sun4m.c 43.8 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 "hw/sysbus.h"
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#include "qemu/error-report.h"
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#include "qemu/timer.h"
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#include "hw/sparc/sun4m.h"
#include "hw/timer/m48t59.h"
#include "hw/sparc/sparc32_dma.h"
#include "hw/block/fdc.h"
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#include "sysemu/sysemu.h"
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#include "net/net.h"
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#include "hw/boards.h"
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#include "hw/nvram/openbios_firmware_abi.h"
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#include "hw/scsi/esp.h"
#include "hw/i386/pc.h"
#include "hw/isa/isa.h"
#include "hw/nvram/fw_cfg.h"
#include "hw/char/escc.h"
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#include "hw/empty_slot.h"
#include "hw/loader.h"
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#include "elf.h"
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#include "sysemu/blockdev.h"
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#include "trace.h"
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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
 *
 * See for example: http://www.sunhelp.org/faq/sunref1.html
 */

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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 FW_CFG_SUN4M_WIDTH   (FW_CFG_ARCH_LOCAL + 0x01)
#define FW_CFG_SUN4M_HEIGHT  (FW_CFG_ARCH_LOCAL + 0x02)
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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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    hwaddr iommu_base, iommu_pad_base, iommu_pad_len, slavio_base;
    hwaddr intctl_base, counter_base, nvram_base, ms_kb_base;
    hwaddr serial_base, fd_base;
    hwaddr afx_base, idreg_base, dma_base, esp_base, le_base;
    hwaddr tcx_base, cs_base, apc_base, aux1_base, aux2_base;
    hwaddr bpp_base, dbri_base, sx_base;
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    struct {
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        hwaddr reg_base, vram_base;
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    } vsimm[MAX_VSIMMS];
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    hwaddr ecc_base;
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    uint64_t max_mem;
    const char * const default_cpu_model;
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    uint32_t ecc_version;
    uint32_t iommu_version;
    uint16_t machine_id;
    uint8_t nvram_machine_id;
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};

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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 sun4m_pic_info(Monitor *mon, const QDict *qdict)
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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 sun4m_irq_info(Monitor *mon, const QDict *qdict)
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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(CPUSPARCState *env)
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{
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    CPUState *cs;

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    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) {
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                    cs = CPU(sparc_env_get_cpu(env));
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                    trace_sun4m_cpu_interrupt(i);
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                    cpu_interrupt(cs, 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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        cs = CPU(sparc_env_get_cpu(env));
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        trace_sun4m_cpu_reset_interrupt(env->interrupt_index & 15);
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        env->interrupt_index = 0;
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        cpu_reset_interrupt(cs, CPU_INTERRUPT_HARD);
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    }
}

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static void cpu_kick_irq(SPARCCPU *cpu)
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{
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    CPUSPARCState *env = &cpu->env;
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    CPUState *cs = CPU(cpu);
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    cs->halted = 0;
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    cpu_check_irqs(env);
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    qemu_cpu_kick(cs);
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}

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static void cpu_set_irq(void *opaque, int irq, int level)
{
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    SPARCCPU *cpu = opaque;
    CPUSPARCState *env = &cpu->env;
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    if (level) {
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        trace_sun4m_cpu_set_irq_raise(irq);
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        env->pil_in |= 1 << irq;
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        cpu_kick_irq(cpu);
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    } else {
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        trace_sun4m_cpu_set_irq_lower(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)
{
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    SPARCCPU *cpu = opaque;
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    CPUState *cs = CPU(cpu);
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    cpu_reset(cs);
    cs->halted = 0;
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}

static void secondary_cpu_reset(void *opaque)
{
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    SPARCCPU *cpu = opaque;
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    CPUState *cs = CPU(cpu);
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    cpu_reset(cs);
    cs->halted = 1;
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}

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

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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(hwaddr 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 = SYS_BUS_DEVICE(dev);
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    sysbus_connect_irq(s, 0, irq);
    sysbus_mmio_map(s, 0, addr);

    return s;
}

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

    dev = qdev_create(NULL, "sparc32_dma");
    qdev_prop_set_ptr(dev, "iommu_opaque", iommu);
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    qdev_prop_set_uint32(dev, "is_ledma", is_ledma);
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    qdev_init_nofail(dev);
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    s = SYS_BUS_DEVICE(dev);
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    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, hwaddr 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 = SYS_BUS_DEVICE(dev);
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    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(hwaddr addr,
                                       hwaddr 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 = SYS_BUS_DEVICE(dev);
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    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(hwaddr 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 = SYS_BUS_DEVICE(dev);
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    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 + (hwaddr)CPU_TIMER_OFFSET(i));
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        sysbus_connect_irq(s, i + 1, cpu_irqs[i]);
    }
}

