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			307 lines
		
	
	
	
		
			8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			307 lines
		
	
	
	
		
			8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#ifndef YJIT_CORE_H
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#define YJIT_CORE_H 1
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#include <stddef.h>
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#include <stdint.h>
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#include "yjit_asm.h"
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// Callee-saved regs
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#define REG_CFP R13
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#define REG_EC R12
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#define REG_SP RBX
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// Scratch registers used by YJIT
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#define REG0 RAX
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#define REG0_32 EAX
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#define REG0_8 AL
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#define REG1 RCX
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#define REG1_32 ECX
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// Maximum number of temp value types we keep track of
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#define MAX_TEMP_TYPES 8
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// Maximum number of local variable types we keep track of
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#define MAX_LOCAL_TYPES 8
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// Default versioning context (no type information)
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#define DEFAULT_CTX ( (ctx_t){ 0 } )
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enum yjit_type_enum
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{
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    ETYPE_UNKNOWN = 0,
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    ETYPE_NIL,
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    ETYPE_TRUE,
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    ETYPE_FALSE,
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    ETYPE_FIXNUM,
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    ETYPE_FLONUM,
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    ETYPE_ARRAY,
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    ETYPE_HASH,
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    ETYPE_SYMBOL,
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    ETYPE_STRING
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};
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// Represent the type of a value (local/stack/self) in YJIT
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typedef struct yjit_type_struct
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{
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    // Value is definitely a heap object
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    uint8_t is_heap : 1;
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    // Value is definitely an immediate
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    uint8_t is_imm : 1;
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    // Specific value type, if known
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    uint8_t type : 4;
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} val_type_t;
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STATIC_ASSERT(val_type_size, sizeof(val_type_t) == 1);
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// Unknown type, could be anything, all zeroes
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#define TYPE_UNKNOWN ( (val_type_t){ 0 } )
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// Could be any heap object
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#define TYPE_HEAP ( (val_type_t){ .is_heap = 1 } )
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// Could be any immediate
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#define TYPE_IMM ( (val_type_t){ .is_imm = 1 } )
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#define TYPE_NIL ( (val_type_t){ .is_imm = 1, .type = ETYPE_NIL } )
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#define TYPE_TRUE ( (val_type_t){ .is_imm = 1, .type = ETYPE_TRUE } )
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#define TYPE_FALSE ( (val_type_t){ .is_imm = 1, .type = ETYPE_FALSE } )
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#define TYPE_FIXNUM ( (val_type_t){ .is_imm = 1, .type = ETYPE_FIXNUM } )
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#define TYPE_FLONUM ( (val_type_t){ .is_imm = 1, .type = ETYPE_FLONUM } )
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#define TYPE_STATIC_SYMBOL ( (val_type_t){ .is_imm = 1, .type = ETYPE_SYMBOL } )
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#define TYPE_ARRAY ( (val_type_t){ .is_heap = 1, .type = ETYPE_ARRAY } )
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#define TYPE_HASH ( (val_type_t){ .is_heap = 1, .type = ETYPE_HASH } )
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#define TYPE_STRING ( (val_type_t){ .is_heap = 1, .type = ETYPE_STRING } )
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enum yjit_temp_loc
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{
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    TEMP_STACK = 0,
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    TEMP_SELF,
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    TEMP_LOCAL,     // Local with index
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    //TEMP_CONST,   // Small constant (0, 1, 2, Qnil, Qfalse, Qtrue)
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};
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// Potential mapping of a value on the temporary stack to
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// self, a local variable or constant so that we can track its type
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typedef struct yjit_temp_mapping
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{
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    // Where/how is the value stored?
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    uint8_t kind: 2;
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    // Index of the local variale,
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    // or small non-negative constant in [0, 63]
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    uint8_t idx : 6;
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} temp_mapping_t;
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STATIC_ASSERT(temp_mapping_size, sizeof(temp_mapping_t) == 1);
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// By default, temps are just temps on the stack.
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// Name conflict with an mmap flag. This is a struct instance,
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// so the compiler will check for wrong usage.
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#undef MAP_STACK
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#define MAP_STACK ( (temp_mapping_t) { 0 } )
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// Temp value is actually self
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#define MAP_SELF ( (temp_mapping_t) { .kind = TEMP_SELF } )
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// Represents both the type and mapping
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typedef struct {
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    temp_mapping_t mapping;
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    val_type_t type;
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} temp_type_mapping_t;
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STATIC_ASSERT(temp_type_mapping_size, sizeof(temp_type_mapping_t) == 2);
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// Operand to a bytecode instruction
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typedef struct yjit_insn_opnd
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{
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    // Indicates if the value is self
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    bool is_self;
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    // Index on the temporary stack (for stack operands only)
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    uint16_t idx;
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} insn_opnd_t;
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#define OPND_SELF ( (insn_opnd_t){ .is_self = true } )
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#define OPND_STACK(stack_idx) ( (insn_opnd_t){ .is_self = false, .idx = stack_idx } )
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/**
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Code generation context
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Contains information we can use to optimize code
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*/
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typedef struct yjit_context
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{
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    // Number of values currently on the temporary stack
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    uint16_t stack_size;
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    // Offset of the JIT SP relative to the interpreter SP
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    // This represents how far the JIT's SP is from the "real" SP
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    int16_t sp_offset;
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    // Depth of this block in the sidechain (eg: inline-cache chain)
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    uint8_t chain_depth;
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    // Local variable types we keepp track of
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    val_type_t local_types[MAX_LOCAL_TYPES];
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    // Temporary variable types we keep track of
