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1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 | # `!ast`{.interpreted-text role="mod"} \-\-- Abstract syntax trees
::: {.module synopsis="Abstract Syntax Tree classes and manipulation."}
ast
:::
::: testsetup
import ast
:::
**Source code:** `Lib/ast.py`{.interpreted-text role="source"}
------------------------------------------------------------------------
The `!ast`{.interpreted-text role="mod"} module helps Python applications to process trees of the Python abstract syntax grammar. The abstract syntax itself might change with each Python release; this module helps to find out programmatically what the current grammar looks like.
An abstract syntax tree can be generated by passing `ast.PyCF_ONLY_AST`{.interpreted-text role="data"} as a flag to the `compile`{.interpreted-text role="func"} built-in function, or using the `parse`{.interpreted-text role="func"} helper provided in this module. The result will be a tree of objects whose classes all inherit from `ast.AST`{.interpreted-text role="class"}. An abstract syntax tree can be compiled into a Python code object using the built-in `compile`{.interpreted-text role="func"} function.
## Abstract grammar
The abstract grammar is currently defined as follows:
::: {.literalinclude language="asdl"}
../../Parser/Python.asdl
:::
## Node classes
:::::::::: AST
This is the base of all AST node classes. The actual node classes are derived from the `Parser/Python.asdl`{.interpreted-text role="file"} file, which is reproduced `above <abstract-grammar>`{.interpreted-text role="ref"}. They are defined in the `!_ast`{.interpreted-text role="mod"} C module and re-exported in `!ast`{.interpreted-text role="mod"}.
There is one class defined for each left-hand side symbol in the abstract grammar (for example, `ast.stmt`{.interpreted-text role="class"} or `ast.expr`{.interpreted-text role="class"}). In addition, there is one class defined for each constructor on the right-hand side; these classes inherit from the classes for the left-hand side trees. For example, `ast.BinOp`{.interpreted-text role="class"} inherits from `ast.expr`{.interpreted-text role="class"}. For production rules with alternatives (aka \"sums\"), the left-hand side class is abstract: only instances of specific constructor nodes are ever created.
::: index
single: ? (question mark); in AST grammar
:::
::: index
single: \* (asterisk); in AST grammar
:::
::: attribute
[fields]{#fields}
Each concrete class has an attribute `!_fields`{.interpreted-text role="attr"} which gives the names of all child nodes.
Each instance of a concrete class has one attribute for each child node, of the type as defined in the grammar. For example, `ast.BinOp`{.interpreted-text role="class"} instances have an attribute `left`{.interpreted-text role="attr"} of type `ast.expr`{.interpreted-text role="class"}.
If these attributes are marked as optional in the grammar (using a question mark), the value might be `None`. If the attributes can have zero-or-more values (marked with an asterisk), the values are represented as Python lists. All possible attributes must be present and have valid values when compiling an AST with `compile`{.interpreted-text role="func"}.
:::
::::: attribute
[field_types]{#field_types}
The `!_field_types`{.interpreted-text role="attr"} attribute on each concrete class is a dictionary mapping field names (as also listed in `_fields`{.interpreted-text role="attr"}) to their types.
::: doctest
\>\>\> ast.TypeVar.\_field_types {\'name\': \<class \'str\'\>, \'bound\': ast.expr \| None, \'default_value\': ast.expr \| None}
:::
::: versionadded
3.13
:::
:::::
::: attribute
lineno col_offset end_lineno end_col_offset
Instances of `ast.expr`{.interpreted-text role="class"} and `ast.stmt`{.interpreted-text role="class"} subclasses have `lineno`{.interpreted-text role="attr"}, `col_offset`{.interpreted-text role="attr"}, `end_lineno`{.interpreted-text role="attr"}, and `end_col_offset`{.interpreted-text role="attr"} attributes. The `lineno`{.interpreted-text role="attr"} and `end_lineno`{.interpreted-text role="attr"} are the first and last line numbers of source text span (1-indexed so the first line is line 1) and the `col_offset`{.interpreted-text role="attr"} and `end_col_offset`{.interpreted-text role="attr"} are the corresponding UTF-8 byte offsets of the first and last tokens that generated the node. The UTF-8 offset is recorded because the parser uses UTF-8 internally.
Note that the end positions are not required by the compiler and are therefore optional. The end offset is *after* the last symbol, for example one can get the source segment of a one-line expression node using `source_line[node.col_offset : node.end_col_offset]`.
:::
The constructor of a class `ast.T`{.interpreted-text role="class"} parses its arguments as follows:
- If there are positional arguments, there must be as many as there are items in `T._fields`{.interpreted-text role="attr"}; they will be assigned as attributes of these names.
- If there are keyword arguments, they will set the attributes of the same names to the given values.
For example, to create and populate an `ast.UnaryOp`{.interpreted-text role="class"} node, you could use :
node = ast.UnaryOp(ast.USub(), ast.Constant(5, lineno=0, col_offset=0),
lineno=0, col_offset=0)
If a field that is optional in the grammar is omitted from the constructor, it defaults to `None`. If a list field is omitted, it defaults to the empty list. If a field of type `!ast.expr_context`{.interpreted-text role="class"} is omitted, it defaults to `Load() <ast.Load>`{.interpreted-text role="class"}. If any other field is omitted, a `DeprecationWarning`{.interpreted-text role="exc"} is raised and the AST node will not have this field. In Python 3.15, this condition will raise an error.
::::::::::
::: versionchanged
3.8
Class `ast.Constant`{.interpreted-text role="class"} is now used for all constants.
:::
::: versionchanged
3.9
Simple indices are represented by their value, extended slices are represented as tuples.
:::
::: versionchanged
3.14
The `~object.__repr__`{.interpreted-text role="meth"} output of `~ast.AST`{.interpreted-text role="class"} nodes includes the values of the node fields.
:::
::: deprecated-removed
3.8 3.14
Previous versions of Python provided the AST classes `!ast.Num`{.interpreted-text role="class"}, `!ast.Str`{.interpreted-text role="class"}, `!ast.Bytes`{.interpreted-text role="class"}, `!ast.NameConstant`{.interpreted-text role="class"} and `!ast.Ellipsis`{.interpreted-text role="class"}, which were deprecated in Python 3.8. These classes were removed in Python 3.14, and their functionality has been replaced with `ast.Constant`{.interpreted-text role="class"}.
:::
::: deprecated
3.9
Old classes `!ast.Index`{.interpreted-text role="class"} and `!ast.ExtSlice`{.interpreted-text role="class"} are still available, but they will be removed in future Python releases. In the meantime, instantiating them will return an instance of a different class.
:::
::: deprecated-removed
3.13 3.15
Previous versions of Python allowed the creation of AST nodes that were missing required fields. Similarly, AST node constructors allowed arbitrary keyword arguments that were set as attributes of the AST node, even if they did not match any of the fields of the AST node. This behavior is deprecated and will be removed in Python 3.15.
:::
:::: note
::: title
Note
:::
The descriptions of the specific node classes displayed here were initially adapted from the fantastic [Green Tree Snakes](https://greentreesnakes.readthedocs.io/en/latest/) project and all its contributors.
::::
### Root nodes {#ast-root-nodes}
:::: {.Module(body, .type_ignores)}
A Python module, as with `file input <file-input>`{.interpreted-text role="ref"}. Node type generated by `ast.parse`{.interpreted-text role="func"} in the default `"exec"` *mode*.
`body` is a `list`{.interpreted-text role="class"} of the module\'s `ast-statements`{.interpreted-text role="ref"}.
`type_ignores` is a `list`{.interpreted-text role="class"} of the module\'s type ignore comments; see `ast.parse`{.interpreted-text role="func"} for more details.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'x = 1\'), indent=4)) Module( body=\[ Assign( targets=\[ Name(id=\'x\', ctx=Store())\], value=Constant(value=1))\])
:::
::::
:::: Expression(body)
A single Python `expression input <expression-input>`{.interpreted-text role="ref"}. Node type generated by `ast.parse`{.interpreted-text role="func"} when *mode* is `"eval"`.
`body` is a single node, one of the `expression types <ast-expressions>`{.interpreted-text role="ref"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'123\', mode=\'eval\'), indent=4)) Expression( body=Constant(value=123))
:::
::::
:::: Interactive(body)
A single `interactive input <interactive>`{.interpreted-text role="ref"}, like in `tut-interac`{.interpreted-text role="ref"}. Node type generated by `ast.parse`{.interpreted-text role="func"} when *mode* is `"single"`.
`body` is a `list`{.interpreted-text role="class"} of `statement nodes <ast-statements>`{.interpreted-text role="ref"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'x = 1; y = 2\', mode=\'single\'), indent=4)) Interactive( body=\[ Assign( targets=\[ Name(id=\'x\', ctx=Store())\], value=Constant(value=1)), Assign( targets=\[ Name(id=\'y\', ctx=Store())\], value=Constant(value=2))\])
:::
::::
::::: {.FunctionType(argtypes, .returns)}
A representation of an old-style type comments for functions, as Python versions prior to 3.5 didn\'t support `484`{.interpreted-text role="pep"} annotations. Node type generated by `ast.parse`{.interpreted-text role="func"} when *mode* is `"func_type"`.
