sun4m.c 56.1 KB
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/*
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 * QEMU Sun4m & Sun4d & Sun4c System Emulator
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 *
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 * Copyright (c) 2003-2005 Fabrice Bellard
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 *
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 * Permission is hereby granted, free of charge, to any person obtaining a copy
 * of this software and associated documentation files (the "Software"), to deal
 * in the Software without restriction, including without limitation the rights
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
 * copies of the Software, and to permit persons to whom the Software is
 * furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
 * THE SOFTWARE.
 */
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#include "sysbus.h"
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#include "qemu-timer.h"
#include "sun4m.h"
#include "nvram.h"
#include "sparc32_dma.h"
#include "fdc.h"
#include "sysemu.h"
#include "net.h"
#include "boards.h"
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#include "firmware_abi.h"
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#include "esp.h"
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#include "pc.h"
#include "isa.h"
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#include "fw_cfg.h"
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#include "escc.h"
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#include "empty_slot.h"
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#include "qdev-addr.h"
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#include "loader.h"
#include "elf.h"
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//#define DEBUG_IRQ
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/*
 * Sun4m architecture was used in the following machines:
 *
 * SPARCserver 6xxMP/xx
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 * SPARCclassic (SPARCclassic Server)(SPARCstation LC) (4/15),
 * SPARCclassic X (4/10)
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 * SPARCstation LX/ZX (4/30)
 * SPARCstation Voyager
 * SPARCstation 10/xx, SPARCserver 10/xx
 * SPARCstation 5, SPARCserver 5
 * SPARCstation 20/xx, SPARCserver 20
 * SPARCstation 4
 *
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 * Sun4d architecture was used in the following machines:
 *
 * SPARCcenter 2000
 * SPARCserver 1000
 *
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 * Sun4c architecture was used in the following machines:
 * SPARCstation 1/1+, SPARCserver 1/1+
 * SPARCstation SLC
 * SPARCstation IPC
 * SPARCstation ELC
 * SPARCstation IPX
 *
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 * See for example: http://www.sunhelp.org/faq/sunref1.html
 */

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#ifdef DEBUG_IRQ
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#define DPRINTF(fmt, ...)                                       \
    do { printf("CPUIRQ: " fmt , ## __VA_ARGS__); } while (0)
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#else
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#define DPRINTF(fmt, ...)
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#endif

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#define KERNEL_LOAD_ADDR     0x00004000
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#define CMDLINE_ADDR         0x007ff000
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#define INITRD_LOAD_ADDR     0x00800000
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#define PROM_SIZE_MAX        (1024 * 1024)
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#define PROM_VADDR           0xffd00000
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#define PROM_FILENAME        "openbios-sparc32"
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#define CFG_ADDR             0xd00000510ULL
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#define FW_CFG_SUN4M_DEPTH   (FW_CFG_ARCH_LOCAL + 0x00)
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#define MAX_CPUS 16
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#define MAX_PILS 16
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#define MAX_VSIMMS 4
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#define ESCC_CLOCK 4915200

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struct sun4m_hwdef {
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    target_phys_addr_t iommu_base, iommu_pad_base, iommu_pad_len, slavio_base;
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    target_phys_addr_t intctl_base, counter_base, nvram_base, ms_kb_base;
    target_phys_addr_t serial_base, fd_base;
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    target_phys_addr_t afx_base, idreg_base, dma_base, esp_base, le_base;
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    target_phys_addr_t tcx_base, cs_base, apc_base, aux1_base, aux2_base;
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    target_phys_addr_t bpp_base, dbri_base, sx_base;
    struct {
        target_phys_addr_t reg_base, vram_base;
    } vsimm[MAX_VSIMMS];
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    target_phys_addr_t ecc_base;
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    uint32_t ecc_version;
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    uint8_t nvram_machine_id;
    uint16_t machine_id;
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    uint32_t iommu_version;
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    uint64_t max_mem;
    const char * const default_cpu_model;
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};

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#define MAX_IOUNITS 5

struct sun4d_hwdef {
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    target_phys_addr_t iounit_bases[MAX_IOUNITS], slavio_base;
    target_phys_addr_t counter_base, nvram_base, ms_kb_base;
    target_phys_addr_t serial_base;
    target_phys_addr_t espdma_base, esp_base;
    target_phys_addr_t ledma_base, le_base;
    target_phys_addr_t tcx_base;
    target_phys_addr_t sbi_base;
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    uint8_t nvram_machine_id;
    uint16_t machine_id;
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    uint32_t iounit_version;
    uint64_t max_mem;
    const char * const default_cpu_model;
};

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struct sun4c_hwdef {
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    target_phys_addr_t iommu_base, slavio_base;
    target_phys_addr_t intctl_base, counter_base, nvram_base, ms_kb_base;
    target_phys_addr_t serial_base, fd_base;
    target_phys_addr_t idreg_base, dma_base, esp_base, le_base;
    target_phys_addr_t tcx_base, aux1_base;
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    uint8_t nvram_machine_id;
    uint16_t machine_id;
    uint32_t iommu_version;
    uint64_t max_mem;
    const char * const default_cpu_model;
};

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int DMA_get_channel_mode (int nchan)
{
    return 0;
}
int DMA_read_memory (int nchan, void *buf, int pos, int size)
{
    return 0;
}
int DMA_write_memory (int nchan, void *buf, int pos, int size)
{
    return 0;
}
void DMA_hold_DREQ (int nchan) {}
void DMA_release_DREQ (int nchan) {}
void DMA_schedule(int nchan) {}
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void DMA_init(int high_page_enable, qemu_irq *cpu_request_exit)
{
}

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void DMA_register_channel (int nchan,
                           DMA_transfer_handler transfer_handler,
                           void *opaque)
{
}

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static int fw_cfg_boot_set(void *opaque, const char *boot_device)
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{
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    fw_cfg_add_i16(opaque, FW_CFG_BOOT_DEVICE, boot_device[0]);
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    return 0;
}

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static void nvram_init(M48t59State *nvram, uint8_t *macaddr,
                       const char *cmdline, const char *boot_devices,
                       ram_addr_t RAM_size, uint32_t kernel_size,
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                       int width, int height, int depth,
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                       int nvram_machine_id, const char *arch)
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{
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    unsigned int i;
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    uint32_t start, end;
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    uint8_t image[0x1ff0];
    struct OpenBIOS_nvpart_v1 *part_header;

    memset(image, '\0', sizeof(image));
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    start = 0;
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    // OpenBIOS nvram variables
    // Variable partition
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    part_header = (struct OpenBIOS_nvpart_v1 *)&image[start];
    part_header->signature = OPENBIOS_PART_SYSTEM;
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    pstrcpy(part_header->name, sizeof(part_header->name), "system");
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    end = start + sizeof(struct OpenBIOS_nvpart_v1);
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    for (i = 0; i < nb_prom_envs; i++)
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        end = OpenBIOS_set_var(image, end, prom_envs[i]);

    // End marker
    image[end++] = '\0';
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    end = start + ((end - start + 15) & ~15);
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    OpenBIOS_finish_partition(part_header, end - start);
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    // free partition
    start = end;
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    part_header = (struct OpenBIOS_nvpart_v1 *)&image[start];
    part_header->signature = OPENBIOS_PART_FREE;
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    pstrcpy(part_header->name, sizeof(part_header->name), "free");
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    end = 0x1fd0;
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    OpenBIOS_finish_partition(part_header, end - start);

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    Sun_init_header((struct Sun_nvram *)&image[0x1fd8], macaddr,
                    nvram_machine_id);
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    for (i = 0; i < sizeof(image); i++)
        m48t59_write(nvram, i, image[i]);
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}

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static DeviceState *slavio_intctl;
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void pic_info(Monitor *mon)
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{
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    if (slavio_intctl)
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        slavio_pic_info(mon, slavio_intctl);
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}

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void irq_info(Monitor *mon)
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{
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    if (slavio_intctl)
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        slavio_irq_info(mon, slavio_intctl);
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}

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void cpu_check_irqs(CPUState *env)
{
    if (env->pil_in && (env->interrupt_index == 0 ||
                        (env->interrupt_index & ~15) == TT_EXTINT)) {
        unsigned int i;

        for (i = 15; i > 0; i--) {
            if (env->pil_in & (1 << i)) {
                int old_interrupt = env->interrupt_index;

                env->interrupt_index = TT_EXTINT | i;
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                if (old_interrupt != env->interrupt_index) {
                    DPRINTF("Set CPU IRQ %d\n", i);
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                    cpu_interrupt(env, CPU_INTERRUPT_HARD);
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                }
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                break;
            }
        }
    } else if (!env->pil_in && (env->interrupt_index & ~15) == TT_EXTINT) {
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        DPRINTF("Reset CPU IRQ %d\n", env->interrupt_index & 15);
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        env->interrupt_index = 0;
        cpu_reset_interrupt(env, CPU_INTERRUPT_HARD);
    }
}

