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1 /*
2 * Qemu PowerPC MPC8544DS board emualtion
3 *
4 * Copyright (C) 2009 Freescale Semiconductor, Inc. All rights reserved.
5 *
6 * Author: Yu Liu, <yu.liu@freescale.com>
7 *
8 * This file is derived from hw/ppc440_bamboo.c,
9 * the copyright for that material belongs to the original owners.
10 *
11 * This is free software; you can redistribute it and/or modify
12 * it under the terms of the GNU General Public License as published by
13 * the Free Software Foundation; either version 2 of the License, or
14 * (at your option) any later version.
15 */
16
17 #include "config.h"
18 #include "qemu-common.h"
19 #include "net.h"
20 #include "hw.h"
21 #include "pc.h"
22 #include "pci.h"
23 #include "boards.h"
24 #include "sysemu.h"
25 #include "kvm.h"
26 #include "kvm_ppc.h"
27 #include "device_tree.h"
28 #include "openpic.h"
29 #include "ppc.h"
30 #include "loader.h"
31 #include "elf.h"
32 #include "sysbus.h"
33 #include "exec-memory.h"
34
35 #define BINARY_DEVICE_TREE_FILE "mpc8544ds.dtb"
36 #define UIMAGE_LOAD_BASE 0
37 #define DTC_LOAD_PAD 0x500000
38 #define DTC_PAD_MASK 0xFFFFF
39 #define INITRD_LOAD_PAD 0x2000000
40 #define INITRD_PAD_MASK 0xFFFFFF
41
42 #define RAM_SIZES_ALIGN (64UL << 20)
43
44 #define MPC8544_CCSRBAR_BASE 0xE0000000
45 #define MPC8544_MPIC_REGS_BASE (MPC8544_CCSRBAR_BASE + 0x40000)
46 #define MPC8544_SERIAL0_REGS_BASE (MPC8544_CCSRBAR_BASE + 0x4500)
47 #define MPC8544_SERIAL1_REGS_BASE (MPC8544_CCSRBAR_BASE + 0x4600)
48 #define MPC8544_PCI_REGS_BASE (MPC8544_CCSRBAR_BASE + 0x8000)
49 #define MPC8544_PCI_REGS_SIZE 0x1000
50 #define MPC8544_PCI_IO 0xE1000000
51 #define MPC8544_PCI_IOLEN 0x10000
52 #define MPC8544_UTIL_BASE (MPC8544_CCSRBAR_BASE + 0xe0000)
53 #define MPC8544_SPIN_BASE 0xEF000000
54
55 struct boot_info
56 {
57 uint32_t dt_base;
58 uint32_t entry;
59 };
60
61 static int mpc8544_load_device_tree(CPUState *env,
62 target_phys_addr_t addr,
63 uint32_t ramsize,
64 target_phys_addr_t initrd_base,
65 target_phys_addr_t initrd_size,
66 const char *kernel_cmdline)
67 {
68 int ret = -1;
69 #ifdef CONFIG_FDT
70 uint32_t mem_reg_property[] = {0, cpu_to_be32(ramsize)};
71 char *filename;
72 int fdt_size;
73 void *fdt;
74 uint8_t hypercall[16];
75 uint32_t clock_freq = 400000000;
76 uint32_t tb_freq = 400000000;
77 int i;
78
79 filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, BINARY_DEVICE_TREE_FILE);
80 if (!filename) {
81 goto out;
82 }
83 fdt = load_device_tree(filename, &fdt_size);
84 g_free(filename);
85 if (fdt == NULL) {
86 goto out;
87 }
88
89 /* Manipulate device tree in memory. */
90 ret = qemu_devtree_setprop(fdt, "/memory", "reg", mem_reg_property,
91 sizeof(mem_reg_property));
92 if (ret < 0)
93 fprintf(stderr, "couldn't set /memory/reg\n");
94
95 if (initrd_size) {
96 ret = qemu_devtree_setprop_cell(fdt, "/chosen", "linux,initrd-start",
97 initrd_base);
98 if (ret < 0) {
99 fprintf(stderr, "couldn't set /chosen/linux,initrd-start\n");
100 }
101
102 ret = qemu_devtree_setprop_cell(fdt, "/chosen", "linux,initrd-end",