Such type comments would look like this:
def sum_two_number(a, b):
# type: (int, int) -> int
return a + b
`argtypes` is a `list`{.interpreted-text role="class"} of `expression nodes <ast-expressions>`{.interpreted-text role="ref"}.
`returns` is a single `expression node <ast-expressions>`{.interpreted-text role="ref"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'(int, str) -\> List\[int\]\', mode=\'func_type\'), indent=4)) FunctionType( argtypes=\[ Name(id=\'int\'), Name(id=\'str\')\], returns=Subscript( value=Name(id=\'List\'), slice=Name(id=\'int\')))
:::
::: versionadded
3.8
:::
:::::
### Literals
:::: Constant(value)
A constant value. The `value` attribute of the `Constant` literal contains the Python object it represents. The values represented can be instances of `str`{.interpreted-text role="class"}, `bytes`{.interpreted-text role="class"}, `int`{.interpreted-text role="class"}, `float`{.interpreted-text role="class"}, `complex`{.interpreted-text role="class"}, and `bool`{.interpreted-text role="class"}, and the constants `None`{.interpreted-text role="data"} and `Ellipsis`{.interpreted-text role="data"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'123\', mode=\'eval\'), indent=4)) Expression( body=Constant(value=123))
:::
::::
::: {.FormattedValue(value, .conversion, .format_spec)}
Node representing a single formatting field in an f-string. If the string contains a single formatting field and nothing else the node can be isolated otherwise it appears in `JoinedStr`{.interpreted-text role="class"}.
- `value` is any expression node (such as a literal, a variable, or a function call).
- `conversion` is an integer:
- -1: no formatting
- 97 (`ord('a')`): `!a` `ASCII <ascii>`{.interpreted-text role="func"} formatting
- 114 (`ord('r')`): `!r` `repr`{.interpreted-text role="func"} formatting
- 115 (`ord('s')`): `!s` `string <str>`{.interpreted-text role="func"} formatting
- `format_spec` is a `JoinedStr`{.interpreted-text role="class"} node representing the formatting of the value, or `None` if no format was specified. Both `conversion` and `format_spec` can be set at the same time.
:::
:::: JoinedStr(values)
An f-string, comprising a series of `FormattedValue`{.interpreted-text role="class"} and `Constant`{.interpreted-text role="class"} nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'f\"sin({a}) is {sin(a):.3}\"\', mode=\'eval\'), indent=4)) Expression( body=JoinedStr( values=\[ Constant(value=\'sin(\'), FormattedValue( value=Name(id=\'a\'), conversion=-1), Constant(value=\') is \'), FormattedValue( value=Call( func=Name(id=\'sin\'), args=\[ Name(id=\'a\')\]), conversion=-1, format_spec=JoinedStr( values=\[ Constant(value=\'.3\')\]))\]))
:::
::::
::::: {.TemplateStr(values, ./)}
::: versionadded
3.14
:::
Node representing a template string literal, comprising a series of `Interpolation`{.interpreted-text role="class"} and `Constant`{.interpreted-text role="class"} nodes. These nodes may be any order, and do not need to be interleaved.
::: doctest
\>\>\> expr = ast.parse(\'t\"{name} finished {place:ordinal}\"\', mode=\'eval\') \>\>\> print(ast.dump(expr, indent=4)) Expression( body=TemplateStr( values=\[ Interpolation( value=Name(id=\'name\'), str=\'name\', conversion=-1), Constant(value=\' finished \'), Interpolation( value=Name(id=\'place\'), str=\'place\', conversion=-1, format_spec=JoinedStr( values=\[ Constant(value=\'ordinal\')\]))\]))
:::
:::::
:::: {.Interpolation(value, .str, .conversion, .format_spec=None)}
::: versionadded
3.14
:::
Node representing a single interpolation field in a template string literal.
- `value` is any expression node (such as a literal, a variable, or a function call). This has the same meaning as `FormattedValue.value`.
- `str` is a constant containing the text of the interpolation expression.
If `str` is set to `None`, then `value` is used to generate code when calling `ast.unparse`{.interpreted-text role="func"}. This no longer guarantees that the generated code is identical to the original and is intended for code generation.
- `conversion` is an integer:
- -1: no conversion
- 97 (`ord('a')`): `!a` `ASCII <ascii>`{.interpreted-text role="func"} conversion
- 114 (`ord('r')`): `!r` `repr`{.interpreted-text role="func"} conversion
- 115 (`ord('s')`): `!s` `string <str>`{.interpreted-text role="func"} conversion
This has the same meaning as `FormattedValue.conversion`.
- `format_spec` is a `JoinedStr`{.interpreted-text role="class"} node representing the formatting of the value, or `None` if no format was specified. Both `conversion` and `format_spec` can be set at the same time. This has the same meaning as `FormattedValue.format_spec`.
::::
:::: {.List(elts, .ctx) .Tuple(elts, .ctx)}
A list or tuple. `elts` holds a list of nodes representing the elements. `ctx` is `Store`{.interpreted-text role="class"} if the container is an assignment target (i.e. `(x,y)=something`), and `Load`{.interpreted-text role="class"} otherwise.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'\[1, 2, 3\]\', mode=\'eval\'), indent=4)) Expression( body=List( elts=\[ Constant(value=1), Constant(value=2), Constant(value=3)\])) \>\>\> print(ast.dump(ast.parse(\'(1, 2, 3)\', mode=\'eval\'), indent=4)) Expression( body=Tuple( elts=\[ Constant(value=1), Constant(value=2), Constant(value=3)\]))
:::
::::
:::: Set(elts)
A set. `elts` holds a list of nodes representing the set\'s elements.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'{1, 2, 3}\', mode=\'eval\'), indent=4)) Expression( body=Set( elts=\[ Constant(value=1), Constant(value=2), Constant(value=3)\]))
:::
::::
:::: {.Dict(keys, .values)}
A dictionary. `keys` and `values` hold lists of nodes representing the keys and the values respectively, in matching order (what would be returned when calling `dictionary.keys()` and `dictionary.values()`).
When doing dictionary unpacking using dictionary literals the expression to be expanded goes in the `values` list, with a `None` at the corresponding position in `keys`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'{\"a\":1, \*\*d}\', mode=\'eval\'), indent=4)) Expression( body=Dict( keys=\[ Constant(value=\'a\'), None\], values=\[ Constant(value=1), Name(id=\'d\')\]))
:::
::::
### Variables
::: {.Name(id, .ctx)}
A variable name. `id` holds the name as a string, and `ctx` is one of the following types.
:::
:::: {.Load() .Store() .Del()}
Variable references can be used to load the value of a variable, to assign a new value to it, or to delete it. Variable references are given a context to distinguish these cases.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'a\'), indent=4)) Module( body=\[ Expr( value=Name(id=\'a\'))\])
\>\>\> print(ast.dump(ast.parse(\'a = 1\'), indent=4)) Module( body=\[ Assign( targets=\[ Name(id=\'a\', ctx=Store())\], value=Constant(value=1))\])
\>\>\> print(ast.dump(ast.parse(\'del a\'), indent=4)) Module( body=\[ Delete( targets=\[ Name(id=\'a\', ctx=Del())\])\])
:::
::::
:::: {.Starred(value, .ctx)}
A `*var` variable reference. `value` holds the variable, typically a `Name`{.interpreted-text role="class"} node. This type must be used when building a `Call`{.interpreted-text role="class"} node with `*args`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'a, \*b = it\'), indent=4)) Module( body=\[ Assign( targets=\[ Tuple( elts=\[ Name(id=\'a\', ctx=Store()), Starred( value=Name(id=\'b\', ctx=Store()), ctx=Store())\], ctx=Store())\], value=Name(id=\'it\'))\])
:::
::::
### Expressions {#ast-expressions}
:::: Expr(value)
When an expression, such as a function call, appears as a statement by itself with its return value not used or stored, it is wrapped in this container. `value` holds one of the other nodes in this section, a `Constant`{.interpreted-text role="class"}, a `Name`{.interpreted-text role="class"}, a `Lambda`{.interpreted-text role="class"}, a `Yield`{.interpreted-text role="class"} or `YieldFrom`{.interpreted-text role="class"} node.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'-a\'), indent=4)) Module( body=\[ Expr( value=UnaryOp( op=USub(), operand=Name(id=\'a\')))\])
:::
::::
::: {.UnaryOp(op, .operand)}
A unary operation. `op` is the operator, and `operand` any expression node.
:::
:::: {.UAdd .USub .Not .Invert}
Unary operator tokens. `Not`{.interpreted-text role="class"} is the `not` keyword, `Invert`{.interpreted-text role="class"} is the `~` operator.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'not x\', mode=\'eval\'), indent=4)) Expression( body=UnaryOp( op=Not(), operand=Name(id=\'x\')))
:::
::::
:::: {.BinOp(left, .op, .right)}
A binary operation (like addition or division). `op` is the operator, and `left` and `right` are any expression nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'x + y\', mode=\'eval\'), indent=4)) Expression( body=BinOp( left=Name(id=\'x\'), op=Add(), right=Name(id=\'y\')))
:::
::::
::: {.Add .Sub .Mult .Div .FloorDiv .Mod .Pow .LShift .RShift .BitOr .BitXor .BitAnd .MatMult}
Binary operator tokens.