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static void cpu_set_irq(void *opaque, int irq, int level)
{
    CPUState *env = opaque;

    if (level) {
        DPRINTF("Raise CPU IRQ %d\n", irq);
        env->halted = 0;
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        env->pil_in |= 1 << irq;
        cpu_check_irqs(env);
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    } else {
        DPRINTF("Lower CPU IRQ %d\n", irq);
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        env->pil_in &= ~(1 << irq);
        cpu_check_irqs(env);
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    }
}

static void dummy_cpu_set_irq(void *opaque, int irq, int level)
{
}

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static void main_cpu_reset(void *opaque)
{
    CPUState *env = opaque;
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    cpu_reset(env);
    env->halted = 0;
}

static void secondary_cpu_reset(void *opaque)
{
    CPUState *env = opaque;

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    cpu_reset(env);
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    env->halted = 1;
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}

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static void cpu_halt_signal(void *opaque, int irq, int level)
{
    if (level && cpu_single_env)
        cpu_interrupt(cpu_single_env, CPU_INTERRUPT_HALT);
}

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static uint64_t translate_kernel_address(void *opaque, uint64_t addr)
{
    return addr - 0xf0000000ULL;
}

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static unsigned long sun4m_load_kernel(const char *kernel_filename,
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                                       const char *initrd_filename,
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                                       ram_addr_t RAM_size)
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{
    int linux_boot;
    unsigned int i;
    long initrd_size, kernel_size;
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    uint8_t *ptr;
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    linux_boot = (kernel_filename != NULL);

    kernel_size = 0;
    if (linux_boot) {
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        int bswap_needed;

#ifdef BSWAP_NEEDED
        bswap_needed = 1;
#else
        bswap_needed = 0;
#endif
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        kernel_size = load_elf(kernel_filename, translate_kernel_address, NULL,
                               NULL, NULL, NULL, 1, ELF_MACHINE, 0);
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        if (kernel_size < 0)
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            kernel_size = load_aout(kernel_filename, KERNEL_LOAD_ADDR,
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                                    RAM_size - KERNEL_LOAD_ADDR, bswap_needed,
                                    TARGET_PAGE_SIZE);
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        if (kernel_size < 0)
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            kernel_size = load_image_targphys(kernel_filename,
                                              KERNEL_LOAD_ADDR,
                                              RAM_size - KERNEL_LOAD_ADDR);
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        if (kernel_size < 0) {
            fprintf(stderr, "qemu: could not load kernel '%s'\n",
                    kernel_filename);
            exit(1);
        }

        /* load initrd */
        initrd_size = 0;
        if (initrd_filename) {
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            initrd_size = load_image_targphys(initrd_filename,
                                              INITRD_LOAD_ADDR,
                                              RAM_size - INITRD_LOAD_ADDR);
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            if (initrd_size < 0) {
                fprintf(stderr, "qemu: could not load initial ram disk '%s'\n",
                        initrd_filename);
                exit(1);
            }
        }
        if (initrd_size > 0) {
            for (i = 0; i < 64 * TARGET_PAGE_SIZE; i += TARGET_PAGE_SIZE) {
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                ptr = rom_ptr(KERNEL_LOAD_ADDR + i);
                if (ldl_p(ptr) == 0x48647253) { // HdrS
                    stl_p(ptr + 16, INITRD_LOAD_ADDR);
                    stl_p(ptr + 20, initrd_size);
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                    break;
                }
            }
        }
    }
    return kernel_size;
}

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static void *iommu_init(target_phys_addr_t addr, uint32_t version, qemu_irq irq)
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{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "iommu");
    qdev_prop_set_uint32(dev, "version", version);
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);
    sysbus_connect_irq(s, 0, irq);
    sysbus_mmio_map(s, 0, addr);

    return s;
}

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static void *sparc32_dma_init(target_phys_addr_t daddr, qemu_irq parent_irq,
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                              void *iommu, qemu_irq *dev_irq)
{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "sparc32_dma");
    qdev_prop_set_ptr(dev, "iommu_opaque", iommu);
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);
    sysbus_connect_irq(s, 0, parent_irq);
    *dev_irq = qdev_get_gpio_in(dev, 0);
    sysbus_mmio_map(s, 0, daddr);

    return s;
}

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static void lance_init(NICInfo *nd, target_phys_addr_t leaddr,
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                       void *dma_opaque, qemu_irq irq)
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{
    DeviceState *dev;
    SysBusDevice *s;
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    qemu_irq reset;
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    qemu_check_nic_model(&nd_table[0], "lance");

    dev = qdev_create(NULL, "lance");
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    qdev_set_nic_properties(dev, nd);
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    qdev_prop_set_ptr(dev, "dma", dma_opaque);
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);
    sysbus_mmio_map(s, 0, leaddr);
    sysbus_connect_irq(s, 0, irq);
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    reset = qdev_get_gpio_in(dev, 0);
    qdev_connect_gpio_out(dma_opaque, 0, reset);
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}

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static DeviceState *slavio_intctl_init(target_phys_addr_t addr,
                                       target_phys_addr_t addrg,
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                                       qemu_irq **parent_irq)
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{
    DeviceState *dev;
    SysBusDevice *s;
    unsigned int i, j;

    dev = qdev_create(NULL, "slavio_intctl");
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);

    for (i = 0; i < MAX_CPUS; i++) {
        for (j = 0; j < MAX_PILS; j++) {
            sysbus_connect_irq(s, i * MAX_PILS + j, parent_irq[i][j]);
        }
    }
    sysbus_mmio_map(s, 0, addrg);
    for (i = 0; i < MAX_CPUS; i++) {
        sysbus_mmio_map(s, i + 1, addr + i * TARGET_PAGE_SIZE);
    }

    return dev;
}

#define SYS_TIMER_OFFSET      0x10000ULL
#define CPU_TIMER_OFFSET(cpu) (0x1000ULL * cpu)

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static void slavio_timer_init_all(target_phys_addr_t addr, qemu_irq master_irq,
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                                  qemu_irq *cpu_irqs, unsigned int num_cpus)
{
    DeviceState *dev;
    SysBusDevice *s;
    unsigned int i;

    dev = qdev_create(NULL, "slavio_timer");
    qdev_prop_set_uint32(dev, "num_cpus", num_cpus);
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);
    sysbus_connect_irq(s, 0, master_irq);
    sysbus_mmio_map(s, 0, addr + SYS_TIMER_OFFSET);

    for (i = 0; i < MAX_CPUS; i++) {
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        sysbus_mmio_map(s, i + 1, addr + (target_phys_addr_t)CPU_TIMER_OFFSET(i));
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        sysbus_connect_irq(s, i + 1, cpu_irqs[i]);
    }
}

#define MISC_LEDS 0x01600000
#define MISC_CFG  0x01800000
#define MISC_DIAG 0x01a00000
#define MISC_MDM  0x01b00000
#define MISC_SYS  0x01f00000

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static void slavio_misc_init(target_phys_addr_t base,
                             target_phys_addr_t aux1_base,
                             target_phys_addr_t aux2_base, qemu_irq irq,
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                             qemu_irq fdc_tc)
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{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "slavio_misc");
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);
    if (base) {
        /* 8 bit registers */
        /* Slavio control */
        sysbus_mmio_map(s, 0, base + MISC_CFG);
        /* Diagnostics */
        sysbus_mmio_map(s, 1, base + MISC_DIAG);
        /* Modem control */
        sysbus_mmio_map(s, 2, base + MISC_MDM);
        /* 16 bit registers */
        /* ss600mp diag LEDs */
        sysbus_mmio_map(s, 3, base + MISC_LEDS);
        /* 32 bit registers */
        /* System control */
        sysbus_mmio_map(s, 4, base + MISC_SYS);
    }
    if (aux1_base) {
        /* AUX 1 (Misc System Functions) */
        sysbus_mmio_map(s, 5, aux1_base);
    }
    if (aux2_base) {
        /* AUX 2 (Software Powerdown Control) */
        sysbus_mmio_map(s, 6, aux2_base);
    }
    sysbus_connect_irq(s, 0, irq);
    sysbus_connect_irq(s, 1, fdc_tc);
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    qemu_system_powerdown = qdev_get_gpio_in(dev, 0);
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}

