blob: 4be98751ef1400ae5d0196aaae4563395141a620 [file] [log] [blame]
Georg Brandl116aa622007-08-15 14:28:22 +00001
2.. _simple:
3
4*****************
5Simple statements
6*****************
7
8.. index:: pair: simple; statement
9
10Simple statements are comprised within a single logical line. Several simple
11statements may occur on a single line separated by semicolons. The syntax for
12simple statements is:
13
14.. productionlist::
15 simple_stmt: `expression_stmt`
16 : | `assert_stmt`
17 : | `assignment_stmt`
18 : | `augmented_assignment_stmt`
19 : | `pass_stmt`
20 : | `del_stmt`
21 : | `return_stmt`
22 : | `yield_stmt`
23 : | `raise_stmt`
24 : | `break_stmt`
25 : | `continue_stmt`
26 : | `import_stmt`
27 : | `global_stmt`
Georg Brandl02c30562007-09-07 17:52:53 +000028 : | `nonlocal_stmt`
Georg Brandl116aa622007-08-15 14:28:22 +000029
30
31.. _exprstmts:
32
33Expression statements
34=====================
35
Christian Heimesfaf2f632008-01-06 16:59:19 +000036.. index::
37 pair: expression; statement
38 pair: expression; list
Georg Brandl02c30562007-09-07 17:52:53 +000039.. index:: pair: expression; list
Georg Brandl116aa622007-08-15 14:28:22 +000040
41Expression statements are used (mostly interactively) to compute and write a
42value, or (usually) to call a procedure (a function that returns no meaningful
43result; in Python, procedures return the value ``None``). Other uses of
44expression statements are allowed and occasionally useful. The syntax for an
45expression statement is:
46
47.. productionlist::
48 expression_stmt: `expression_list`
49
Georg Brandl116aa622007-08-15 14:28:22 +000050An expression statement evaluates the expression list (which may be a single
51expression).
52
53.. index::
54 builtin: repr
55 object: None
56 pair: string; conversion
57 single: output
58 pair: standard; output
59 pair: writing; values
60 pair: procedure; call
61
62In interactive mode, if the value is not ``None``, it is converted to a string
63using the built-in :func:`repr` function and the resulting string is written to
Georg Brandl02c30562007-09-07 17:52:53 +000064standard output on a line by itself (except if the result is ``None``, so that
65procedure calls do not cause any output.)
Georg Brandl116aa622007-08-15 14:28:22 +000066
Georg Brandl116aa622007-08-15 14:28:22 +000067.. _assignment:
68
69Assignment statements
70=====================
71
72.. index::
73 pair: assignment; statement
74 pair: binding; name
75 pair: rebinding; name
76 object: mutable
77 pair: attribute; assignment
78
79Assignment statements are used to (re)bind names to values and to modify
80attributes or items of mutable objects:
81
82.. productionlist::
83 assignment_stmt: (`target_list` "=")+ (`expression_list` | `yield_expression`)
84 target_list: `target` ("," `target`)* [","]
85 target: `identifier`
86 : | "(" `target_list` ")"
87 : | "[" `target_list` "]"
88 : | `attributeref`
89 : | `subscription`
90 : | `slicing`
Georg Brandl02c30562007-09-07 17:52:53 +000091 : | "*" `target`
Georg Brandl116aa622007-08-15 14:28:22 +000092
93(See section :ref:`primaries` for the syntax definitions for the last three
94symbols.)
95
Georg Brandl116aa622007-08-15 14:28:22 +000096An assignment statement evaluates the expression list (remember that this can be
97a single expression or a comma-separated list, the latter yielding a tuple) and
98assigns the single resulting object to each of the target lists, from left to
99right.
100
101.. index::
102 single: target
103 pair: target; list
104
105Assignment is defined recursively depending on the form of the target (list).
106When a target is part of a mutable object (an attribute reference, subscription
107or slicing), the mutable object must ultimately perform the assignment and
108decide about its validity, and may raise an exception if the assignment is
109unacceptable. The rules observed by various types and the exceptions raised are
110given with the definition of the object types (see section :ref:`types`).
111
112.. index:: triple: target; list; assignment
113
Georg Brandl02c30562007-09-07 17:52:53 +0000114Assignment of an object to a target list, optionally enclosed in parentheses or
115square brackets, is recursively defined as follows.
Georg Brandl116aa622007-08-15 14:28:22 +0000116
117* If the target list is a single target: The object is assigned to that target.
118
Benjamin Petersond75fcb42009-02-19 04:22:03 +0000119* If the target list is a comma-separated list of targets: The object must be an
120 iterable with the same number of items as there are targets in the target list,
121 and the items are assigned, from left to right, to the corresponding targets.
122 (This rule is relaxed as of Python 1.5; in earlier versions, the object had to
123 be a tuple. Since strings are sequences, an assignment like ``a, b = "xy"`` is
124 now legal as long as the string has the right length.)
Georg Brandl02c30562007-09-07 17:52:53 +0000125
126 * If the target list contains one target prefixed with an asterisk, called a
127 "starred" target: The object must be a sequence with at least as many items
128 as there are targets in the target list, minus one. The first items of the
129 sequence are assigned, from left to right, to the targets before the starred
130 target. The final items of the sequence are assigned to the targets after
131 the starred target. A list of the remaining items in the sequence is then
132 assigned to the starred target (the list can be empty).