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static qemu_irq  slavio_system_powerdown;

static void slavio_powerdown_req(Notifier *n, void *opaque)
{
    qemu_irq_raise(slavio_system_powerdown);
}

static Notifier slavio_system_powerdown_notifier = {
    .notify = slavio_powerdown_req
};

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#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(hwaddr base,
                             hwaddr aux1_base,
                             hwaddr 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 = SYS_BUS_DEVICE(dev);
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    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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    slavio_system_powerdown = qdev_get_gpio_in(dev, 0);
    qemu_register_powerdown_notifier(&slavio_system_powerdown_notifier);
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}

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static void ecc_init(hwaddr 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 = SYS_BUS_DEVICE(dev);
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    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(hwaddr power_base, qemu_irq cpu_halt)
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{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "apc");
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    qdev_init_nofail(dev);
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    s = SYS_BUS_DEVICE(dev);
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    /* 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(hwaddr addr, int vram_size, int width,
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                     int height, int depth)
{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "SUNW,tcx");
    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);
541
    qdev_prop_set_uint64(dev, "prom_addr", addr);
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    qdev_init_nofail(dev);
543
    s = SYS_BUS_DEVICE(dev);
544 545
    /* FCode ROM */
    sysbus_mmio_map(s, 0, addr);
546
    /* DAC */
547
    sysbus_mmio_map(s, 1, addr + 0x00200000ULL);
548
    /* TEC (dummy) */
549
    sysbus_mmio_map(s, 2, addr + 0x00700000ULL);
550
    /* THC 24 bit: NetBSD writes here even with 8-bit display: dummy */
551 552 553
    sysbus_mmio_map(s, 3, addr + 0x00301000ULL);
    /* 8-bit plane */
    sysbus_mmio_map(s, 4, addr + 0x00800000ULL);
554 555
    if (depth == 24) {
        /* 24-bit plane */
556
        sysbus_mmio_map(s, 5, addr + 0x02000000ULL);
557
        /* Control plane */
558
        sysbus_mmio_map(s, 6, addr + 0x0a000000ULL);
559 560
    } else {
        /* THC 8 bit (dummy) */
561
        sysbus_mmio_map(s, 5, addr + 0x00300000ULL);
562 563 564
    }
}

565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589
static void cg3_init(hwaddr addr, qemu_irq irq, int vram_size, int width,
                     int height, int depth)
{
    DeviceState *dev;
    SysBusDevice *s;

    dev = qdev_create(NULL, "cgthree");
    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);
    qdev_prop_set_uint64(dev, "prom-addr", addr);
    qdev_init_nofail(dev);
    s = SYS_BUS_DEVICE(dev);

    /* FCode ROM */
    sysbus_mmio_map(s, 0, addr);
    /* DAC */
    sysbus_mmio_map(s, 1, addr + 0x400000ULL);
    /* 8-bit plane */
    sysbus_mmio_map(s, 2, addr + 0x800000ULL);

    sysbus_connect_irq(s, 0, irq);
}

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/* NCR89C100/MACIO Internal ID register */
591 592 593

#define TYPE_MACIO_ID_REGISTER "macio_idreg"

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static const uint8_t idreg_data[] = { 0xfe, 0x81, 0x01, 0x03 };

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

601
    dev = qdev_create(NULL, TYPE_MACIO_ID_REGISTER);
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    qdev_init_nofail(dev);
603
    s = SYS_BUS_DEVICE(dev);
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    sysbus_mmio_map(s, 0, addr);
606 607
    cpu_physical_memory_write_rom(&address_space_memory,
                                  addr, idreg_data, sizeof(idreg_data));
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}

610 611 612
#define MACIO_ID_REGISTER(obj) \
    OBJECT_CHECK(IDRegState, (obj), TYPE_MACIO_ID_REGISTER)

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typedef struct IDRegState {
614 615
    SysBusDevice parent_obj;

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    MemoryRegion mem;
} IDRegState;

619
static int idreg_init1(SysBusDevice *dev)
B
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620
{
621
    IDRegState *s = MACIO_ID_REGISTER(dev);
B
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623 624
    memory_region_init_ram(&s->mem, OBJECT(s),
                           "sun4m.idreg", sizeof(idreg_data));
625
    vmstate_register_ram_global(&s->mem);
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    memory_region_set_readonly(&s->mem, true);
627
    sysbus_init_mmio(dev, &s->mem);
628
    return 0;
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}

