]> git.proxmox.com Git - mirror_qemu.git/blob - target-lm32/cpu.c
c157f529852abf786b79bc955443ebd3294195f7
[mirror_qemu.git] / target-lm32 / cpu.c
1 /*
2 * QEMU LatticeMico32 CPU
3 *
4 * Copyright (c) 2012 SUSE LINUX Products GmbH
5 *
6 * This library is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License as published by the Free Software Foundation; either
9 * version 2.1 of the License, or (at your option) any later version.
10 *
11 * This library is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * Lesser General Public License for more details.
15 *
16 * You should have received a copy of the GNU Lesser General Public
17 * License along with this library; if not, see
18 * <http://www.gnu.org/licenses/lgpl-2.1.html>
19 */
20
21 #include "cpu.h"
22 #include "qemu-common.h"
23
24
25 static void lm32_cpu_set_pc(CPUState *cs, vaddr value)
26 {
27 LM32CPU *cpu = LM32_CPU(cs);
28
29 cpu->env.pc = value;
30 }
31
32 /* Sort alphabetically by type name. */
33 static gint lm32_cpu_list_compare(gconstpointer a, gconstpointer b)
34 {
35 ObjectClass *class_a = (ObjectClass *)a;
36 ObjectClass *class_b = (ObjectClass *)b;
37 const char *name_a, *name_b;
38
39 name_a = object_class_get_name(class_a);
40 name_b = object_class_get_name(class_b);
41 return strcmp(name_a, name_b);
42 }
43
44 static void lm32_cpu_list_entry(gpointer data, gpointer user_data)
45 {
46 ObjectClass *oc = data;
47 CPUListState *s = user_data;
48 const char *typename = object_class_get_name(oc);
49 char *name;
50
51 name = g_strndup(typename, strlen(typename) - strlen("-" TYPE_LM32_CPU));
52 (*s->cpu_fprintf)(s->file, " %s\n", name);
53 g_free(name);
54 }
55
56
57 void lm32_cpu_list(FILE *f, fprintf_function cpu_fprintf)
58 {
59 CPUListState s = {
60 .file = f,
61 .cpu_fprintf = cpu_fprintf,
62 };
63 GSList *list;
64
65 list = object_class_get_list(TYPE_LM32_CPU, false);
66 list = g_slist_sort(list, lm32_cpu_list_compare);
67 (*cpu_fprintf)(f, "Available CPUs:\n");
68 g_slist_foreach(list, lm32_cpu_list_entry, &s);
69 g_slist_free(list);
70 }
71
72 static void lm32_cpu_init_cfg_reg(LM32CPU *cpu)
73 {
74 CPULM32State *env = &cpu->env;
75 uint32_t cfg = 0;
76
77 if (cpu->features & LM32_FEATURE_MULTIPLY) {
78 cfg |= CFG_M;
79 }
80
81 if (cpu->features & LM32_FEATURE_DIVIDE) {
82 cfg |= CFG_D;
83 }
84
85 if (cpu->features & LM32_FEATURE_SHIFT) {
86 cfg |= CFG_S;
87 }
88
89 if (cpu->features & LM32_FEATURE_SIGN_EXTEND) {
90 cfg |= CFG_X;
91 }
92
93 if (cpu->features & LM32_FEATURE_I_CACHE) {
94 cfg |= CFG_IC;
95 }
96
97 if (cpu->features & LM32_FEATURE_D_CACHE) {
98 cfg |= CFG_DC;
99 }
100
101 if (cpu->features & LM32_FEATURE_CYCLE_COUNT) {
102 cfg |= CFG_CC;
103 }
104
105 cfg |= (cpu->num_interrupts << CFG_INT_SHIFT);
106 cfg |= (cpu->num_breakpoints << CFG_BP_SHIFT);
107 cfg |= (cpu->num_watchpoints << CFG_WP_SHIFT);
108 cfg |= (cpu->revision << CFG_REV_SHIFT);
109
110 env->cfg = cfg;
111 }
112
113 static bool lm32_cpu_has_work(CPUState *cs)
114 {
115 return cs->interrupt_request & CPU_INTERRUPT_HARD;
116 }
117
118 /* CPUClass::reset() */
119 static void lm32_cpu_reset(CPUState *s)
120 {
121 LM32CPU *cpu = LM32_CPU(s);
122 LM32CPUClass *lcc = LM32_CPU_GET_CLASS(cpu);
123 CPULM32State *env = &cpu->env;
124
125 lcc->parent_reset(s);
126
127 /* reset cpu state */
128 memset(env, 0, offsetof(CPULM32State, breakpoints));
129
130 lm32_cpu_init_cfg_reg(cpu);
131 tlb_flush(env, 1);
132 }
133
134 static void lm32_cpu_realizefn(DeviceState *dev, Error **errp)
135 {
136 CPUState *cs = CPU(dev);
137 LM32CPUClass *lcc = LM32_CPU_GET_CLASS(dev);
138
139 cpu_reset(cs);
140
141 qemu_init_vcpu(cs);
142
143 lcc->parent_realize(dev, errp);
144 }
145
146 static void lm32_cpu_initfn(Object *obj)
147 {
148 CPUState *cs = CPU(obj);
149 LM32CPU *cpu = LM32_CPU(obj);
150 CPULM32State *env = &cpu->env;
151 static bool tcg_initialized;
152
153 cs->env_ptr = env;
154 cpu_exec_init(env);
155