:::
:::: {.BoolOp(op, .values)}
A boolean operation, \'or\' or \'and\'. `op` is `Or`{.interpreted-text role="class"} or `And`{.interpreted-text role="class"}. `values` are the values involved. Consecutive operations with the same operator, such as `a or b or c`, are collapsed into one node with several values.
This doesn\'t include `not`, which is a `UnaryOp`{.interpreted-text role="class"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'x or y\', mode=\'eval\'), indent=4)) Expression( body=BoolOp( op=Or(), values=\[ Name(id=\'x\'), Name(id=\'y\')\]))
:::
::::
::: {.And .Or}
Boolean operator tokens.
:::
:::: {.Compare(left, .ops, .comparators)}
A comparison of two or more values. `left` is the first value in the comparison, `ops` the list of operators, and `comparators` the list of values after the first element in the comparison.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'1 \<= a \< 10\', mode=\'eval\'), indent=4)) Expression( body=Compare( left=Constant(value=1), ops=\[ LtE(), Lt()\], comparators=\[ Name(id=\'a\'), Constant(value=10)\]))
:::
::::
::: {.Eq .NotEq .Lt .LtE .Gt .GtE .Is .IsNot .In .NotIn}
Comparison operator tokens.
:::
:::: {.Call(func, .args, .keywords)}
A function call. `func` is the function, which will often be a `Name`{.interpreted-text role="class"} or `Attribute`{.interpreted-text role="class"} object. Of the arguments:
- `args` holds a list of the arguments passed by position.
- `keywords` holds a list of `.keyword`{.interpreted-text role="class"} objects representing arguments passed by keyword.
The `args` and `keywords` arguments are optional and default to empty lists.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'func(a, b=c, *d,*\*e)\', mode=\'eval\'), indent=4)) Expression( body=Call( func=Name(id=\'func\'), args=\[ Name(id=\'a\'), Starred( value=Name(id=\'d\'))\], keywords=\[ keyword( arg=\'b\', value=Name(id=\'c\')), keyword( value=Name(id=\'e\'))\]))
:::
::::
::: {.keyword(arg, .value)}
A keyword argument to a function call or class definition. `arg` is a raw string of the parameter name, `value` is a node to pass in.
:::
:::: {.IfExp(test, .body, .orelse)}
An expression such as `a if b else c`. Each field holds a single node, so in the following example, all three are `Name`{.interpreted-text role="class"} nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'a if b else c\', mode=\'eval\'), indent=4)) Expression( body=IfExp( test=Name(id=\'b\'), body=Name(id=\'a\'), orelse=Name(id=\'c\')))
:::
::::
:::: {.Attribute(value, .attr, .ctx)}
Attribute access, e.g. `d.keys`. `value` is a node, typically a `Name`{.interpreted-text role="class"}. `attr` is a bare string giving the name of the attribute, and `ctx` is `Load`{.interpreted-text role="class"}, `Store`{.interpreted-text role="class"} or `Del`{.interpreted-text role="class"} according to how the attribute is acted on.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'snake.colour\', mode=\'eval\'), indent=4)) Expression( body=Attribute( value=Name(id=\'snake\'), attr=\'colour\'))
:::
::::
::::: {.NamedExpr(target, .value)}
A named expression. This AST node is produced by the assignment expressions operator (also known as the walrus operator). As opposed to the `Assign`{.interpreted-text role="class"} node in which the first argument can be multiple nodes, in this case both `target` and `value` must be single nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'(x := 4)\', mode=\'eval\'), indent=4)) Expression( body=NamedExpr( target=Name(id=\'x\', ctx=Store()), value=Constant(value=4)))
:::
::: versionadded
3.8
:::
:::::
#### Subscripting
:::: {.Subscript(value, .slice, .ctx)}
A subscript, such as `l[1]`. `value` is the subscripted object (usually sequence or mapping). `slice` is an index, slice or key. It can be a `Tuple`{.interpreted-text role="class"} and contain a `Slice`{.interpreted-text role="class"}. `ctx` is `Load`{.interpreted-text role="class"}, `Store`{.interpreted-text role="class"} or `Del`{.interpreted-text role="class"} according to the action performed with the subscript.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'l\[1:2, 3\]\', mode=\'eval\'), indent=4)) Expression( body=Subscript( value=Name(id=\'l\'), slice=Tuple( elts=\[ Slice( lower=Constant(value=1), upper=Constant(value=2)), Constant(value=3)\])))
:::
::::
:::: {.Slice(lower, .upper, .step)}
Regular slicing (on the form `lower:upper` or `lower:upper:step`). Can occur only inside the *slice* field of `Subscript`{.interpreted-text role="class"}, either directly or as an element of `Tuple`{.interpreted-text role="class"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'l\[1:2\]\', mode=\'eval\'), indent=4)) Expression( body=Subscript( value=Name(id=\'l\'), slice=Slice( lower=Constant(value=1), upper=Constant(value=2))))
:::
::::
#### Comprehensions
:::: {.ListComp(elt, .generators) .SetComp(elt, .generators) .GeneratorExp(elt, .generators) .DictComp(key, .value, .generators)}
List and set comprehensions, generator expressions, and dictionary comprehensions. `elt` (or `key` and `value`) is a single node representing the part that will be evaluated for each item.
`generators` is a list of `comprehension`{.interpreted-text role="class"} nodes.
::: doctest
\>\>\> print(ast.dump( \... ast.parse(\'\[x for x in numbers\]\', mode=\'eval\'), \... indent=4, \... )) Expression( body=ListComp( elt=Name(id=\'x\'), generators=\[ comprehension( target=Name(id=\'x\', ctx=Store()), iter=Name(id=\'numbers\'), is_async=0)\])) \>\>\> print(ast.dump( \... ast.parse(\'{x: x\*\*2 for x in numbers}\', mode=\'eval\'), \... indent=4, \... )) Expression( body=DictComp( key=Name(id=\'x\'), value=BinOp( left=Name(id=\'x\'), op=Pow(), right=Constant(value=2)), generators=\[ comprehension( target=Name(id=\'x\', ctx=Store()), iter=Name(id=\'numbers\'), is_async=0)\])) \>\>\> print(ast.dump( \... ast.parse(\'{x for x in numbers}\', mode=\'eval\'), \... indent=4, \... )) Expression( body=SetComp( elt=Name(id=\'x\'), generators=\[ comprehension( target=Name(id=\'x\', ctx=Store()), iter=Name(id=\'numbers\'), is_async=0)\]))
:::
::::
:::: {.comprehension(target, .iter, .ifs, .is_async)}
One `for` clause in a comprehension. `target` is the reference to use for each element - typically a `Name`{.interpreted-text role="class"} or `Tuple`{.interpreted-text role="class"} node. `iter` is the object to iterate over. `ifs` is a list of test expressions: each `for` clause can have multiple `ifs`.
`is_async` indicates a comprehension is asynchronous (using an `async for` instead of `for`). The value is an integer (0 or 1).
::: doctest
\>\>\> print(ast.dump(ast.parse(\'\[ord(c) for line in file for c in line\]\', mode=\'eval\'), \... indent=4)) \# Multiple comprehensions in one. Expression( body=ListComp( elt=Call( func=Name(id=\'ord\'), args=\[ Name(id=\'c\')\]), generators=\[ comprehension( target=Name(id=\'line\', ctx=Store()), iter=Name(id=\'file\'), is_async=0), comprehension( target=Name(id=\'c\', ctx=Store()), iter=Name(id=\'line\'), is_async=0)\]))
\>\>\> print(ast.dump(ast.parse(\'(n\*\*2 for n in it if n\>5 if n\<10)\', mode=\'eval\'), \... indent=4)) \# generator comprehension Expression( body=GeneratorExp( elt=BinOp( left=Name(id=\'n\'), op=Pow(), right=Constant(value=2)), generators=\[ comprehension( target=Name(id=\'n\', ctx=Store()), iter=Name(id=\'it\'), ifs=\[ Compare( left=Name(id=\'n\'), ops=\[ Gt()\], comparators=\[ Constant(value=5)\]), Compare( left=Name(id=\'n\'), ops=\[ Lt()\], comparators=\[ Constant(value=10)\])\], is_async=0)\]))
\>\>\> print(ast.dump(ast.parse(\'\[i async for i in soc\]\', mode=\'eval\'), \... indent=4)) \# Async comprehension Expression( body=ListComp( elt=Name(id=\'i\'), generators=\[ comprehension( target=Name(id=\'i\', ctx=Store()), iter=Name(id=\'soc\'), is_async=1)\]))
:::
::::
### Statements {#ast-statements}
::::: {.Assign(targets, .value, .type_comment)}
An assignment. `targets` is a list of nodes, and `value` is a single node.
Multiple nodes in `targets` represents assigning the same value to each. Unpacking is represented by putting a `Tuple`{.interpreted-text role="class"} or `List`{.interpreted-text role="class"} within `targets`.
::: attribute
type_comment
`type_comment` is an optional string with the type annotation as a comment.
