_one_ulreg(cs, KVM_REG_MIPS_CP0_ERROREPC,
                                 &env->CP0_ErrorEPC);
    if (err < 0) {
        DPRINTF("%s: Failed to put CP0_ERROREPC (%d)\n", __func__, err);
        ret = err;
    }

    return ret;
}

static int kvm_mips_get_cp0_registers(CPUState *cs)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    CPUMIPSState *env = &cpu->env;
    int err, ret = 0;

    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_INDEX, &env->CP0_Index);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_INDEX (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_ulreg(cs, KVM_REG_MIPS_CP0_CONTEXT,
                                 &env->CP0_Context);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_CONTEXT (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_ulreg(cs, KVM_REG_MIPS_CP0_USERLOCAL,
                                 &env->active_tc.CP0_UserLocal);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_USERLOCAL (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_PAGEMASK,
                               &env->CP0_PageMask);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_PAGEMASK (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_WIRED, &env->CP0_Wired);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_WIRED (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_HWRENA, &env->CP0_HWREna);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_HWRENA (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_ulreg(cs, KVM_REG_MIPS_CP0_BADVADDR,
                                 &env->CP0_BadVAddr);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_BADVADDR (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_ulreg(cs, KVM_REG_MIPS_CP0_ENTRYHI,
                                 &env->CP0_EntryHi);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_ENTRYHI (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_COMPARE,
                               &env->CP0_Compare);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_COMPARE (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_reg(cs, KVM_REG_MIPS_CP0_STATUS, &env->CP0_Status);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_STATUS (%d)\n", __func__, err);
        ret = err;
    }

    /* If VM clock stopped then state was already saved when it was stopped */
    if (runstate_is_running()) {
        err = kvm_mips_save_count(cs);
        if (err < 0) {
            ret = err;
        }
    }

    err = kvm_mips_get_one_ulreg(cs, KVM_REG_MIPS_CP0_EPC, &env->CP0_EPC);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_EPC (%d)\n", __func__, err);
        ret = err;
    }
    err = kvm_mips_get_one_ulreg(cs, KVM_REG_MIPS_CP0_ERROREPC,
                                 &env->CP0_ErrorEPC);
    if (err < 0) {
        DPRINTF("%s: Failed to get CP0_ERROREPC (%d)\n", __func__, err);
        ret = err;
    }

    return ret;
}

int kvm_arch_put_registers(CPUState *cs, int level)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    CPUMIPSState *env = &cpu->env;
    struct kvm_regs regs;
    int ret;
    int i;

    /* Set the registers based on QEMU's view of things */
    for (i = 0; i < 32; i++) {
        regs.gpr[i] = (int64_t)(target_long)env->active_tc.gpr[i];
    }

    regs.hi = (int64_t)(target_long)env->active_tc.HI[0];
    regs.lo = (int64_t)(target_long)env->active_tc.LO[0];
    regs.pc = (int64_t)(target_long)env->active_tc.PC;

    ret = kvm_vcpu_ioctl(cs, KVM_SET_REGS, &regs);

    if (ret < 0) {
        return ret;
    }

    ret = kvm_mips_put_cp0_registers(cs, level);
    if (ret < 0) {
        return ret;
    }

    return ret;
}

int kvm_arch_get_registers(CPUState *cs)
{
    MIPSCPU *cpu = MIPS_CPU(cs);
    CPUMIPSState *env = &cpu->env;
    int ret = 0;
    struct kvm_regs regs;
    int i;

    /* Get the current register set as KVM seems it */
    ret = kvm_vcpu_ioctl(cs, KVM_GET_REGS, &regs);

    if (ret < 0) {
        return ret;
    }

    for (i = 0; i < 32; i++) {
        env->active_tc.gpr[i] = regs.gpr[i];
    }

    env->active_tc.HI[0] = regs.hi;
    env->active_tc.LO[0] = regs.lo;
    env->active_tc.PC = regs.pc;

    kvm_mips_get_cp0_registers(cs);

    return ret;
}

int kvm_arch_fixup_msi_route(struct kvm_irq_routing_entry *route,
                             uint64_t address, uint32_t data)
{
    return 0;
}

