Sparc: avoid AREG0 wrappers for memory access helpers
Adjust generation of load and store templates so that the functions take a parameter for CPUState instead of relying on global env. Remove wrappers. Move remaining memory helpers to ldst_helper.c. Signed-off-by: Blue Swirl <blauwirbel@gmail.com>
This commit is contained in:
parent
fe8d8f0f1c
commit
0184e266cb
@ -80,7 +80,10 @@ libobj-y = exec.o translate-all.o cpu-exec.o translate.o
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libobj-y += tcg/tcg.o tcg/optimize.o
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libobj-$(CONFIG_TCG_INTERPRETER) += tci.o
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libobj-y += fpu/softfloat.o
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libobj-y += op_helper.o helper.o
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ifneq ($(TARGET_BASE_ARCH), sparc)
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libobj-y += op_helper.o
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endif
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libobj-y += helper.o
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ifeq ($(TARGET_BASE_ARCH), i386)
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libobj-y += cpuid.o
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endif
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@ -101,9 +104,12 @@ tci-dis.o: QEMU_CFLAGS += -I$(SRC_PATH)/tcg -I$(SRC_PATH)/tcg/tci
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$(libobj-y): $(GENERATED_HEADERS)
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# HELPER_CFLAGS is used for all the code compiled with static register
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# HELPER_CFLAGS is used for all the legacy code compiled with static register
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# variables
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op_helper.o user-exec.o: QEMU_CFLAGS += $(HELPER_CFLAGS)
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ifneq ($(TARGET_BASE_ARCH), sparc)
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op_helper.o: QEMU_CFLAGS += $(HELPER_CFLAGS)
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endif
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user-exec.o: QEMU_CFLAGS += $(HELPER_CFLAGS)
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# Note: this is a workaround. The real fix is to avoid compiling
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# cpu_signal_handler() in user-exec.c.
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configure
vendored
7
configure
vendored
@ -3606,6 +3606,13 @@ case "$target_arch2" in
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exit 1
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;;
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esac
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case "$target_arch2" in
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sparc*)
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echo "CONFIG_TCG_PASS_AREG0=y" >> $config_target_mak
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;;
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esac
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echo "TARGET_SHORT_ALIGNMENT=$target_short_alignment" >> $config_target_mak
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echo "TARGET_INT_ALIGNMENT=$target_int_alignment" >> $config_target_mak
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echo "TARGET_LONG_ALIGNMENT=$target_long_alignment" >> $config_target_mak
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@ -587,89 +587,6 @@ void cpu_unassigned_access(CPUSPARCState *env1, target_phys_addr_t addr,
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target_phys_addr_t cpu_get_phys_page_nofault(CPUSPARCState *env, target_ulong addr,
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int mmu_idx);
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#endif
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#define WRAP_LD(rettype, fn) \
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rettype cpu_ ## fn (CPUSPARCState *env1, target_ulong addr)
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WRAP_LD(uint32_t, ldub_kernel);
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WRAP_LD(uint32_t, lduw_kernel);
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WRAP_LD(uint32_t, ldl_kernel);
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WRAP_LD(uint64_t, ldq_kernel);
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WRAP_LD(uint32_t, ldub_user);
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WRAP_LD(uint32_t, lduw_user);
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WRAP_LD(uint32_t, ldl_user);
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WRAP_LD(uint64_t, ldq_user);
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WRAP_LD(uint64_t, ldfq_kernel);
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WRAP_LD(uint64_t, ldfq_user);
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#ifdef TARGET_SPARC64
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WRAP_LD(uint32_t, ldub_hypv);
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WRAP_LD(uint32_t, lduw_hypv);
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WRAP_LD(uint32_t, ldl_hypv);
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WRAP_LD(uint64_t, ldq_hypv);
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WRAP_LD(uint64_t, ldfq_hypv);
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WRAP_LD(uint32_t, ldub_nucleus);
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WRAP_LD(uint32_t, lduw_nucleus);
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WRAP_LD(uint32_t, ldl_nucleus);
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WRAP_LD(uint64_t, ldq_nucleus);
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WRAP_LD(uint32_t, ldub_kernel_secondary);
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WRAP_LD(uint32_t, lduw_kernel_secondary);
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WRAP_LD(uint32_t, ldl_kernel_secondary);
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WRAP_LD(uint64_t, ldq_kernel_secondary);
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WRAP_LD(uint32_t, ldub_user_secondary);
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WRAP_LD(uint32_t, lduw_user_secondary);
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WRAP_LD(uint32_t, ldl_user_secondary);
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WRAP_LD(uint64_t, ldq_user_secondary);
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#endif
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#undef WRAP_LD
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#define WRAP_ST(datatype, fn) \
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void cpu_ ## fn (CPUSPARCState *env1, target_ulong addr, datatype val)
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WRAP_ST(uint32_t, stb_kernel);
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WRAP_ST(uint32_t, stw_kernel);
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WRAP_ST(uint32_t, stl_kernel);
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WRAP_ST(uint64_t, stq_kernel);
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WRAP_ST(uint32_t, stb_user);
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WRAP_ST(uint32_t, stw_user);
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WRAP_ST(uint32_t, stl_user);
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WRAP_ST(uint64_t, stq_user);
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WRAP_ST(uint64_t, stfq_kernel);
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WRAP_ST(uint64_t, stfq_user);
