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cpython/Python/compile.c at 3.6 · python/cpython · GitHub
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/*
* This file compiles an abstract syntax tree (AST) into Python bytecode.
*
* The primary entry point is PyAST_Compile(), which returns a
* PyCodeObject. The compiler makes several passes to build the code
* object:
* 1. Checks for future statements. See future.c
* 2. Builds a symbol table. See symtable.c.
* 3. Generate code for basic blocks. See compiler_mod() in this file.
* 4. Assemble the basic blocks into final code. See assemble() in
* this file.
* 5. Optimize the byte code (peephole optimizations). See peephole.c
*
* Note that compiler_mod() suggests module, but the module ast type
* (mod_ty) has cases for expressions and interactive statements.
*
* CAUTION: The VISIT_* macros abort the current function when they
* encounter a problem. So don't invoke them when there is memory
* which needs to be released. Code blocks are OK, as the compiler
* structure takes care of releasing those. Use the arena to manage
* objects.
*/
#include
"Python.h"
#include
"Python-ast.h"
#include
"node.h"
#include
"ast.h"
#include
"code.h"
#include
"symtable.h"
#include
"opcode.h"
#include
"wordcode_helpers.h"
#define
DEFAULT_BLOCK_SIZE
16
#define
DEFAULT_BLOCKS
8
#define
DEFAULT_CODE_SIZE
128
#define
DEFAULT_LNOTAB_SIZE
16
#define
COMP_GENEXP
0
#define
COMP_LISTCOMP
1
#define
COMP_SETCOMP
2
#define
COMP_DICTCOMP
3
struct
instr
{
unsigned
i_jabs
:
1
;
unsigned
i_jrel
:
1
;
unsigned
char
i_opcode
;
int
i_oparg
;
struct
basicblock_
*
i_target
;
/* target block (if jump instruction) */
int
i_lineno
;
};
typedef
struct
basicblock_
{
/* Each basicblock in a compilation unit is linked via b_list in the
reverse order that the block are allocated. b_list points to the next
block, not to be confused with b_next, which is next by control flow. */
struct
basicblock_
*
b_list
;
/* number of instructions used */
int
b_iused
;
/* length of instruction array (b_instr) */
int
b_ialloc
;
/* pointer to an array of instructions, initially NULL */
struct
instr
*
b_instr
;
/* If b_next is non-NULL, it is a pointer to the next
block reached by normal control flow. */
struct
basicblock_
*
b_next
;
/* b_seen is used to perform a DFS of basicblocks. */
unsigned
b_seen
:
1
;
/* b_return is true if a RETURN_VALUE opcode is inserted. */
unsigned
b_return
:
1
;
/* depth of stack upon entry of block, computed by stackdepth() */
int
b_startdepth
;
/* instruction offset for block, computed by assemble_jump_offsets() */
int
b_offset
;
}
basicblock
;
/* fblockinfo tracks the current frame block.
A frame block is used to handle loops, try/except, and try/finally.
It's called a frame block to distinguish it from a basic block in the
compiler IR.
*/
enum
fblocktype
{
LOOP
,
EXCEPT
,
FINALLY_TRY
,
FINALLY_END
};
struct
fblockinfo
{
enum
fblocktype
fb_type
;
basicblock
*
fb_block
;
};
enum
{
COMPILER_SCOPE_MODULE
,
COMPILER_SCOPE_CLASS
,
COMPILER_SCOPE_FUNCTION
,
COMPILER_SCOPE_ASYNC_FUNCTION
,
COMPILER_SCOPE_LAMBDA
,
COMPILER_SCOPE_COMPREHENSION
,
};
/* The following items change on entry and exit of code blocks.
They must be saved and restored when returning to a block.
*/
struct
compiler_unit
{
PySTEntryObject
*
u_ste
;
PyObject
*
u_name
;
PyObject
*
u_qualname
;
/* dot-separated qualified name (lazy) */
int
u_scope_type
;
/* The following fields are dicts that map objects to
the index of them in co_XXX. The index is used as
the argument for opcodes that refer to those collections.
*/
PyObject
*
u_consts
;
/* all constants */
PyObject
*
u_names
;
/* all names */
PyObject
*
u_varnames
;
/* local variables */
PyObject
*
u_cellvars
;
/* cell variables */
PyObject
*
u_freevars
;
/* free variables */
PyObject
*
u_private
;
/* for private name mangling */
Py_ssize_t
u_argcount
;
/* number of arguments for block */
Py_ssize_t
u_kwonlyargcount
;
/* number of keyword only arguments for block */
/* Pointer to the most recently allocated block. By following b_list
members, you can reach all early allocated blocks. */
basicblock
*
u_blocks
;
basicblock
*
u_curblock
;
/* pointer to current block */
int
u_nfblocks
;
struct
fblockinfo
u_fblock
[
CO_MAXBLOCKS
];
int
u_firstlineno
;
/* the first lineno of the block */
int
u_lineno
;
/* the lineno for the current stmt */
int
u_col_offset
;
/* the offset of the current stmt */
int
u_lineno_set
;
/* boolean to indicate whether instr
has been generated with current lineno */
};
/* This struct captures the global state of a compilation.