631 632 633 634 635 636 637
static void idreg_class_init(ObjectClass *klass, void *data)
{
    SysBusDeviceClass *k = SYS_BUS_DEVICE_CLASS(klass);

    k->init = idreg_init1;
}

638
static const TypeInfo idreg_info = {
639
    .name          = TYPE_MACIO_ID_REGISTER,
640 641 642
    .parent        = TYPE_SYS_BUS_DEVICE,
    .instance_size = sizeof(IDRegState),
    .class_init    = idreg_class_init,
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};

645 646 647
#define TYPE_TCX_AFX "tcx_afx"
#define TCX_AFX(obj) OBJECT_CHECK(AFXState, (obj), TYPE_TCX_AFX)

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typedef struct AFXState {
649 650
    SysBusDevice parent_obj;

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    MemoryRegion mem;
} AFXState;

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/* SS-5 TCX AFX register */
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static void afx_init(hwaddr addr)
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656 657 658 659
{
    DeviceState *dev;
    SysBusDevice *s;

660
    dev = qdev_create(NULL, TYPE_TCX_AFX);
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    qdev_init_nofail(dev);
662
    s = SYS_BUS_DEVICE(dev);
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    sysbus_mmio_map(s, 0, addr);
}

static int afx_init1(SysBusDevice *dev)
{
669
    AFXState *s = TCX_AFX(dev);
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671
    memory_region_init_ram(&s->mem, OBJECT(s), "sun4m.afx", 4);
672
    vmstate_register_ram_global(&s->mem);
673
    sysbus_init_mmio(dev, &s->mem);
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    return 0;
}

677 678 679 680 681 682 683
static void afx_class_init(ObjectClass *klass, void *data)
{
    SysBusDeviceClass *k = SYS_BUS_DEVICE_CLASS(klass);

    k->init = afx_init1;
}

684
static const TypeInfo afx_info = {
685
    .name          = TYPE_TCX_AFX,
686 687 688
    .parent        = TYPE_SYS_BUS_DEVICE,
    .instance_size = sizeof(AFXState),
    .class_init    = afx_class_init,
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};

691 692 693
#define TYPE_OPENPROM "openprom"
#define OPENPROM(obj) OBJECT_CHECK(PROMState, (obj), TYPE_OPENPROM)

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typedef struct PROMState {
695 696
    SysBusDevice parent_obj;

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    MemoryRegion prom;
} PROMState;

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/* Boot PROM (OpenBIOS) */
701 702
static uint64_t translate_prom_address(void *opaque, uint64_t addr)
{
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    hwaddr *base_addr = (hwaddr *)opaque;
704 705 706
    return addr + *base_addr - PROM_VADDR;
}

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707
static void prom_init(hwaddr addr, const char *bios_name)
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{
    DeviceState *dev;
    SysBusDevice *s;
    char *filename;
    int ret;

714
    dev = qdev_create(NULL, TYPE_OPENPROM);
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    qdev_init_nofail(dev);
716
    s = SYS_BUS_DEVICE(dev);
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717 718 719 720 721 722 723 724 725

    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) {
726 727
        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);
        }
731
        g_free(filename);
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    } else {
        ret = -1;
    }
    if (ret < 0 || ret > PROM_SIZE_MAX) {
        fprintf(stderr, "qemu: could not load prom '%s'\n", bios_name);
        exit(1);
    }
}

741
static int prom_init1(SysBusDevice *dev)
B
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742
{
743
    PROMState *s = OPENPROM(dev);
B
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745
    memory_region_init_ram(&s->prom, OBJECT(s), "sun4m.prom", PROM_SIZE_MAX);
746
    vmstate_register_ram_global(&s->prom);
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    memory_region_set_readonly(&s->prom, true);
748
    sysbus_init_mmio(dev, &s->prom);
749
    return 0;
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}

752 753 754 755 756 757
static Property prom_properties[] = {
    {/* end of property list */},
};

static void prom_class_init(ObjectClass *klass, void *data)
{
758
    DeviceClass *dc = DEVICE_CLASS(klass);
759 760 761
    SysBusDeviceClass *k = SYS_BUS_DEVICE_CLASS(klass);

    k->init = prom_init1;
762
    dc->props = prom_properties;
763 764
}

765
static const TypeInfo prom_info = {
766
    .name          = TYPE_OPENPROM,
767 768 769
    .parent        = TYPE_SYS_BUS_DEVICE,
    .instance_size = sizeof(PROMState),
    .class_init    = prom_class_init,
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};

772 773 774 775 776 777
#define TYPE_SUN4M_MEMORY "memory"
#define SUN4M_RAM(obj) OBJECT_CHECK(RamDevice, (obj), TYPE_SUN4M_MEMORY)

typedef struct RamDevice {
    SysBusDevice parent_obj;