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#ifdef TARGET_SPARC64
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WRAP_ST(uint32_t, stb_hypv);
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WRAP_ST(uint32_t, stw_hypv);
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WRAP_ST(uint32_t, stl_hypv);
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WRAP_ST(uint64_t, stq_hypv);
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WRAP_ST(uint64_t, stfq_hypv);
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WRAP_ST(uint32_t, stb_nucleus);
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WRAP_ST(uint32_t, stw_nucleus);
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WRAP_ST(uint32_t, stl_nucleus);
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WRAP_ST(uint64_t, stq_nucleus);
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WRAP_ST(uint32_t, stb_kernel_secondary);
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WRAP_ST(uint32_t, stw_kernel_secondary);
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WRAP_ST(uint32_t, stl_kernel_secondary);
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WRAP_ST(uint64_t, stq_kernel_secondary);
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WRAP_ST(uint32_t, stb_user_secondary);
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WRAP_ST(uint32_t, stw_user_secondary);
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WRAP_ST(uint32_t, stl_user_secondary);
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WRAP_ST(uint64_t, stq_user_secondary);
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#endif
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#undef WRAP_ST
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#endif
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int cpu_sparc_signal_handler(int host_signum, void *pinfo, void *puc);
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@ -782,6 +699,8 @@ uint64_t cpu_tick_get_count(CPUTimer *timer);
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void cpu_tick_set_limit(CPUTimer *timer, uint64_t limit);
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trap_state* cpu_tsptr(CPUSPARCState* env);
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#endif
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void do_unaligned_access(CPUSPARCState *env, target_ulong addr, int is_write,
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int is_user, void *retaddr);
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#define TB_FLAG_FPU_ENABLED (1 << 4)
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#define TB_FLAG_AM_ENABLED (1 << 5)
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@ -64,6 +64,24 @@
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#define QT0 (env->qt0)
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#define QT1 (env->qt1)
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#if !defined(CONFIG_USER_ONLY)
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#include "softmmu_exec.h"
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#define MMUSUFFIX _mmu
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#define ALIGNED_ONLY
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#define SHIFT 0
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#include "softmmu_template.h"
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#define SHIFT 1
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#include "softmmu_template.h"
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#define SHIFT 2
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#include "softmmu_template.h"
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#define SHIFT 3
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#include "softmmu_template.h"
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#endif
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#if defined(TARGET_SPARC64) && !defined(CONFIG_USER_ONLY)
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/* Calculates TSB pointer value for fault page size 8k or 64k */
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static uint64_t ultrasparc_tsb_pointer(uint64_t tsb_register,
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@ -523,17 +541,17 @@ uint64_t helper_ld_asi(CPUSPARCState *env, target_ulong addr, int asi, int size,
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case 9: /* Supervisor code access */
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switch (size) {
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case 1:
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ret = ldub_code(addr);
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ret = cpu_ldub_code(env, addr);
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break;
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case 2:
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ret = lduw_code(addr);
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ret = cpu_lduw_code(env, addr);
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break;
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default:
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case 4:
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ret = ldl_code(addr);
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ret = cpu_ldl_code(env, addr);
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break;
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case 8:
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ret = ldq_code(addr);
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ret = cpu_ldq_code(env, addr);
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break;
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}
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break;
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@ -2355,3 +2373,50 @@ void cpu_unassigned_access(CPUSPARCState *env, target_phys_addr_t addr,
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}
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#endif
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#endif
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#if !defined(CONFIG_USER_ONLY)
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/* XXX: make it generic ? */
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static void cpu_restore_state2(CPUSPARCState *env, void *retaddr)
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{
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TranslationBlock *tb;
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unsigned long pc;
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if (retaddr) {
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/* now we have a real cpu fault */
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pc = (unsigned long)retaddr;
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tb = tb_find_pc(pc);
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if (tb) {
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/* the PC is inside the translated code. It means that we have
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a virtual CPU fault */
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cpu_restore_state(tb, env, pc);
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}
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}
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}
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void do_unaligned_access(CPUSPARCState *env, target_ulong addr, int is_write,
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int is_user, void *retaddr)
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{
