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Avoid generating redundant interpreter exit code after branches
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parent
97cffcf79a
commit
1744c15578
3 changed files with 87 additions and 56 deletions
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@ -173,6 +173,9 @@ ujit_compile_block(const rb_iseq_t *iseq, uint32_t insn_idx, ctx_t* ctx, uint32_
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// Get a pointer to the current write position in the code block
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uint8_t *code_ptr = cb_get_ptr(cb, cb->write_pos);
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// Last operation that was successfully compiled
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opdesc_t* p_last_op = NULL;
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// Initialize JIT state object
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jitstate_t jit = { 0 };
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jit.iseq = iseq;
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@ -187,42 +190,40 @@ ujit_compile_block(const rb_iseq_t *iseq, uint32_t insn_idx, ctx_t* ctx, uint32_
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// Get the current opcode
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int opcode = jit_get_opcode(&jit);
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//fprintf(stderr, "compiling %s\n", insn_name(opcode));
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// Lookup the codegen function for this instruction
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st_data_t st_gen_fn;
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if (!rb_st_lookup(gen_fns, opcode, &st_gen_fn)) {
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//print_int(cb, imm_opnd(num_instrs));
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//print_str(cb, insn_name(opcode));
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st_data_t st_op_desc;
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if (!rb_st_lookup(gen_fns, opcode, &st_op_desc)) {
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break;
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}
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//fprintf(stderr, "compiling %s\n", insn_name(opcode));
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//print_str(cb, insn_name(opcode));
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// Call the code generation function
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codegen_fn gen_fn = (codegen_fn)st_gen_fn;
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if (!gen_fn(&jit, ctx)) {
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opdesc_t* p_desc = (opdesc_t*)st_op_desc;
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bool success = p_desc->gen_fn(&jit, ctx);
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// If we can't compile this instruction
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if (!success) {
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break;
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}
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// Move to the next instruction
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p_last_op = p_desc;
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insn_idx += insn_len(opcode);
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(*num_instrs)++;
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// Ensure we only have one send per region. Our code invalidation mechanism can't
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// invalidate running code and one send could invalidate the other if we had
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// multiple in the same region.
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if (opcode == BIN(opt_send_without_block)) {
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// If this instruction terminates this block
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if (p_desc->is_branch) {
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break;
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}
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}
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//print_str(cb, "exiting to interpreter\n");
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// FIXME: we only need to generate an exit if an instruction fails to compile
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//
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// If the last instruction compiled did not properly terminate the block
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// Generate code to exit to the interpreter
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ujit_gen_exit(&jit, ctx, cb, &encoded[insn_idx]);
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if (!p_last_op || !p_last_op->is_branch) {
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ujit_gen_exit(&jit, ctx, cb, &encoded[insn_idx]);
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}
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if (UJIT_DUMP_MODE >= 2) {
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// Dump list of compiled instrutions
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@ -976,6 +977,21 @@ gen_branchunless(jitstate_t* jit, ctx_t* ctx)
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return true;
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}
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void ujit_reg_op(int opcode, codegen_fn gen_fn, bool is_branch)
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{
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// Check that the op wasn't previously registered
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st_data_t st_desc;
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if (rb_st_lookup(gen_fns, opcode, &st_desc)) {
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rb_bug("op already registered");
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}
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opdesc_t* p_desc = (opdesc_t*)malloc(sizeof(opdesc_t));
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p_desc->gen_fn = gen_fn;
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p_desc->is_branch = is_branch;
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st_insert(gen_fns, (st_data_t)opcode, (st_data_t)p_desc);
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}
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void
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ujit_init_codegen(void)
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{
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@ -991,21 +1007,21 @@ ujit_init_codegen(void)
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gen_fns = rb_st_init_numtable();
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// Map YARV opcodes to the corresponding codegen functions
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st_insert(gen_fns, (st_data_t)BIN(dup), (st_data_t)&gen_dup);
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st_insert(gen_fns, (st_data_t)BIN(nop), (st_data_t)&gen_nop);
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st_insert(gen_fns, (st_data_t)BIN(pop), (st_data_t)&gen_pop);
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st_insert(gen_fns, (st_data_t)BIN(putnil), (st_data_t)&gen_putnil);
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st_insert(gen_fns, (st_data_t)BIN(putobject), (st_data_t)&gen_putobject);
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st_insert(gen_fns, (st_data_t)BIN(putobject_INT2FIX_0_), (st_data_t)&gen_putobject_int2fix);
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st_insert(gen_fns, (st_data_t)BIN(putobject_INT2FIX_1_), (st_data_t)&gen_putobject_int2fix);
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st_insert(gen_fns, (st_data_t)BIN(putself), (st_data_t)&gen_putself);
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st_insert(gen_fns, (st_data_t)BIN(getlocal_WC_0), (st_data_t)&gen_getlocal_wc0);
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st_insert(gen_fns, (st_data_t)BIN(setlocal_WC_0), (st_data_t)&gen_setlocal_wc0);
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st_insert(gen_fns, (st_data_t)BIN(getinstancevariable), (st_data_t)&gen_getinstancevariable);
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st_insert(gen_fns, (st_data_t)BIN(setinstancevariable), (st_data_t)&gen_setinstancevariable);
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st_insert(gen_fns, (st_data_t)BIN(opt_lt), (st_data_t)&gen_opt_lt);
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st_insert(gen_fns, (st_data_t)BIN(opt_minus), (st_data_t)&gen_opt_minus);