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    val_type_t temp_types[MAX_TEMP_TYPES];
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    // Type we track for self
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    val_type_t self_type;
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    // Mapping of temp stack entries to types we track
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    temp_mapping_t temp_mapping[MAX_TEMP_TYPES];
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} ctx_t;
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STATIC_ASSERT(yjit_ctx_size, sizeof(ctx_t) <= 32);
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// Tuple of (iseq, idx) used to identify basic blocks
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typedef struct BlockId
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{
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    // Instruction sequence
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    const rb_iseq_t *iseq;
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    // Index in the iseq where the block starts
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    uint32_t idx;
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} blockid_t;
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// Null block id constant
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static const blockid_t BLOCKID_NULL = { 0, 0 };
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/// Branch code shape enumeration
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typedef enum branch_shape
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{
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    SHAPE_NEXT0,  // Target 0 is next
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    SHAPE_NEXT1,  // Target 1 is next
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    SHAPE_DEFAULT // Neither target is next
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} branch_shape_t;
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// Branch code generation function signature
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typedef void (*branchgen_fn)(codeblock_t* cb, uint8_t* target0, uint8_t* target1, uint8_t shape);
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/**
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Store info about an outgoing branch in a code segment
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Note: care must be taken to minimize the size of branch_t objects
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*/
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typedef struct yjit_branch_entry
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{
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    // Block this is attached to
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    struct yjit_block_version *block;
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    // Positions where the generated code starts and ends
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    uint8_t *start_addr;
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    uint8_t *end_addr;
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    // Context right after the branch instruction
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    // Unused for now.
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    // ctx_t src_ctx;
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    // Branch target blocks and their contexts
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    blockid_t targets[2];
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    ctx_t target_ctxs[2];
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    struct yjit_block_version *blocks[2];
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    // Jump target addresses
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    uint8_t *dst_addrs[2];
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    // Branch code generation function
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    branchgen_fn gen_fn;
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    // Shape of the branch
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    branch_shape_t shape : 2;
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} branch_t;
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// In case this block is invalidated, these two pieces of info
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// help to remove all pointers to this block in the system.
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typedef struct {
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    VALUE receiver_klass;
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    VALUE callee_cme;
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} cme_dependency_t;
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typedef rb_darray(cme_dependency_t) cme_dependency_array_t;
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typedef rb_darray(branch_t*) branch_array_t;
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typedef rb_darray(uint32_t) int32_array_t;
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/**
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Basic block version
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Represents a portion of an iseq compiled with a given context
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Note: care must be taken to minimize the size of block_t objects
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*/
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typedef struct yjit_block_version
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{
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    // Bytecode sequence (iseq, idx) this is a version of
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    blockid_t blockid;
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    // Context at the start of the block
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    ctx_t ctx;
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    // Positions where the generated code starts and ends
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    uint8_t *start_addr;
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    uint8_t *end_addr;
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    // List of incoming branches (from predecessors)
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    branch_array_t incoming;
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    // List of outgoing branches (to successors)
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    // Note: these are owned by this block version
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    branch_array_t outgoing;
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    // Offsets for GC managed objects in the mainline code block
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    int32_array_t gc_object_offsets;
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    // CME dependencies of this block, to help to remove all pointers to this
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    // block in the system.
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    cme_dependency_array_t cme_dependencies;
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    // Code address of an exit for `ctx` and `blockid`. Used for block
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    // invalidation.
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    uint8_t *entry_exit;
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    // Index one past the last instruction in the iseq
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    uint32_t end_idx;
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} block_t;
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// Code generation state
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typedef struct JITState
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{
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    // Inline and outlined code blocks we are
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    // currently generating code into
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    codeblock_t* cb;
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    codeblock_t* ocb;
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    // Block version being compiled
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    block_t *block;
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    // Instruction sequence this is associated with
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    const rb_iseq_t *iseq;
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    // Index of the current instruction being compiled
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    uint32_t insn_idx;
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    // Opcode for the instruction being compiled
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    int opcode;
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    // PC of the instruction being compiled
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    VALUE *pc;
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    // Side exit to the instruction being compiled. See :side-exit:.
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    uint8_t *side_exit_for_pc;
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    // Execution context when compilation started
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    // This allows us to peek at run-time values
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    rb_execution_context_t *ec;
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    // Whether we need to record the code address at
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    // the end of this bytecode instruction for global invalidation
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    bool record_boundary_patch_point;
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} jitstate_t;
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#endif // #ifndef YJIT_CORE_H
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