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    MemoryRegion ram;
779
    uint64_t size;
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} RamDevice;

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/* System RAM */
783
static int ram_init1(SysBusDevice *dev)
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{
785
    RamDevice *d = SUN4M_RAM(dev);
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787
    memory_region_init_ram(&d->ram, OBJECT(d), "sun4m.ram", d->size);
788
    vmstate_register_ram_global(&d->ram);
789
    sysbus_init_mmio(dev, &d->ram);
790
    return 0;
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}

A
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793
static void ram_init(hwaddr addr, ram_addr_t RAM_size,
B
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794 795 796 797
                     uint64_t max_mem)
{
    DeviceState *dev;
    SysBusDevice *s;
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    RamDevice *d;
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799 800 801 802 803 804 805 806 807 808

    /* 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");
809
    s = SYS_BUS_DEVICE(dev);
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811
    d = SUN4M_RAM(dev);
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    d->size = RAM_size;
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813
    qdev_init_nofail(dev);
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B
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    sysbus_mmio_map(s, 0, addr);
}

818 819 820 821 822 823 824
static Property ram_properties[] = {
    DEFINE_PROP_UINT64("size", RamDevice, size, 0),
    DEFINE_PROP_END_OF_LIST(),
};

static void ram_class_init(ObjectClass *klass, void *data)
{
825
    DeviceClass *dc = DEVICE_CLASS(klass);
826 827 828
    SysBusDeviceClass *k = SYS_BUS_DEVICE_CLASS(klass);

    k->init = ram_init1;
829
    dc->props = ram_properties;
830 831
}

832
static const TypeInfo ram_info = {
833
    .name          = TYPE_SUN4M_MEMORY,
834 835 836
    .parent        = TYPE_SYS_BUS_DEVICE,
    .instance_size = sizeof(RamDevice),
    .class_init    = ram_class_init,
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};

839 840
static void cpu_devinit(const char *cpu_model, unsigned int id,
                        uint64_t prom_addr, qemu_irq **cpu_irqs)
B
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841
{
842
    CPUState *cs;
843
    SPARCCPU *cpu;
A
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844
    CPUSPARCState *env;
B
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845

846 847
    cpu = cpu_sparc_init(cpu_model);
    if (cpu == NULL) {
B
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848 849 850
        fprintf(stderr, "qemu: Unable to find Sparc CPU definition\n");
        exit(1);
    }
851
    env = &cpu->env;
B
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852 853 854

    cpu_sparc_set_id(env, id);
    if (id == 0) {
855
        qemu_register_reset(main_cpu_reset, cpu);
B
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856
    } else {
857
        qemu_register_reset(secondary_cpu_reset, cpu);
858 859
        cs = CPU(cpu);
        cs->halted = 1;
B
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860
    }
861
    *cpu_irqs = qemu_allocate_irqs(cpu_set_irq, cpu, MAX_PILS);
B
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862 863 864
    env->prom_addr = prom_addr;
}

B
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865 866 867 868
static void dummy_fdc_tc(void *opaque, int irq, int level)
{
}

869
static void sun4m_hw_init(const struct sun4m_hwdef *hwdef,
870
                          MachineState *machine)
871
{
872
    const char *cpu_model = machine->cpu_model;
B
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873
    unsigned int i;
P
Paul Brook 已提交
874
    void *iommu, *espdma, *ledma, *nvram;
875
    qemu_irq *cpu_irqs[MAX_CPUS], slavio_irq[32], slavio_cpu_irq[MAX_CPUS],
876
        espdma_irq, ledma_irq;
877
    qemu_irq esp_reset, dma_enable;
878
    qemu_irq fdc_tc;
B
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879
    qemu_irq *cpu_halt;
B
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880
    unsigned long kernel_size;
G
Gerd Hoffmann 已提交
881
    DriveInfo *fd[MAX_FD];
L
Laszlo Ersek 已提交
882
    FWCfgState *fw_cfg;
883
    unsigned int num_vsimms;
884

B
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885
    /* init CPUs */
886 887
    if (!cpu_model)
        cpu_model = hwdef->default_cpu_model;
888

B
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889
    for(i = 0; i < smp_cpus; i++) {
890
        cpu_devinit(cpu_model, i, hwdef->slavio_base, &cpu_irqs[i]);
B
bellard 已提交
891
    }
892 893 894 895

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

896 897

    /* set up devices */
898
    ram_init(0, machine->ram_size, hwdef->max_mem);
899 900
    /* models without ECC don't trap when missing ram is accessed */
    if (!hwdef->ecc_base) {
901
        empty_slot_init(machine->ram_size, hwdef->max_mem - machine->ram_size);
902
    }
B
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903