The u pointer points to the current compilation unit, while units
for enclosing blocks are stored in c_stack. The u and c_stack are
managed by compiler_enter_scope() and compiler_exit_scope().
Note that we don't track recursion levels during compilation - the
task of detecting and rejecting excessive levels of nesting is
handled by the symbol analysis pass.
*/
struct
compiler
{
PyObject
*
c_filename
;
struct
symtable
*
c_st
;
PyFutureFeatures
*
c_future
;
/* pointer to module's __future__ */
PyCompilerFlags
*
c_flags
;
int
c_optimize
;
/* optimization level */
int
c_interactive
;
/* true if in interactive mode */
int
c_nestlevel
;
struct
compiler_unit
*
u
;
/* compiler state for current block */
PyObject
*
c_stack
;
/* Python list holding compiler_unit ptrs */
PyArena
*
c_arena
;
/* pointer to memory allocation arena */
};
static
int
compiler_enter_scope
(
struct
compiler
*
,
identifier
,
int
,
void
*
,
int
);
static
void
compiler_free
(
struct
compiler
*
);
static
basicblock
*
compiler_new_block
(
struct
compiler
*
);
static
int
compiler_next_instr
(
struct
compiler
*
,
basicblock
*
);
static
int
compiler_addop
(
struct
compiler
*
,
int
);
static
int
compiler_addop_o
(
struct
compiler
*
,
int
,
PyObject
*
,
PyObject
*
);
static
int
compiler_addop_i
(
struct
compiler
*
,
int
,
Py_ssize_t
);
static
int
compiler_addop_j
(
struct
compiler
*
,
int
,
basicblock
*
,
int
);
static
int
compiler_error
(
struct
compiler
*
,
const
char
*
);
static
int
compiler_nameop
(
struct
compiler
*
,
identifier
,
expr_context_ty
);
static
PyCodeObject
*
compiler_mod
(
struct
compiler
*
,
mod_ty
);
static
int
compiler_visit_stmt
(
struct
compiler
*
,
stmt_ty
);
static
int
compiler_visit_keyword
(
struct
compiler
*
,
keyword_ty
);
static
int
compiler_visit_expr
(
struct
compiler
*
,
expr_ty
);
static
int
compiler_augassign
(
struct
compiler
*
,
stmt_ty
);
static
int
compiler_annassign
(
struct
compiler
*
,
stmt_ty
);
static
int
compiler_visit_slice
(
struct
compiler
*
,
slice_ty
,
expr_context_ty
);
static
int
compiler_push_fblock
(
struct
compiler
*
,
enum
fblocktype
,
basicblock
*
);
static
void
compiler_pop_fblock
(
struct
compiler
*
,
enum
fblocktype
,
basicblock
*
);
/* Returns true if there is a loop on the fblock stack. */
static
int
compiler_in_loop
(
struct
compiler
*
);
static
int
inplace_binop
(
struct
compiler
*
,
operator_ty
);
static
int
expr_constant
(
struct
compiler
*
,
expr_ty
);
static
int
compiler_with
(
struct
compiler
*
,
stmt_ty
,
int
);
static
int
compiler_async_with
(
struct
compiler
*
,
stmt_ty
,
int
);
static
int
compiler_async_for
(
struct
compiler
*
,
stmt_ty
);
static
int
compiler_call_helper
(
struct
compiler
*
c
,
int
n
,
asdl_seq
*
args
,
asdl_seq
*
keywords
);
static
int
compiler_try_except
(
struct
compiler
*
,
stmt_ty
);
static
int
compiler_set_qualname
(
struct
compiler
*
);
static
int
compiler_sync_comprehension_generator
(
struct
compiler
*
c
,
asdl_seq
*
generators
,
int
gen_index
,
expr_ty
elt
,
expr_ty
val
,
int
type
);
static
int
compiler_async_comprehension_generator
(
struct
compiler
*
c
,
asdl_seq
*
generators
,
int
gen_index
,
expr_ty
elt
,
expr_ty
val
,
int
type
);
static
PyCodeObject
*
assemble
(
struct
compiler
*
,
int
addNone
);
static
PyObject
*
__doc__
;
#define
CAPSULE_NAME
"compile.c compiler unit"
PyObject
*
_Py_Mangle
(
PyObject
*
privateobj
,
PyObject
*
ident
)
{
/* Name mangling: __private becomes _classname__private.