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static void ecc_init(target_phys_addr_t base, qemu_irq irq, uint32_t version)
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{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "eccmemctl");
    qdev_prop_set_uint32(dev, "version", version);
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);
    sysbus_connect_irq(s, 0, irq);
    sysbus_mmio_map(s, 0, base);
    if (version == 0) { // SS-600MP only
        sysbus_mmio_map(s, 1, base + 0x1000);
    }
}

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static void apc_init(target_phys_addr_t power_base, qemu_irq cpu_halt)
535 536 537 538 539
{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "apc");
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    qdev_init_nofail(dev);
541 542 543 544 545 546
    s = sysbus_from_qdev(dev);
    /* Power management (APC) XXX: not a Slavio device */
    sysbus_mmio_map(s, 0, power_base);
    sysbus_connect_irq(s, 0, cpu_halt);
}

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static void tcx_init(target_phys_addr_t addr, int vram_size, int width,
548 549 550 551 552 553 554 555 556 557 558
                     int height, int depth)
{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "SUNW,tcx");
    qdev_prop_set_taddr(dev, "addr", addr);
    qdev_prop_set_uint32(dev, "vram_size", vram_size);
    qdev_prop_set_uint16(dev, "width", width);
    qdev_prop_set_uint16(dev, "height", height);
    qdev_prop_set_uint16(dev, "depth", depth);
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    qdev_init_nofail(dev);
560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579
    s = sysbus_from_qdev(dev);
    /* 8-bit plane */
    sysbus_mmio_map(s, 0, addr + 0x00800000ULL);
    /* DAC */
    sysbus_mmio_map(s, 1, addr + 0x00200000ULL);
    /* TEC (dummy) */
    sysbus_mmio_map(s, 2, addr + 0x00700000ULL);
    /* THC 24 bit: NetBSD writes here even with 8-bit display: dummy */
    sysbus_mmio_map(s, 3, addr + 0x00301000ULL);
    if (depth == 24) {
        /* 24-bit plane */
        sysbus_mmio_map(s, 4, addr + 0x02000000ULL);
        /* Control plane */
        sysbus_mmio_map(s, 5, addr + 0x0a000000ULL);
    } else {
        /* THC 8 bit (dummy) */
        sysbus_mmio_map(s, 4, addr + 0x00300000ULL);
    }
}

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/* NCR89C100/MACIO Internal ID register */
static const uint8_t idreg_data[] = { 0xfe, 0x81, 0x01, 0x03 };

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static void idreg_init(target_phys_addr_t addr)
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{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "macio_idreg");
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);

    sysbus_mmio_map(s, 0, addr);
    cpu_physical_memory_write_rom(addr, idreg_data, sizeof(idreg_data));
}

596
static int idreg_init1(SysBusDevice *dev)
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{
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    ram_addr_t idreg_offset;
B
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600
    idreg_offset = qemu_ram_alloc(NULL, "sun4m.idreg", sizeof(idreg_data));
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    sysbus_init_mmio(dev, sizeof(idreg_data), idreg_offset | IO_MEM_ROM);
602
    return 0;
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}

static SysBusDeviceInfo idreg_info = {
    .init = idreg_init1,
    .qdev.name  = "macio_idreg",
    .qdev.size  = sizeof(SysBusDevice),
};

static void idreg_register_devices(void)
{
    sysbus_register_withprop(&idreg_info);
}

device_init(idreg_register_devices);

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/* SS-5 TCX AFX register */
static void afx_init(target_phys_addr_t addr)
{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "tcx_afx");
    qdev_init_nofail(dev);
    s = sysbus_from_qdev(dev);

    sysbus_mmio_map(s, 0, addr);
}

static int afx_init1(SysBusDevice *dev)
{
    ram_addr_t afx_offset;

635
    afx_offset = qemu_ram_alloc(NULL, "sun4m.afx", 4);
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    sysbus_init_mmio(dev, 4, afx_offset | IO_MEM_RAM);
    return 0;
}

static SysBusDeviceInfo afx_info = {
    .init = afx_init1,
    .qdev.name  = "tcx_afx",
    .qdev.size  = sizeof(SysBusDevice),
};

static void afx_register_devices(void)
{
    sysbus_register_withprop(&afx_info);
}

device_init(afx_register_devices);

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/* Boot PROM (OpenBIOS) */
654 655 656 657 658 659
static uint64_t translate_prom_address(void *opaque, uint64_t addr)
{
    target_phys_addr_t *base_addr = (target_phys_addr_t *)opaque;
    return addr + *base_addr - PROM_VADDR;
}

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static void prom_init(target_phys_addr_t addr, const char *bios_name)
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{
    DeviceState *dev;
    SysBusDevice *s;
    char *filename;
    int ret;

    dev = qdev_create(NULL, "openprom");
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    qdev_init_nofail(dev);
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    s = sysbus_from_qdev(dev);

    sysbus_mmio_map(s, 0, addr);

    /* load boot prom */
    if (bios_name == NULL) {
        bios_name = PROM_FILENAME;
    }
    filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, bios_name);
    if (filename) {
679 680
        ret = load_elf(filename, translate_prom_address, &addr, NULL,
                       NULL, NULL, 1, ELF_MACHINE, 0);
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        if (ret < 0 || ret > PROM_SIZE_MAX) {
            ret = load_image_targphys(filename, addr, PROM_SIZE_MAX);
        }
        qemu_free(filename);
    } else {
        ret = -1;
    }
    if (ret < 0 || ret > PROM_SIZE_MAX) {
        fprintf(stderr, "qemu: could not load prom '%s'\n", bios_name);
        exit(1);
    }
}

694
static int prom_init1(SysBusDevice *dev)
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{
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    ram_addr_t prom_offset;
B
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698
    prom_offset = qemu_ram_alloc(NULL, "sun4m.prom", PROM_SIZE_MAX);
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    sysbus_init_mmio(dev, PROM_SIZE_MAX, prom_offset | IO_MEM_ROM);
700
    return 0;
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}

static SysBusDeviceInfo prom_info = {
    .init = prom_init1,
    .qdev.name  = "openprom",
    .qdev.size  = sizeof(SysBusDevice),
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    .qdev.props = (Property[]) {
        {/* end of property list */}
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    }
};

static void prom_register_devices(void)
{
    sysbus_register_withprop(&prom_info);
}

device_init(prom_register_devices);

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typedef struct RamDevice
{
    SysBusDevice busdev;
722
    uint64_t size;
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} RamDevice;

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/* System RAM */
726
static int ram_init1(SysBusDevice *dev)
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{
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    ram_addr_t RAM_size, ram_offset;
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    RamDevice *d = FROM_SYSBUS(RamDevice, dev);
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    RAM_size = d->size;
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733
    ram_offset = qemu_ram_alloc(NULL, "sun4m.ram", RAM_size);
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    sysbus_init_mmio(dev, RAM_size, ram_offset);
735
    return 0;
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}

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static void ram_init(target_phys_addr_t addr, ram_addr_t RAM_size,
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                     uint64_t max_mem)
{
    DeviceState *dev;
    SysBusDevice *s;
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    RamDevice *d;
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    /* allocate RAM */
    if ((uint64_t)RAM_size > max_mem) {
        fprintf(stderr,
                "qemu: Too much memory for this machine: %d, maximum %d\n",
                (unsigned int)(RAM_size / (1024 * 1024)),
                (unsigned int)(max_mem / (1024 * 1024)));
        exit(1);
    }
    dev = qdev_create(NULL, "memory");
    s = sysbus_from_qdev(dev);

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    d = FROM_SYSBUS(RamDevice, s);
    d->size = RAM_size;
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    qdev_init_nofail(dev);
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    sysbus_mmio_map(s, 0, addr);
}

static SysBusDeviceInfo ram_info = {
    .init = ram_init1,
    .qdev.name  = "memory",
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    .qdev.size  = sizeof(RamDevice),
    .qdev.props = (Property[]) {
768 769
        DEFINE_PROP_UINT64("size", RamDevice, size, 0),
        DEFINE_PROP_END_OF_LIST(),
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    }
};

static void ram_register_devices(void)
{
    sysbus_register_withprop(&ram_info);
}

device_init(ram_register_devices);

780 781
static void cpu_devinit(const char *cpu_model, unsigned int id,
                        uint64_t prom_addr, qemu_irq **cpu_irqs)
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{
    CPUState *env;

    env = cpu_init(cpu_model);
    if (!env) {
        fprintf(stderr, "qemu: Unable to find Sparc CPU definition\n");
        exit(1);
    }

    cpu_sparc_set_id(env, id);
    if (id == 0) {
        qemu_register_reset(main_cpu_reset, env);
    } else {
        qemu_register_reset(secondary_cpu_reset, env);
        env->halted = 1;
    }
    *cpu_irqs = qemu_allocate_irqs(cpu_set_irq, env, MAX_PILS);
    env->prom_addr = prom_addr;
}