int kvm_arch_msi_data_to_gsi(uint32_t data)
{
    abort();
}
p">[i]=0; return ret; } printk("ltpc: could not allocate mbox\n"); return -1; } static int do_read(struct net_device *dev, void *cbuf, int cbuflen, void *dbuf, int dbuflen) { int i = getmbox(); int ret; if(i) { qels[i].cbuf = cbuf; qels[i].cbuflen = cbuflen; qels[i].dbuf = dbuf; qels[i].dbuflen = dbuflen; qels[i].QWrite = 0; qels[i].mailbox = i; /* this should be initted rather */ enQ(&qels[i]); idle(dev); ret = mailbox[i]; mboxinuse[i]=0; return ret; } printk("ltpc: could not allocate mbox\n"); return -1; } /* end of idle handlers -- what should be seen is do_read, do_write */ static struct timer_list ltpc_timer; static netdev_tx_t ltpc_xmit(struct sk_buff *skb, struct net_device *dev); static int read_30 ( struct net_device *dev) { lt_command c; c.getflags.command = LT_GETFLAGS; return do_read(dev, &c, sizeof(c.getflags),&c,0); } static int set_30 (struct net_device *dev,int x) { lt_command c; c.setflags.command = LT_SETFLAGS; c.setflags.flags = x; return do_write(dev, &c, sizeof(c.setflags),&c,0); } /* LLAP to DDP translation */ static int sendup_buffer (struct net_device *dev) { /* on entry, command is in ltdmacbuf, data in ltdmabuf */ /* called from idle, non-reentrant */ int dnode, snode, llaptype, len; int sklen; struct sk_buff *skb; struct lt_rcvlap *ltc = (struct lt_rcvlap *) ltdmacbuf; if (ltc->command != LT_RCVLAP) { printk("unknown command 0x%02x from ltpc card\n",ltc->command); return -1; } dnode = ltc->dnode; snode = ltc->snode; llaptype = ltc->laptype; len = ltc->length; sklen = len; if (llaptype == 1) sklen += 8; /* correct for short ddp */ if(sklen > 800) { printk(KERN_INFO "%s: nonsense length in ltpc command 0x14: 0x%08x\n", dev->name,sklen); return -1; } if ( (llaptype==0) || (llaptype>2) ) { printk(KERN_INFO "%s: unknown LLAP type: %d\n",dev->name,llaptype); return -1; } skb = dev_alloc_skb(3+sklen); if (skb == NULL) { printk("%s: dropping packet due to memory squeeze.\n", dev->name); return -1; } skb->dev = dev; if (sklen > len) skb_reserve(skb,8); skb_put(skb,len+3); skb->protocol = htons(ETH_P_LOCALTALK); /* add LLAP header */ skb->data[0] = dnode; skb->data[1] = snode; skb->data[2] = llaptype; skb_reset_mac_header(skb); /* save pointer to llap header */ skb_pull(skb,3); /* copy ddp(s,e)hdr + contents */ skb_copy_to_linear_data(skb, ltdmabuf, len); skb_reset_transport_header(skb); dev->stats.rx_packets++; dev->stats.rx_bytes += skb->len; /* toss it onwards */ netif_rx(skb); return 0; } /* the handler for the board interrupt */ static irqreturn_t ltpc_interrupt(int irq, void *dev_id) { struct net_device *dev = dev_id; if (dev==NULL) { printk("ltpc_interrupt: unknown device.