mirror of https://github.com/python/cpython
356 lines
12 KiB
C
356 lines
12 KiB
C
#ifndef Py_INTERNAL_CODE_H
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#define Py_INTERNAL_CODE_H
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#ifdef __cplusplus
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extern "C" {
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#endif
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/* PEP 659
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* Specialization and quickening structs and helper functions
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*/
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typedef struct {
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int32_t cache_count;
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int32_t _; /* Force 8 byte size */
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} _PyEntryZero;
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typedef struct {
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uint8_t original_oparg;
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uint8_t counter;
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uint16_t index;
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uint32_t version;
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} _PyAdaptiveEntry;
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typedef struct {
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uint32_t tp_version;
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uint32_t dk_version_or_hint;
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} _PyAttrCache;
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typedef struct {
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uint32_t module_keys_version;
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uint32_t builtin_keys_version;
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} _PyLoadGlobalCache;
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typedef struct {
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/* Borrowed ref in LOAD_METHOD */
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PyObject *obj;
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} _PyObjectCache;
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typedef struct {
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uint32_t func_version;
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uint16_t min_args;
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uint16_t defaults_len;
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} _PyCallCache;
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/* Add specialized versions of entries to this union.
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*
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* Do not break the invariant: sizeof(SpecializedCacheEntry) == 8
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* Preserving this invariant is necessary because:
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- If any one form uses more space, then all must and on 64 bit machines
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this is likely to double the memory consumption of caches
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- The function for calculating the offset of caches assumes a 4:1
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cache:instruction size ratio. Changing that would need careful
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analysis to choose a new function.
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*/
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typedef union {
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_PyEntryZero zero;
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_PyAdaptiveEntry adaptive;
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_PyAttrCache attr;
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_PyLoadGlobalCache load_global;
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_PyObjectCache obj;
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_PyCallCache call;
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} SpecializedCacheEntry;
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#define INSTRUCTIONS_PER_ENTRY (sizeof(SpecializedCacheEntry)/sizeof(_Py_CODEUNIT))
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/* Maximum size of code to quicken, in code units. */
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#define MAX_SIZE_TO_QUICKEN 5000
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typedef union _cache_or_instruction {
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_Py_CODEUNIT code[1];
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SpecializedCacheEntry entry;
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} SpecializedCacheOrInstruction;
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/* Get pointer to the nth cache entry, from the first instruction and n.
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* Cache entries are indexed backwards, with [count-1] first in memory, and [0] last.
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* The zeroth entry immediately precedes the instructions.
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*/
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static inline SpecializedCacheEntry *
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_GetSpecializedCacheEntry(const _Py_CODEUNIT *first_instr, Py_ssize_t n)
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{
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SpecializedCacheOrInstruction *last_cache_plus_one = (SpecializedCacheOrInstruction *)first_instr;
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assert(&last_cache_plus_one->code[0] == first_instr);
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return &last_cache_plus_one[-1-n].entry;
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}
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/* Following two functions form a pair.
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*
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* oparg_from_offset_and_index() is used to compute the oparg
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* when quickening, so that offset_from_oparg_and_nexti()
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* can be used at runtime to compute the offset.
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*
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* The relationship between the three values is currently
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* offset == (index>>1) + oparg
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* This relation is chosen based on the following observations:
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* 1. typically 1 in 4 instructions need a cache
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* 2. instructions that need a cache typically use 2 entries
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* These observations imply: offset ≈ index/2
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* We use the oparg to fine tune the relation to avoid wasting space
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* and allow consecutive instructions to use caches.
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*
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* If the number of cache entries < number of instructions/2 we will waste
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* some small amoount of space.
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* If the number of cache entries > (number of instructions/2) + 255, then
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* some instructions will not be able to use a cache.
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* In practice, we expect some small amount of wasted space in a shorter functions
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* and only functions exceeding a 1000 lines or more not to have enugh cache space.
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*
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*/
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static inline int
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oparg_from_offset_and_nexti(int offset, int nexti)
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{
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return offset-(nexti>>1);
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}
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static inline int
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offset_from_oparg_and_nexti(int oparg, int nexti)
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{
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return (nexti>>1)+oparg;
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}
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/* Get pointer to the cache entry associated with an instruction.
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* nexti is the index of the instruction plus one.
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* nexti is used as it corresponds to the instruction pointer in the interpreter.