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static void sun4m_hw_init(const struct sun4m_hwdef *hwdef, ram_addr_t RAM_size,
803
                          const char *boot_device,
804
                          const char *kernel_filename,
805 806
                          const char *kernel_cmdline,
                          const char *initrd_filename, const char *cpu_model)
807
{
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    unsigned int i;
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    void *iommu, *espdma, *ledma, *nvram;
810
    qemu_irq *cpu_irqs[MAX_CPUS], slavio_irq[32], slavio_cpu_irq[MAX_CPUS],
811
        espdma_irq, ledma_irq;
812
    qemu_irq esp_reset;
813
    qemu_irq fdc_tc;
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    qemu_irq *cpu_halt;
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    unsigned long kernel_size;
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    DriveInfo *fd[MAX_FD];
817
    void *fw_cfg;
818
    unsigned int num_vsimms;
819

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    /* init CPUs */
821 822
    if (!cpu_model)
        cpu_model = hwdef->default_cpu_model;
823

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    for(i = 0; i < smp_cpus; i++) {
825
        cpu_devinit(cpu_model, i, hwdef->slavio_base, &cpu_irqs[i]);
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    }
827 828 829 830

    for (i = smp_cpus; i < MAX_CPUS; i++)
        cpu_irqs[i] = qemu_allocate_irqs(dummy_cpu_set_irq, NULL, MAX_PILS);

831 832

    /* set up devices */
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    ram_init(0, RAM_size, hwdef->max_mem);
834 835 836 837
    /* models without ECC don't trap when missing ram is accessed */
    if (!hwdef->ecc_base) {
        empty_slot_init(RAM_size, hwdef->max_mem - RAM_size);
    }
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    prom_init(hwdef->slavio_base, bios_name);

841 842
    slavio_intctl = slavio_intctl_init(hwdef->intctl_base,
                                       hwdef->intctl_base + 0x10000ULL,
B
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                                       cpu_irqs);
844 845

    for (i = 0; i < 32; i++) {
846
        slavio_irq[i] = qdev_get_gpio_in(slavio_intctl, i);
847 848
    }
    for (i = 0; i < MAX_CPUS; i++) {
849
        slavio_cpu_irq[i] = qdev_get_gpio_in(slavio_intctl, 32 + i);
850
    }
851

852
    if (hwdef->idreg_base) {
B
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        idreg_init(hwdef->idreg_base);
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    }

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    if (hwdef->afx_base) {
        afx_init(hwdef->afx_base);
    }

860
    iommu = iommu_init(hwdef->iommu_base, hwdef->iommu_version,
861
                       slavio_irq[30]);
862

863 864 865 866 867 868 869 870
    if (hwdef->iommu_pad_base) {
        /* On the real hardware (SS-5, LX) the MMU is not padded, but aliased.
           Software shouldn't use aliased addresses, neither should it crash
           when does. Using empty_slot instead of aliasing can help with
           debugging such accesses */
        empty_slot_init(hwdef->iommu_pad_base,hwdef->iommu_pad_len);
    }

871
    espdma = sparc32_dma_init(hwdef->dma_base, slavio_irq[18],
872
                              iommu, &espdma_irq);
873

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    ledma = sparc32_dma_init(hwdef->dma_base + 16ULL,
875
                             slavio_irq[16], iommu, &ledma_irq);
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    if (graphic_depth != 8 && graphic_depth != 24) {
        fprintf(stderr, "qemu: Unsupported depth: %d\n", graphic_depth);
        exit (1);
    }
881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896
    num_vsimms = 0;
    if (num_vsimms == 0) {
        tcx_init(hwdef->tcx_base, 0x00100000, graphic_width, graphic_height,
                 graphic_depth);
    }

    for (i = num_vsimms; i < MAX_VSIMMS; i++) {
        /* vsimm registers probed by OBP */
        if (hwdef->vsimm[i].reg_base) {
            empty_slot_init(hwdef->vsimm[i].reg_base, 0x2000);
        }
    }

    if (hwdef->sx_base) {
        empty_slot_init(hwdef->sx_base, 0x2000);
    }
897

898
    lance_init(&nd_table[0], hwdef->le_base, ledma, ledma_irq);
899

900
    nvram = m48t59_init(slavio_irq[0], hwdef->nvram_base, 0, 0x2000, 8);
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901

902
    slavio_timer_init_all(hwdef->counter_base, slavio_irq[19], slavio_cpu_irq, smp_cpus);
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904
    slavio_serial_ms_kbd_init(hwdef->ms_kb_base, slavio_irq[14],
905
                              display_type == DT_NOGRAPHIC, ESCC_CLOCK, 1);
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    // Slavio TTYA (base+4, Linux ttyS0) is the first Qemu serial device
    // Slavio TTYB (base+0, Linux ttyS1) is the second Qemu serial device
908
    escc_init(hwdef->serial_base, slavio_irq[15], slavio_irq[15],
A
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              serial_hds[0], serial_hds[1], ESCC_CLOCK, 1);
B
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911
    cpu_halt = qemu_allocate_irqs(cpu_halt_signal, NULL, 1);
912 913 914
    slavio_misc_init(hwdef->slavio_base, hwdef->aux1_base, hwdef->aux2_base,
                     slavio_irq[30], fdc_tc);

915 916 917
    if (hwdef->apc_base) {
        apc_init(hwdef->apc_base, cpu_halt[0]);
    }
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919
    if (hwdef->fd_base) {
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        /* there is zero or one floppy drive */
921
        memset(fd, 0, sizeof(fd));
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        fd[0] = drive_get(IF_FLOPPY, 0, 0);
923
        sun4m_fdctrl_init(slavio_irq[22], hwdef->fd_base, fd,
924
                          &fdc_tc);
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925 926 927 928 929 930 931
    }

    if (drive_get_max_bus(IF_SCSI) > 0) {
        fprintf(stderr, "qemu: too many SCSI bus\n");
        exit(1);
    }

932
    esp_reset = qdev_get_gpio_in(espdma, 0);
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    esp_init(hwdef->esp_base, 2,
             espdma_memory_read, espdma_memory_write,
935 936
             espdma, espdma_irq, &esp_reset);

937

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    if (hwdef->cs_base) {
        sysbus_create_simple("SUNW,CS4231", hwdef->cs_base,
940
                             slavio_irq[5]);
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    }
942

943 944 945 946 947 948 949 950 951 952 953 954 955
    if (hwdef->dbri_base) {
        /* ISDN chip with attached CS4215 audio codec */
        /* prom space */
        empty_slot_init(hwdef->dbri_base+0x1000, 0x30);
        /* reg space */
        empty_slot_init(hwdef->dbri_base+0x10000, 0x100);
    }

    if (hwdef->bpp_base) {
        /* parallel port */
        empty_slot_init(hwdef->bpp_base, 0x20);
    }

956 957
    kernel_size = sun4m_load_kernel(kernel_filename, initrd_filename,
                                    RAM_size);
958 959

    nvram_init(nvram, (uint8_t *)&nd_table[0].macaddr, kernel_cmdline,
960
               boot_device, RAM_size, kernel_size, graphic_width,
961 962
               graphic_height, graphic_depth, hwdef->nvram_machine_id,
               "Sun4m");
963

964
    if (hwdef->ecc_base)
965
        ecc_init(hwdef->ecc_base, slavio_irq[28],
966
                 hwdef->ecc_version);
967 968 969

    fw_cfg = fw_cfg_init(0, 0, CFG_ADDR, CFG_ADDR + 2);
    fw_cfg_add_i32(fw_cfg, FW_CFG_ID, 1);
970 971
    fw_cfg_add_i64(fw_cfg, FW_CFG_RAM_SIZE, (uint64_t)ram_size);
    fw_cfg_add_i16(fw_cfg, FW_CFG_MACHINE_ID, hwdef->machine_id);
972
    fw_cfg_add_i16(fw_cfg, FW_CFG_SUN4M_DEPTH, graphic_depth);
973 974 975 976
    fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_ADDR, KERNEL_LOAD_ADDR);
    fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_SIZE, kernel_size);
    if (kernel_cmdline) {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, CMDLINE_ADDR);
977
        pstrcpy_targphys("cmdline", CMDLINE_ADDR, TARGET_PAGE_SIZE, kernel_cmdline);
978 979 980
        fw_cfg_add_bytes(fw_cfg, FW_CFG_CMDLINE_DATA,
                         (uint8_t*)strdup(kernel_cmdline),
                         strlen(kernel_cmdline) + 1);
981 982 983 984 985 986 987
    } else {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, 0);
    }
    fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_ADDR, INITRD_LOAD_ADDR);
    fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_SIZE, 0); // not used
    fw_cfg_add_i16(fw_cfg, FW_CFG_BOOT_DEVICE, boot_device[0]);
    qemu_register_boot_set(fw_cfg_boot_set, fw_cfg);
988 989
}