133
134 * Else: The object must be a sequence with the same number of items as there
135 are targets in the target list, and the items are assigned, from left to
136 right, to the corresponding targets.
Georg Brandl116aa622007-08-15 14:28:22 +0000137
138Assignment of an object to a single target is recursively defined as follows.
139
140* If the target is an identifier (name):
141
Georg Brandl02c30562007-09-07 17:52:53 +0000142 * If the name does not occur in a :keyword:`global` or :keyword:`nonlocal`
143 statement in the current code block: the name is bound to the object in the
144 current local namespace.
Georg Brandl116aa622007-08-15 14:28:22 +0000145
Georg Brandl02c30562007-09-07 17:52:53 +0000146 * Otherwise: the name is bound to the object in the global namespace or the
147 outer namespace determined by :keyword:`nonlocal`, respectively.
Georg Brandl116aa622007-08-15 14:28:22 +0000148
Georg Brandl02c30562007-09-07 17:52:53 +0000149 The name is rebound if it was already bound. This may cause the reference
150 count for the object previously bound to the name to reach zero, causing the
151 object to be deallocated and its destructor (if it has one) to be called.
Georg Brandl116aa622007-08-15 14:28:22 +0000152
Christian Heimes5b5e81c2007-12-31 16:14:33 +0000153 .. index:: single: destructor
154
155 The name is rebound if it was already bound. This may cause the reference count
156 for the object previously bound to the name to reach zero, causing the object to
157 be deallocated and its destructor (if it has one) to be called.
158
159* If the target is a target list enclosed in parentheses or in square brackets:
Benjamin Petersond75fcb42009-02-19 04:22:03 +0000160 The object must be an iterable with the same number of items as there are
161 targets in the target list, and its items are assigned, from left to right,
162 to the corresponding targets.
Christian Heimes5b5e81c2007-12-31 16:14:33 +0000163
164 .. index:: pair: attribute; assignment
165
Georg Brandl116aa622007-08-15 14:28:22 +0000166* If the target is an attribute reference: The primary expression in the
167 reference is evaluated. It should yield an object with assignable attributes;
Georg Brandl02c30562007-09-07 17:52:53 +0000168 if this is not the case, :exc:`TypeError` is raised. That object is then
169 asked to assign the assigned object to the given attribute; if it cannot
170 perform the assignment, it raises an exception (usually but not necessarily
Georg Brandl116aa622007-08-15 14:28:22 +0000171 :exc:`AttributeError`).
172
173 .. index::
174 pair: subscription; assignment
175 object: mutable
176
177* If the target is a subscription: The primary expression in the reference is
Georg Brandl02c30562007-09-07 17:52:53 +0000178 evaluated. It should yield either a mutable sequence object (such as a list)
179 or a mapping object (such as a dictionary). Next, the subscript expression is
Georg Brandl116aa622007-08-15 14:28:22 +0000180 evaluated.
181
182 .. index::
183 object: sequence
184 object: list
185
Georg Brandl02c30562007-09-07 17:52:53 +0000186 If the primary is a mutable sequence object (such as a list), the subscript
187 must yield an integer. If it is negative, the sequence's length is added to
188 it. The resulting value must be a nonnegative integer less than the
189 sequence's length, and the sequence is asked to assign the assigned object to
190 its item with that index. If the index is out of range, :exc:`IndexError` is
191 raised (assignment to a subscripted sequence cannot add new items to a list).
Georg Brandl116aa622007-08-15 14:28:22 +0000192
193 .. index::
194 object: mapping
195 object: dictionary
196
197 If the primary is a mapping object (such as a dictionary), the subscript must
198 have a type compatible with the mapping's key type, and the mapping is then
199 asked to create a key/datum pair which maps the subscript to the assigned
200 object. This can either replace an existing key/value pair with the same key
201 value, or insert a new key/value pair (if no key with the same value existed).
202
Georg Brandl02c30562007-09-07 17:52:53 +0000203 For user-defined objects, the :meth:`__setitem__` method is called with
204 appropriate arguments.
205
Georg Brandl116aa622007-08-15 14:28:22 +0000206 .. index:: pair: slicing; assignment
207
208* If the target is a slicing: The primary expression in the reference is
209 evaluated. It should yield a mutable sequence object (such as a list). The
210 assigned object should be a sequence object of the same type. Next, the lower
211 and upper bound expressions are evaluated, insofar they are present; defaults
Georg Brandl02c30562007-09-07 17:52:53 +0000212 are zero and the sequence's length. The bounds should evaluate to integers.
213 If either bound is negative, the sequence's length is added to it. The
214 resulting bounds are clipped to lie between zero and the sequence's length,
215 inclusive. Finally, the sequence object is asked to replace the slice with
216 the items of the assigned sequence. The length of the slice may be different
217 from the length of the assigned sequence, thus changing the length of the
218 target sequence, if the object allows it.