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* This doesn't check that an entry has been allocated for that instruction. */
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static inline SpecializedCacheEntry *
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_GetSpecializedCacheEntryForInstruction(const _Py_CODEUNIT *first_instr, int nexti, int oparg)
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{
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return _GetSpecializedCacheEntry(
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first_instr,
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offset_from_oparg_and_nexti(oparg, nexti)
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);
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}
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#define QUICKENING_WARMUP_DELAY 8
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/* We want to compare to zero for efficiency, so we offset values accordingly */
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#define QUICKENING_INITIAL_WARMUP_VALUE (-QUICKENING_WARMUP_DELAY)
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#define QUICKENING_WARMUP_COLDEST 1
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int _Py_Quicken(PyCodeObject *code);
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/* Returns 1 if quickening occurs.
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* -1 if an error occurs
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* 0 otherwise */
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static inline int
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_Py_IncrementCountAndMaybeQuicken(PyCodeObject *code)
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{
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if (code->co_warmup != 0) {
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code->co_warmup++;
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if (code->co_warmup == 0) {
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return _Py_Quicken(code) ? -1 : 1;
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}
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}
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return 0;
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}
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extern Py_ssize_t _Py_QuickenedCount;
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/* "Locals plus" for a code object is the set of locals + cell vars +
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* free vars. This relates to variable names as well as offsets into
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* the "fast locals" storage array of execution frames. The compiler
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* builds the list of names, their offsets, and the corresponding
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* kind of local.
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*
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* Those kinds represent the source of the initial value and the
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* variable's scope (as related to closures). A "local" is an
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* argument or other variable defined in the current scope. A "free"
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* variable is one that is defined in an outer scope and comes from
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* the function's closure. A "cell" variable is a local that escapes
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* into an inner function as part of a closure, and thus must be
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* wrapped in a cell. Any "local" can also be a "cell", but the
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* "free" kind is mutually exclusive with both.
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*/
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// Note that these all fit within a byte, as do combinations.
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// Later, we will use the smaller numbers to differentiate the different
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// kinds of locals (e.g. pos-only arg, varkwargs, local-only).
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#define CO_FAST_LOCAL 0x20
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#define CO_FAST_CELL 0x40
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#define CO_FAST_FREE 0x80
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typedef unsigned char _PyLocals_Kind;
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static inline _PyLocals_Kind
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_PyLocals_GetKind(PyObject *kinds, int i)
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{
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assert(PyBytes_Check(kinds));
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assert(0 <= i && i < PyBytes_GET_SIZE(kinds));
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char *ptr = PyBytes_AS_STRING(kinds);
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return (_PyLocals_Kind)(ptr[i]);
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}
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static inline void
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_PyLocals_SetKind(PyObject *kinds, int i, _PyLocals_Kind kind)
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{
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assert(PyBytes_Check(kinds));
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assert(0 <= i && i < PyBytes_GET_SIZE(kinds));
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char *ptr = PyBytes_AS_STRING(kinds);
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ptr[i] = (char) kind;
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}
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struct _PyCodeConstructor {
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/* metadata */
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PyObject *filename;
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PyObject *name;
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PyObject *qualname;
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int flags;
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/* the code */
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PyObject *code;
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int firstlineno;
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PyObject *linetable;
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PyObject *endlinetable;
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PyObject *columntable;
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/* used by the code */
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PyObject *consts;
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PyObject *names;
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/* mapping frame offsets to information */
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PyObject *localsplusnames; // Tuple of strings
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PyObject *localspluskinds; // Bytes object, one byte per variable
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/* args (within varnames) */
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int argcount;
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int posonlyargcount;
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// XXX Replace argcount with posorkwargcount (argcount - posonlyargcount).
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int kwonlyargcount;
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/* needed to create the frame */
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int stacksize;
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/* used by the eval loop */
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PyObject *exceptiontable;
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};
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// Using an "arguments struct" like this is helpful for maintainability
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// in a case such as this with many parameters. It does bear a risk:
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// if the struct changes and callers are not updated properly then the
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// compiler will not catch problems (like a missing argument). This can
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// cause hard-to-debug problems. The risk is mitigated by the use of
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// check_code() in codeobject.c. However, we may decide to switch
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// back to a regular function signature. Regardless, this approach
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// wouldn't be appropriate if this weren't a strictly internal API.
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// (See the comments in https://github.com/python/cpython/pull/26258.)