:::
::: doctest
\>\>\> print(ast.dump(ast.parse(\'a = b = 1\'), indent=4)) \# Multiple assignment Module( body=\[ Assign( targets=\[ Name(id=\'a\', ctx=Store()), Name(id=\'b\', ctx=Store())\], value=Constant(value=1))\])
\>\>\> print(ast.dump(ast.parse(\'a,b = c\'), indent=4)) \# Unpacking Module( body=\[ Assign( targets=\[ Tuple( elts=\[ Name(id=\'a\', ctx=Store()), Name(id=\'b\', ctx=Store())\], ctx=Store())\], value=Name(id=\'c\'))\])
:::
:::::
:::: {.AnnAssign(target, .annotation, .value, .simple)}
An assignment with a type annotation. `target` is a single node and can be a `Name`{.interpreted-text role="class"}, an `Attribute`{.interpreted-text role="class"} or a `Subscript`{.interpreted-text role="class"}. `annotation` is the annotation, such as a `Constant`{.interpreted-text role="class"} or `Name`{.interpreted-text role="class"} node. `value` is a single optional node.
`simple` is always either 0 (indicating a \"complex\" target) or 1 (indicating a \"simple\" target). A \"simple\" target consists solely of a `Name`{.interpreted-text role="class"} node that does not appear between parentheses; all other targets are considered complex. Only simple targets appear in the `~object.__annotations__`{.interpreted-text role="attr"} dictionary of modules and classes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'c: int\'), indent=4)) Module( body=\[ AnnAssign( target=Name(id=\'c\', ctx=Store()), annotation=Name(id=\'int\'), simple=1)\])
\>\>\> print(ast.dump(ast.parse(\'(a): int = 1\'), indent=4)) \# Annotation with parenthesis Module( body=\[ AnnAssign( target=Name(id=\'a\', ctx=Store()), annotation=Name(id=\'int\'), value=Constant(value=1), simple=0)\])
\>\>\> print(ast.dump(ast.parse(\'a.b: int\'), indent=4)) \# Attribute annotation Module( body=\[ AnnAssign( target=Attribute( value=Name(id=\'a\'), attr=\'b\', ctx=Store()), annotation=Name(id=\'int\'), simple=0)\])
\>\>\> print(ast.dump(ast.parse(\'a\[1\]: int\'), indent=4)) \# Subscript annotation Module( body=\[ AnnAssign( target=Subscript( value=Name(id=\'a\'), slice=Constant(value=1), ctx=Store()), annotation=Name(id=\'int\'), simple=0)\])
:::
::::
:::: {.AugAssign(target, .op, .value)}
Augmented assignment, such as `a += 1`. In the following example, `target` is a `Name`{.interpreted-text role="class"} node for `x` (with the `Store`{.interpreted-text role="class"} context), `op` is `Add`{.interpreted-text role="class"}, and `value` is a `Constant`{.interpreted-text role="class"} with value for 1.
The `target` attribute cannot be of class `Tuple`{.interpreted-text role="class"} or `List`{.interpreted-text role="class"}, unlike the targets of `Assign`{.interpreted-text role="class"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'x += 2\'), indent=4)) Module( body=\[ AugAssign( target=Name(id=\'x\', ctx=Store()), op=Add(), value=Constant(value=2))\])
:::
::::
:::: {.Raise(exc, .cause)}
A `raise` statement. `exc` is the exception object to be raised, normally a `Call`{.interpreted-text role="class"} or `Name`{.interpreted-text role="class"}, or `None` for a standalone `raise`. `cause` is the optional part for `y` in `raise x from y`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'raise x from y\'), indent=4)) Module( body=\[ Raise( exc=Name(id=\'x\'), cause=Name(id=\'y\'))\])
:::
::::
:::: {.Assert(test, .msg)}
An assertion. `test` holds the condition, such as a `Compare`{.interpreted-text role="class"} node. `msg` holds the failure message.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'assert x,y\'), indent=4)) Module( body=\[ Assert( test=Name(id=\'x\'), msg=Name(id=\'y\'))\])
:::
::::
:::: Delete(targets)
Represents a `del` statement. `targets` is a list of nodes, such as `Name`{.interpreted-text role="class"}, `Attribute`{.interpreted-text role="class"} or `Subscript`{.interpreted-text role="class"} nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'del x,y,z\'), indent=4)) Module( body=\[ Delete( targets=\[ Name(id=\'x\', ctx=Del()), Name(id=\'y\', ctx=Del()), Name(id=\'z\', ctx=Del())\])\])
:::
::::
:::: Pass()
A `pass` statement.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'pass\'), indent=4)) Module( body=\[ Pass()\])
:::
::::
::::: {.TypeAlias(name, .type_params, .value)}
A `type alias <type-aliases>`{.interpreted-text role="ref"} created through the `type`{.interpreted-text role="keyword"} statement. `name` is the name of the alias, `type_params` is a list of `type parameters <ast-type-params>`{.interpreted-text role="ref"}, and `value` is the value of the type alias.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'type Alias = int\'), indent=4)) Module( body=\[ TypeAlias( name=Name(id=\'Alias\', ctx=Store()), value=Name(id=\'int\'))\])
:::
::: versionadded
3.12
:::
:::::
Other statements which are only applicable inside functions or loops are described in other sections.
#### Imports
:::: Import(names)
An import statement. `names` is a list of `alias`{.interpreted-text role="class"} nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'import x,y,z\'), indent=4)) Module( body=\[ Import( names=\[ alias(name=\'x\'), alias(name=\'y\'), alias(name=\'z\')\], is_lazy=0)\])
:::
::::
:::: {.ImportFrom(module, .names, .level)}
Represents `from x import y`. `module` is a raw string of the \'from\' name, without any leading dots, or `None` for statements such as `from . import foo`. `level` is an integer holding the level of the relative import (0 means absolute import).
::: doctest
\>\>\> print(ast.dump(ast.parse(\'from y import x,y,z\'), indent=4)) Module( body=\[ ImportFrom( module=\'y\', names=\[ alias(name=\'x\'), alias(name=\'y\'), alias(name=\'z\')\], level=0, is_lazy=0)\])
:::
::::
:::: {.alias(name, .asname)}
Both parameters are raw strings of the names. `asname` can be `None` if the regular name is to be used.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'from ..foo.bar import a as b, c\'), indent=4)) Module( body=\[ ImportFrom( module=\'foo.bar\', names=\[ alias(name=\'a\', asname=\'b\'), alias(name=\'c\')\], level=2, is_lazy=0)\])
:::
::::
### Control flow
:::: note
::: title
Note
:::
Optional clauses such as `else` are stored as an empty list if they\'re not present.
::::
:::: {.If(test, .body, .orelse)}
An `if` statement. `test` holds a single node, such as a `Compare`{.interpreted-text role="class"} node. `body` and `orelse` each hold a list of nodes.
`elif` clauses don\'t have a special representation in the AST, but rather appear as extra `If`{.interpreted-text role="class"} nodes within the `orelse` section of the previous one.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... if x: \... \... \... elif y: \... \... \... else: \... \... \... \"\"\"), indent=4)) Module( body=\[ If( test=Name(id=\'x\'), body=\[ Expr( value=Constant(value=Ellipsis))\], orelse=\[ If( test=Name(id=\'y\'), body=\[ Expr( value=Constant(value=Ellipsis))\], orelse=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::::
::::: {.For(target, .iter, .body, .orelse, .type_comment)}
A `for` loop. `target` holds the variable(s) the loop assigns to, as a single `Name`{.interpreted-text role="class"}, `Tuple`{.interpreted-text role="class"}, `List`{.interpreted-text role="class"}, `Attribute`{.interpreted-text role="class"} or `Subscript`{.interpreted-text role="class"} node. `iter` holds the item to be looped over, again as a single node. `body` and `orelse` contain lists of nodes to execute. Those in `orelse` are executed if the loop finishes normally, rather than via a `break` statement.
::: attribute
type_comment
`type_comment` is an optional string with the type annotation as a comment.