Georg Brandl116aa622007-08-15 14:28:22 +0000219
220(In the current implementation, the syntax for targets is taken to be the same
221as for expressions, and invalid syntax is rejected during the code generation
222phase, causing less detailed error messages.)
223
224WARNING: Although the definition of assignment implies that overlaps between the
225left-hand side and the right-hand side are 'safe' (for example ``a, b = b, a``
226swaps two variables), overlaps *within* the collection of assigned-to variables
227are not safe! For instance, the following program prints ``[0, 2]``::
228
229 x = [0, 1]
230 i = 0
231 i, x[i] = 1, 2
Georg Brandl6911e3c2007-09-04 07:15:32 +0000232 print(x)
Georg Brandl116aa622007-08-15 14:28:22 +0000233
234
Georg Brandl02c30562007-09-07 17:52:53 +0000235.. seealso::
236
237 :pep:`3132` - Extended Iterable Unpacking
238 The specification for the ``*target`` feature.
239
240
Georg Brandl116aa622007-08-15 14:28:22 +0000241.. _augassign:
242
243Augmented assignment statements
244-------------------------------
245
246.. index::
247 pair: augmented; assignment
248 single: statement; assignment, augmented
249
250Augmented assignment is the combination, in a single statement, of a binary
251operation and an assignment statement:
252
253.. productionlist::
Benjamin Petersonb58dda72009-01-18 22:27:04 +0000254 augmented_assignment_stmt: `augtarget` `augop` (`expression_list` | `yield_expression`)
255 augtarget: `identifier` | `attributeref` | `subscription` | `slicing`
Benjamin Peterson9bc93512008-09-22 22:10:59 +0000256 augop: "+=" | "-=" | "*=" | "/=" | "//=" | "%=" | "**="
Georg Brandl116aa622007-08-15 14:28:22 +0000257 : | ">>=" | "<<=" | "&=" | "^=" | "|="
258
259(See section :ref:`primaries` for the syntax definitions for the last three
260symbols.)
261
262An augmented assignment evaluates the target (which, unlike normal assignment
263statements, cannot be an unpacking) and the expression list, performs the binary
264operation specific to the type of assignment on the two operands, and assigns
265the result to the original target. The target is only evaluated once.
266
267An augmented assignment expression like ``x += 1`` can be rewritten as ``x = x +
2681`` to achieve a similar, but not exactly equal effect. In the augmented
269version, ``x`` is only evaluated once. Also, when possible, the actual operation
270is performed *in-place*, meaning that rather than creating a new object and
271assigning that to the target, the old object is modified instead.
272
273With the exception of assigning to tuples and multiple targets in a single
274statement, the assignment done by augmented assignment statements is handled the
275same way as normal assignments. Similarly, with the exception of the possible
276*in-place* behavior, the binary operation performed by augmented assignment is
277the same as the normal binary operations.
278
279For targets which are attribute references, the initial value is retrieved with
280a :meth:`getattr` and the result is assigned with a :meth:`setattr`. Notice
281that the two methods do not necessarily refer to the same variable. When
282:meth:`getattr` refers to a class variable, :meth:`setattr` still writes to an
283instance variable. For example::
284
285 class A:
286 x = 3 # class variable
287 a = A()
288 a.x += 1 # writes a.x as 4 leaving A.x as 3
289
290
Thomas Wouters1b7f8912007-09-19 03:06:30 +0000291.. _assert:
292
293The :keyword:`assert` statement
294===============================
295
296.. index::
297 statement: assert
298 pair: debugging; assertions
299
300Assert statements are a convenient way to insert debugging assertions into a
301program:
302
303.. productionlist::
304 assert_stmt: "assert" `expression` ["," `expression`]
305
306The simple form, ``assert expression``, is equivalent to ::
307
308 if __debug__:
309 if not expression: raise AssertionError
310
311The extended form, ``assert expression1, expression2``, is equivalent to ::
312
313 if __debug__:
Georg Brandl18a499d2007-12-29 10:57:11 +0000314 if not expression1: raise AssertionError(expression2)
Thomas Wouters1b7f8912007-09-19 03:06:30 +0000315
316.. index::
317 single: __debug__
318 exception: AssertionError
319
Christian Heimes5b5e81c2007-12-31 16:14:33 +0000320These equivalences assume that :const:`__debug__` and :exc:`AssertionError` refer to
Thomas Wouters1b7f8912007-09-19 03:06:30 +0000321the built-in variables with those names. In the current implementation, the
Christian Heimes5b5e81c2007-12-31 16:14:33 +0000322built-in variable :const:`__debug__` is ``True`` under normal circumstances,
Thomas Wouters1b7f8912007-09-19 03:06:30 +0000323``False`` when optimization is requested (command line option -O). The current
324code generator emits no code for an assert statement when optimization is
325requested at compile time. Note that it is unnecessary to include the source
326code for the expression that failed in the error message; it will be displayed
327as part of the stack trace.
328
Christian Heimes5b5e81c2007-12-31 16:14:33 +0000329Assignments to :const:`__debug__` are illegal. The value for the built-in variable
Thomas Wouters1b7f8912007-09-19 03:06:30 +0000330is determined when the interpreter starts.