103 (initrd_base + initrd_size));
104 if (ret < 0) {
105 fprintf(stderr, "couldn't set /chosen/linux,initrd-end\n");
106 }
107 }
108
109 ret = qemu_devtree_setprop_string(fdt, "/chosen", "bootargs",
110 kernel_cmdline);
111 if (ret < 0)
112 fprintf(stderr, "couldn't set /chosen/bootargs\n");
113
114 if (kvm_enabled()) {
115 /* Read out host's frequencies */
116 clock_freq = kvmppc_get_clockfreq();
117 tb_freq = kvmppc_get_tbfreq();
118
119 /* indicate KVM hypercall interface */
120 qemu_devtree_setprop_string(fdt, "/hypervisor", "compatible",
121 "linux,kvm");
122 kvmppc_get_hypercall(env, hypercall, sizeof(hypercall));
123 qemu_devtree_setprop(fdt, "/hypervisor", "hcall-instructions",
124 hypercall, sizeof(hypercall));
125 }
126
127 /* We need to generate the cpu nodes in reverse order, so Linux can pick
128 the first node as boot node and be happy */
129 for (i = smp_cpus - 1; i >= 0; i--) {
130 char cpu_name[128];
131 uint64_t cpu_release_addr = cpu_to_be64(MPC8544_SPIN_BASE + (i * 0x20));
132
133 for (env = first_cpu; env != NULL; env = env->next_cpu) {
134 if (env->cpu_index == i) {
135 break;
136 }
137 }
138
139 if (!env) {
140 continue;
141 }
142
143 snprintf(cpu_name, sizeof(cpu_name), "/cpus/PowerPC,8544@%x", env->cpu_index);
144 qemu_devtree_add_subnode(fdt, cpu_name);
145 qemu_devtree_setprop_cell(fdt, cpu_name, "clock-frequency", clock_freq);
146 qemu_devtree_setprop_cell(fdt, cpu_name, "timebase-frequency", tb_freq);
147 qemu_devtree_setprop_string(fdt, cpu_name, "device_type", "cpu");
148 qemu_devtree_setprop_cell(fdt, cpu_name, "reg", env->cpu_index);
149 qemu_devtree_setprop_cell(fdt, cpu_name, "d-cache-line-size",
150 env->dcache_line_size);
151 qemu_devtree_setprop_cell(fdt, cpu_name, "i-cache-line-size",
152 env->icache_line_size);
153 qemu_devtree_setprop_cell(fdt, cpu_name, "d-cache-size", 0x8000);
154 qemu_devtree_setprop_cell(fdt, cpu_name, "i-cache-size", 0x8000);
155 qemu_devtree_setprop_cell(fdt, cpu_name, "bus-frequency", 0);
156 if (env->cpu_index) {
157 qemu_devtree_setprop_string(fdt, cpu_name, "status", "disabled");
158 qemu_devtree_setprop_string(fdt, cpu_name, "enable-method", "spin-table");
159 qemu_devtree_setprop(fdt, cpu_name, "cpu-release-addr",
160 &cpu_release_addr, sizeof(cpu_release_addr));
161 } else {
162 qemu_devtree_setprop_string(fdt, cpu_name, "status", "okay");
163 }
164 }
165
166 ret = rom_add_blob_fixed(BINARY_DEVICE_TREE_FILE, fdt, fdt_size, addr);
167 g_free(fdt);
168
169 out:
170 #endif
171
172 return ret;
173 }
174
175 /* Create -kernel TLB entries for BookE, linearly spanning 256MB. */
176 static inline target_phys_addr_t booke206_page_size_to_tlb(uint64_t size)
177 {
178 return ffs(size >> 10) - 1;
179 }
180
181 static void mmubooke_create_initial_mapping(CPUState *env,
182 target_ulong va,
183 target_phys_addr_t pa)
184 {
185 ppcmas_tlb_t *tlb = booke206_get_tlbm(env, 1, 0, 0);
186 target_phys_addr_t size;
187
188 size = (booke206_page_size_to_tlb(256 * 1024 * 1024) << MAS1_TSIZE_SHIFT);