B
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904 905
    prom_init(hwdef->slavio_base, bios_name);

906 907
    slavio_intctl = slavio_intctl_init(hwdef->intctl_base,
                                       hwdef->intctl_base + 0x10000ULL,
B
Blue Swirl 已提交
908
                                       cpu_irqs);
909 910

    for (i = 0; i < 32; i++) {
911
        slavio_irq[i] = qdev_get_gpio_in(slavio_intctl, i);
912 913
    }
    for (i = 0; i < MAX_CPUS; i++) {
914
        slavio_cpu_irq[i] = qdev_get_gpio_in(slavio_intctl, 32 + i);
915
    }
916

917
    if (hwdef->idreg_base) {
B
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918
        idreg_init(hwdef->idreg_base);
B
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919 920
    }

A
Artyom Tarasenko 已提交
921 922 923 924
    if (hwdef->afx_base) {
        afx_init(hwdef->afx_base);
    }

925
    iommu = iommu_init(hwdef->iommu_base, hwdef->iommu_version,
926
                       slavio_irq[30]);
927

928 929 930 931 932 933 934 935
    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);
    }

936
    espdma = sparc32_dma_init(hwdef->dma_base, slavio_irq[18],
B
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937
                              iommu, &espdma_irq, 0);
938

B
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939
    ledma = sparc32_dma_init(hwdef->dma_base + 16ULL,
B
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940
                             slavio_irq[16], iommu, &ledma_irq, 1);
B
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941

B
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942
    if (graphic_depth != 8 && graphic_depth != 24) {
943
        error_report("Unsupported depth: %d", graphic_depth);
B
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944 945
        exit (1);
    }
946 947
    num_vsimms = 0;
    if (num_vsimms == 0) {
948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979
        if (vga_interface_type == VGA_CG3) {
            if (graphic_depth != 8) {
                error_report("Unsupported depth: %d", graphic_depth);
                exit(1);
            }

            if (!(graphic_width == 1024 && graphic_height == 768) &&
                !(graphic_width == 1152 && graphic_height == 900)) {
                error_report("Unsupported resolution: %d x %d", graphic_width,
                             graphic_height);
                exit(1);
            }

            /* sbus irq 5 */
            cg3_init(hwdef->tcx_base, slavio_irq[11], 0x00100000,
                     graphic_width, graphic_height, graphic_depth);
        } else {
            /* If no display specified, default to TCX */
            if (graphic_depth != 8 && graphic_depth != 24) {
                error_report("Unsupported depth: %d", graphic_depth);
                exit(1);
            }

            if (!(graphic_width == 1024 && graphic_height == 768)) {
                error_report("Unsupported resolution: %d x %d",
                             graphic_width, graphic_height);
                exit(1);
            }

            tcx_init(hwdef->tcx_base, 0x00100000, graphic_width, graphic_height,
                     graphic_depth);
        }
980 981 982 983 984 985 986 987 988 989 990 991
    }

    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);
    }
992

993
    lance_init(&nd_table[0], hwdef->le_base, ledma, ledma_irq);
994

995
    nvram = m48t59_init(slavio_irq[0], hwdef->nvram_base, 0, 0x2000, 8);
B
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996

997
    slavio_timer_init_all(hwdef->counter_base, slavio_irq[19], slavio_cpu_irq, smp_cpus);
B
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998

999
    slavio_serial_ms_kbd_init(hwdef->ms_kb_base, slavio_irq[14],
1000
                              display_type == DT_NOGRAPHIC, ESCC_CLOCK, 1);
S
Stefan Weil 已提交
1001 1002
    /* Slavio TTYA (base+4, Linux ttyS0) is the first QEMU serial device
       Slavio TTYB (base+0, Linux ttyS1) is the second QEMU serial device */
1003
    escc_init(hwdef->serial_base, slavio_irq[15], slavio_irq[15],
A
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1004
              serial_hds[0], serial_hds[1], ESCC_CLOCK, 1);
B
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1005

B
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1006
    cpu_halt = qemu_allocate_irqs(cpu_halt_signal, NULL, 1);
1007 1008 1009
    if (hwdef->apc_base) {
        apc_init(hwdef->apc_base, cpu_halt[0]);
    }
B
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1010

1011
    if (hwdef->fd_base) {
T
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1012
        /* there is zero or one floppy drive */
1013
        memset(fd, 0, sizeof(fd));
G
Gerd Hoffmann 已提交
1014
        fd[0] = drive_get(IF_FLOPPY, 0, 0);
1015
        sun4m_fdctrl_init(slavio_irq[22], hwdef->fd_base, fd,
1016
                          &fdc_tc);
B
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1017 1018
    } else {
        fdc_tc = *qemu_allocate_irqs(dummy_fdc_tc, NULL, 1);
T
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1019 1020
    }