331
332
Georg Brandl116aa622007-08-15 14:28:22 +0000333.. _pass:
334
335The :keyword:`pass` statement
336=============================
337
Christian Heimesfaf2f632008-01-06 16:59:19 +0000338.. index::
339 statement: pass
340 pair: null; operation
Georg Brandl02c30562007-09-07 17:52:53 +0000341 pair: null; operation
Georg Brandl116aa622007-08-15 14:28:22 +0000342
343.. productionlist::
344 pass_stmt: "pass"
345
Georg Brandl116aa622007-08-15 14:28:22 +0000346:keyword:`pass` is a null operation --- when it is executed, nothing happens.
347It is useful as a placeholder when a statement is required syntactically, but no
348code needs to be executed, for example::
349
350 def f(arg): pass # a function that does nothing (yet)
351
352 class C: pass # a class with no methods (yet)
353
354
355.. _del:
356
357The :keyword:`del` statement
358============================
359
Christian Heimesfaf2f632008-01-06 16:59:19 +0000360.. index::
361 statement: del
362 pair: deletion; target
363 triple: deletion; target; list
Georg Brandl116aa622007-08-15 14:28:22 +0000364
365.. productionlist::
366 del_stmt: "del" `target_list`
367
Georg Brandl116aa622007-08-15 14:28:22 +0000368Deletion is recursively defined very similar to the way assignment is defined.
369Rather that spelling it out in full details, here are some hints.
370
371Deletion of a target list recursively deletes each target, from left to right.
372
373.. index::
374 statement: global
375 pair: unbinding; name
376
Georg Brandl02c30562007-09-07 17:52:53 +0000377Deletion of a name removes the binding of that name from the local or global
Georg Brandl116aa622007-08-15 14:28:22 +0000378namespace, depending on whether the name occurs in a :keyword:`global` statement
379in the same code block. If the name is unbound, a :exc:`NameError` exception
380will be raised.
381
382.. index:: pair: free; variable
383
384It is illegal to delete a name from the local namespace if it occurs as a free
385variable in a nested block.
386
387.. index:: pair: attribute; deletion
388
389Deletion of attribute references, subscriptions and slicings is passed to the
390primary object involved; deletion of a slicing is in general equivalent to
391assignment of an empty slice of the right type (but even this is determined by
392the sliced object).
393
394
395.. _return:
396
397The :keyword:`return` statement
398===============================
399
Christian Heimesfaf2f632008-01-06 16:59:19 +0000400.. index::
401 statement: return
402 pair: function; definition
403 pair: class; definition
Georg Brandl116aa622007-08-15 14:28:22 +0000404
405.. productionlist::
406 return_stmt: "return" [`expression_list`]
407
Georg Brandl116aa622007-08-15 14:28:22 +0000408:keyword:`return` may only occur syntactically nested in a function definition,
409not within a nested class definition.
410
411If an expression list is present, it is evaluated, else ``None`` is substituted.
412
413:keyword:`return` leaves the current function call with the expression list (or
414``None``) as return value.
415
416.. index:: keyword: finally
417
418When :keyword:`return` passes control out of a :keyword:`try` statement with a
419:keyword:`finally` clause, that :keyword:`finally` clause is executed before
420really leaving the function.
421
422In a generator function, the :keyword:`return` statement is not allowed to
423include an :token:`expression_list`. In that context, a bare :keyword:`return`
424indicates that the generator is done and will cause :exc:`StopIteration` to be
425raised.
426
427
428.. _yield:
429
430The :keyword:`yield` statement
431==============================
432
Christian Heimesfaf2f632008-01-06 16:59:19 +0000433.. index::
434 statement: yield
435 single: generator; function
436 single: generator; iterator
437 single: function; generator
438 exception: StopIteration
439
Georg Brandl116aa622007-08-15 14:28:22 +0000440.. productionlist::
441 yield_stmt: `yield_expression`
442
Christian Heimesfaf2f632008-01-06 16:59:19 +0000443The :keyword:`yield` statement is only used when defining a generator function,
444and is only used in the body of the generator function. Using a :keyword:`yield`
445statement in a function definition is sufficient to cause that definition to
446create a generator function instead of a normal function.
Christian Heimes33fe8092008-04-13 13:53:33 +0000447When a generator function is called, it returns an iterator known as a generator
448iterator, or more commonly, a generator. The body of the generator function is
Georg Brandl6520d822009-02-05 11:01:54 +0000449executed by calling the :func:`next` function on the generator repeatedly until
450it raises an exception.
Christian Heimes33fe8092008-04-13 13:53:33 +0000451
452When a :keyword:`yield` statement is executed, the state of the generator is
453frozen and the value of :token:`expression_list` is returned to :meth:`next`'s
454caller. By "frozen" we mean that all local state is retained, including the
455current bindings of local variables, the instruction pointer, and the internal
Georg Brandl6520d822009-02-05 11:01:54 +0000456evaluation stack: enough information is saved so that the next time :func:`next`
Christian Heimes33fe8092008-04-13 13:53:33 +0000457is invoked, the function can proceed exactly as if the :keyword:`yield`
458statement were just another external call.