\n"); return IRQ_NONE; } inb_p(dev->base_addr+6); /* disable further interrupts from board */ idle(dev); /* handle whatever is coming in */ /* idle re-enables interrupts from board */ return IRQ_HANDLED; } /*** * * The ioctls that the driver responds to are: * * SIOCSIFADDR -- do probe using the passed node hint. * SIOCGIFADDR -- return net, node. * * some of this stuff should be done elsewhere. * ***/ static int ltpc_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd) { struct sockaddr_at *sa = (struct sockaddr_at *) &ifr->ifr_addr; /* we'll keep the localtalk node address in dev->pa_addr */ struct ltpc_private *ltpc_priv = netdev_priv(dev); struct atalk_addr *aa = &ltpc_priv->my_addr; struct lt_init c; int ltflags; if(debug & DEBUG_VERBOSE) printk("ltpc_ioctl called\n"); switch(cmd) { case SIOCSIFADDR: aa->s_net = sa->sat_addr.s_net; /* this does the probe and returns the node addr */ c.command = LT_INIT; c.hint = sa->sat_addr.s_node; aa->s_node = do_read(dev,&c,sizeof(c),&c,0); /* get all llap frames raw */ ltflags = read_30(dev); ltflags |= LT_FLAG_ALLLAP; set_30 (dev,ltflags); dev->broadcast[0] = 0xFF; dev->dev_addr[0] = aa->s_node; dev->addr_len=1; return 0; case SIOCGIFADDR: sa->sat_addr.s_net = aa->s_net; sa->sat_addr.s_node = aa->s_node; return 0; default: return -EINVAL; } } static void set_multicast_list(struct net_device *dev) { /* This needs to be present to keep netatalk happy. */ /* Actually netatalk needs fixing! */ } static int ltpc_poll_counter; static void ltpc_poll(unsigned long l) { struct net_device *dev = (struct net_device *) l; del_timer(&ltpc_timer); if(debug & DEBUG_VERBOSE) { if (!ltpc_poll_counter) { ltpc_poll_counter = 50; printk("ltpc poll is alive\n"); } ltpc_poll_counter--; } if (!dev) return; /* we've been downed */ /* poll 20 times per second */ idle(dev); ltpc_timer.expires = jiffies + HZ/20; add_timer(&ltpc_timer); } /* DDP to LLAP translation */ static netdev_tx_t ltpc_xmit(struct sk_buff *skb, struct net_device *dev) { /* in kernel 1.3.xx, on entry skb->data points to ddp header, * and skb->len is the length of the ddp data + ddp header */ int i; struct lt_sendlap cbuf; unsigned char *hdr; cbuf.command = LT_SENDLAP; cbuf.dnode = skb->data[0]; cbuf.laptype = skb->data[2]; skb_pull(skb,3); /* skip past LLAP header */ cbuf.length = skb->len; /* this is host order */ skb_reset_transport_header(skb); if(debug & DEBUG_UPPER) { printk("command "); for(i=0;i<6;i++) printk("%02x ",((unsigned char *)&cbuf)[i]); printk("\n"); } hdr = skb_transport_header(skb); do_write(dev, &cbuf, sizeof(cbuf), hdr, skb->len); if(debug & DEBUG_UPPER) { printk("sent %d ddp bytes\n",skb->len); for (i = 0; i < skb->len; i++) printk("%02x ", hdr[i]); printk("\n"); } dev->stats.tx_packets++; dev->stats.tx_bytes += skb->len; dev_kfree_skb(skb); return NETDEV_TX_OK; } /* initialization stuff */ static int __init ltpc_probe_dma(int base, int dma) { int want = (dma == 3) ? 2 : (dma == 1) ? 1 : 3; unsigned long timeout; unsigned long f; if (want & 1) { if (request_dma(1,"ltpc")) { want &= ~1; } else { f=claim_dma_lock(); disable_dma(1); clear_dma_ff(1); set_dma_mode(1,DMA_MODE_WRITE); set_dma_addr(1,virt_to_bus(ltdmabuf)); set_dma_count(1,sizeof(struct lt_mem)); enable_dma(1); release_dma_lock(f); } } if (want & 2) { if (request_dma(3,"ltpc")) { want &= ~2; } else { f=claim_dma_lock(); disable_dma(3); clear_dma_ff(3); set_dma_mode(3,DMA_MODE_WRITE); set_dma_addr(3,virt_to_bus(ltdmabuf)); set_dma_count(3,sizeof(struct lt_mem)); enable_dma(3); release_dma_lock(f); } } /* set up request */ /* FIXME -- do