This is independent from how the name is used. */
PyObject
*
result
;
size_t
nlen
,
plen
,
ipriv
;
Py_UCS4
maxchar
;
if
(
privateobj
==
NULL
||
!
PyUnicode_Check
(
privateobj
)
||
PyUnicode_READ_CHAR
(
ident
,
0
)
!=
'_'
||
PyUnicode_READ_CHAR
(
ident
,
1
)
!=
'_'
) {
Py_INCREF
(
ident
);
return
ident
;
}
nlen
=
PyUnicode_GET_LENGTH
(
ident
);
plen
=
PyUnicode_GET_LENGTH
(
privateobj
);
/* Don't mangle __id__ or names with dots.
The only time a name with a dot can occur is when
we are compiling an import statement that has a
package name.
TODO(jhylton): Decide whether we want to support
mangling of the module name, e.g. __M.X.
*/
if
((
PyUnicode_READ_CHAR
(
ident
,
nlen
-
1
)
==
'_'
&&
PyUnicode_READ_CHAR
(
ident
,
nlen
-
2
)
==
'_'
)
||
PyUnicode_FindChar
(
ident
,
'.'
,
0
,
nlen
,
1
)
!=
-1
) {
Py_INCREF
(
ident
);
return
ident
;
/* Don't mangle __whatever__ */
}
/* Strip leading underscores from class name */
ipriv
=
0
;
while
(
PyUnicode_READ_CHAR
(
privateobj
,
ipriv
)
==
'_'
)
ipriv
++
;
if
(
ipriv
==
plen
) {
Py_INCREF
(
ident
);
return
ident
;
/* Don't mangle if class is just underscores */
}
plen
-=
ipriv
;
if
(
plen
+
nlen
>=
PY_SSIZE_T_MAX
-
1
) {
PyErr_SetString
(
PyExc_OverflowError
,
"private identifier too large to be mangled"
);
return
NULL
;
}
maxchar
=
PyUnicode_MAX_CHAR_VALUE
(
ident
);
if
(
PyUnicode_MAX_CHAR_VALUE
(
privateobj
)
>
maxchar
)
maxchar
=
PyUnicode_MAX_CHAR_VALUE
(
privateobj
);
result
=
PyUnicode_New
(
1
+
nlen
+
plen
,
maxchar
);
if
(!
result
)
return
0
;
/* ident = "_" + priv[ipriv:] + ident # i.e. 1+plen+nlen bytes */
PyUnicode_WRITE
(
PyUnicode_KIND
(
result
),
PyUnicode_DATA
(
result
),
0
,
'_'
);
if
(
PyUnicode_CopyCharacters
(
result
,
1
,
privateobj
,
ipriv
,
plen
)
<
0
) {
Py_DECREF
(
result
);
return
NULL
;
}
if
(
PyUnicode_CopyCharacters
(
result
,
plen
+
1
,
ident
,
0
,
nlen
)
<
0
) {
Py_DECREF
(
result
);
return
NULL
;
}
assert
(
_PyUnicode_CheckConsistency
(
result
,
1
));
return
result
;
}
static
int
compiler_init
(
struct
compiler
*
c
)
{
memset
(
c
,
0
,
sizeof
(
struct
compiler
));
c
->
c_stack
=
PyList_New
(
0
);
if
(!
c
->
c_stack
)
return
0
;
return
1
;
}
PyCodeObject
*
PyAST_CompileObject
(
mod_ty
mod
,
PyObject
*
filename
,
PyCompilerFlags
*
flags
,
int
optimize
,
PyArena
*
arena
)
{
struct
compiler
c
;
PyCodeObject
*
co
=
NULL
;
PyCompilerFlags
local_flags
;
int
merged
;
if
(!
__doc__
) {
__doc__
=
PyUnicode_InternFromString
(
"__doc__"
);
if
(!
__doc__
)
return
NULL
;
}
if
(!
compiler_init
(
&
c
))
return
NULL
;
Py_INCREF
(
filename
);
c
.
c_filename
=
filename
;
c
.
c_arena
=
arena
;
c
.
c_future
=
PyFuture_FromASTObject
(
mod
,
filename
);
if
(
c
.
c_future
==
NULL
)
goto
finally
;
if
(!
flags
) {
local_flags
.
cf_flags
=
0
;
flags
=
&
local_flags
;
}
merged
=
c
.
c_future
->
ff_features
|
flags
->
cf_flags
;
c
.
c_future
->
ff_features
=
merged
;
flags
->
cf_flags
=
merged
;
c
.
c_flags
=
flags
;
c
.
c_optimize
=
(
optimize
==
-1
) ?
Py_OptimizeFlag
:
optimize
;
c
.
c_nestlevel
=
0
;
c
.
c_st
=
PySymtable_BuildObject
(
mod
,
filename
,
c
.
c_future
);
if
(
c
.
c_st
==
NULL
) {
if
(!