B
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1021 1022 1023
    slavio_misc_init(hwdef->slavio_base, hwdef->aux1_base, hwdef->aux2_base,
                     slavio_irq[30], fdc_tc);

T
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1024 1025 1026 1027 1028
    if (drive_get_max_bus(IF_SCSI) > 0) {
        fprintf(stderr, "qemu: too many SCSI bus\n");
        exit(1);
    }

P
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1029 1030
    esp_init(hwdef->esp_base, 2,
             espdma_memory_read, espdma_memory_write,
1031
             espdma, espdma_irq, &esp_reset, &dma_enable);
1032

1033 1034
    qdev_connect_gpio_out(espdma, 0, esp_reset);
    qdev_connect_gpio_out(espdma, 1, dma_enable);
1035

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    if (hwdef->cs_base) {
        sysbus_create_simple("SUNW,CS4231", hwdef->cs_base,
1038
                             slavio_irq[5]);
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    }
1040

1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053
    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);
    }

1054 1055 1056
    kernel_size = sun4m_load_kernel(machine->kernel_filename,
                                    machine->initrd_filename,
                                    machine->ram_size);
1057

1058 1059 1060 1061
    nvram_init(nvram, (uint8_t *)&nd_table[0].macaddr, machine->kernel_cmdline,
               machine->boot_order, machine->ram_size, kernel_size,
               graphic_width, graphic_height, graphic_depth,
               hwdef->nvram_machine_id, "Sun4m");
1062

1063
    if (hwdef->ecc_base)
1064
        ecc_init(hwdef->ecc_base, slavio_irq[28],
1065
                 hwdef->ecc_version);
1066 1067

    fw_cfg = fw_cfg_init(0, 0, CFG_ADDR, CFG_ADDR + 2);
1068
    fw_cfg_add_i16(fw_cfg, FW_CFG_MAX_CPUS, (uint16_t)max_cpus);
1069
    fw_cfg_add_i32(fw_cfg, FW_CFG_ID, 1);
1070 1071
    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);
1072
    fw_cfg_add_i16(fw_cfg, FW_CFG_SUN4M_DEPTH, graphic_depth);
1073 1074
    fw_cfg_add_i16(fw_cfg, FW_CFG_SUN4M_WIDTH, graphic_width);
    fw_cfg_add_i16(fw_cfg, FW_CFG_SUN4M_HEIGHT, graphic_height);
1075 1076
    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);
1077
    if (machine->kernel_cmdline) {
1078
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, CMDLINE_ADDR);
1079
        pstrcpy_targphys("cmdline", CMDLINE_ADDR, TARGET_PAGE_SIZE,
1080 1081
                         machine->kernel_cmdline);
        fw_cfg_add_string(fw_cfg, FW_CFG_CMDLINE_DATA, machine->kernel_cmdline);
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        fw_cfg_add_i32(fw_cfg, FW_CFG_CMDLINE_SIZE,
1083
                       strlen(machine->kernel_cmdline) + 1);
1084 1085
    } else {
        fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_CMDLINE, 0);
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        fw_cfg_add_i32(fw_cfg, FW_CFG_CMDLINE_SIZE, 0);
1087 1088 1089
    }
    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
1090
    fw_cfg_add_i16(fw_cfg, FW_CFG_BOOT_DEVICE, machine->boot_order[0]);
1091
    qemu_register_boot_set(fw_cfg_boot_set, fw_cfg);
1092 1093
}

1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105
enum {
    ss5_id = 32,
    vger_id,
    lx_id,
    ss4_id,
    scls_id,
    sbook_id,
    ss10_id = 64,
    ss20_id,
    ss600mp_id,
};