459
Georg Brandle6bcc912008-05-12 18:05:20 +0000460The :keyword:`yield` statement is allowed in the :keyword:`try` clause of a
461:keyword:`try` ... :keyword:`finally` construct. If the generator is not
462resumed before it is finalized (by reaching a zero reference count or by being
463garbage collected), the generator-iterator's :meth:`close` method will be
464called, allowing any pending :keyword:`finally` clauses to execute.
Christian Heimes33fe8092008-04-13 13:53:33 +0000465
466.. seealso::
467
468 :pep:`0255` - Simple Generators
469 The proposal for adding generators and the :keyword:`yield` statement to Python.
470
471 :pep:`0342` - Coroutines via Enhanced Generators
472 The proposal that, among other generator enhancements, proposed allowing
473 :keyword:`yield` to appear inside a :keyword:`try` ... :keyword:`finally` block.
474
Georg Brandl116aa622007-08-15 14:28:22 +0000475
476.. _raise:
477
478The :keyword:`raise` statement
479==============================
480
Christian Heimesfaf2f632008-01-06 16:59:19 +0000481.. index::
482 statement: raise
483 single: exception
484 pair: raising; exception
Georg Brandl1aea30a2008-07-19 15:51:07 +0000485 single: __traceback__ (exception attribute)
Georg Brandl116aa622007-08-15 14:28:22 +0000486
487.. productionlist::
Georg Brandle06de8b2008-05-05 21:42:51 +0000488 raise_stmt: "raise" [`expression` ["from" `expression`]]
Georg Brandl116aa622007-08-15 14:28:22 +0000489
490If no expressions are present, :keyword:`raise` re-raises the last exception
491that was active in the current scope. If no exception is active in the current
492scope, a :exc:`TypeError` exception is raised indicating that this is an error
Alexandre Vassalottif260e442008-05-11 19:59:59 +0000493(if running under IDLE, a :exc:`queue.Empty` exception is raised instead).
Georg Brandl116aa622007-08-15 14:28:22 +0000494
Georg Brandl02c30562007-09-07 17:52:53 +0000495Otherwise, :keyword:`raise` evaluates the first expression as the exception
496object. It must be either a subclass or an instance of :class:`BaseException`.
497If it is a class, the exception instance will be obtained when needed by
498instantiating the class with no arguments.
Georg Brandl116aa622007-08-15 14:28:22 +0000499
Georg Brandl02c30562007-09-07 17:52:53 +0000500The :dfn:`type` of the exception is the exception instance's class, the
501:dfn:`value` is the instance itself.
Georg Brandl116aa622007-08-15 14:28:22 +0000502
503.. index:: object: traceback
504
Georg Brandl02c30562007-09-07 17:52:53 +0000505A traceback object is normally created automatically when an exception is raised
Georg Brandle06de8b2008-05-05 21:42:51 +0000506and attached to it as the :attr:`__traceback__` attribute, which is writable.
507You can create an exception and set your own traceback in one step using the
508:meth:`with_traceback` exception method (which returns the same exception
509instance, with its traceback set to its argument), like so::
Georg Brandl02c30562007-09-07 17:52:53 +0000510
Benjamin Petersonb7851692009-02-16 16:15:34 +0000511 raise Exception("foo occurred").with_traceback(tracebackobj)
Georg Brandl02c30562007-09-07 17:52:53 +0000512
Georg Brandl1aea30a2008-07-19 15:51:07 +0000513.. index:: pair: exception; chaining
514 __cause__ (exception attribute)
515 __context__ (exception attribute)
Georg Brandl48310cd2009-01-03 21:18:54 +0000516
Georg Brandl1aea30a2008-07-19 15:51:07 +0000517The ``from`` clause is used for exception chaining: if given, the second
518*expression* must be another exception class or instance, which will then be
519attached to the raised exception as the :attr:`__cause__` attribute (which is
520writable). If the raised exception is not handled, both exceptions will be
521printed::
Georg Brandl02c30562007-09-07 17:52:53 +0000522
Georg Brandl1aea30a2008-07-19 15:51:07 +0000523 >>> try:
524 ... print(1 / 0)
525 ... except Exception as exc:
526 ... raise RuntimeError("Something bad happened") from exc
527 ...
528 Traceback (most recent call last):
529 File "<stdin>", line 2, in <module>
530 ZeroDivisionError: int division or modulo by zero
531
532 The above exception was the direct cause of the following exception:
533
534 Traceback (most recent call last):
535 File "<stdin>", line 4, in <module>
536 RuntimeError: Something bad happened
537
538A similar mechanism works implicitly if an exception is raised inside an
539exception handler: the previous exception is then attached as the new
540exception's :attr:`__context__` attribute::
541
542 >>> try:
543 ... print(1 / 0)
544 ... except:
545 ... raise RuntimeError("Something bad happened")
546 ...
547 Traceback (most recent call last):
548 File "<stdin>", line 2, in <module>
549 ZeroDivisionError: int division or modulo by zero
550
551 During handling of the above exception, another exception occurred:
552
553 Traceback (most recent call last):
554 File "<stdin>", line 4, in <module>
555 RuntimeError: Something bad happened
Georg Brandl116aa622007-08-15 14:28:22 +0000556
557Additional information on exceptions can be found in section :ref:`exceptions`,
558and information about handling exceptions is in section :ref:`try`.