PyErr_Occurred
())
PyErr_SetString
(
PyExc_SystemError
,
"no symtable"
);
goto
finally
;
}
co
=
compiler_mod
(
&
c
,
mod
);
finally
:
compiler_free
(
&
c
);
assert
(
co
||
PyErr_Occurred
());
return
co
;
}
PyCodeObject
*
PyAST_CompileEx
(
mod_ty
mod
,
const
char
*
filename_str
,
PyCompilerFlags
*
flags
,
int
optimize
,
PyArena
*
arena
)
{
PyObject
*
filename
;
PyCodeObject
*
co
;
filename
=
PyUnicode_DecodeFSDefault
(
filename_str
);
if
(
filename
==
NULL
)
return
NULL
;
co
=
PyAST_CompileObject
(
mod
,
filename
,
flags
,
optimize
,
arena
);
Py_DECREF
(
filename
);
return
co
;
}
PyCodeObject
*
PyNode_Compile
(
struct
_node
*
n
,
const
char
*
filename
)
{
PyCodeObject
*
co
=
NULL
;
mod_ty
mod
;
PyArena
*
arena
=
PyArena_New
();
if
(!
arena
)
return
NULL
;
mod
=
PyAST_FromNode
(
n
,
NULL
,
filename
,
arena
);
if
(
mod
)
co
=
PyAST_Compile
(
mod
,
filename
,
NULL
,
arena
);
PyArena_Free
(
arena
);
return
co
;
}
static
void
compiler_free
(
struct
compiler
*
c
)
{
if
(
c
->
c_st
)
PySymtable_Free
(
c
->
c_st
);
if
(
c
->
c_future
)
PyObject_Free
(
c
->
c_future
);
Py_XDECREF
(
c
->
c_filename
);
Py_DECREF
(
c
->
c_stack
);
}
static
PyObject
*
list2dict
(
PyObject
*
list
)
{
Py_ssize_t
i
,
n
;
PyObject
*
v
,
*
k
;
PyObject
*
dict
=
PyDict_New
();
if
(!
dict
)
return
NULL
;
n
=
PyList_Size
(
list
);
for
(
i
=
0
;
i
<
n
;
i
++
) {
v
=
PyLong_FromSsize_t
(
i
);
if
(!
v
) {
Py_DECREF
(
dict
);
return
NULL
;
}
k
=
PyList_GET_ITEM
(
list
,
i
);
k
=
_PyCode_ConstantKey
(
k
);
if
(
k
==
NULL
||
PyDict_SetItem
(
dict
,
k
,
v
)
<
0
) {
Py_XDECREF
(
k
);
Py_DECREF
(
v
);
Py_DECREF
(
dict
);
return
NULL
;
}
Py_DECREF
(
k
);
Py_DECREF
(
v
);
}
return
dict
;
}
/* Return new dict containing names from src that match scope(s).
src is a symbol table dictionary. If the scope of a name matches
either scope_type or flag is set, insert it into the new dict. The
values are integers, starting at offset and increasing by one for
each key.
*/
static
PyObject
*
dictbytype
(
PyObject
*
src
,
int
scope_type
,
int
flag
,
Py_ssize_t
offset
)
{
Py_ssize_t
i
=
offset
,
scope
,
num_keys
,
key_i
;
PyObject
*
k
,
*
v
,
*
dest
=
PyDict_New
();
PyObject
*
sorted_keys
;
assert
(
offset
>=
0
);
if
(
dest
==
NULL
)
return
NULL
;
/* Sort the keys so that we have a deterministic order on the indexes
saved in the returned dictionary. These indexes are used as indexes
into the free and cell var storage. Therefore if they aren't
deterministic, then the generated bytecode is not deterministic.
*/
sorted_keys
=
PyDict_Keys
(
src
);
if
(
sorted_keys
==
NULL
)
return
NULL
;
if
(
PyList_Sort
(
sorted_keys
)
!=
0
) {
Py_DECREF
(
sorted_keys
);
return
NULL
;
}
num_keys
=
PyList_GET_SIZE
(
sorted_keys
);
for
(
key_i
=
0
;
key_i
<
num_keys
;
key_i
++
) {
/* XXX this should probably be a macro in symtable.h */
long
vi
;
k
=
PyList_GET_ITEM
(
sorted_keys
,
key_i
);
v
=
PyDict_GetItem
(
src
,
k
);
assert
(
PyLong_Check
(
v
));
vi
=
PyLong_AS_LONG
(
v
);
scope
=
(
vi
>>
SCOPE_OFFSET
)
&
SCOPE_MASK
;
if
(
scope
==
scope_type
||
vi
&
flag
) {
PyObject
*
tuple
,
*
item
=
PyLong_FromSsize_t
(
i
);
if
(
item
==
NULL
) {
Py_DECREF
(
sorted_keys
);
Py_DECREF
(
dest
);
return
NULL
;
}
i
++
;
tuple
=
_PyCode_ConstantKey
(
k
);
if
(!