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PyAPI_FUNC(int) _PyCode_Validate(struct _PyCodeConstructor *);
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PyAPI_FUNC(PyCodeObject *) _PyCode_New(struct _PyCodeConstructor *);
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/* Private API */
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/* Getters for internal PyCodeObject data. */
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PyAPI_FUNC(PyObject *) _PyCode_GetVarnames(PyCodeObject *);
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PyAPI_FUNC(PyObject *) _PyCode_GetCellvars(PyCodeObject *);
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PyAPI_FUNC(PyObject *) _PyCode_GetFreevars(PyCodeObject *);
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#define ADAPTIVE_CACHE_BACKOFF 64
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static inline void
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cache_backoff(_PyAdaptiveEntry *entry) {
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entry->counter = ADAPTIVE_CACHE_BACKOFF;
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}
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/* Specialization functions */
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int _Py_Specialize_LoadAttr(PyObject *owner, _Py_CODEUNIT *instr, PyObject *name, SpecializedCacheEntry *cache);
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int _Py_Specialize_StoreAttr(PyObject *owner, _Py_CODEUNIT *instr, PyObject *name, SpecializedCacheEntry *cache);
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int _Py_Specialize_LoadGlobal(PyObject *globals, PyObject *builtins, _Py_CODEUNIT *instr, PyObject *name, SpecializedCacheEntry *cache);
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int _Py_Specialize_LoadMethod(PyObject *owner, _Py_CODEUNIT *instr, PyObject *name, SpecializedCacheEntry *cache);
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int _Py_Specialize_BinarySubscr(PyObject *sub, PyObject *container, _Py_CODEUNIT *instr, SpecializedCacheEntry *cache);
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int _Py_Specialize_StoreSubscr(PyObject *container, PyObject *sub, _Py_CODEUNIT *instr);
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int _Py_Specialize_Call(PyObject *callable, _Py_CODEUNIT *instr, int nargs,
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PyObject *kwnames, SpecializedCacheEntry *cache);
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int _Py_Specialize_Precall(PyObject *callable, _Py_CODEUNIT *instr, int nargs,
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PyObject *kwnames, SpecializedCacheEntry *cache, PyObject *builtins);
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void _Py_Specialize_BinaryOp(PyObject *lhs, PyObject *rhs, _Py_CODEUNIT *instr,
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SpecializedCacheEntry *cache);
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void _Py_Specialize_CompareOp(PyObject *lhs, PyObject *rhs, _Py_CODEUNIT *instr, SpecializedCacheEntry *cache);
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void _Py_Specialize_UnpackSequence(PyObject *seq, _Py_CODEUNIT *instr,
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SpecializedCacheEntry *cache);
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/* Deallocator function for static codeobjects used in deepfreeze.py */
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void _PyStaticCode_Dealloc(PyCodeObject *co);
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/* Function to intern strings of codeobjects */
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void _PyStaticCode_InternStrings(PyCodeObject *co);
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#ifdef Py_STATS
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#define SPECIALIZATION_FAILURE_KINDS 30
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typedef struct _specialization_stats {
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uint64_t success;
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uint64_t failure;
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uint64_t hit;
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uint64_t deferred;
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uint64_t miss;
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uint64_t deopt;
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uint64_t failure_kinds[SPECIALIZATION_FAILURE_KINDS];
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} SpecializationStats;
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typedef struct _opcode_stats {
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SpecializationStats specialization;
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uint64_t execution_count;
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uint64_t pair_count[256];
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} OpcodeStats;
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typedef struct _call_stats {
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uint64_t inlined_py_calls;
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uint64_t pyeval_calls;
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uint64_t frames_pushed;
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uint64_t frame_objects_created;
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} CallStats;
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typedef struct _object_stats {
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uint64_t allocations;
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uint64_t frees;
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uint64_t new_values;
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uint64_t dict_materialized_on_request;
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uint64_t dict_materialized_new_key;
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uint64_t dict_materialized_too_big;
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} ObjectStats;
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typedef struct _stats {
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OpcodeStats opcode_stats[256];
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CallStats call_stats;
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ObjectStats object_stats;
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} PyStats;
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extern PyStats _py_stats;
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#define STAT_INC(opname, name) _py_stats.opcode_stats[opname].specialization.name++
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#define STAT_DEC(opname, name) _py_stats.opcode_stats[opname].specialization.name--
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#define OPCODE_EXE_INC(opname) _py_stats.opcode_stats[opname].execution_count++
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#define CALL_STAT_INC(name) _py_stats.call_stats.name++
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#define OBJECT_STAT_INC(name) _py_stats.object_stats.name++
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void _Py_PrintSpecializationStats(int to_file);
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PyAPI_FUNC(PyObject*) _Py_GetSpecializationStats(void);
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#else
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#define STAT_INC(opname, name) ((void)0)
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#define STAT_DEC(opname, name) ((void)0)
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#define OPCODE_EXE_INC(opname) ((void)0)
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#define CALL_STAT_INC(name) ((void)0)
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#define OBJECT_STAT_INC(name) ((void)0)
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#endif
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#ifdef __cplusplus
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}
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#endif
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#endif /* !Py_INTERNAL_CODE_H */
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