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#ifdef DEBUG_UNALIGNED
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printf("Unaligned access to 0x" TARGET_FMT_lx " from 0x" TARGET_FMT_lx
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"\n", addr, env->pc);
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#endif
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cpu_restore_state2(env, retaddr);
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helper_raise_exception(env, TT_UNALIGNED);
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}
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/* try to fill the TLB and return an exception if error. If retaddr is
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NULL, it means that the function was called in C code (i.e. not
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from generated code or from helper.c) */
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/* XXX: fix it to restore all registers */
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void tlb_fill(CPUSPARCState *env, target_ulong addr, int is_write, int mmu_idx,
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void *retaddr)
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{
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int ret;
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ret = cpu_sparc_handle_mmu_fault(env, addr, is_write, mmu_idx);
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if (ret) {
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cpu_restore_state2(env, retaddr);
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cpu_loop_exit(env);
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}
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}
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#endif
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@ -1,174 +0,0 @@
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#include "cpu.h"
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#include "dyngen-exec.h"
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#include "helper.h"
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#if !defined(CONFIG_USER_ONLY)
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#include "softmmu_exec.h"
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static void do_unaligned_access(target_ulong addr, int is_write, int is_user,
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void *retaddr);
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#define MMUSUFFIX _mmu
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#define ALIGNED_ONLY
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#define SHIFT 0
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#include "softmmu_template.h"
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#define SHIFT 1
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#include "softmmu_template.h"
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#define SHIFT 2
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#include "softmmu_template.h"
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#define SHIFT 3
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#include "softmmu_template.h"
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/* XXX: make it generic ? */
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static void cpu_restore_state2(void *retaddr)
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{
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TranslationBlock *tb;
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unsigned long pc;
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if (retaddr) {
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/* now we have a real cpu fault */
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pc = (unsigned long)retaddr;
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tb = tb_find_pc(pc);
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if (tb) {
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/* the PC is inside the translated code. It means that we have
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a virtual CPU fault */
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cpu_restore_state(tb, env, pc);
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}
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}
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}
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static void do_unaligned_access(target_ulong addr, int is_write, int is_user,
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void *retaddr)
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{
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#ifdef DEBUG_UNALIGNED
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printf("Unaligned access to 0x" TARGET_FMT_lx " from 0x" TARGET_FMT_lx
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"\n", addr, env->pc);
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#endif
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cpu_restore_state2(retaddr);
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helper_raise_exception(env, TT_UNALIGNED);
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}
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/* try to fill the TLB and return an exception if error. If retaddr is
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NULL, it means that the function was called in C code (i.e. not
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from generated code or from helper.c) */
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/* XXX: fix it to restore all registers */
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void tlb_fill(CPUSPARCState *env1, target_ulong addr, int is_write, int mmu_idx,
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void *retaddr)
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{
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int ret;
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CPUSPARCState *saved_env;
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saved_env = env;
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env = env1;
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ret = cpu_sparc_handle_mmu_fault(env, addr, is_write, mmu_idx);
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if (ret) {
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cpu_restore_state2(retaddr);
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cpu_loop_exit(env);
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}
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env = saved_env;
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}
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#define WRAP_LD(rettype, fn) \
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rettype cpu_ ## fn (CPUSPARCState *env1, target_ulong addr) \
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{ \
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CPUSPARCState *saved_env; \
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rettype ret; \
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\
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saved_env = env; \
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env = env1; \
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ret = fn(addr); \
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env = saved_env; \
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return ret; \
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}
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WRAP_LD(uint32_t, ldub_kernel)
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WRAP_LD(uint32_t, lduw_kernel)