tuple
||
PyDict_SetItem
(
dest
,
tuple
,
item
)
<
0
) {
Py_DECREF
(
sorted_keys
);
Py_DECREF
(
item
);
Py_DECREF
(
dest
);
Py_XDECREF
(
tuple
);
return
NULL
;
}
Py_DECREF
(
item
);
Py_DECREF
(
tuple
);
}
}
Py_DECREF
(
sorted_keys
);
return
dest
;
}
static
void
compiler_unit_check
(
struct
compiler_unit
*
u
)
{
basicblock
*
block
;
for
(
block
=
u
->
u_blocks
;
block
!=
NULL
;
block
=
block
->
b_list
) {
assert
((
uintptr_t
)
block
!=
0xcbcbcbcbU
);
assert
((
uintptr_t
)
block
!=
0xfbfbfbfbU
);
assert
((
uintptr_t
)
block
!=
0xdbdbdbdbU
);
if
(
block
->
b_instr
!=
NULL
) {
assert
(
block
->
b_ialloc
>
0
);
assert
(
block
->
b_iused
>
0
);
assert
(
block
->
b_ialloc
>=
block
->
b_iused
);
}
else
{
assert
(
block
->
b_iused
==
0
);
assert
(
block
->
b_ialloc
==
0
);
}
}
}
static
void
compiler_unit_free
(
struct
compiler_unit
*
u
)
{
basicblock
*
b
,
*
next
;
compiler_unit_check
(
u
);
b
=
u
->
u_blocks
;
while
(
b
!=
NULL
) {
if
(
b
->
b_instr
)
PyObject_Free
((
void
*
)
b
->
b_instr
);
next
=
b
->
b_list
;
PyObject_Free
((
void
*
)
b
);
b
=
next
;
}
Py_CLEAR
(
u
->
u_ste
);
Py_CLEAR
(
u
->
u_name
);
Py_CLEAR
(
u
->
u_qualname
);
Py_CLEAR
(
u
->
u_consts
);
Py_CLEAR
(
u
->
u_names
);
Py_CLEAR
(
u
->
u_varnames
);
Py_CLEAR
(
u
->
u_freevars
);
Py_CLEAR
(
u
->
u_cellvars
);
Py_CLEAR
(
u
->
u_private
);
PyObject_Free
(
u
);
}
static
int
compiler_enter_scope
(
struct
compiler
*
c
,
identifier
name
,
int
scope_type
,
void
*
key
,
int
lineno
)
{
struct
compiler_unit
*
u
;
basicblock
*
block
;
u
=
(
struct
compiler_unit
*
)
PyObject_Malloc
(
sizeof
(
struct
compiler_unit
));
if
(!
u
) {
PyErr_NoMemory
();
return
0
;
}
memset
(
u
,
0
,
sizeof
(
struct
compiler_unit
));
u
->
u_scope_type
=
scope_type
;
u
->
u_argcount
=
0
;
u
->
u_kwonlyargcount
=
0
;
u
->
u_ste
=
PySymtable_Lookup
(
c
->
c_st
,
key
);
if
(!
u
->
u_ste
) {
compiler_unit_free
(
u
);
return
0
;
}
Py_INCREF
(
name
);
u
->
u_name
=
name
;
u
->
u_varnames
=
list2dict
(
u
->
u_ste
->
ste_varnames
);
u
->
u_cellvars
=
dictbytype
(
u
->
u_ste
->
ste_symbols
,
CELL
,
0
,
0
);
if
(!
u
->
u_varnames
||
!
u
->
u_cellvars
) {
compiler_unit_free
(
u
);
return
0
;
}
if
(
u
->
u_ste
->
ste_needs_class_closure
) {
/* Cook up an implicit __class__ cell. */
_Py_IDENTIFIER
(
__class__
);
PyObject
*
tuple
,
*
name
,
*
zero
;
int
res
;
assert
(
u
->
u_scope_type
==
COMPILER_SCOPE_CLASS
);
assert
(
PyDict_Size
(
u
->
u_cellvars
)
==
0
);
name
=
_PyUnicode_FromId
(
&
PyId___class__
);
if
(!
name
) {
compiler_unit_free
(
u
);
return
0
;
}
tuple
=
_PyCode_ConstantKey
(
name
);
if
(!
tuple
) {
compiler_unit_free
(
u
);
return
0
;
}
zero
=
PyLong_FromLong
(
0
);
if
(!