:::
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... for x in y: \... \... \... else: \... \... \... \"\"\"), indent=4)) Module( body=\[ For( target=Name(id=\'x\', ctx=Store()), iter=Name(id=\'y\'), body=\[ Expr( value=Constant(value=Ellipsis))\], orelse=\[ Expr( value=Constant(value=Ellipsis))\])\])
:::
:::::
:::: {.While(test, .body, .orelse)}
A `while` loop. `test` holds the condition, such as a `Compare`{.interpreted-text role="class"} node.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... while x: \... \... \... else: \... \... \... \"\"\"), indent=4)) Module( body=\[ While( test=Name(id=\'x\'), body=\[ Expr( value=Constant(value=Ellipsis))\], orelse=\[ Expr( value=Constant(value=Ellipsis))\])\])
:::
::::
:::: {.Break .Continue}
The `break` and `continue` statements.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\"\... for a in b: \... if a \> 5: \... break \... else: \... continue \... \... \"\"\"), indent=4)) Module( body=\[ For( target=Name(id=\'a\', ctx=Store()), iter=Name(id=\'b\'), body=\[ If( test=Compare( left=Name(id=\'a\'), ops=\[ Gt()\], comparators=\[ Constant(value=5)\]), body=\[ Break()\], orelse=\[ Continue()\])\])\])
:::
::::
:::: {.Try(body, .handlers, .orelse, .finalbody)}
`try` blocks. All attributes are list of nodes to execute, except for `handlers`, which is a list of `ExceptHandler`{.interpreted-text role="class"} nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... try: \... \... \... except Exception: \... \... \... except OtherException as e: \... \... \... else: \... \... \... finally: \... \... \... \"\"\"), indent=4)) Module( body=\[ Try( body=\[ Expr( value=Constant(value=Ellipsis))\], handlers=\[ ExceptHandler( type=Name(id=\'Exception\'), body=\[ Expr( value=Constant(value=Ellipsis))\]), ExceptHandler( type=Name(id=\'OtherException\'), name=\'e\', body=\[ Expr( value=Constant(value=Ellipsis))\])\], orelse=\[ Expr( value=Constant(value=Ellipsis))\], finalbody=\[ Expr( value=Constant(value=Ellipsis))\])\])
:::
::::
::::: {.TryStar(body, .handlers, .orelse, .finalbody)}
`try` blocks which are followed by `except*` clauses. The attributes are the same as for `Try`{.interpreted-text role="class"} but the `ExceptHandler`{.interpreted-text role="class"} nodes in `handlers` are interpreted as `except*` blocks rather then `except`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... try: \... \... \... except\* Exception: \... \... \... \"\"\"), indent=4)) Module( body=\[ TryStar( body=\[ Expr( value=Constant(value=Ellipsis))\], handlers=\[ ExceptHandler( type=Name(id=\'Exception\'), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.11
:::
:::::
:::: {.ExceptHandler(type, .name, .body)}
A single `except` clause. `type` is the exception type it will match, typically a `Name`{.interpreted-text role="class"} node (or `None` for a catch-all `except:` clause). `name` is a raw string for the name to hold the exception, or `None` if the clause doesn\'t have `as foo`. `body` is a list of nodes.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\"\... try: \... a + 1 \... except TypeError: \... pass \... \"\"\"), indent=4)) Module( body=\[ Try( body=\[ Expr( value=BinOp( left=Name(id=\'a\'), op=Add(), right=Constant(value=1)))\], handlers=\[ ExceptHandler( type=Name(id=\'TypeError\'), body=\[ Pass()\])\])\])
:::
::::
:::: {.With(items, .body, .type_comment)}
A `with` block. `items` is a list of `withitem`{.interpreted-text role="class"} nodes representing the context managers, and `body` is the indented block inside the context.
::: attribute
type_comment
`type_comment` is an optional string with the type annotation as a comment.
:::
::::
:::: {.withitem(context_expr, .optional_vars)}
A single context manager in a `with` block. `context_expr` is the context manager, often a `Call`{.interpreted-text role="class"} node. `optional_vars` is a `Name`{.interpreted-text role="class"}, `Tuple`{.interpreted-text role="class"} or `List`{.interpreted-text role="class"} for the `as foo` part, or `None` if that isn\'t used.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\"\... with a as b, c as d: \... something(b, d) \... \"\"\"), indent=4)) Module( body=\[ With( items=\[ withitem( context_expr=Name(id=\'a\'), optional_vars=Name(id=\'b\', ctx=Store())), withitem( context_expr=Name(id=\'c\'), optional_vars=Name(id=\'d\', ctx=Store()))\], body=\[ Expr( value=Call( func=Name(id=\'something\'), args=\[ Name(id=\'b\'), Name(id=\'d\')\]))\])\])
:::
::::
### Pattern matching
:::: {.Match(subject, .cases)}
A `match` statement. `subject` holds the subject of the match (the object that is being matched against the cases) and `cases` contains an iterable of `match_case`{.interpreted-text role="class"} nodes with the different cases.
::: versionadded
3.10
:::
::::
::::: {.match_case(pattern, .guard, .body)}
A single case pattern in a `match` statement. `pattern` contains the match pattern that the subject will be matched against. Note that the `AST`{.interpreted-text role="class"} nodes produced for patterns differ from those produced for expressions, even when they share the same syntax.
The `guard` attribute contains an expression that will be evaluated if the pattern matches the subject.
`body` contains a list of nodes to execute if the pattern matches and the result of evaluating the guard expression is true.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case \[x\] if x\>0: \... \... \... case tuple(): \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchSequence( patterns=\[ MatchAs(name=\'x\')\]), guard=Compare( left=Name(id=\'x\'), ops=\[ Gt()\], comparators=\[ Constant(value=0)\]), body=\[ Expr( value=Constant(value=Ellipsis))\]), match_case( pattern=MatchClass( cls=Name(id=\'tuple\')), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: MatchValue(value)
A match literal or value pattern that compares by equality. `value` is an expression node. Permitted value nodes are restricted as described in the match statement documentation. This pattern succeeds if the match subject is equal to the evaluated value.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case \"Relevant\": \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchValue( value=Constant(value=\'Relevant\')), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: MatchSingleton(value)
A match literal pattern that compares by identity. `value` is the singleton to be compared against: `None`, `True`, or `False`. This pattern succeeds if the match subject is the given constant.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case None: \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchSingleton(value=None), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: MatchSequence(patterns)
A match sequence pattern. `patterns` contains the patterns to be matched against the subject elements if the subject is a sequence. Matches a variable length sequence if one of the subpatterns is a `MatchStar` node, otherwise matches a fixed length sequence.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case \[1, 2\]: \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchSequence( patterns=\[ MatchValue( value=Constant(value=1)), MatchValue( value=Constant(value=2))\]), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: MatchStar(name)
Matches the rest of the sequence in a variable length match sequence pattern. If `name` is not `None`, a list containing the remaining sequence elements is bound to that name if the overall sequence pattern is successful.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case \[1, 2, *rest\]: \... \... \... case \[*\_\]: \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchSequence( patterns=\[ MatchValue( value=Constant(value=1)), MatchValue( value=Constant(value=2)), MatchStar(name=\'rest\')\]), body=\[ Expr( value=Constant(value=Ellipsis))\]), match_case( pattern=MatchSequence( patterns=\[ MatchStar()\]), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: {.MatchMapping(keys, .patterns, .rest)}
A match mapping pattern. `keys` is a sequence of expression nodes. `patterns` is a corresponding sequence of pattern nodes. `rest` is an optional name that can be specified to capture the remaining mapping elements. Permitted key expressions are restricted as described in the match statement documentation.
This pattern succeeds if the subject is a mapping, all evaluated key expressions are present in the mapping, and the value corresponding to each key matches the corresponding subpattern. If `rest` is not `None`, a dict containing the remaining mapping elements is bound to that name if the overall mapping pattern is successful.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case {1: \_, 2: \_}: \... \... \... case {\*\*rest}: \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchMapping( keys=\[ Constant(value=1), Constant(value=2)\], patterns=\[ MatchAs(), MatchAs()\]), body=\[ Expr( value=Constant(value=Ellipsis))\]), match_case( pattern=MatchMapping(rest=\'rest\'), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: {.MatchClass(cls, .patterns, .kwd_attrs, .kwd_patterns)}
A match class pattern. `cls` is an expression giving the nominal class to be matched. `patterns` is a sequence of pattern nodes to be matched against the class defined sequence of pattern matching attributes. `kwd_attrs` is a sequence of additional attributes to be matched (specified as keyword arguments in the class pattern), `kwd_patterns` are the corresponding patterns (specified as keyword values in the class pattern).
This pattern succeeds if the subject is an instance of the nominated class, all positional patterns match the corresponding class-defined attributes, and any specified keyword attributes match their corresponding pattern.
Note: classes may define a property that returns self in order to match a pattern node against the instance being matched. Several builtin types are also matched that way, as described in the match statement documentation.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case Point2D(0, 0): \... \... \... case Point3D(x=0, y=0, z=0): \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchClass( cls=Name(id=\'Point2D\'), patterns=\[ MatchValue( value=Constant(value=0)), MatchValue( value=Constant(value=0))\]), body=\[ Expr( value=Constant(value=Ellipsis))\]), match_case( pattern=MatchClass( cls=Name(id=\'Point3D\'), kwd_attrs=\[ \'x\', \'y\', \'z\'\], kwd_patterns=\[ MatchValue( value=Constant(value=0)), MatchValue( value=Constant(value=0)), MatchValue( value=Constant(value=0))\]), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: {.MatchAs(pattern, .name)}
A match \"as-pattern\", capture pattern or wildcard pattern. `pattern` contains the match pattern that the subject will be matched against. If the pattern is `None`, the node represents a capture pattern (i.e a bare name) and will always succeed.