timings better! */ ltdmabuf[0] = LT_READMEM; ltdmabuf[1] = 1; /* mailbox */ ltdmabuf[2] = 0; ltdmabuf[3] = 0; /* address */ ltdmabuf[4] = 0; ltdmabuf[5] = 1; /* read 0x0100 bytes */ ltdmabuf[6] = 0; /* dunno if this is necessary */ inb_p(io+1); inb_p(io+0); timeout = jiffies+100*HZ/100; while(time_before(jiffies, timeout)) { if ( 0xfa == inb_p(io+6) ) break; } inb_p(io+3); inb_p(io+2); while(time_before(jiffies, timeout)) { if ( 0xfb == inb_p(io+6) ) break; } /* release the other dma channel (if we opened both of them) */ if ((want & 2) && (get_dma_residue(3)==sizeof(struct lt_mem))) { want &= ~2; free_dma(3); } if ((want & 1) && (get_dma_residue(1)==sizeof(struct lt_mem))) { want &= ~1; free_dma(1); } if (!want) return 0; return (want & 2) ? 3 : 1; } static const struct net_device_ops ltpc_netdev = { .ndo_start_xmit = ltpc_xmit, .ndo_do_ioctl = ltpc_ioctl, .ndo_set_rx_mode = set_multicast_list, }; struct net_device * __init ltpc_probe(void) { struct net_device *dev; int err = -ENOMEM; int x=0,y=0; int autoirq; unsigned long f; unsigned long timeout; dev = alloc_ltalkdev(sizeof(struct ltpc_private)); if (!dev) goto out; /* probe for the I/O port address */ if (io != 0x240 && request_region(0x220,8,"ltpc")) { x = inb_p(0x220+6); if ( (x!=0xff) && (x>=0xf0) ) { io = 0x220; goto got_port; } release_region(0x220,8); } if (io != 0x220 && request_region(0x240,8,"ltpc")) { y = inb_p(0x240+6); if ( (y!=0xff) && (y>=0xf0) ){ io = 0x240; goto got_port; } release_region(0x240,8); } /* give up in despair */ printk(KERN_ERR "LocalTalk card not found; 220 = %02x, 240 = %02x.\n", x,y); err = -ENODEV; goto out1; got_port: /* probe for the IRQ line */ if (irq < 2) { unsigned long irq_mask; irq_mask = probe_irq_on(); /* reset the interrupt line */ inb_p(io+7); inb_p(io+7); /* trigger an interrupt (I hope) */ inb_p(io+6); mdelay(2); autoirq = probe_irq_off(irq_mask); if (autoirq == 0) { printk(KERN_ERR "ltpc: probe at %#x failed to detect IRQ line.\n", io); } else { irq = autoirq; } } /* allocate a DMA buffer */ ltdmabuf = (unsigned char *) dma_mem_alloc(1000); if (!ltdmabuf) { printk(KERN_ERR "ltpc: mem alloc failed\n"); err = -ENOMEM; goto out2; } ltdmacbuf = &ltdmabuf[800]; if(debug & DEBUG_VERBOSE) { printk("ltdmabuf pointer %08lx\n",(unsigned long) ltdmabuf); } /* reset the card */ inb_p(io+1); inb_p(io+3); msleep(20); inb_p(io+0); inb_p(io+2); inb_p(io+7); /* clear reset */ inb_p(io+4); inb_p(io+5); inb_p(io+5); /* enable dma */ inb_p(io+6); /* tri-state interrupt line */ ssleep(1); /* now, figure out which dma channel we're using, unless it's already been specified */ /* well, 0 is a legal DMA channel, but the LTPC card doesn't use it... */ dma = ltpc_probe_dma(io, dma); if (!dma) { /* no dma channel */ printk(KERN_ERR "No DMA channel found on ltpc card.\n"); err = -ENODEV; goto out3; } /* print out friendly message */ if(irq) printk(KERN_INFO "Apple/Farallon LocalTalk-PC card at %03x, IR%d, DMA%d.\n",io,irq,dma); else printk(KERN_INFO "Apple/Farallon LocalTalk-PC card at %03x, DMA%d. Using polled mode.