zero
) {
Py_DECREF
(
tuple
);
compiler_unit_free
(
u
);
return
0
;
}
res
=
PyDict_SetItem
(
u
->
u_cellvars
,
tuple
,
zero
);
Py_DECREF
(
tuple
);
Py_DECREF
(
zero
);
if
(
res
<
0
) {
compiler_unit_free
(
u
);
return
0
;
}
}
u
->
u_freevars
=
dictbytype
(
u
->
u_ste
->
ste_symbols
,
FREE
,
DEF_FREE_CLASS
,
PyDict_Size
(
u
->
u_cellvars
));
if
(!
u
->
u_freevars
) {
compiler_unit_free
(
u
);
return
0
;
}
u
->
u_blocks
=
NULL
;
u
->
u_nfblocks
=
0
;
u
->
u_firstlineno
=
lineno
;
u
->
u_lineno
=
0
;
u
->
u_col_offset
=
0
;
u
->
u_lineno_set
=
0
;
u
->
u_consts
=
PyDict_New
();
if
(!
u
->
u_consts
) {
compiler_unit_free
(
u
);
return
0
;
}
u
->
u_names
=
PyDict_New
();
if
(!
u
->
u_names
) {
compiler_unit_free
(
u
);
return
0
;
}
u
->
u_private
=
NULL
;
/* Push the old compiler_unit on the stack. */
if
(
c
->
u
) {
PyObject
*
capsule
=
PyCapsule_New
(
c
->
u
,
CAPSULE_NAME
,
NULL
);
if
(!
capsule
||
PyList_Append
(
c
->
c_stack
,
capsule
)
<
0
) {
Py_XDECREF
(
capsule
);
compiler_unit_free
(
u
);
return
0
;
}
Py_DECREF
(
capsule
);
u
->
u_private
=
c
->
u
->
u_private
;
Py_XINCREF
(
u
->
u_private
);
}
c
->
u
=
u
;
c
->
c_nestlevel
++
;
block
=
compiler_new_block
(
c
);
if
(
block
==
NULL
)
return
0
;
c
->
u
->
u_curblock
=
block
;
if
(
u
->
u_scope_type
!=
COMPILER_SCOPE_MODULE
) {
if
(!
compiler_set_qualname
(
c
))
return
0
;
}
return
1
;
}
static
void
compiler_exit_scope
(
struct
compiler
*
c
)
{
Py_ssize_t
n
;
PyObject
*
capsule
;
c
->
c_nestlevel
--
;
compiler_unit_free
(
c
->
u
);
/* Restore c->u to the parent unit. */
n
=
PyList_GET_SIZE
(
c
->
c_stack
)
-
1
;
if
(
n
>=
0
) {
capsule
=
PyList_GET_ITEM
(
c
->
c_stack
,
n
);
c
->
u
=
(
struct
compiler_unit
*
)
PyCapsule_GetPointer
(
capsule
,
CAPSULE_NAME
);
assert
(
c
->
u
);
/* we are deleting from a list so this really shouldn't fail */
if
(
PySequence_DelItem
(
c
->
c_stack
,
n
)
<
0
)
Py_FatalError
(
"compiler_exit_scope()"
);
compiler_unit_check
(
c
->
u
);
}
else
c
->
u
=
NULL
;
}
static
int
compiler_set_qualname
(
struct
compiler
*
c
)
{
_Py_static_string
(
dot
,
"."
);
_Py_static_string
(
dot_locals
,
".<locals>"
);
Py_ssize_t
stack_size
;
struct
compiler_unit
*
u
=
c
->
u
;
PyObject
*
name
,
*
base
,
*
dot_str
,
*
dot_locals_str
;
base
=
NULL
;
stack_size
=
PyList_GET_SIZE
(
c
->
c_stack
);
assert
(
stack_size
>=
1
);
if
(
stack_size
>
1
) {
int
scope
,
force_global
=
0
;
struct
compiler_unit
*
parent
;
PyObject
*
mangled
,
*
capsule
;
capsule
=
PyList_GET_ITEM
(
c
->
c_stack
,
stack_size
-
1
);
parent
=
(
struct
compiler_unit
*
)
PyCapsule_GetPointer
(
capsule
,
CAPSULE_NAME
);
assert
(
parent
);
if
(
u
->
u_scope_type
==
COMPILER_SCOPE_FUNCTION
||
u
->
u_scope_type
==
COMPILER_SCOPE_ASYNC_FUNCTION
||
u
->
u_scope_type
==
COMPILER_SCOPE_CLASS
) {
assert
(
u
->
u_name
);
mangled
=
_Py_Mangle
(
parent
->
u_private
,
u
->
u_name
);
if
(!
mangled
)
return
0
;
scope
=
PyST_GetScope
(
parent
->
u_ste
,
mangled
);
Py_DECREF
(
mangled
);
assert
(
scope
!=
GLOBAL_IMPLICIT
);
if
(
scope
==
GLOBAL_EXPLICIT
)
force_global
=
1
;
}
if
(!