559
560
561.. _break:
562
563The :keyword:`break` statement
564==============================
565
Christian Heimesfaf2f632008-01-06 16:59:19 +0000566.. index::
567 statement: break
568 statement: for
569 statement: while
570 pair: loop; statement
Georg Brandl116aa622007-08-15 14:28:22 +0000571
572.. productionlist::
573 break_stmt: "break"
574
Georg Brandl116aa622007-08-15 14:28:22 +0000575:keyword:`break` may only occur syntactically nested in a :keyword:`for` or
576:keyword:`while` loop, but not nested in a function or class definition within
577that loop.
578
579.. index:: keyword: else
Georg Brandl02c30562007-09-07 17:52:53 +0000580 pair: loop control; target
Georg Brandl116aa622007-08-15 14:28:22 +0000581
582It terminates the nearest enclosing loop, skipping the optional :keyword:`else`
583clause if the loop has one.
584
Georg Brandl116aa622007-08-15 14:28:22 +0000585If a :keyword:`for` loop is terminated by :keyword:`break`, the loop control
586target keeps its current value.
587
588.. index:: keyword: finally
589
590When :keyword:`break` passes control out of a :keyword:`try` statement with a
591:keyword:`finally` clause, that :keyword:`finally` clause is executed before
592really leaving the loop.
593
594
595.. _continue:
596
597The :keyword:`continue` statement
598=================================
599
Christian Heimesfaf2f632008-01-06 16:59:19 +0000600.. index::
601 statement: continue
602 statement: for
603 statement: while
604 pair: loop; statement
605 keyword: finally
Georg Brandl116aa622007-08-15 14:28:22 +0000606
607.. productionlist::
608 continue_stmt: "continue"
609
Georg Brandl116aa622007-08-15 14:28:22 +0000610:keyword:`continue` may only occur syntactically nested in a :keyword:`for` or
611:keyword:`while` loop, but not nested in a function or class definition or
Christian Heimesdd15f6c2008-03-16 00:07:10 +0000612:keyword:`finally` clause within that loop. It continues with the next
Georg Brandl116aa622007-08-15 14:28:22 +0000613cycle of the nearest enclosing loop.
614
Christian Heimesdd15f6c2008-03-16 00:07:10 +0000615When :keyword:`continue` passes control out of a :keyword:`try` statement with a
616:keyword:`finally` clause, that :keyword:`finally` clause is executed before
617really starting the next loop cycle.
618
Georg Brandl116aa622007-08-15 14:28:22 +0000619
620.. _import:
Christian Heimes5b5e81c2007-12-31 16:14:33 +0000621.. _from:
Georg Brandl116aa622007-08-15 14:28:22 +0000622
623The :keyword:`import` statement
624===============================
625
626.. index::
627 statement: import
628 single: module; importing
629 pair: name; binding
630 keyword: from
631
632.. productionlist::
633 import_stmt: "import" `module` ["as" `name`] ( "," `module` ["as" `name`] )*
634 : | "from" `relative_module` "import" `identifier` ["as" `name`]
635 : ( "," `identifier` ["as" `name`] )*
636 : | "from" `relative_module` "import" "(" `identifier` ["as" `name`]
637 : ( "," `identifier` ["as" `name`] )* [","] ")"
638 : | "from" `module` "import" "*"
639 module: (`identifier` ".")* `identifier`
640 relative_module: "."* `module` | "."+
641 name: `identifier`
642
643Import statements are executed in two steps: (1) find a module, and initialize
644it if necessary; (2) define a name or names in the local namespace (of the scope
Brett Cannone43b0602009-03-21 03:11:16 +0000645where the :keyword:`import` statement occurs). The statement comes in two
646forms differing on whether it uses the :keyword:`from` keyword. The first form
647(without :keyword:`from`) repeats these steps for each identifier in the list.
648The form with :keyword:`from` performs step (1) once, and then performs step
649(2) repeatedly. For a reference implementation of step (1), see the
650:mod:`importlib` module.
Georg Brandl116aa622007-08-15 14:28:22 +0000651
652.. index::
Brett Cannone43b0602009-03-21 03:11:16 +0000653 single: package
Georg Brandl116aa622007-08-15 14:28:22 +0000654
Brett Cannone43b0602009-03-21 03:11:16 +0000655To understand how step (1) occurs, one must first understand how Python handles
656hierarchical naming of modules. To help organize modules and provide a
657hierarchy in naming, Python has a concept of packages. A package can contain
658other packages and modules while modules cannot contain other modules or
659packages. From a file system perspective, packages are directories and modules
660are files. The original `specification for packages
661<http://www.python.org/doc/essays/packages.html>`_ is still available to read,
662although minor details have changed since the writing of that document.