990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004
enum {
    ss2_id = 0,
    ss5_id = 32,
    vger_id,
    lx_id,
    ss4_id,
    scls_id,
    sbook_id,
    ss10_id = 64,
    ss20_id,
    ss600mp_id,
    ss1000_id = 96,
    ss2000_id,
};

1005
static const struct sun4m_hwdef sun4m_hwdefs[] = {
1006 1007 1008
    /* SS-5 */
    {
        .iommu_base   = 0x10000000,
1009 1010
        .iommu_pad_base = 0x10004000,
        .iommu_pad_len  = 0x0fffb000,
1011 1012
        .tcx_base     = 0x50000000,
        .cs_base      = 0x6c000000,
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        .slavio_base  = 0x70000000,
1014 1015 1016 1017 1018 1019
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
B
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        .idreg_base   = 0x78000000,
1021 1022 1023
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
1024
        .apc_base     = 0x6a000000,
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        .afx_base     = 0x6e000000,
1026 1027
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1028 1029
        .nvram_machine_id = 0x80,
        .machine_id = ss5_id,
1030
        .iommu_version = 0x05000000,
1031 1032
        .max_mem = 0x10000000,
        .default_cpu_model = "Fujitsu MB86904",
B
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    },
    /* SS-10 */
    {
1036 1037 1038 1039 1040 1041 1042 1043 1044
        .iommu_base   = 0xfe0000000ULL,
        .tcx_base     = 0xe20000000ULL,
        .slavio_base  = 0xff0000000ULL,
        .ms_kb_base   = 0xff1000000ULL,
        .serial_base  = 0xff1100000ULL,
        .nvram_base   = 0xff1200000ULL,
        .fd_base      = 0xff1700000ULL,
        .counter_base = 0xff1300000ULL,
        .intctl_base  = 0xff1400000ULL,
B
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        .idreg_base   = 0xef0000000ULL,
1046 1047 1048
        .dma_base     = 0xef0400000ULL,
        .esp_base     = 0xef0800000ULL,
        .le_base      = 0xef0c00000ULL,
1049
        .apc_base     = 0xefa000000ULL, // XXX should not exist
1050 1051
        .aux1_base    = 0xff1800000ULL,
        .aux2_base    = 0xff1a01000ULL,
1052 1053
        .ecc_base     = 0xf00000000ULL,
        .ecc_version  = 0x10000000, // version 0, implementation 1
1054 1055
        .nvram_machine_id = 0x72,
        .machine_id = ss10_id,
1056
        .iommu_version = 0x03000000,
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        .max_mem = 0xf00000000ULL,
1058
        .default_cpu_model = "TI SuperSparc II",
1059
    },
1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072
    /* SS-600MP */
    {
        .iommu_base   = 0xfe0000000ULL,
        .tcx_base     = 0xe20000000ULL,
        .slavio_base  = 0xff0000000ULL,
        .ms_kb_base   = 0xff1000000ULL,
        .serial_base  = 0xff1100000ULL,
        .nvram_base   = 0xff1200000ULL,
        .counter_base = 0xff1300000ULL,
        .intctl_base  = 0xff1400000ULL,
        .dma_base     = 0xef0081000ULL,
        .esp_base     = 0xef0080000ULL,
        .le_base      = 0xef0060000ULL,
1073
        .apc_base     = 0xefa000000ULL, // XXX should not exist
1074 1075
        .aux1_base    = 0xff1800000ULL,
        .aux2_base    = 0xff1a01000ULL, // XXX should not exist
1076 1077
        .ecc_base     = 0xf00000000ULL,
        .ecc_version  = 0x00000000, // version 0, implementation 0
1078 1079
        .nvram_machine_id = 0x71,
        .machine_id = ss600mp_id,
1080
        .iommu_version = 0x01000000,
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        .max_mem = 0xf00000000ULL,
1082
        .default_cpu_model = "TI SuperSparc II",
1083
    },
1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094
    /* SS-20 */
    {
        .iommu_base   = 0xfe0000000ULL,
        .tcx_base     = 0xe20000000ULL,
        .slavio_base  = 0xff0000000ULL,
        .ms_kb_base   = 0xff1000000ULL,
        .serial_base  = 0xff1100000ULL,
        .nvram_base   = 0xff1200000ULL,
        .fd_base      = 0xff1700000ULL,
        .counter_base = 0xff1300000ULL,
        .intctl_base  = 0xff1400000ULL,
B
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        .idreg_base   = 0xef0000000ULL,
1096 1097 1098
        .dma_base     = 0xef0400000ULL,
        .esp_base     = 0xef0800000ULL,
        .le_base      = 0xef0c00000ULL,
1099
        .bpp_base     = 0xef4800000ULL,
1100
        .apc_base     = 0xefa000000ULL, // XXX should not exist
B
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        .aux1_base    = 0xff1800000ULL,
        .aux2_base    = 0xff1a01000ULL,
1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117
        .dbri_base    = 0xee0000000ULL,
        .sx_base      = 0xf80000000ULL,
        .vsimm        = {
            {
                .reg_base  = 0x9c000000ULL,
                .vram_base = 0xfc000000ULL
            }, {
                .reg_base  = 0x90000000ULL,
                .vram_base = 0xf0000000ULL
            }, {
                .reg_base  = 0x94000000ULL
            }, {
                .reg_base  = 0x98000000ULL
            }
        },
1118 1119
        .ecc_base     = 0xf00000000ULL,
        .ecc_version  = 0x20000000, // version 0, implementation 2
1120 1121
        .nvram_machine_id = 0x72,
        .machine_id = ss20_id,
1122
        .iommu_version = 0x13000000,
B
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        .max_mem = 0xf00000000ULL,
1124 1125
        .default_cpu_model = "TI SuperSparc II",
    },
B
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    /* Voyager */
    {
        .iommu_base   = 0x10000000,
        .tcx_base     = 0x50000000,
        .slavio_base  = 0x70000000,
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
        .idreg_base   = 0x78000000,
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
        .apc_base     = 0x71300000, // pmc
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1144 1145
        .nvram_machine_id = 0x80,
        .machine_id = vger_id,
B
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        .iommu_version = 0x05000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "Fujitsu MB86904",
    },
    /* LX */
    {
        .iommu_base   = 0x10000000,
1153 1154
        .iommu_pad_base = 0x10004000,
        .iommu_pad_len  = 0x0fffb000,
B
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        .tcx_base     = 0x50000000,
        .slavio_base  = 0x70000000,
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
        .idreg_base   = 0x78000000,
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1169 1170
        .nvram_machine_id = 0x80,
        .machine_id = lx_id,
B
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        .iommu_version = 0x04000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "TI MicroSparc I",
    },
    /* SS-4 */
    {
        .iommu_base   = 0x10000000,
        .tcx_base     = 0x50000000,
        .cs_base      = 0x6c000000,
        .slavio_base  = 0x70000000,
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
        .idreg_base   = 0x78000000,
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
        .apc_base     = 0x6a000000,
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1194 1195
        .nvram_machine_id = 0x80,
        .machine_id = ss4_id,
B
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1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217
        .iommu_version = 0x05000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "Fujitsu MB86904",
    },
    /* SPARCClassic */
    {
        .iommu_base   = 0x10000000,
        .tcx_base     = 0x50000000,
        .slavio_base  = 0x70000000,
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
        .idreg_base   = 0x78000000,
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
        .apc_base     = 0x6a000000,
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1218 1219
        .nvram_machine_id = 0x80,
        .machine_id = scls_id,
B
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        .iommu_version = 0x05000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "TI MicroSparc I",
    },
    /* SPARCbook */
    {
        .iommu_base   = 0x10000000,
        .tcx_base     = 0x50000000, // XXX
        .slavio_base  = 0x70000000,
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
        .idreg_base   = 0x78000000,
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
        .apc_base     = 0x6a000000,
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1242 1243
        .nvram_machine_id = 0x80,
        .machine_id = sbook_id,
B
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        .iommu_version = 0x05000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "TI MicroSparc I",
    },
1248 1249 1250
};