force_global
) {
if
(
parent
->
u_scope_type
==
COMPILER_SCOPE_FUNCTION
||
parent
->
u_scope_type
==
COMPILER_SCOPE_ASYNC_FUNCTION
||
parent
->
u_scope_type
==
COMPILER_SCOPE_LAMBDA
) {
dot_locals_str
=
_PyUnicode_FromId
(
&
dot_locals
);
if
(
dot_locals_str
==
NULL
)
return
0
;
base
=
PyUnicode_Concat
(
parent
->
u_qualname
,
dot_locals_str
);
if
(
base
==
NULL
)
return
0
;
}
else
{
Py_INCREF
(
parent
->
u_qualname
);
base
=
parent
->
u_qualname
;
}
}
}
if
(
base
!=
NULL
) {
dot_str
=
_PyUnicode_FromId
(
&
dot
);
if
(
dot_str
==
NULL
) {
Py_DECREF
(
base
);
return
0
;
}
name
=
PyUnicode_Concat
(
base
,
dot_str
);
Py_DECREF
(
base
);
if
(
name
==
NULL
)
return
0
;
PyUnicode_Append
(
&
name
,
u
->
u_name
);
if
(
name
==
NULL
)
return
0
;
}
else
{
Py_INCREF
(
u
->
u_name
);
name
=
u
->
u_name
;
}
u
->
u_qualname
=
name
;
return
1
;
}
/* Allocate a new block and return a pointer to it.
Returns NULL on error.
*/
static
basicblock
*
compiler_new_block
(
struct
compiler
*
c
)
{
basicblock
*
b
;
struct
compiler_unit
*
u
;
u
=
c
->
u
;
b
=
(
basicblock
*
)
PyObject_Malloc
(
sizeof
(
basicblock
));
if
(
b
==
NULL
) {
PyErr_NoMemory
();
return
NULL
;
}
memset
((
void
*
)
b
,
0
,
sizeof
(
basicblock
));
/* Extend the singly linked list of blocks with new block. */
b
->
b_list
=
u
->
u_blocks
;
u
->
u_blocks
=
b
;
return
b
;
}
static
basicblock
*
compiler_next_block
(
struct
compiler
*
c
)
{
basicblock
*
block
=
compiler_new_block
(
c
);
if
(
block
==
NULL
)
return
NULL
;
c
->
u
->
u_curblock
->
b_next
=
block
;
c
->
u
->
u_curblock
=
block
;
return
block
;
}
static
basicblock
*
compiler_use_next_block
(
struct
compiler
*
c
,
basicblock
*
block
)
{
assert
(
block
!=
NULL
);
c
->
u
->
u_curblock
->
b_next
=
block
;
c
->
u
->
u_curblock
=
block
;
return
block
;
}
/* Returns the offset of the next instruction in the current block's
b_instr array. Resizes the b_instr as necessary.
Returns -1 on failure.
*/
static
int
compiler_next_instr
(
struct
compiler
*
c
,
basicblock
*
b
)
{
assert
(
b
!=
NULL
);
if
(
b
->
b_instr
==
NULL
) {
b
->
b_instr
=
(
struct
instr
*
)
PyObject_Malloc
(
sizeof
(
struct
instr
)
*
DEFAULT_BLOCK_SIZE
);
if
(
b
->
b_instr
==
NULL
) {
PyErr_NoMemory
();
return
-1
;
}
b
->
b_ialloc
=
DEFAULT_BLOCK_SIZE
;
memset
((
char
*
)
b
->
b_instr
,
0
,
sizeof
(
struct
instr
)
*
DEFAULT_BLOCK_SIZE
);
}
else
if
(
b
->
b_iused
==
b
->
b_ialloc
) {
struct
instr
*
tmp
;
size_t
oldsize
,
newsize
;
oldsize
=
b
->
b_ialloc
*
sizeof
(
struct
instr
);
newsize
=
oldsize
<<
1
;
if
(
oldsize
>
(
SIZE_MAX
>>
1
)) {
PyErr_NoMemory
();
return
-1
;
}
if
(
newsize
==
0
) {
PyErr_NoMemory
();
return
-1
;
}
b
->
b_ialloc
<<=
1
;
tmp
=
(
struct
instr
*
)
PyObject_Realloc
(
(
void
*
)
b
->
b_instr
,
newsize
);
if
(
tmp
==
NULL
) {
PyErr_NoMemory
();
return
-1
;
}
b
->
b_instr
=
tmp
;
memset
((
char
*
)
b
->
b_instr
+
oldsize
,
0
,
newsize
-
oldsize
);
}
return
b
->
b_iused
++
;
}
/* Set the i_lineno member of the instruction at offset off if the
line number for the current expression/statement has not
already been set. If it has been set, the call has no effect.