189 tlb->mas1 = MAS1_VALID | size;
190 tlb->mas2 = va & TARGET_PAGE_MASK;
191 tlb->mas7_3 = pa & TARGET_PAGE_MASK;
192 tlb->mas7_3 |= MAS3_UR | MAS3_UW | MAS3_UX | MAS3_SR | MAS3_SW | MAS3_SX;
193
194 env->tlb_dirty = true;
195 }
196
197 static void mpc8544ds_cpu_reset_sec(void *opaque)
198 {
199 CPUState *env = opaque;
200
201 cpu_reset(env);
202
203 /* Secondary CPU starts in halted state for now. Needs to change when
204 implementing non-kernel boot. */
205 env->halted = 1;
206 env->exception_index = EXCP_HLT;
207 }
208
209 static void mpc8544ds_cpu_reset(void *opaque)
210 {
211 CPUState *env = opaque;
212 struct boot_info *bi = env->load_info;
213
214 cpu_reset(env);
215
216 /* Set initial guest state. */
217 env->halted = 0;
218 env->gpr[1] = (16<<20) - 8;
219 env->gpr[3] = bi->dt_base;
220 env->nip = bi->entry;
221 mmubooke_create_initial_mapping(env, 0, 0);
222 }
223
224 static void mpc8544ds_init(ram_addr_t ram_size,
225 const char *boot_device,
226 const char *kernel_filename,
227 const char *kernel_cmdline,
228 const char *initrd_filename,
229 const char *cpu_model)
230 {
231 MemoryRegion *address_space_mem = get_system_memory();
232 PCIBus *pci_bus;
233 CPUState *env = NULL;
234 uint64_t elf_entry;
235 uint64_t elf_lowaddr;
236 target_phys_addr_t entry=0;
237 target_phys_addr_t loadaddr=UIMAGE_LOAD_BASE;
238 target_long kernel_size=0;
239 target_ulong dt_base = 0;
240 target_ulong initrd_base = 0;
241 target_long initrd_size=0;
242 int i=0;
243 unsigned int pci_irq_nrs[4] = {1, 2, 3, 4};
244 qemu_irq **irqs, *mpic;
245 DeviceState *dev;
246 CPUState *firstenv = NULL;
247
248 /* Setup CPUs */
249 if (cpu_model == NULL) {
250 cpu_model = "e500v2_v30";
251 }
252
253 irqs = g_malloc0(smp_cpus * sizeof(qemu_irq *));
254 irqs[0] = g_malloc0(smp_cpus * sizeof(qemu_irq) * OPENPIC_OUTPUT_NB);
255 for (i = 0; i < smp_cpus; i++) {
256 qemu_irq *input;
257 env = cpu_ppc_init(cpu_model);
258 if (!env) {
259 fprintf(stderr, "Unable to initialize CPU!\n");
260 exit(1);
261 }
262
263 if (!firstenv) {
264 firstenv = env;
265 }
266
267 irqs[i] = irqs[0] + (i * OPENPIC_OUTPUT_NB);
268 input = (qemu_irq *)env->irq_inputs;
269 irqs[i][OPENPIC_OUTPUT_INT] = input[PPCE500_INPUT_INT];
270 irqs[i][OPENPIC_OUTPUT_CINT] = input[PPCE500_INPUT_CINT];
271 env->spr[SPR_BOOKE_PIR] = env->cpu_index = i;
272
273 ppc_booke_timers_init(env, 400000000, PPC_TIMER_E500);
274
275 /* Register reset handler */
276 if (!i) {
277 /* Primary CPU */
278 struct boot_info *boot_info;
279 boot_info = g_malloc0(sizeof(struct boot_info));
280 qemu_register_reset(mpc8544ds_cpu_reset, env);
281 env->load_info = boot_info;
282 } else {
283 /* Secondary CPUs */
284 qemu_register_reset(mpc8544ds_cpu_reset_sec, env);
285 }
286 }
287
288 env = firstenv;
289
290 /* Fixup Memory size on a alignment boundary */
291 ram_size &= ~(RAM_SIZES_ALIGN - 1);
292
293 /* Register Memory */
294 cpu_register_physical_memory(0, ram_size, qemu_ram_alloc(NULL,
295 "mpc8544ds.ram", ram_size));
296
297 /* MPIC */
298 mpic = mpic_init(address_space_mem, MPC8544_MPIC_REGS_BASE,