/* SPARCstation 5 hardware initialisation */
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static void ss5_init(ram_addr_t RAM_size,
1252
                     const char *boot_device,
1253 1254
                     const char *kernel_filename, const char *kernel_cmdline,
                     const char *initrd_filename, const char *cpu_model)
1255
{
1256
    sun4m_hw_init(&sun4m_hwdefs[0], RAM_size, boot_device, kernel_filename,
1257
                  kernel_cmdline, initrd_filename, cpu_model);
1258
}
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B
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/* SPARCstation 10 hardware initialisation */
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static void ss10_init(ram_addr_t RAM_size,
1262
                      const char *boot_device,
1263 1264
                      const char *kernel_filename, const char *kernel_cmdline,
                      const char *initrd_filename, const char *cpu_model)
B
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{
1266
    sun4m_hw_init(&sun4m_hwdefs[1], RAM_size, boot_device, kernel_filename,
1267
                  kernel_cmdline, initrd_filename, cpu_model);
B
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}

1270
/* SPARCserver 600MP hardware initialisation */
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static void ss600mp_init(ram_addr_t RAM_size,
1272
                         const char *boot_device,
B
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                         const char *kernel_filename,
                         const char *kernel_cmdline,
1275 1276
                         const char *initrd_filename, const char *cpu_model)
{
1277
    sun4m_hw_init(&sun4m_hwdefs[2], RAM_size, boot_device, kernel_filename,
1278
                  kernel_cmdline, initrd_filename, cpu_model);
1279 1280
}

1281
/* SPARCstation 20 hardware initialisation */
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static void ss20_init(ram_addr_t RAM_size,
1283
                      const char *boot_device,
1284 1285 1286
                      const char *kernel_filename, const char *kernel_cmdline,
                      const char *initrd_filename, const char *cpu_model)
{
1287
    sun4m_hw_init(&sun4m_hwdefs[3], RAM_size, boot_device, kernel_filename,
B
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                  kernel_cmdline, initrd_filename, cpu_model);
}

B
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/* SPARCstation Voyager hardware initialisation */
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static void vger_init(ram_addr_t RAM_size,
1293
                      const char *boot_device,
B
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                      const char *kernel_filename, const char *kernel_cmdline,
                      const char *initrd_filename, const char *cpu_model)
{
1297
    sun4m_hw_init(&sun4m_hwdefs[4], RAM_size, boot_device, kernel_filename,
B
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                  kernel_cmdline, initrd_filename, cpu_model);
}

/* SPARCstation LX hardware initialisation */
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static void ss_lx_init(ram_addr_t RAM_size,
1303
                       const char *boot_device,
B
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                       const char *kernel_filename, const char *kernel_cmdline,
                       const char *initrd_filename, const char *cpu_model)
{
1307
    sun4m_hw_init(&sun4m_hwdefs[5], RAM_size, boot_device, kernel_filename,
B
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                  kernel_cmdline, initrd_filename, cpu_model);
}

/* SPARCstation 4 hardware initialisation */
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static void ss4_init(ram_addr_t RAM_size,
1313
                     const char *boot_device,
B
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                     const char *kernel_filename, const char *kernel_cmdline,
                     const char *initrd_filename, const char *cpu_model)
{
1317
    sun4m_hw_init(&sun4m_hwdefs[6], RAM_size, boot_device, kernel_filename,
B
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                  kernel_cmdline, initrd_filename, cpu_model);
}

/* SPARCClassic hardware initialisation */
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static void scls_init(ram_addr_t RAM_size,
1323
                      const char *boot_device,
B
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                      const char *kernel_filename, const char *kernel_cmdline,
                      const char *initrd_filename, const char *cpu_model)
{
1327
    sun4m_hw_init(&sun4m_hwdefs[7], RAM_size, boot_device, kernel_filename,
B
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                  kernel_cmdline, initrd_filename, cpu_model);
}

/* SPARCbook hardware initialisation */
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static void sbook_init(ram_addr_t RAM_size,
1333
                       const char *boot_device,
B
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                       const char *kernel_filename, const char *kernel_cmdline,
                       const char *initrd_filename, const char *cpu_model)
{
1337
    sun4m_hw_init(&sun4m_hwdefs[8], RAM_size, boot_device, kernel_filename,
B
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                  kernel_cmdline, initrd_filename, cpu_model);
}

1341
static QEMUMachine ss5_machine = {
B
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    .name = "SS-5",
    .desc = "Sun4m platform, SPARCstation 5",
    .init = ss5_init,
1345
    .use_scsi = 1,
1346
    .is_default = 1,
B
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};
B
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1349
static QEMUMachine ss10_machine = {
B
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    .name = "SS-10",
    .desc = "Sun4m platform, SPARCstation 10",
    .init = ss10_init,
1353
    .use_scsi = 1,
B
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    .max_cpus = 4,
B
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};
1356

1357
static QEMUMachine ss600mp_machine = {
B
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    .name = "SS-600MP",
    .desc = "Sun4m platform, SPARCserver 600MP",
    .init = ss600mp_init,
1361
    .use_scsi = 1,
B
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    .max_cpus = 4,
1363
};
1364

1365
static QEMUMachine ss20_machine = {
B
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    .name = "SS-20",
    .desc = "Sun4m platform, SPARCstation 20",
    .init = ss20_init,
1369
    .use_scsi = 1,
B
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    .max_cpus = 4,
1371 1372
};

1373
static QEMUMachine voyager_machine = {
B
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    .name = "Voyager",
    .desc = "Sun4m platform, SPARCstation Voyager",
    .init = vger_init,
1377
    .use_scsi = 1,
B
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};

1380
static QEMUMachine ss_lx_machine = {
B
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    .name = "LX",
    .desc = "Sun4m platform, SPARCstation LX",
    .init = ss_lx_init,
1384
    .use_scsi = 1,
B
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};

1387
static QEMUMachine ss4_machine = {
B
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    .name = "SS-4",
    .desc = "Sun4m platform, SPARCstation 4",
    .init = ss4_init,
1391
    .use_scsi = 1,
B
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};

1394
static QEMUMachine scls_machine = {
B
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    .name = "SPARCClassic",
    .desc = "Sun4m platform, SPARCClassic",
    .init = scls_init,
1398
    .use_scsi = 1,
B
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};

1401
static QEMUMachine sbook_machine = {
B
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    .name = "SPARCbook",
    .desc = "Sun4m platform, SPARCbook",
    .init = sbook_init,
1405
    .use_scsi = 1,
B
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};

1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428
static const struct sun4d_hwdef sun4d_hwdefs[] = {
    /* SS-1000 */
    {
        .iounit_bases   = {
            0xfe0200000ULL,
            0xfe1200000ULL,
            0xfe2200000ULL,
            0xfe3200000ULL,
            -1,
        },
        .tcx_base     = 0x820000000ULL,
        .slavio_base  = 0xf00000000ULL,
        .ms_kb_base   = 0xf00240000ULL,
        .serial_base  = 0xf00200000ULL,
        .nvram_base   = 0xf00280000ULL,
        .counter_base = 0xf00300000ULL,
        .espdma_base  = 0x800081000ULL,
        .esp_base     = 0x800080000ULL,
        .ledma_base   = 0x800040000ULL,
        .le_base      = 0x800060000ULL,
        .sbi_base     = 0xf02800000ULL,
1429 1430
        .nvram_machine_id = 0x80,
        .machine_id = ss1000_id,
1431
        .iounit_version = 0x03000000,
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        .max_mem = 0xf00000000ULL,
1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454
        .default_cpu_model = "TI SuperSparc II",
    },
    /* SS-2000 */
    {
        .iounit_bases   = {
            0xfe0200000ULL,
            0xfe1200000ULL,
            0xfe2200000ULL,
            0xfe3200000ULL,
            0xfe4200000ULL,
        },
        .tcx_base     = 0x820000000ULL,
        .slavio_base  = 0xf00000000ULL,
        .ms_kb_base   = 0xf00240000ULL,
        .serial_base  = 0xf00200000ULL,
        .nvram_base   = 0xf00280000ULL,
        .counter_base = 0xf00300000ULL,
        .espdma_base  = 0x800081000ULL,
        .esp_base     = 0x800080000ULL,
        .ledma_base   = 0x800040000ULL,
        .le_base      = 0x800060000ULL,
        .sbi_base     = 0xf02800000ULL,
1455 1456
        .nvram_machine_id = 0x80,
        .machine_id = ss2000_id,
1457
        .iounit_version = 0x03000000,
B
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        .max_mem = 0xf00000000ULL,
1459 1460 1461 1462
        .default_cpu_model = "TI SuperSparc II",
    },
};