The line number is reset in the following cases:
- when entering a new scope
- on each statement
- on each expression that start a new line
- before the "except" clause
- before the "for" and "while" expressions
*/
static
void
compiler_set_lineno
(
struct
compiler
*
c
,
int
off
)
{
basicblock
*
b
;
if
(
c
->
u
->
u_lineno_set
)
return
;
c
->
u
->
u_lineno_set
=
1
;
b
=
c
->
u
->
u_curblock
;
b
->
b_instr
[
off
].
i_lineno
=
c
->
u
->
u_lineno
;
}
int
PyCompile_OpcodeStackEffect
(
int
opcode
,
int
oparg
)
{
switch
(
opcode
) {
case
POP_TOP
:
return
-1
;
case
ROT_TWO
:
case
ROT_THREE
:
return
0
;
case
DUP_TOP
:
return
1
;
case
DUP_TOP_TWO
:
return
2
;
case
UNARY_POSITIVE
:
case
UNARY_NEGATIVE
:
case
UNARY_NOT
:
case
UNARY_INVERT
:
return
0
;
case
SET_ADD
:
case
LIST_APPEND
:
return
-1
;
case
MAP_ADD
:
return
-2
;
case
BINARY_POWER
:
case
BINARY_MULTIPLY
:
case
BINARY_MATRIX_MULTIPLY
:
case
BINARY_MODULO
:
case
BINARY_ADD
:
case
BINARY_SUBTRACT
:
case
BINARY_SUBSCR
:
case
BINARY_FLOOR_DIVIDE
:
case
BINARY_TRUE_DIVIDE
:
return
-1
;
case
INPLACE_FLOOR_DIVIDE
:
case
INPLACE_TRUE_DIVIDE
:
return
-1
;
case
INPLACE_ADD
:
case
INPLACE_SUBTRACT
:
case
INPLACE_MULTIPLY
:
case
INPLACE_MATRIX_MULTIPLY
:
case
INPLACE_MODULO
:
return
-1
;
case
STORE_SUBSCR
:
return
-3
;
case
DELETE_SUBSCR
:
return
-2
;
case
BINARY_LSHIFT
:
case
BINARY_RSHIFT
:
case
BINARY_AND
:
case
BINARY_XOR
:
case
BINARY_OR
:
return
-1
;
case
INPLACE_POWER
:
return
-1
;
case
GET_ITER
:
return
0
;
case
PRINT_EXPR
:
return
-1
;
case
LOAD_BUILD_CLASS
:
return
1
;
case
INPLACE_LSHIFT
:
case
INPLACE_RSHIFT
:
case
INPLACE_AND
:
case
INPLACE_XOR
:
case
INPLACE_OR
:
return
-1
;
case
BREAK_LOOP
:
return
0
;
case
SETUP_WITH
:
return
7
;
case
WITH_CLEANUP_START
:
return
1
;
case
WITH_CLEANUP_FINISH
:
return
-1
;
/* XXX Sometimes more */
case
RETURN_VALUE
:
return
-1
;
case
IMPORT_STAR
:
return
-1
;
case
SETUP_ANNOTATIONS
:
return
0
;
case
YIELD_VALUE
:
return
0
;
case
YIELD_FROM
:
return
-1
;
case
POP_BLOCK
:
return
0
;
case
POP_EXCEPT
:
return
0
;
/* -3 except if bad bytecode */
case
END_FINALLY
:
return
-1
;
/* or -2 or -3 if exception occurred */
case
STORE_NAME
:
return
-1
;
case
DELETE_NAME
:
return
0
;
case
UNPACK_SEQUENCE
:
return
oparg
-
1
;
case
UNPACK_EX
:
return
(
oparg
&
0xFF
)
+
(
oparg
>>
8
);
case
FOR_ITER
:
return
1
;
/* or -1, at end of iterator */
case
STORE_ATTR
:
return
-2
;
case
DELETE_ATTR
:
return
-1
;
case
STORE_GLOBAL
:
return
-1
;
case
DELETE_GLOBAL
:
return
0
;
case
LOAD_CONST
:
return
1
;
case
LOAD_NAME
:
return
1
;
case
BUILD_TUPLE
:
case
BUILD_LIST
:
case
BUILD_SET
:
case
BUILD_STRING
:
return
1
-
oparg
;
case
BUILD_LIST_UNPACK
:
case
BUILD_TUPLE_UNPACK
:
case
BUILD_TUPLE_UNPACK_WITH_CALL
:
case
BUILD_SET_UNPACK
:
case
BUILD_MAP_UNPACK
:
case
BUILD_MAP_UNPACK_WITH_CALL
:
return
1
-
oparg
;
case
BUILD_MAP
:
return
1
-
2
*
oparg
;
case
BUILD_CONST_KEY_MAP
:
return
-
oparg
;
case
LOAD_ATTR
:
return
0
;
View remainder of file in raw view
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