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st_insert(gen_fns, (st_data_t)BIN(opt_plus), (st_data_t)&gen_opt_plus);
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//st_insert(gen_fns, (st_data_t)BIN(opt_send_without_block), (st_data_t)&gen_opt_send_without_block);
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st_insert(gen_fns, (st_data_t)BIN(branchunless), (st_data_t)&gen_branchunless);
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ujit_reg_op(BIN(dup), gen_dup, false);
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ujit_reg_op(BIN(nop), gen_nop, false);
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ujit_reg_op(BIN(pop), gen_pop, false);
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ujit_reg_op(BIN(putnil), gen_putnil, false);
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ujit_reg_op(BIN(putobject), gen_putobject, false);
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ujit_reg_op(BIN(putobject_INT2FIX_0_), gen_putobject_int2fix, false);
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ujit_reg_op(BIN(putobject_INT2FIX_1_), gen_putobject_int2fix, false);
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ujit_reg_op(BIN(putself), gen_putself, false);
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ujit_reg_op(BIN(getlocal_WC_0), gen_getlocal_wc0, false);
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ujit_reg_op(BIN(setlocal_WC_0), gen_setlocal_wc0, false);
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ujit_reg_op(BIN(getinstancevariable), gen_getinstancevariable, false);
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ujit_reg_op(BIN(setinstancevariable), gen_setinstancevariable, false);
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ujit_reg_op(BIN(opt_lt), gen_opt_lt, false);
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ujit_reg_op(BIN(opt_minus), gen_opt_minus, false);
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ujit_reg_op(BIN(opt_plus), gen_opt_plus, false);
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//ujit_reg_op(BIN(opt_send_without_block), gen_opt_send_without_block);
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ujit_reg_op(BIN(branchunless), gen_branchunless, true);
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}
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@ -28,6 +28,18 @@ typedef struct JITState
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// Code generation function signature
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typedef bool (*codegen_fn)(jitstate_t* jit, ctx_t* ctx);
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// Meta-information associated with a given opcode
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typedef struct OpDesc
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{
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// Code generation function
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codegen_fn gen_fn;
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// Indicates that this is a branch instruction
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// which terminates a block
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bool is_branch;
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} opdesc_t;
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uint8_t* ujit_compile_entry(const rb_iseq_t *iseq, uint32_t insn_idx);
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uint8_t *ujit_compile_block(const rb_iseq_t *iseq, uint32_t insn_idx, ctx_t* ctx, uint32_t* num_instrs);
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47
ujit_core.c
47
ujit_core.c
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@ -69,28 +69,6 @@ ctx_stack_opnd(ctx_t* ctx, int32_t idx)
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return opnd;
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}
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int blockid_cmp(st_data_t arg0, st_data_t arg1)
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{
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const blockid_t *block0 = (const blockid_t*)arg0;
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const blockid_t *block1 = (const blockid_t*)arg1;
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return block0->iseq == block1->iseq && block0->idx == block1->idx;
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}
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st_index_t blockid_hash(st_data_t arg)
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{
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const blockid_t *blockid = (const blockid_t*)arg;
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st_index_t hash0 = st_numhash((st_data_t)blockid->iseq);
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st_index_t hash1 = st_numhash((st_data_t)(uint64_t)blockid->idx);
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// Use XOR to combine the hashes
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return hash0 ^ hash1;
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}
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static const struct st_hash_type hashtype_blockid = {
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blockid_cmp,
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blockid_hash,
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};
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// Retrieve a basic block version for an (iseq, idx) tuple
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uint8_t* find_block_version(blockid_t block)
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{
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@ -113,10 +91,13 @@ uint8_t* branch_stub_hit(uint32_t branch_idx, uint32_t target_idx)
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blockid_t target = branch->targets[target_idx];
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//fprintf(stderr, "\nstub hit, branch idx: %d, target idx: %d\n", branch_idx, target_idx);
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//fprintf(stderr, "cb->write_pos=%ld\n", cb->write_pos);
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//fprintf(stderr, "branch->end_pos=%d\n", branch->end_pos);
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// If either of the target blocks will be placed next
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if (cb->write_pos == branch->end_pos)
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{
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//fprintf(stderr, "target idx %d will be placed next\n", target_idx);
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branch->shape = (uint8_t)target_idx;
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// Rewrite the branch with the new, potentially more compact shape
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@ -222,6 +203,28 @@ void gen_branch(ctx_t* ctx, blockid_t target0, blockid_t target1, branchgen_fn g
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num_branches++;
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}
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int blockid_cmp(st_data_t arg0, st_data_t arg1)
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{
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const blockid_t *block0 = (const blockid_t*)arg0;
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const blockid_t *block1 = (const blockid_t*)arg1;
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return block0->iseq == block1->iseq && block0->idx == block1->idx;
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}
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st_index_t blockid_hash(st_data_t arg)
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{
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const blockid_t *blockid = (const blockid_t*)arg;
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st_index_t hash0 = st_numhash((st_data_t)blockid->iseq);
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st_index_t hash1 = st_numhash((st_data_t)(uint64_t)blockid->idx);
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// Use XOR to combine the hashes
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return hash0 ^ hash1;
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}
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static const struct st_hash_type hashtype_blockid = {
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blockid_cmp,
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blockid_hash,
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};
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void
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ujit_init_core(void)
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{
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