\n",io,dma); dev->netdev_ops = &ltpc_netdev; dev->base_addr = io; dev->irq = irq; dev->dma = dma; /* the card will want to send a result at this point */ /* (I think... leaving out this part makes the kernel crash, so I put it back in...) */ f=claim_dma_lock(); disable_dma(dma); clear_dma_ff(dma); set_dma_mode(dma,DMA_MODE_READ); set_dma_addr(dma,virt_to_bus(ltdmabuf)); set_dma_count(dma,0x100); enable_dma(dma); release_dma_lock(f); (void) inb_p(io+3); (void) inb_p(io+2); timeout = jiffies+100*HZ/100; while(time_before(jiffies, timeout)) { if( 0xf9 == inb_p(io+6)) break; schedule(); } if(debug & DEBUG_VERBOSE) { printk("setting up timer and irq\n"); } /* grab it and don't let go :-) */ if (irq && request_irq( irq, ltpc_interrupt, 0, "ltpc", dev) >= 0) { (void) inb_p(io+7); /* enable interrupts from board */ (void) inb_p(io+7); /* and reset irq line */ } else { if( irq ) printk(KERN_ERR "ltpc: IRQ already in use, using polled mode.\n"); dev->irq = 0; /* polled mode -- 20 times per second */ /* this is really, really slow... should it poll more often? */ init_timer(&ltpc_timer); ltpc_timer.function=ltpc_poll; ltpc_timer.data = (unsigned long) dev; ltpc_timer.expires = jiffies + HZ/20; add_timer(&ltpc_timer); } err = register_netdev(dev); if (err) goto out4; return NULL; out4: del_timer_sync(&ltpc_timer); if (dev->irq) free_irq(dev->irq, dev); out3: free_pages((unsigned long)ltdmabuf, get_order(1000)); out2: release_region(io, 8); out1: free_netdev(dev); out: return ERR_PTR(err); } #ifndef MODULE /* handles "ltpc=io,irq,dma" kernel command lines */ static int __init ltpc_setup(char *str) { int ints[5]; str = get_options(str, ARRAY_SIZE(ints), ints); if (ints[0] == 0) { if (str && !strncmp(str, "auto", 4)) { /* do nothing :-) */ } else { /* usage message */ printk (KERN_ERR "ltpc: usage: ltpc=auto|iobase[,irq[,dma]]\n"); return 0; } } else { io = ints[1]; if (ints[0] > 1) { irq = ints[2]; } if (ints[0] > 2) { dma = ints[3]; } /* ignore any other parameters */ } return 1; } __setup("ltpc=", ltpc_setup); #endif /* MODULE */ static struct net_device *dev_ltpc; #ifdef MODULE MODULE_LICENSE("GPL"); module_param(debug, int, 0); module_param(io, int, 0); module_param(irq, int, 0); module_param(dma, int, 0); static int __init ltpc_module_init(void) { if(io == 0) printk(KERN_NOTICE "ltpc: Autoprobing is not recommended for modules\n"); dev_ltpc = ltpc_probe(); return PTR_ERR_OR_ZERO(dev_ltpc); } module_init(ltpc_module_init); #endif static void __exit ltpc_cleanup(void) { if(debug & DEBUG_VERBOSE) printk("unregister_netdev\n"); unregister_netdev(dev_ltpc); ltpc_timer.data = 0; /* signal the poll routine that we're done */ del_timer_sync(&ltpc_timer); if(debug & DEBUG_VERBOSE) printk("freeing irq\n"); if (dev_ltpc->irq) free_irq(dev_ltpc->irq, dev_ltpc); if(debug & DEBUG_VERBOSE) printk("freeing dma\n"); if (dev_ltpc->dma) free_dma(dev_ltpc->dma); if(debug & DEBUG_VERBOSE) printk("freeing ioaddr\n"); if (dev_ltpc->base_addr) release_region(dev_ltpc->base_addr,8); free_netdev(dev_ltpc); if(debug & DEBUG_VERBOSE) printk("free_pages\n"); free_pages( (unsigned long) ltdmabuf, get_order(1000)); if(debug & DEBUG_VERBOSE) printk("returning from cleanup_module\n"); } module_exit(ltpc_cleanup);