1106
static const struct sun4m_hwdef sun4m_hwdefs[] = {
1107 1108 1109
    /* SS-5 */
    {
        .iommu_base   = 0x10000000,
1110 1111
        .iommu_pad_base = 0x10004000,
        .iommu_pad_len  = 0x0fffb000,
1112 1113
        .tcx_base     = 0x50000000,
        .cs_base      = 0x6c000000,
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        .slavio_base  = 0x70000000,
1115 1116 1117 1118 1119 1120
        .ms_kb_base   = 0x71000000,
        .serial_base  = 0x71100000,
        .nvram_base   = 0x71200000,
        .fd_base      = 0x71400000,
        .counter_base = 0x71d00000,
        .intctl_base  = 0x71e00000,
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        .idreg_base   = 0x78000000,
1122 1123 1124
        .dma_base     = 0x78400000,
        .esp_base     = 0x78800000,
        .le_base      = 0x78c00000,
1125
        .apc_base     = 0x6a000000,
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        .afx_base     = 0x6e000000,
1127 1128
        .aux1_base    = 0x71900000,
        .aux2_base    = 0x71910000,
1129 1130
        .nvram_machine_id = 0x80,
        .machine_id = ss5_id,
1131
        .iommu_version = 0x05000000,
1132 1133
        .max_mem = 0x10000000,
        .default_cpu_model = "Fujitsu MB86904",
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    },
    /* SS-10 */
    {
1137 1138 1139 1140 1141 1142 1143 1144 1145
        .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,
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        .idreg_base   = 0xef0000000ULL,
1147 1148 1149
        .dma_base     = 0xef0400000ULL,
        .esp_base     = 0xef0800000ULL,
        .le_base      = 0xef0c00000ULL,
1150
        .apc_base     = 0xefa000000ULL, // XXX should not exist
1151 1152
        .aux1_base    = 0xff1800000ULL,
        .aux2_base    = 0xff1a01000ULL,
1153 1154
        .ecc_base     = 0xf00000000ULL,
        .ecc_version  = 0x10000000, // version 0, implementation 1
1155 1156
        .nvram_machine_id = 0x72,
        .machine_id = ss10_id,
1157
        .iommu_version = 0x03000000,
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        .max_mem = 0xf00000000ULL,
1159
        .default_cpu_model = "TI SuperSparc II",
1160
    },
1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173
    /* 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,
1174
        .apc_base     = 0xefa000000ULL, // XXX should not exist
1175 1176
        .aux1_base    = 0xff1800000ULL,
        .aux2_base    = 0xff1a01000ULL, // XXX should not exist
1177 1178
        .ecc_base     = 0xf00000000ULL,
        .ecc_version  = 0x00000000, // version 0, implementation 0
1179 1180
        .nvram_machine_id = 0x71,
        .machine_id = ss600mp_id,
1181
        .iommu_version = 0x01000000,
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        .max_mem = 0xf00000000ULL,
1183
        .default_cpu_model = "TI SuperSparc II",
1184
    },
1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195
    /* 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,
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        .idreg_base   = 0xef0000000ULL,
1197 1198 1199
        .dma_base     = 0xef0400000ULL,
        .esp_base     = 0xef0800000ULL,
        .le_base      = 0xef0c00000ULL,
1200
        .bpp_base     = 0xef4800000ULL,
1201
        .apc_base     = 0xefa000000ULL, // XXX should not exist
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        .aux1_base    = 0xff1800000ULL,
        .aux2_base    = 0xff1a01000ULL,
1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218
        .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
            }
        },
1219 1220
        .ecc_base     = 0xf00000000ULL,
        .ecc_version  = 0x20000000, // version 0, implementation 2
1221 1222
        .nvram_machine_id = 0x72,
        .machine_id = ss20_id,
1223
        .iommu_version = 0x13000000,
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        .max_mem = 0xf00000000ULL,
1225 1226
        .default_cpu_model = "TI SuperSparc II",
    },
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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,
1245 1246
        .nvram_machine_id = 0x80,
        .machine_id = vger_id,
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        .iommu_version = 0x05000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "Fujitsu MB86904",
    },
    /* LX */
    {
        .iommu_base   = 0x10000000,
1254 1255
        .iommu_pad_base = 0x10004000,
        .iommu_pad_len  = 0x0fffb000,
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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,
1270 1271
        .nvram_machine_id = 0x80,
        .machine_id = lx_id,
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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,
1295 1296
        .nvram_machine_id = 0x80,
        .machine_id = ss4_id,
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        .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,
1319 1320
        .nvram_machine_id = 0x80,
        .machine_id = scls_id,
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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,
1343 1344
        .nvram_machine_id = 0x80,
        .machine_id = sbook_id,
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        .iommu_version = 0x05000000,
        .max_mem = 0x10000000,
        .default_cpu_model = "TI MicroSparc I",
    },
1349 1350 1351
};

/* SPARCstation 5 hardware initialisation */
1352
static void ss5_init(MachineState *machine)
1353
{
1354
    sun4m_hw_init(&sun4m_hwdefs[0], machine);
1355
}
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/* SPARCstation 10 hardware initialisation */
1358
static void ss10_init(MachineState *machine)
B
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1359
{
1360
    sun4m_hw_init(&sun4m_hwdefs[1], machine);
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1361 1362
}