Georg Brandl116aa622007-08-15 14:28:22 +0000663
664.. index::
Brett Cannone43b0602009-03-21 03:11:16 +0000665 single: sys.modules
Georg Brandl116aa622007-08-15 14:28:22 +0000666
Brett Cannone43b0602009-03-21 03:11:16 +0000667Once the name of the module is known (unless otherwise specified, the term
668"module" will refer to both packages and modules), searching
669for the module or package can begin. The first place checked is
670:data:`sys.modules`, the cache of all modules that have been imported
671previously. If the module is found there then it is used in step (2) of import.
672
673.. index::
674 single: sys.meta_path
675 single: finder
676 pair: finder; find_module
677 single: __path__
678
679If the module is not found in the cache, then :data:`sys.meta_path` is searched
680(the specification for :data:`sys.meta_path` can be found in :pep:`302`).
681The object is a list of :term:`finder` objects which are queried in order as to
682whether they know how to load the module by calling their :meth:`find_module`
683method with the name of the module. If the module happens to be contained
684within a package (as denoted by the existence of a dot in the name), then a
685second argument to :meth:`find_module` is given as the value of the
686:attr:`__path__` attribute from the parent package (everything up to the last
687dot in the name of the module being imported). If a finder can find the module
688it returns a :term:`loader` (discussed later) or returns :keyword:`None`.
689
690.. index::
691 single: sys.path_hooks
692 single: sys.path_importer_cache
693 single: sys.path
694
695If none of the finders on :data:`sys.meta_path` are able to find the module
696then some implicitly defined finders are queried. Implementations of Python
697vary in what implicit meta path finders are defined. The one they all do
698define, though, is one that handles :data:`sys.path_hooks`,
699:data:`sys.path_importer_cache`, and :data:`sys.path`.
700
701The implicit finder searches for the requested module in the "paths" specified
702in one of two places ("paths" do not have to be file system paths). If the
703module being imported is supposed to be contained within a package then the
704second argument passed to :meth:`find_module`, :attr:`__path__` on the parent
705package, is used as the source of paths. If the module is not contained in a
706package then :data:`sys.path` is used as the source of paths.
707
708Once the source of paths is chosen it is iterated over to find a finder that
709can handle that path. The dict at :data:`sys.path_importer_cache` caches
710finders for paths and is checked for a finder. If the path does not have a
711finder cached then :data:`sys.path_hooks` is searched by calling each object in
712the list with a single argument of the path, returning a finder or raises
713:exc:`ImportError`. If a finder is returned then it is cached in
714:data:`sys.path_importer_cache` and then used for that path entry. If no finder
715can be found but the path exists then a value of :keyword:`None` is
716stored in :data:`sys.path_importer_cache` to signify that an implicit,
717file-based finder that handles modules stored as individual files should be
718used for that path. If the path does not exist then a finder which always
719returns :keyword:`None` is placed in the cache for the path.
720
721.. index::
722 single: loader
723 pair: loader; load_module
724 exception: ImportError
725
726If no finder can find the module then :exc:`ImportError` is raised. Otherwise
727some finder returned a loader whose :meth:`load_module` method is called with
728the name of the module to load (see :pep:`302` for the original definition of
729loaders). A loader has several responsibilities to perform on a module it
730loads. First, if the module already exists in :data:`sys.modules` (a
731possibility if the loader is called outside of the import machinery) then it
732is to use that module for initialization and not a new module. But if the
733module does not exist in :data:`sys.modules` then it is to be added to that
734dict before initialization begins. If an error occurs during loading of the
735module and it was added to :data:`sys.modules` it is to be removed from the
736dict. If an error occurs but the module was already in :data:`sys.modules` it
737is left in the dict.
738
739.. index::
740 single: __name__
741 single: __file__
742 single: __path__
743 single: __package__
744 single: __loader__
745
746The loader must set several attributes on the module. :data:`__name__` is to be
747set to the name of the module. :data:`__file__` is to be the "path" to the file
748unless the module is built-in (and thus listed in
749:data:`sys.builtin_module_names`) in which case the attribute is not set.
750If what is being imported is a package then :data:`__path__` is to be set to a
751list of paths to be searched when looking for modules and packages contained
752within the package being imported. :data:`__package__` is optional but should
753be set to the name of package that contains the module or package (the empty
754string is used for module not contained in a package). :data:`__loader__` is
755also optional but should be set to the loader object that is loading the
756module.
757
758.. index::
759 exception: ImportError
760
761If an error occurs during loading then the loader raises :exc:`ImportError` if
762some other exception is not already being propagated. Otherwise the loader
763returns the module that was loaded and initialized.
Georg Brandl116aa622007-08-15 14:28:22 +0000764
765When step (1) finishes without raising an exception, step (2) can begin.
766
767The first form of :keyword:`import` statement binds the module name in the local
768namespace to the module object, and then goes on to import the next identifier,
769if any. If the module name is followed by :keyword:`as`, the name following
770:keyword:`as` is used as the local name for the module.
771
772.. index::
773 pair: name; binding
774 exception: ImportError
775
776The :keyword:`from` form does not bind the module name: it goes through the list
777of identifiers, looks each one of them up in the module found in step (1), and
778binds the name in the local namespace to the object thus found. As with the
779first form of :keyword:`import`, an alternate local name can be supplied by
780specifying ":keyword:`as` localname". If a name is not found,
781:exc:`ImportError` is raised. If the list of identifiers is replaced by a star
782(``'*'``), all public names defined in the module are bound in the local
783namespace of the :keyword:`import` statement..