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WRAP_LD(uint32_t, ldl_kernel)
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WRAP_LD(uint64_t, ldq_kernel)
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WRAP_LD(uint32_t, ldub_user)
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WRAP_LD(uint32_t, lduw_user)
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WRAP_LD(uint32_t, ldl_user)
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WRAP_LD(uint64_t, ldq_user)
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WRAP_LD(uint64_t, ldfq_kernel)
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WRAP_LD(uint64_t, ldfq_user)
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#ifdef TARGET_SPARC64
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WRAP_LD(uint32_t, ldub_hypv)
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WRAP_LD(uint32_t, lduw_hypv)
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WRAP_LD(uint32_t, ldl_hypv)
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WRAP_LD(uint64_t, ldq_hypv)
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WRAP_LD(uint64_t, ldfq_hypv)
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WRAP_LD(uint32_t, ldub_nucleus)
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WRAP_LD(uint32_t, lduw_nucleus)
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WRAP_LD(uint32_t, ldl_nucleus)
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WRAP_LD(uint64_t, ldq_nucleus)
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WRAP_LD(uint32_t, ldub_kernel_secondary)
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WRAP_LD(uint32_t, lduw_kernel_secondary)
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WRAP_LD(uint32_t, ldl_kernel_secondary)
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WRAP_LD(uint64_t, ldq_kernel_secondary)
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WRAP_LD(uint32_t, ldub_user_secondary)
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WRAP_LD(uint32_t, lduw_user_secondary)
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WRAP_LD(uint32_t, ldl_user_secondary)
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WRAP_LD(uint64_t, ldq_user_secondary)
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#endif
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#undef WRAP_LD
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#define WRAP_ST(datatype, fn) \
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void cpu_ ## fn (CPUSPARCState *env1, target_ulong addr, datatype val) \
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{ \
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CPUSPARCState *saved_env; \
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\
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saved_env = env; \
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env = env1; \
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fn(addr, val); \
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env = saved_env; \
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}
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WRAP_ST(uint32_t, stb_kernel)
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WRAP_ST(uint32_t, stw_kernel)
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WRAP_ST(uint32_t, stl_kernel)
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WRAP_ST(uint64_t, stq_kernel)
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WRAP_ST(uint32_t, stb_user)
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WRAP_ST(uint32_t, stw_user)
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WRAP_ST(uint32_t, stl_user)
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WRAP_ST(uint64_t, stq_user)
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WRAP_ST(uint64_t, stfq_kernel)
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WRAP_ST(uint64_t, stfq_user)
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#ifdef TARGET_SPARC64
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WRAP_ST(uint32_t, stb_hypv)
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WRAP_ST(uint32_t, stw_hypv)
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WRAP_ST(uint32_t, stl_hypv)
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WRAP_ST(uint64_t, stq_hypv)
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WRAP_ST(uint64_t, stfq_hypv)
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WRAP_ST(uint32_t, stb_nucleus)
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WRAP_ST(uint32_t, stw_nucleus)
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WRAP_ST(uint32_t, stl_nucleus)
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WRAP_ST(uint64_t, stq_nucleus)
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WRAP_ST(uint32_t, stb_kernel_secondary)
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WRAP_ST(uint32_t, stw_kernel_secondary)
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WRAP_ST(uint32_t, stl_kernel_secondary)
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WRAP_ST(uint64_t, stq_kernel_secondary)
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WRAP_ST(uint32_t, stb_user_secondary)
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WRAP_ST(uint32_t, stw_user_secondary)
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WRAP_ST(uint32_t, stl_user_secondary)
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WRAP_ST(uint64_t, stq_user_secondary)
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#endif
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#undef WRAP_ST
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#endif
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@ -2373,9 +2373,9 @@ static void gen_faligndata(TCGv dst, TCGv gsr, TCGv s1, TCGv s2)
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goto nfpu_insn;
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/* before an instruction, dc->pc must be static */
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static void disas_sparc_insn(DisasContext * dc)
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static void disas_sparc_insn(DisasContext * dc, unsigned int insn)
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{
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unsigned int insn, opc, rs1, rs2, rd;
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unsigned int opc, rs1, rs2, rd;
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TCGv cpu_src1, cpu_src2, cpu_tmp1, cpu_tmp2;
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TCGv_i32 cpu_src1_32, cpu_src2_32, cpu_dst_32;
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TCGv_i64 cpu_src1_64, cpu_src2_64, cpu_dst_64;
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@ -2383,7 +2383,7 @@ static void disas_sparc_insn(DisasContext * dc)
|
||||
|
||||
if (unlikely(qemu_loglevel_mask(CPU_LOG_TB_OP)))
|
||||
tcg_gen_debug_insn_start(dc->pc);
|
||||
insn = ldl_code(dc->pc);
|
||||
|
||||
opc = GET_FIELD(insn, 0, 1);
|
||||
|
||||
rd = GET_FIELD(insn, 2, 6);
|
||||
@ -5240,6 +5240,7 @@ static inline void gen_intermediate_code_internal(TranslationBlock * tb,
|
||||
int j, lj = -1;
|
||||
int num_insns;
|
||||
int max_insns;
|
||||
unsigned int insn;
|
||||
|
||||
memset(dc, 0, sizeof(DisasContext));
|
||||
dc->tb = tb;
|
||||
@ -5299,7 +5300,8 @@ static inline void gen_intermediate_code_internal(TranslationBlock * tb,
|
||||
if (num_insns + 1 == max_insns && (tb->cflags & CF_LAST_IO))
|
||||
gen_io_start();
|
||||
last_pc = dc->pc;
|
||||
disas_sparc_insn(dc);
|
||||
insn = cpu_ldl_code(env, dc->pc);
|
||||
disas_sparc_insn(dc, insn);
|
||||
num_insns++;
|
||||
|
||||
if (dc->is_br)
|
||||
|
Loading…
Reference in New Issue
Block a user