A
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static DeviceState *sbi_init(target_phys_addr_t addr, qemu_irq **parent_irq)
1464 1465 1466 1467 1468 1469
{
    DeviceState *dev;
    SysBusDevice *s;
    unsigned int i;

    dev = qdev_create(NULL, "sbi");
M
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    qdev_init_nofail(dev);
1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482

    s = sysbus_from_qdev(dev);

    for (i = 0; i < MAX_CPUS; i++) {
        sysbus_connect_irq(s, i, *parent_irq[i]);
    }

    sysbus_mmio_map(s, 0, addr);

    return dev;
}

A
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static void sun4d_hw_init(const struct sun4d_hwdef *hwdef, ram_addr_t RAM_size,
1484
                          const char *boot_device,
1485
                          const char *kernel_filename,
1486 1487 1488 1489
                          const char *kernel_cmdline,
                          const char *initrd_filename, const char *cpu_model)
{
    unsigned int i;
B
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    void *iounits[MAX_IOUNITS], *espdma, *ledma, *nvram;
    qemu_irq *cpu_irqs[MAX_CPUS], sbi_irq[32], sbi_cpu_irq[MAX_CPUS],
1492
        espdma_irq, ledma_irq;
1493
    qemu_irq esp_reset;
B
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    unsigned long kernel_size;
1495
    void *fw_cfg;
B
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1496
    DeviceState *dev;
1497 1498 1499 1500 1501

    /* init CPUs */
    if (!cpu_model)
        cpu_model = hwdef->default_cpu_model;

B
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1502
    for(i = 0; i < smp_cpus; i++) {
1503
        cpu_devinit(cpu_model, i, hwdef->slavio_base, &cpu_irqs[i]);
1504 1505 1506 1507 1508 1509
    }

    for (i = smp_cpus; i < MAX_CPUS; i++)
        cpu_irqs[i] = qemu_allocate_irqs(dummy_cpu_set_irq, NULL, MAX_PILS);

    /* set up devices */
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1510 1511
    ram_init(0, RAM_size, hwdef->max_mem);

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1512 1513
    prom_init(hwdef->slavio_base, bios_name);

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1514 1515 1516 1517 1518 1519 1520 1521
    dev = sbi_init(hwdef->sbi_base, cpu_irqs);

    for (i = 0; i < 32; i++) {
        sbi_irq[i] = qdev_get_gpio_in(dev, i);
    }
    for (i = 0; i < MAX_CPUS; i++) {
        sbi_cpu_irq[i] = qdev_get_gpio_in(dev, 32 + i);
    }
1522 1523

    for (i = 0; i < MAX_IOUNITS; i++)
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Anthony Liguori 已提交
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        if (hwdef->iounit_bases[i] != (target_phys_addr_t)-1)
1525 1526
            iounits[i] = iommu_init(hwdef->iounit_bases[i],
                                    hwdef->iounit_version,
1527
                                    sbi_irq[0]);
1528

1529
    espdma = sparc32_dma_init(hwdef->espdma_base, sbi_irq[3],
1530
                              iounits[0], &espdma_irq);
1531

1532
    ledma = sparc32_dma_init(hwdef->ledma_base, sbi_irq[4],
1533
                             iounits[0], &ledma_irq);
1534 1535 1536 1537 1538

    if (graphic_depth != 8 && graphic_depth != 24) {
        fprintf(stderr, "qemu: Unsupported depth: %d\n", graphic_depth);
        exit (1);
    }
1539
    tcx_init(hwdef->tcx_base, 0x00100000, graphic_width, graphic_height,
1540
             graphic_depth);
1541

1542
    lance_init(&nd_table[0], hwdef->le_base, ledma, ledma_irq);
1543

1544
    nvram = m48t59_init(sbi_irq[0], hwdef->nvram_base, 0, 0x2000, 8);
1545

1546
    slavio_timer_init_all(hwdef->counter_base, sbi_irq[10], sbi_cpu_irq, smp_cpus);
1547

1548
    slavio_serial_ms_kbd_init(hwdef->ms_kb_base, sbi_irq[12],
1549
                              display_type == DT_NOGRAPHIC, ESCC_CLOCK, 1);
1550 1551
    // Slavio TTYA (base+4, Linux ttyS0) is the first Qemu serial device
    // Slavio TTYB (base+0, Linux ttyS1) is the second Qemu serial device
1552
    escc_init(hwdef->serial_base, sbi_irq[12], sbi_irq[12],
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              serial_hds[0], serial_hds[1], ESCC_CLOCK, 1);
1554 1555 1556 1557 1558 1559

    if (drive_get_max_bus(IF_SCSI) > 0) {
        fprintf(stderr, "qemu: too many SCSI bus\n");
        exit(1);
    }

1560
    esp_reset = qdev_get_gpio_in(espdma, 0);
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1561 1562
    esp_init(hwdef->esp_base, 2,
             espdma_memory_read, espdma_memory_write,
1563
             espdma, espdma_irq, &esp_reset);
1564

1565 1566
    kernel_size = sun4m_load_kernel(kernel_filename, initrd_filename,
                                    RAM_size);
1567 1568 1569

    nvram_init(nvram, (uint8_t *)&nd_table[0].macaddr, kernel_cmdline,
               boot_device, RAM_size, kernel_size, graphic_width,
1570 1571
               graphic_height, graphic_depth, hwdef->nvram_machine_id,
               "Sun4d");
1572 1573 1574

    fw_cfg = fw_cfg_init(0, 0, CFG_ADDR, CFG_ADDR + 2);
    fw_cfg_add_i32(fw_cfg, FW_CFG_ID, 1);
1575 1576
    fw_cfg_add_i64(fw_cfg, FW_CFG_RAM_SIZE, (uint64_t)ram_size);
    fw_cfg_add_i16(fw_cfg, FW_CFG_MACHINE_ID, hwdef->machine_id);
1577 1578 1579 1580 1581
    fw_cfg_add_i16(fw_cfg, FW_CFG_SUN4M_DEPTH, graphic_depth);
    fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_ADDR, KERNEL_LOAD_ADDR);
    fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_SIZE, kernel_size);
    if (kernel_cmdline) {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, CMDLINE_ADDR);
1582
        pstrcpy_targphys("cmdline", CMDLINE_ADDR, TARGET_PAGE_SIZE, kernel_cmdline);
1583 1584 1585
        fw_cfg_add_bytes(fw_cfg, FW_CFG_CMDLINE_DATA,
                         (uint8_t*)strdup(kernel_cmdline),
                         strlen(kernel_cmdline) + 1);
1586 1587 1588 1589 1590 1591 1592
    } else {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, 0);
    }
    fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_ADDR, INITRD_LOAD_ADDR);
    fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_SIZE, 0); // not used
    fw_cfg_add_i16(fw_cfg, FW_CFG_BOOT_DEVICE, boot_device[0]);
    qemu_register_boot_set(fw_cfg_boot_set, fw_cfg);
1593 1594 1595
}

/* SPARCserver 1000 hardware initialisation */
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1596
static void ss1000_init(ram_addr_t RAM_size,
1597
                        const char *boot_device,
1598 1599 1600
                        const char *kernel_filename, const char *kernel_cmdline,
                        const char *initrd_filename, const char *cpu_model)
{
1601
    sun4d_hw_init(&sun4d_hwdefs[0], RAM_size, boot_device, kernel_filename,
1602 1603 1604 1605
                  kernel_cmdline, initrd_filename, cpu_model);
}

/* SPARCcenter 2000 hardware initialisation */
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Anthony Liguori 已提交
1606
static void ss2000_init(ram_addr_t RAM_size,
1607
                        const char *boot_device,
1608 1609 1610
                        const char *kernel_filename, const char *kernel_cmdline,
                        const char *initrd_filename, const char *cpu_model)
{
1611
    sun4d_hw_init(&sun4d_hwdefs[1], RAM_size, boot_device, kernel_filename,
1612 1613 1614
                  kernel_cmdline, initrd_filename, cpu_model);
}

1615
static QEMUMachine ss1000_machine = {
B
blueswir1 已提交
1616 1617 1618
    .name = "SS-1000",
    .desc = "Sun4d platform, SPARCserver 1000",
    .init = ss1000_init,
1619
    .use_scsi = 1,
B
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1620
    .max_cpus = 8,
1621 1622
};

1623
static QEMUMachine ss2000_machine = {
B
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1624 1625 1626
    .name = "SS-2000",
    .desc = "Sun4d platform, SPARCcenter 2000",
    .init = ss2000_init,
1627
    .use_scsi = 1,
B
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1628
    .max_cpus = 20,
1629
};
1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653

static const struct sun4c_hwdef sun4c_hwdefs[] = {
    /* SS-2 */
    {
        .iommu_base   = 0xf8000000,
        .tcx_base     = 0xfe000000,
        .slavio_base  = 0xf6000000,
        .intctl_base  = 0xf5000000,
        .counter_base = 0xf3000000,
        .ms_kb_base   = 0xf0000000,
        .serial_base  = 0xf1000000,
        .nvram_base   = 0xf2000000,
        .fd_base      = 0xf7200000,
        .dma_base     = 0xf8400000,
        .esp_base     = 0xf8800000,
        .le_base      = 0xf8c00000,
        .aux1_base    = 0xf7400003,
        .nvram_machine_id = 0x55,
        .machine_id = ss2_id,
        .max_mem = 0x10000000,
        .default_cpu_model = "Cypress CY7C601",
    },
};