156 env->flags = 0;
157
158 if (tcg_enabled() && !tcg_initialized) {
159 tcg_initialized = true;
160 lm32_translate_init();
161 cpu_set_debug_excp_handler(lm32_debug_excp_handler);
162 }
163 }
164
165 static void lm32_basic_cpu_initfn(Object *obj)
166 {
167 LM32CPU *cpu = LM32_CPU(obj);
168
169 cpu->revision = 3;
170 cpu->num_interrupts = 32;
171 cpu->num_breakpoints = 4;
172 cpu->num_watchpoints = 4;
173 cpu->features = LM32_FEATURE_SHIFT
174 | LM32_FEATURE_SIGN_EXTEND
175 | LM32_FEATURE_CYCLE_COUNT;
176 }
177
178 static void lm32_standard_cpu_initfn(Object *obj)
179 {
180 LM32CPU *cpu = LM32_CPU(obj);
181
182 cpu->revision = 3;
183 cpu->num_interrupts = 32;
184 cpu->num_breakpoints = 4;
185 cpu->num_watchpoints = 4;
186 cpu->features = LM32_FEATURE_MULTIPLY
187 | LM32_FEATURE_DIVIDE
188 | LM32_FEATURE_SHIFT
189 | LM32_FEATURE_SIGN_EXTEND
190 | LM32_FEATURE_I_CACHE
191 | LM32_FEATURE_CYCLE_COUNT;
192 }
193
194 static void lm32_full_cpu_initfn(Object *obj)
195 {
196 LM32CPU *cpu = LM32_CPU(obj);
197
198 cpu->revision = 3;
199 cpu->num_interrupts = 32;
200 cpu->num_breakpoints = 4;
201 cpu->num_watchpoints = 4;
202 cpu->features = LM32_FEATURE_MULTIPLY
203 | LM32_FEATURE_DIVIDE
204 | LM32_FEATURE_SHIFT
205 | LM32_FEATURE_SIGN_EXTEND
206 | LM32_FEATURE_I_CACHE
207 | LM32_FEATURE_D_CACHE
208 | LM32_FEATURE_CYCLE_COUNT;
209 }
210
211 typedef struct LM32CPUInfo {
212 const char *name;
213 void (*initfn)(Object *obj);
214 } LM32CPUInfo;
215
216 static const LM32CPUInfo lm32_cpus[] = {
217 {
218 .name = "lm32-basic",
219 .initfn = lm32_basic_cpu_initfn,
220 },
221 {
222 .name = "lm32-standard",
223 .initfn = lm32_standard_cpu_initfn,
224 },
225 {
226 .name = "lm32-full",
227 .initfn = lm32_full_cpu_initfn,
228 },
229 };
230
231 static ObjectClass *lm32_cpu_class_by_name(const char *cpu_model)
232 {
233 ObjectClass *oc;
234 char *typename;
235
236 if (cpu_model == NULL) {
237 return NULL;
238 }
239
240 typename = g_strdup_printf("%s-" TYPE_LM32_CPU, cpu_model);
241 oc = object_class_by_name(typename);
242 g_free(typename);
243 if (oc != NULL && (!object_class_dynamic_cast(oc, TYPE_LM32_CPU) ||
244 object_class_is_abstract(oc))) {
245 oc = NULL;
246 }
247 return oc;
248 }
249
250 static void lm32_cpu_class_init(ObjectClass *oc, void *data)
251 {
252 LM32CPUClass *lcc = LM32_CPU_CLASS(oc);
253 CPUClass *cc = CPU_CLASS(oc);
254 DeviceClass *dc = DEVICE_CLASS(oc);
255
256 lcc->parent_realize = dc->realize;
257 dc->realize = lm32_cpu_realizefn;
258
259 lcc->parent_reset = cc->reset;
260 cc->reset = lm32_cpu_reset;
261
262 cc->class_by_name = lm32_cpu_class_by_name;
263 cc->has_work = lm32_cpu_has_work;
264 cc->do_interrupt = lm32_cpu_do_interrupt;
265 cc->dump_state = lm32_cpu_dump_state;
266 cc->set_pc = lm32_cpu_set_pc;
267 cc->gdb_read_register = lm32_cpu_gdb_read_register;
268 cc->gdb_write_register = lm32_cpu_gdb_write_register;
269 #ifndef CONFIG_USER_ONLY
270 cc->get_phys_page_debug = lm32_cpu_get_phys_page_debug;
271 cc->vmsd = &vmstate_lm32_cpu;
272 #endif
273 cc->gdb_num_core_regs = 32 + 7;
274 }
275
276 static void lm32_register_cpu_type(const LM32CPUInfo *info)
277 {
278 TypeInfo type_info = {
279 .parent = TYPE_LM32_CPU,
280 .instance_init = info->initfn,
281 };
282
283 type_info.name = g_strdup_printf("%s-" TYPE_LM32_CPU, info->name);
284 type_register(&type_info);
285 g_free((void *)type_info.name);
286 }
287
288 static const TypeInfo lm32_cpu_type_info = {
289 .name = TYPE_LM32_CPU,
290 .parent = TYPE_CPU,
291 .instance_size = sizeof(LM32CPU),
292 .instance_init = lm32_cpu_initfn,
293 .abstract = true,
294 .class_size = sizeof(LM32CPUClass),
295 .class_init = lm32_cpu_class_init,
296 };
297
298 static void lm32_cpu_register_types(void)
299 {
300 int i;
301
302 type_register_static(&lm32_cpu_type_info);
303 for (i = 0; i < ARRAY_SIZE(lm32_cpus); i++) {
304 lm32_register_cpu_type(&lm32_cpus[i]);
305 }
306 }
307
308 type_init(lm32_cpu_register_types)