The `name` attribute contains the name that will be bound if the pattern is successful. If `name` is `None`, `pattern` must also be `None` and the node represents the wildcard pattern.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case \[x\] as y: \... \... \... case \_: \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchAs( pattern=MatchSequence( patterns=\[ MatchAs(name=\'x\')\]), name=\'y\'), body=\[ Expr( value=Constant(value=Ellipsis))\]), match_case( pattern=MatchAs(), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
::::: MatchOr(patterns)
A match \"or-pattern\". An or-pattern matches each of its subpatterns in turn to the subject, until one succeeds. The or-pattern is then deemed to succeed. If none of the subpatterns succeed the or-pattern fails. The `patterns` attribute contains a list of match pattern nodes that will be matched against the subject.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\" \... match x: \... case \[x\] \| (y): \... \... \... \"\"\"), indent=4)) Module( body=\[ Match( subject=Name(id=\'x\'), cases=\[ match_case( pattern=MatchOr( patterns=\[ MatchSequence( patterns=\[ MatchAs(name=\'x\')\]), MatchAs(name=\'y\')\]), body=\[ Expr( value=Constant(value=Ellipsis))\])\])\])
:::
::: versionadded
3.10
:::
:::::
### Type annotations
::::::: {.TypeIgnore(lineno, .tag)}
A `# type: ignore` comment located at *lineno*. *tag* is the optional tag specified by the form `# type: ignore <tag>`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'x = 1 \# type: ignore\', type_comments=True), indent=4)) Module( body=\[ Assign( targets=\[ Name(id=\'x\', ctx=Store())\], value=Constant(value=1))\], type_ignores=\[ TypeIgnore(lineno=1, tag=\'\')\]) \>\>\> print(ast.dump(ast.parse(\'x: bool = 1 \# type: ignore\[assignment\]\', type_comments=True), indent=4)) Module( body=\[ AnnAssign( target=Name(id=\'x\', ctx=Store()), annotation=Name(id=\'bool\'), value=Constant(value=1), simple=1)\], type_ignores=\[ TypeIgnore(lineno=1, tag=\'\[assignment\]\')\])
:::
:::: note
::: title
Note
:::
`!TypeIgnore`{.interpreted-text role="class"} nodes are not generated when the *type_comments* parameter is set to `False` (default). See `ast.parse`{.interpreted-text role="func"} for more details.
::::
::: versionadded
3.8
:::
:::::::
### Type parameters {#ast-type-params}
`Type parameters <type-params>`{.interpreted-text role="ref"} can exist on classes, functions, and type aliases.
:::::: {.TypeVar(name, .bound, .default_value)}
A `typing.TypeVar`{.interpreted-text role="class"}. `name` is the name of the type variable. `bound` is the bound or constraints, if any. If `bound` is a `Tuple`{.interpreted-text role="class"}, it represents constraints; otherwise it represents the bound. `default_value` is the default value; if the `!TypeVar`{.interpreted-text role="class"} has no default, this attribute will be set to `None`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"type Alias\[T: int = bool\] = list\[T\]\"), indent=4)) Module( body=\[ TypeAlias( name=Name(id=\'Alias\', ctx=Store()), type_params=\[ TypeVar( name=\'T\', bound=Name(id=\'int\'), default_value=Name(id=\'bool\'))\], value=Subscript( value=Name(id=\'list\'), slice=Name(id=\'T\')))\])
:::
::: versionadded
3.12
:::
::: versionchanged
3.13 Added the *default_value* parameter.
:::
::::::
:::::: {.ParamSpec(name, .default_value)}
A `typing.ParamSpec`{.interpreted-text role="class"}. `name` is the name of the parameter specification. `default_value` is the default value; if the `!ParamSpec`{.interpreted-text role="class"} has no default, this attribute will be set to `None`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"type Alias\[\*\*P = \[int, str\]\] = Callable\[P, int\]\"), indent=4)) Module( body=\[ TypeAlias( name=Name(id=\'Alias\', ctx=Store()), type_params=\[ ParamSpec( name=\'P\', default_value=List( elts=\[ Name(id=\'int\'), Name(id=\'str\')\]))\], value=Subscript( value=Name(id=\'Callable\'), slice=Tuple( elts=\[ Name(id=\'P\'), Name(id=\'int\')\])))\])
:::
::: versionadded
3.12
:::
::: versionchanged
3.13 Added the *default_value* parameter.
:::
::::::
:::::: {.TypeVarTuple(name, .default_value)}
A `typing.TypeVarTuple`{.interpreted-text role="class"}. `name` is the name of the type variable tuple. `default_value` is the default value; if the `!TypeVarTuple`{.interpreted-text role="class"} has no default, this attribute will be set to `None`.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"type Alias\[*Ts = ()\] = tuple\[*Ts\]\"), indent=4)) Module( body=\[ TypeAlias( name=Name(id=\'Alias\', ctx=Store()), type_params=\[ TypeVarTuple(name=\'Ts\', default_value=Tuple())\], value=Subscript( value=Name(id=\'tuple\'), slice=Tuple( elts=\[ Starred( value=Name(id=\'Ts\'))\])))\])
:::
::: versionadded
3.12
:::
::: versionchanged
3.13 Added the *default_value* parameter.
:::
::::::
### Function and class definitions
::::: {.FunctionDef(name, .args, .body, .decorator_list, .returns, .type_comment, .type_params)}
A function definition.
- `name` is a raw string of the function name.
- `args` is an `arguments`{.interpreted-text role="class"} node.
- `body` is the list of nodes inside the function.
- `decorator_list` is the list of decorators to be applied, stored outermost first (i.e. the first in the list will be applied last).
- `returns` is the return annotation.
- `type_params` is a list of `type parameters <ast-type-params>`{.interpreted-text role="ref"}.
::: attribute
type_comment
`type_comment` is an optional string with the type annotation as a comment.
:::
::: versionchanged
3.12 Added `type_params`.
:::
:::::
:::: {.Lambda(args, .body)}
`lambda` is a minimal function definition that can be used inside an expression. Unlike `FunctionDef`{.interpreted-text role="class"}, `body` holds a single node.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'lambda x,y: \...\'), indent=4)) Module( body=\[ Expr( value=Lambda( args=arguments( args=\[ arg(arg=\'x\'), arg(arg=\'y\')\]), body=Constant(value=Ellipsis)))\])
:::
::::
::: {.arguments(posonlyargs, .args, .vararg, .kwonlyargs, .kw_defaults, .kwarg, .defaults)}
The arguments for a function.
- `posonlyargs`, `args` and `kwonlyargs` are lists of `arg`{.interpreted-text role="class"} nodes.
- `vararg` and `kwarg` are single `arg`{.interpreted-text role="class"} nodes, referring to the `*args, **kwargs` parameters.
- `kw_defaults` is a list of default values for keyword-only arguments. If one is `None`, the corresponding argument is required.
- `defaults` is a list of default values for arguments that can be passed positionally. If there are fewer defaults, they correspond to the last n arguments.
:::
::::: {.arg(arg, .annotation, .type_comment)}
A single argument in a list. `arg` is a raw string of the argument name; `annotation` is its annotation, such as a `Name`{.interpreted-text role="class"} node.
::: attribute
type_comment
`type_comment` is an optional string with the type annotation as a comment
:::
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\"\... \@decorator1 \... \@decorator2 \... def f(a: \'annotation\', b=1, c=2, *d, e, f=3,*\*g) -\> \'return annotation\': \... pass \... \"\"\"), indent=4)) Module( body=\[ FunctionDef( name=\'f\', args=arguments( args=\[ arg( arg=\'a\', annotation=Constant(value=\'annotation\')), arg(arg=\'b\'), arg(arg=\'c\')\], vararg=arg(arg=\'d\'), kwonlyargs=\[ arg(arg=\'e\'), arg(arg=\'f\')\], kw_defaults=\[ None, Constant(value=3)\], kwarg=arg(arg=\'g\'), defaults=\[ Constant(value=1), Constant(value=2)\]), body=\[ Pass()\], decorator_list=\[ Name(id=\'decorator1\'), Name(id=\'decorator2\')\], returns=Constant(value=\'return annotation\'))\])
:::
:::::
:::: Return(value)
A `return` statement.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'return 4\'), indent=4)) Module( body=\[ Return( value=Constant(value=4))\])
:::
::::
:::: {.Yield(value) .YieldFrom(value)}
A `yield` or `yield from` expression. Because these are expressions, they must be wrapped in an `Expr`{.interpreted-text role="class"} node if the value sent back is not used.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'yield x\'), indent=4)) Module( body=\[ Expr( value=Yield( value=Name(id=\'x\')))\])
\>\>\> print(ast.dump(ast.parse(\'yield from x\'), indent=4)) Module( body=\[ Expr( value=YieldFrom( value=Name(id=\'x\')))\])
:::
::::
:::: {.Global(names) .Nonlocal(names)}
`global` and `nonlocal` statements. `names` is a list of raw strings.
::: doctest
\>\>\> print(ast.dump(ast.parse(\'global x,y,z\'), indent=4)) Module( body=\[ Global( names=\[ \'x\', \'y\', \'z\'\])\])
\>\>\> print(ast.dump(ast.parse(\'nonlocal x,y,z\'), indent=4)) Module( body=\[ Nonlocal( names=\[ \'x\', \'y\', \'z\'\])\])
:::
::::
::::: {.ClassDef(name, .bases, .keywords, .body, .decorator_list, .type_params)}
A class definition.
- `name` is a raw string for the class name
- `bases` is a list of nodes for explicitly specified base classes.
- `keywords` is a list of `.keyword`{.interpreted-text role="class"} nodes, principally for \'metaclass\'. Other keywords will be passed to the metaclass, as per `3115`{.interpreted-text role="pep"}.
- `body` is a list of nodes representing the code within the class definition.
- `decorator_list` is a list of nodes, as in `FunctionDef`{.interpreted-text role="class"}.
- `type_params` is a list of `type parameters <ast-type-params>`{.interpreted-text role="ref"}.