299 smp_cpus, irqs, NULL);
300
301 if (!mpic) {
302 cpu_abort(env, "MPIC failed to initialize\n");
303 }
304
305 /* Serial */
306 if (serial_hds[0]) {
307 serial_mm_init(address_space_mem, MPC8544_SERIAL0_REGS_BASE,
308 0, mpic[12+26], 399193,
309 serial_hds[0], DEVICE_BIG_ENDIAN);
310 }
311
312 if (serial_hds[1]) {
313 serial_mm_init(address_space_mem, MPC8544_SERIAL1_REGS_BASE,
314 0, mpic[12+26], 399193,
315 serial_hds[0], DEVICE_BIG_ENDIAN);
316 }
317
318 /* General Utility device */
319 sysbus_create_simple("mpc8544-guts", MPC8544_UTIL_BASE, NULL);
320
321 /* PCI */
322 dev = sysbus_create_varargs("e500-pcihost", MPC8544_PCI_REGS_BASE,
323 mpic[pci_irq_nrs[0]], mpic[pci_irq_nrs[1]],
324 mpic[pci_irq_nrs[2]], mpic[pci_irq_nrs[3]],
325 NULL);
326 pci_bus = (PCIBus *)qdev_get_child_bus(dev, "pci.0");
327 if (!pci_bus)
328 printf("couldn't create PCI controller!\n");
329
330 isa_mmio_init(MPC8544_PCI_IO, MPC8544_PCI_IOLEN);
331
332 if (pci_bus) {
333 /* Register network interfaces. */
334 for (i = 0; i < nb_nics; i++) {
335 pci_nic_init_nofail(&nd_table[i], "virtio", NULL);
336 }
337 }
338
339 /* Register spinning region */
340 sysbus_create_simple("e500-spin", MPC8544_SPIN_BASE, NULL);
341
342 /* Load kernel. */
343 if (kernel_filename) {
344 kernel_size = load_uimage(kernel_filename, &entry, &loadaddr, NULL);
345 if (kernel_size < 0) {
346 kernel_size = load_elf(kernel_filename, NULL, NULL, &elf_entry,
347 &elf_lowaddr, NULL, 1, ELF_MACHINE, 0);
348 entry = elf_entry;
349 loadaddr = elf_lowaddr;
350 }
351 /* XXX try again as binary */
352 if (kernel_size < 0) {
353 fprintf(stderr, "qemu: could not load kernel '%s'\n",
354 kernel_filename);
355 exit(1);
356 }
357 }
358
359 /* Load initrd. */
360 if (initrd_filename) {
361 initrd_base = (kernel_size + INITRD_LOAD_PAD) & ~INITRD_PAD_MASK;
362 initrd_size = load_image_targphys(initrd_filename, initrd_base,
363 ram_size - initrd_base);
364
365 if (initrd_size < 0) {
366 fprintf(stderr, "qemu: could not load initial ram disk '%s'\n",
367 initrd_filename);
368 exit(1);
369 }
370 }
371
372 /* If we're loading a kernel directly, we must load the device tree too. */
373 if (kernel_filename) {
374 struct boot_info *boot_info;
375
376 #ifndef CONFIG_FDT
377 cpu_abort(env, "Compiled without FDT support - can't load kernel\n");
378 #endif
379 dt_base = (kernel_size + DTC_LOAD_PAD) & ~DTC_PAD_MASK;
380 if (mpc8544_load_device_tree(env, dt_base, ram_size,
381 initrd_base, initrd_size, kernel_cmdline) < 0) {
382 fprintf(stderr, "couldn't load device tree\n");
383 exit(1);
384 }
385
386 boot_info = env->load_info;
387 boot_info->entry = entry;
388 boot_info->dt_base = dt_base;
389 }
390
391 if (kvm_enabled()) {
392 kvmppc_init();
393 }
394 }
395
396 static QEMUMachine mpc8544ds_machine = {
397 .name = "mpc8544ds",
398 .desc = "mpc8544ds",
399 .init = mpc8544ds_init,
400 .max_cpus = 15,
401 };
402
403 static void mpc8544ds_machine_init(void)
404 {
405 qemu_register_machine(&mpc8544ds_machine);
406 }
407
408 machine_init(mpc8544ds_machine_init);