1363
/* SPARCserver 600MP hardware initialisation */
1364
static void ss600mp_init(MachineState *machine)
1365
{
1366
    sun4m_hw_init(&sun4m_hwdefs[2], machine);
1367 1368
}

1369
/* SPARCstation 20 hardware initialisation */
1370
static void ss20_init(MachineState *machine)
1371
{
1372
    sun4m_hw_init(&sun4m_hwdefs[3], machine);
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}

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1375
/* SPARCstation Voyager hardware initialisation */
1376
static void vger_init(MachineState *machine)
B
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1377
{
1378
    sun4m_hw_init(&sun4m_hwdefs[4], machine);
B
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1379 1380 1381
}

/* SPARCstation LX hardware initialisation */
1382
static void ss_lx_init(MachineState *machine)
B
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1383
{
1384
    sun4m_hw_init(&sun4m_hwdefs[5], machine);
B
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1385 1386 1387
}

/* SPARCstation 4 hardware initialisation */
1388
static void ss4_init(MachineState *machine)
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1389
{
1390
    sun4m_hw_init(&sun4m_hwdefs[6], machine);
B
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1391 1392 1393
}

/* SPARCClassic hardware initialisation */
1394
static void scls_init(MachineState *machine)
B
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1395
{
1396
    sun4m_hw_init(&sun4m_hwdefs[7], machine);
B
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1397 1398 1399
}

/* SPARCbook hardware initialisation */
1400
static void sbook_init(MachineState *machine)
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1401
{
1402
    sun4m_hw_init(&sun4m_hwdefs[8], machine);
B
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1403 1404
}

1405
static QEMUMachine ss5_machine = {
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    .name = "SS-5",
    .desc = "Sun4m platform, SPARCstation 5",
    .init = ss5_init,
1409
    .block_default_type = IF_SCSI,
1410
    .is_default = 1,
1411
    .default_boot_order = "c",
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1412
};
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1414
static QEMUMachine ss10_machine = {
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    .name = "SS-10",
    .desc = "Sun4m platform, SPARCstation 10",
    .init = ss10_init,
1418
    .block_default_type = IF_SCSI,
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    .max_cpus = 4,
1420
    .default_boot_order = "c",
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1421
};
1422

1423
static QEMUMachine ss600mp_machine = {
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    .name = "SS-600MP",
    .desc = "Sun4m platform, SPARCserver 600MP",
    .init = ss600mp_init,
1427
    .block_default_type = IF_SCSI,
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    .max_cpus = 4,
1429
    .default_boot_order = "c",
1430
};
1431

1432
static QEMUMachine ss20_machine = {
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    .name = "SS-20",
    .desc = "Sun4m platform, SPARCstation 20",
    .init = ss20_init,
1436
    .block_default_type = IF_SCSI,
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    .max_cpus = 4,
1438
    .default_boot_order = "c",
1439 1440
};

1441
static QEMUMachine voyager_machine = {
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    .name = "Voyager",
    .desc = "Sun4m platform, SPARCstation Voyager",
    .init = vger_init,
1445
    .block_default_type = IF_SCSI,
1446
    .default_boot_order = "c",
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};

1449
static QEMUMachine ss_lx_machine = {
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    .name = "LX",
    .desc = "Sun4m platform, SPARCstation LX",
    .init = ss_lx_init,
1453
    .block_default_type = IF_SCSI,
1454
    .default_boot_order = "c",
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};

1457
static QEMUMachine ss4_machine = {
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    .name = "SS-4",
    .desc = "Sun4m platform, SPARCstation 4",
    .init = ss4_init,
1461
    .block_default_type = IF_SCSI,
1462
    .default_boot_order = "c",
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};

1465
static QEMUMachine scls_machine = {
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    .name = "SPARCClassic",
    .desc = "Sun4m platform, SPARCClassic",
    .init = scls_init,
1469
    .block_default_type = IF_SCSI,
1470
    .default_boot_order = "c",
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};

1473
static QEMUMachine sbook_machine = {
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    .name = "SPARCbook",
    .desc = "Sun4m platform, SPARCbook",
    .init = sbook_init,
1477
    .block_default_type = IF_SCSI,
1478
    .default_boot_order = "c",
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};

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static void sun4m_register_types(void)
{
    type_register_static(&idreg_info);
    type_register_static(&afx_info);
    type_register_static(&prom_info);
    type_register_static(&ram_info);
}

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static void sun4m_machine_init(void)
1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501
{
    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);
}

A
Andreas Färber 已提交
1502
type_init(sun4m_register_types)
B
Blue Swirl 已提交
1503
machine_init(sun4m_machine_init);