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1654
static DeviceState *sun4c_intctl_init(target_phys_addr_t addr,
1655 1656 1657 1658 1659 1660 1661
                                      qemu_irq *parent_irq)
{
    DeviceState *dev;
    SysBusDevice *s;
    unsigned int i;

    dev = qdev_create(NULL, "sun4c_intctl");
M
Markus Armbruster 已提交
1662
    qdev_init_nofail(dev);
1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673

    s = sysbus_from_qdev(dev);

    for (i = 0; i < MAX_PILS; i++) {
        sysbus_connect_irq(s, i, parent_irq[i]);
    }
    sysbus_mmio_map(s, 0, addr);

    return dev;
}

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Anthony Liguori 已提交
1674
static void sun4c_hw_init(const struct sun4c_hwdef *hwdef, ram_addr_t RAM_size,
1675
                          const char *boot_device,
1676
                          const char *kernel_filename,
1677 1678 1679
                          const char *kernel_cmdline,
                          const char *initrd_filename, const char *cpu_model)
{
P
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1680
    void *iommu, *espdma, *ledma, *nvram;
1681
    qemu_irq *cpu_irqs, slavio_irq[8], espdma_irq, ledma_irq;
1682
    qemu_irq esp_reset;
1683
    qemu_irq fdc_tc;
B
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1684
    unsigned long kernel_size;
G
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1685
    DriveInfo *fd[MAX_FD];
1686
    void *fw_cfg;
1687 1688
    DeviceState *dev;
    unsigned int i;
1689 1690 1691 1692 1693

    /* init CPU */
    if (!cpu_model)
        cpu_model = hwdef->default_cpu_model;

1694
    cpu_devinit(cpu_model, 0, hwdef->slavio_base, &cpu_irqs);
1695 1696

    /* set up devices */
B
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1697 1698
    ram_init(0, RAM_size, hwdef->max_mem);

B
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1699 1700
    prom_init(hwdef->slavio_base, bios_name);

1701 1702 1703 1704 1705
    dev = sun4c_intctl_init(hwdef->intctl_base, cpu_irqs);

    for (i = 0; i < 8; i++) {
        slavio_irq[i] = qdev_get_gpio_in(dev, i);
    }
1706 1707

    iommu = iommu_init(hwdef->iommu_base, hwdef->iommu_version,
1708
                       slavio_irq[1]);
1709

1710
    espdma = sparc32_dma_init(hwdef->dma_base, slavio_irq[2],
1711
                              iommu, &espdma_irq);
1712 1713

    ledma = sparc32_dma_init(hwdef->dma_base + 16ULL,
1714
                             slavio_irq[3], iommu, &ledma_irq);
1715 1716 1717 1718 1719

    if (graphic_depth != 8 && graphic_depth != 24) {
        fprintf(stderr, "qemu: Unsupported depth: %d\n", graphic_depth);
        exit (1);
    }
1720
    tcx_init(hwdef->tcx_base, 0x00100000, graphic_width, graphic_height,
1721
             graphic_depth);
1722

1723
    lance_init(&nd_table[0], hwdef->le_base, ledma, ledma_irq);
1724

1725
    nvram = m48t59_init(slavio_irq[0], hwdef->nvram_base, 0, 0x800, 2);
1726

1727
    slavio_serial_ms_kbd_init(hwdef->ms_kb_base, slavio_irq[1],
1728
                              display_type == DT_NOGRAPHIC, ESCC_CLOCK, 1);
1729 1730
    // Slavio TTYA (base+4, Linux ttyS0) is the first Qemu serial device
    // Slavio TTYB (base+0, Linux ttyS1) is the second Qemu serial device
1731 1732
    escc_init(hwdef->serial_base, slavio_irq[1],
              slavio_irq[1], serial_hds[0], serial_hds[1],
A
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1733
              ESCC_CLOCK, 1);
1734

1735
    slavio_misc_init(0, hwdef->aux1_base, 0, slavio_irq[1], fdc_tc);
1736

A
Anthony Liguori 已提交
1737
    if (hwdef->fd_base != (target_phys_addr_t)-1) {
1738
        /* there is zero or one floppy drive */
1739
        memset(fd, 0, sizeof(fd));
G
Gerd Hoffmann 已提交
1740
        fd[0] = drive_get(IF_FLOPPY, 0, 0);
1741
        sun4m_fdctrl_init(slavio_irq[1], hwdef->fd_base, fd,
1742
                          &fdc_tc);
1743 1744 1745 1746 1747 1748 1749
    }

    if (drive_get_max_bus(IF_SCSI) > 0) {
        fprintf(stderr, "qemu: too many SCSI bus\n");
        exit(1);
    }

1750
    esp_reset = qdev_get_gpio_in(espdma, 0);
P
Paul Brook 已提交
1751 1752
    esp_init(hwdef->esp_base, 2,
             espdma_memory_read, espdma_memory_write,
1753
             espdma, espdma_irq, &esp_reset);
1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766

    kernel_size = sun4m_load_kernel(kernel_filename, initrd_filename,
                                    RAM_size);

    nvram_init(nvram, (uint8_t *)&nd_table[0].macaddr, kernel_cmdline,
               boot_device, RAM_size, kernel_size, graphic_width,
               graphic_height, graphic_depth, hwdef->nvram_machine_id,
               "Sun4c");

    fw_cfg = fw_cfg_init(0, 0, CFG_ADDR, CFG_ADDR + 2);
    fw_cfg_add_i32(fw_cfg, FW_CFG_ID, 1);
    fw_cfg_add_i64(fw_cfg, FW_CFG_RAM_SIZE, (uint64_t)ram_size);
    fw_cfg_add_i16(fw_cfg, FW_CFG_MACHINE_ID, hwdef->machine_id);
1767 1768 1769 1770 1771
    fw_cfg_add_i16(fw_cfg, FW_CFG_SUN4M_DEPTH, graphic_depth);
    fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_ADDR, KERNEL_LOAD_ADDR);
    fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_SIZE, kernel_size);
    if (kernel_cmdline) {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, CMDLINE_ADDR);
1772
        pstrcpy_targphys("cmdline", CMDLINE_ADDR, TARGET_PAGE_SIZE, kernel_cmdline);
1773 1774 1775
        fw_cfg_add_bytes(fw_cfg, FW_CFG_CMDLINE_DATA,
                         (uint8_t*)strdup(kernel_cmdline),
                         strlen(kernel_cmdline) + 1);
1776 1777 1778 1779 1780 1781 1782
    } else {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, 0);
    }
    fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_ADDR, INITRD_LOAD_ADDR);
    fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_SIZE, 0); // not used
    fw_cfg_add_i16(fw_cfg, FW_CFG_BOOT_DEVICE, boot_device[0]);
    qemu_register_boot_set(fw_cfg_boot_set, fw_cfg);
1783 1784 1785
}

/* SPARCstation 2 hardware initialisation */
A
Anthony Liguori 已提交
1786
static void ss2_init(ram_addr_t RAM_size,
1787
                     const char *boot_device,
1788 1789 1790
                     const char *kernel_filename, const char *kernel_cmdline,
                     const char *initrd_filename, const char *cpu_model)
{
1791
    sun4c_hw_init(&sun4c_hwdefs[0], RAM_size, boot_device, kernel_filename,
1792 1793 1794
                  kernel_cmdline, initrd_filename, cpu_model);
}

1795
static QEMUMachine ss2_machine = {
1796 1797 1798 1799 1800
    .name = "SS-2",
    .desc = "Sun4c platform, SPARCstation 2",
    .init = ss2_init,
    .use_scsi = 1,
};
1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818

static void ss2_machine_init(void)
{
    qemu_register_machine(&ss5_machine);
    qemu_register_machine(&ss10_machine);
    qemu_register_machine(&ss600mp_machine);
    qemu_register_machine(&ss20_machine);
    qemu_register_machine(&voyager_machine);
    qemu_register_machine(&ss_lx_machine);
    qemu_register_machine(&ss4_machine);
    qemu_register_machine(&scls_machine);
    qemu_register_machine(&sbook_machine);
    qemu_register_machine(&ss1000_machine);
    qemu_register_machine(&ss2000_machine);
    qemu_register_machine(&ss2_machine);
}

machine_init(ss2_machine_init);