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\"\... \@decorator1 \... \@decorator2 \... class Foo(base1, base2, metaclass=meta): \... pass \... \"\"\"), indent=4)) Module( body=\[ ClassDef( name=\'Foo\', bases=\[ Name(id=\'base1\'), Name(id=\'base2\')\], keywords=\[ keyword( arg=\'metaclass\', value=Name(id=\'meta\'))\], body=\[ Pass()\], decorator_list=\[ Name(id=\'decorator1\'), Name(id=\'decorator2\')\])\])
:::
::: versionchanged
3.12 Added `type_params`.
:::
:::::
### Async and await
:::: {.AsyncFunctionDef(name, .args, .body, .decorator_list, .returns, .type_comment, .type_params)}
An `async def` function definition. Has the same fields as `FunctionDef`{.interpreted-text role="class"}.
::: versionchanged
3.12 Added `type_params`.
:::
::::
::: Await(value)
An `await` expression. `value` is what it waits for. Only valid in the body of an `AsyncFunctionDef`{.interpreted-text role="class"}.
:::
::: doctest
\>\>\> print(ast.dump(ast.parse(\"\"\"\... async def f(): \... await other_func() \... \"\"\"), indent=4)) Module( body=\[ AsyncFunctionDef( name=\'f\', args=arguments(), body=\[ Expr( value=Await( value=Call( func=Name(id=\'other_func\'))))\])\])
:::
::: {.AsyncFor(target, .iter, .body, .orelse, .type_comment) .AsyncWith(items, .body, .type_comment)}
`async for` loops and `async with` context managers. They have the same fields as `For`{.interpreted-text role="class"} and `With`{.interpreted-text role="class"}, respectively. Only valid in the body of an `AsyncFunctionDef`{.interpreted-text role="class"}.
:::
:::: note
::: title
Note
:::
When a string is parsed by `ast.parse`{.interpreted-text role="func"}, operator nodes (subclasses of `ast.operator`{.interpreted-text role="class"}, `ast.unaryop`{.interpreted-text role="class"}, `ast.cmpop`{.interpreted-text role="class"}, `ast.boolop`{.interpreted-text role="class"} and `ast.expr_context`{.interpreted-text role="class"}) on the returned tree will be singletons. Changes to one will be reflected in all other occurrences of the same value (for example, `ast.Add`{.interpreted-text role="class"}).
::::
## `!ast`{.interpreted-text role="mod"} helpers
Apart from the node classes, the `!ast`{.interpreted-text role="mod"} module defines these utility functions and classes for traversing abstract syntax trees:
:::::::::: function
parse(source, filename=\'\<unknown\>\', mode=\'exec\', \*, type_comments=False, feature_version=None, optimize=-1, module=None)
Parse the source into an AST node. Equivalent to `compile(source, filename, mode, flags=FLAGS_VALUE, optimize=optimize, module=module)`, where `FLAGS_VALUE` is `ast.PyCF_ONLY_AST` if `optimize <= 0` and `ast.PyCF_OPTIMIZED_AST` otherwise.
If `type_comments=True` is given, the parser is modified to check and return type comments as specified by `484`{.interpreted-text role="pep"} and `526`{.interpreted-text role="pep"}. This is equivalent to adding `ast.PyCF_TYPE_COMMENTS`{.interpreted-text role="data"} to the flags passed to `compile`{.interpreted-text role="func"}. This will report syntax errors for misplaced type comments. Without this flag, type comments will be ignored, and the `type_comment` field on selected AST nodes will always be `None`. In addition, the locations of `# type: ignore` comments will be returned as the `type_ignores` attribute of `Module`{.interpreted-text role="class"} (otherwise it is always an empty list).
In addition, if `mode` is `'func_type'`, the input syntax is modified to correspond to `484`{.interpreted-text role="pep"} \"signature type comments\", e.g. `(str, int) -> List[str]`.
Setting `feature_version` to a tuple `(major, minor)` will result in a \"best-effort\" attempt to parse using that Python version\'s grammar. For example, setting `feature_version=(3, 9)` will attempt to disallow parsing of `match`{.interpreted-text role="keyword"} statements. Currently `major` must equal to `3`. The lowest supported version is `(3, 7)` (and this may increase in future Python versions); the highest is `sys.version_info[0:2]`. \"Best-effort\" attempt means there is no guarantee that the parse (or success of the parse) is the same as when run on the Python version corresponding to `feature_version`.
If source contains a null character (`\0`), `ValueError`{.interpreted-text role="exc"} is raised.
:::: warning
::: title
Warning
:::
Note that successfully parsing source code into an AST object doesn\'t guarantee that the source code provided is valid Python code that can be executed as the compilation step can raise further `SyntaxError`{.interpreted-text role="exc"} exceptions. For instance, the source `return 42` generates a valid AST node for a return statement, but it cannot be compiled alone (it needs to be inside a function node).
In particular, `ast.parse`{.interpreted-text role="func"} won\'t do any scoping checks, which the compilation step does.
::::
:::: warning
::: title
Warning
:::
It is possible to crash the Python interpreter with a sufficiently large/complex string due to stack depth limitations in Python\'s AST compiler.
::::
::: versionchanged
3.8 Added `type_comments`, `mode='func_type'` and `feature_version`.
:::
::: versionchanged
3.13 The minimum supported version for `feature_version` is now `(3, 7)`. The `optimize` argument was added.
:::
::: versionadded
3.15 Added the *module* parameter.
:::
::::::::::
:::::::: function
unparse(ast_obj)
Unparse an `ast.AST`{.interpreted-text role="class"} object and generate a string with code that would produce an equivalent `ast.AST`{.interpreted-text role="class"} object if parsed back with `ast.parse`{.interpreted-text role="func"}.
:::: warning
::: title
Warning
:::
The produced code string will not necessarily be equal to the original code that generated the `ast.AST`{.interpreted-text role="class"} object (without any compiler optimizations, such as constant tuples/frozensets).
::::
:::: warning
::: title
Warning
:::
Trying to unparse a highly complex expression would result with `RecursionError`{.interpreted-text role="exc"}.
::::
::: versionadded
3.9
:::
::::::::
:::::::: function
literal_eval(node_or_string)
Evaluate an expression node or a string containing only a Python literal or container display. The string or node provided may only consist of the following Python literal structures: strings, bytes, numbers, tuples, lists, dicts, sets, booleans, `None` and `Ellipsis`.
This can be used for evaluating strings containing Python values without the need to parse the values oneself. It is not capable of evaluating arbitrarily complex expressions, for example involving operators or indexing.
This function had been documented as \"safe\" in the past without defining what that meant. That was misleading. This is specifically designed not to execute Python code, unlike the more general `eval`{.interpreted-text role="func"}. There is no namespace, no name lookups, or ability to call out. But it is not free from attack: A relatively small input can lead to memory exhaustion or to C stack exhaustion, crashing the process. There is also the possibility for excessive CPU consumption denial of service on some inputs. Calling it on untrusted data is thus not recommended.
:::: warning
::: title
Warning
:::
It is possible to crash the Python interpreter due to stack depth limitations in Python\'s AST compiler.
It can raise `ValueError`{.interpreted-text role="exc"}, `TypeError`{.interpreted-text role="exc"}, `SyntaxError`{.interpreted-text role="exc"}, `MemoryError`{.interpreted-text role="exc"} and `RecursionError`{.interpreted-text role="exc"} depending on the malformed input.
::::
::: versionchanged
3.2 Now allows bytes and set literals.
:::
::: versionchanged
3.9 Now supports creating empty sets with `'set()'`.
:::
::: versionchanged
3.10 For string inputs, leading spaces and tabs are now stripped.
:::
::::::::
:::: function
get_docstring(node, clean=True)
Return the docstring of the given *node* (which must be a `FunctionDef`{.interpreted-text role="class"}, `AsyncFunctionDef`{.interpreted-text role="class"}, `ClassDef`{.interpreted-text role="class"}, or `Module`{.interpreted-text role="class"} node), or `None` if it has no docstring. If *clean* is true, clean up the docstring\'s indentation with `inspect.cleandoc`{.interpreted-text role="func"}.
::: versionchanged
3.5 `AsyncFunctionDef`{.interpreted-text role="class"} is now supported.
:::
::::
:::: function
get_source_segment(source, node, \*, padded=False)
Get source code segment of the *source* that generated *node*. If some location information (`~ast.AST.lineno`{.interpreted-text role="attr"}, `~ast.AST.end_lineno`{.interpreted-text role="attr"}, `~ast.AST.col_offset`{.interpreted-text role="attr"}, or `~ast.AST.end_col_offset`{.interpreted-text role="attr"}) is missing, return `None`.
If *padded* is `True`, the first line of a multi-line statement will be padded with spaces to match its original position.
::: versionadded
3.8
:::
::::
::: function
fix_missing_locations(node)
When you compile a node tree with `compile`{.interpreted-text role="func"}, the compiler expects `~ast.AST.lineno`{.interpreted-text role="attr"} and `~ast.AST.col_offset`{.interpreted-text role="attr"} attributes for every node that supports them. This is rather tedious to fill in for generated nodes, so this helper adds these attributes recursively where not already set, by setting them to the values of the parent node. It works recursively starting at *node*.
:::
::: function
increment_lineno(node, n=1)
Increment the line number and end line number of each node in the tree starting at *node* by *n*. This is useful to \"move code\" to a different location in a file.
:::
::: function
copy_location(new_node, old_node)
Copy source location (`~ast.AST.lineno`{.interpreted-text role="attr"}, `~ast.AST.col_offset`{.interpreted-text role="attr"}, `~ast.AST.end_lineno`{.interpreted-text role="attr"}, and `~ast.AST.end_col_offset`{.interpreted-text role="attr"}) from *old_node* to *new_node* if possible, and return *new_node*.
:::
::: function
iter_fields(node)
Yield a tuple of `(fieldname, value)` for each field in `node._fields` that is present on *node*.
:::
::: function
iter_child_nodes(node)
Yield all direct child nodes of *node*, that is, all fields that are nodes and all items of fields that are lists of nodes.
:::
::: function
walk(node)
Recursively yield all descendant nodes in the tree starting at *node* (including *node* itself), in no specified order. This is useful if you only want to modify nodes in place and don\'t care about the context.
:::
::::::: NodeVisitor()
A node visitor base class that walks the abstract syntax tree and calls a visitor function for every node found. This function may return a value which is forwarded by the `visit`{.interpreted-text role="meth"} method.
This class is meant to be subclassed, with the subclass adding visitor methods.
::: method
visit(node)
Visit a node. The default implementation calls the method called `self.visit_{classname}`{.interpreted-text role="samp"} where *classname* is the name of the node class, or `generic_visit`{.interpreted-text role="meth"} if that method doesn\'t exist.
:::
::: method
generic_visit(node)
This visitor calls `visit`{.interpreted-text role="meth"} on all children of the node.
Note that child nodes of nodes that have a custom visitor method won\'t be visited unless the visitor calls `generic_visit`{.interpreted-text role="meth"} or visits them itself.
:::
::: method
visit_Constant(node)
Handles all constant nodes.
:::
Don\'t use the `NodeVisitor`{.interpreted-text role="class"} if you want to apply changes to nodes during traversal. For this a special visitor exists (`NodeTransformer`{.interpreted-text role="class"}) that allows modifications.
::: deprecated-removed
3.8 3.14
Methods `!visit_Num`{.interpreted-text role="meth"}, `!visit_Str`{.interpreted-text role="meth"}, `!visit_Bytes`{.interpreted-text role="meth"}, `!visit_NameConstant`{.interpreted-text role="meth"} and `!visit_Ellipsis`{.interpreted-text role="meth"} will not be called in Python 3.14+. Add the `visit_Constant`{.interpreted-text role="meth"} method instead to handle all constant nodes.
:::
:::::::
::: NodeTransformer()
A `NodeVisitor`{.interpreted-text role="class"} subclass that walks the abstract syntax tree and allows modification of nodes.
The `NodeTransformer`{.interpreted-text role="class"} will walk the AST and use the return value of the visitor methods to replace or remove the old node. If the return value of the visitor method is `None`, the node will be removed from its location, otherwise it is replaced with the return value. The return value may be the original node in which case no replacement takes place.
Here is an example transformer that rewrites all occurrences of name lookups (`foo`) to `data['foo']`:
class RewriteName(NodeTransformer):
def visit_Name(self, node):
return Subscript(
value=Name(id='data'),
slice=Constant(value=node.id),
ctx=node.ctx
)
Keep in mind that if the node you\'re operating on has child nodes you must either transform the child nodes yourself or call the `~ast.NodeVisitor.generic_visit`{.interpreted-text role="meth"} method for the node first.
For nodes that were part of a collection of statements (that applies to all statement nodes), the visitor may also return a list of nodes rather than just a single node.
If `NodeTransformer`{.interpreted-text role="class"} introduces new nodes (that weren\'t part of original tree) without giving them location information (such as `~ast.AST.lineno`{.interpreted-text role="attr"}), `fix_missing_locations`{.interpreted-text role="func"} should be called with the new sub-tree to recalculate the location information:
tree = ast.parse('foo', mode='eval')
new_tree = fix_missing_locations(RewriteName().visit(tree))
Usually you use the transformer like this:
node = YourTransformer().visit(node)
:::
::::::: function
dump(node, annotate_fields=True, include_attributes=False, \*, indent=None, show_empty=False)
Return a formatted dump of the tree in *node*. This is mainly useful for debugging purposes. If *annotate_fields* is true (by default), the returned string will show the names and the values for fields. If *annotate_fields* is false, the result string will be more compact by omitting unambiguous field names. Attributes such as line numbers and column offsets are not dumped by default. If this is wanted, *include_attributes* can be set to true.
If *indent* is a non-negative integer or string, then the tree will be pretty-printed with that indent level. An indent level of 0, negative, or `""` will only insert newlines. `None` (the default) selects the single line representation. Using a positive integer indent indents that many spaces per level. If *indent* is a string (such as `"\t"`), that string is used to indent each level.
If *show_empty* is false (the default), optional empty lists and `Load()` values will be omitted from the output. Optional `None` values are always omitted.
::: doctest
\>\>\> tree = ast.parse(\'print(None)\', \'?\', \'eval\') \>\>\> print(ast.dump(tree, indent=4)) Expression( body=Call( func=Name(id=\'print\'), args=\[ Constant(value=None)\])) \>\>\> print(ast.dump(tree, indent=4, show_empty=True)) Expression( body=Call( func=Name(id=\'print\', ctx=Load()), args=\[ Constant(value=None)\], keywords=\[\]))
:::
::: versionchanged
3.9 Added the *indent* option.
:::
::: versionchanged
3.13 Added the *show_empty* option.
:::
::: versionchanged
3.15 Omit optional `Load()` values by default.
:::
:::::::
## Compiler flags {#ast-compiler-flags}
The following flags may be passed to `compile`{.interpreted-text role="func"} in order to change effects on the compilation of a program:
:::: data
PyCF_ALLOW_TOP_LEVEL_AWAIT
Enables support for top-level `await`, `async for`, `async with` and async comprehensions.
::: versionadded
3.8
:::
::::
::: data
PyCF_ONLY_AST
Generates and returns an abstract syntax tree instead of returning a compiled code object.
:::
:::: data
PyCF_OPTIMIZED_AST
The returned AST is optimized according to the *optimize* argument in `compile`{.interpreted-text role="func"} or `ast.parse`{.interpreted-text role="func"}.
::: versionadded
3.13
:::
::::
:::: data
PyCF_TYPE_COMMENTS
Enables support for `484`{.interpreted-text role="pep"} and `526`{.interpreted-text role="pep"} style type comments (`# type: <type>`, `# type: ignore <stuff>`).
::: versionadded
3.8
:::
::::
:::: function
compare(a, b, /, \*, compare_attributes=False)
Recursively compares two ASTs.
*compare_attributes* affects whether AST attributes are considered in the comparison. If *compare_attributes* is `False` (default), then attributes are ignored. Otherwise they must all be equal. This option is useful to check whether the ASTs are structurally equal but differ in whitespace or similar details. Attributes include line numbers and column offsets.
::: versionadded
3.14
:::
::::
## Command-line usage {#ast-cli}
::: versionadded
3.9
:::
The `!ast`{.interpreted-text role="mod"} module can be executed as a script from the command line. It is as simple as:
``` sh
python -m ast [-m <mode>] [-a] [infile]
```
The following options are accepted:
::: program
ast
:::
::: option
`-h, --help`
:
Show the help message and exit.
:::
::: option
`-m <mode>`
:
`--mode <mode>`
:
Specify what kind of code must be compiled, like the *mode* argument in `parse`{.interpreted-text role="func"}.
:::
::: option
`--no-type-comments`
:
Don\'t parse type comments.
:::
::: option
`-a, --include-attributes`
:
Include attributes such as line numbers and column offsets.
:::
::: option
`-i <indent>`
:
`--indent <indent>`
:
Indentation of nodes in AST (number of spaces).
:::
:::: option
`--feature-version <version>`
:
Python version in the format 3.x (for example, 3.10). Defaults to the current version of the interpreter.
::: versionadded
3.14
:::
::::
:::: option
`-O <level>`
:
`--optimize <level>`
:
Optimization level for parser. Defaults to no optimization.
::: versionadded
3.14
:::
::::
:::: option
`--show-empty`
:
Show empty lists and fields that are `None`. Defaults to not showing empty objects.
::: versionadded
3.14
:::
::::
If `infile`{.interpreted-text role="file"} is specified its contents are parsed to AST and dumped to stdout. Otherwise, the content is read from stdin.
::: seealso
[Green Tree Snakes](https://greentreesnakes.readthedocs.io/), an external documentation resource, has good details on working with Python ASTs.
[ASTTokens](https://asttokens.readthedocs.io/en/latest/user-guide.html) annotates Python ASTs with the positions of tokens and text in the source code that generated them. This is helpful for tools that make source code transformations.
[leoAst.py](https://leo-editor.github.io/leo-editor/appendices.html#leoast-py) unifies the token-based and parse-tree-based views of python programs by inserting two-way links between tokens and ast nodes.
[LibCST](https://libcst.readthedocs.io/) parses code as a Concrete Syntax Tree that looks like an ast tree and keeps all formatting details. It\'s useful for building automated refactoring (codemod) applications and linters.
[Parso](https://parso.readthedocs.io) is a Python parser that supports error recovery and round-trip parsing for different Python versions (in multiple Python versions). Parso is also able to list multiple syntax errors in your Python file.
:::
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