784
785.. index:: single: __all__ (optional module attribute)
786
787The *public names* defined by a module are determined by checking the module's
788namespace for a variable named ``__all__``; if defined, it must be a sequence of
789strings which are names defined or imported by that module. The names given in
790``__all__`` are all considered public and are required to exist. If ``__all__``
791is not defined, the set of public names includes all names found in the module's
792namespace which do not begin with an underscore character (``'_'``).
793``__all__`` should contain the entire public API. It is intended to avoid
794accidentally exporting items that are not part of the API (such as library
795modules which were imported and used within the module).
796
Benjamin Peterson9611b5e2009-03-25 21:50:43 +0000797The :keyword:`from` form with ``*`` may only occur in a module scope. The wild
798card form of import --- ``import *`` --- is only allowed at the module level.
799Attempting to use it in class for function definitions will raise a
800:exc:`SyntaxError`.
Georg Brandl116aa622007-08-15 14:28:22 +0000801
802.. index::
Brett Cannone43b0602009-03-21 03:11:16 +0000803 single: relative; import
Georg Brandl116aa622007-08-15 14:28:22 +0000804
Brett Cannone43b0602009-03-21 03:11:16 +0000805When specifying what module to import you do not have to specify the absolute
806name of the module. When a module or package is contained within another
807package it is possible to make a relative import within the same top package
808without having to mention the package name. By using leading dots in the
809specified module or package after :keyword:`from` you can specify how high to
810traverse up the current package hierarchy without specifying exact names. One
811leading dot means the current package where the module making the import
812exists. Two dots means up one package level. Three dots is up two levels, etc.
813So if you execute ``from . import mod`` from a module in the ``pkg`` package
814then you will end up importing ``pkg.mod``. If you execute ``from ..subpkg2
815imprt mod`` from within ``pkg.subpkg1`` you will import ``pkg.subpkg2.mod``.
816The specification for relative imports is contained within :pep:`328`.
Georg Brandl5b318c02008-08-03 09:47:27 +0000817
Georg Brandl116aa622007-08-15 14:28:22 +0000818
Georg Brandl116aa622007-08-15 14:28:22 +0000819.. index:: builtin: __import__
820
821The built-in function :func:`__import__` is provided to support applications
822that determine which modules need to be loaded dynamically; refer to
823:ref:`built-in-funcs` for additional information.
824
825
826.. _future:
827
828Future statements
829-----------------
830
831.. index:: pair: future; statement
832
833A :dfn:`future statement` is a directive to the compiler that a particular
834module should be compiled using syntax or semantics that will be available in a
835specified future release of Python. The future statement is intended to ease
836migration to future versions of Python that introduce incompatible changes to
837the language. It allows use of the new features on a per-module basis before
838the release in which the feature becomes standard.
839
840.. productionlist:: *
841 future_statement: "from" "__future__" "import" feature ["as" name]
842 : ("," feature ["as" name])*
843 : | "from" "__future__" "import" "(" feature ["as" name]
844 : ("," feature ["as" name])* [","] ")"
845 feature: identifier
846 name: identifier
847
848A future statement must appear near the top of the module. The only lines that
849can appear before a future statement are:
850
851* the module docstring (if any),
852* comments,
853* blank lines, and
854* other future statements.
855
Georg Brandl02c30562007-09-07 17:52:53 +0000856.. XXX change this if future is cleaned out
857
858The features recognized by Python 3.0 are ``absolute_import``, ``division``,
Benjamin Petersonf10a79a2008-10-11 00:49:57 +0000859``generators``, ``unicode_literals``, ``print_function``, ``nested_scopes`` and
860``with_statement``. They are all redundant because they are always enabled, and
861only kept for backwards compatibility.
Georg Brandl116aa622007-08-15 14:28:22 +0000862
863A future statement is recognized and treated specially at compile time: Changes
864to the semantics of core constructs are often implemented by generating
865different code. It may even be the case that a new feature introduces new
866incompatible syntax (such as a new reserved word), in which case the compiler
867may need to parse the module differently. Such decisions cannot be pushed off
868until runtime.
869
870For any given release, the compiler knows which feature names have been defined,
871and raises a compile-time error if a future statement contains a feature not
872known to it.
873
874The direct runtime semantics are the same as for any import statement: there is
875a standard module :mod:`__future__`, described later, and it will be imported in
876the usual way at the time the future statement is executed.
877
878The interesting runtime semantics depend on the specific feature enabled by the
879future statement.
880
881Note that there is nothing special about the statement::
882
883 import __future__ [as name]
884
885That is not a future statement; it's an ordinary import statement with no
886special semantics or syntax restrictions.
887
888Code compiled by calls to the builtin functions :func:`exec` and :func:`compile`
Georg Brandl02c30562007-09-07 17:52:53 +0000889that occur in a module :mod:`M` containing a future statement will, by default,
890use the new syntax or semantics associated with the future statement. This can
891be controlled by optional arguments to :func:`compile` --- see the documentation
892of that function for details.
Georg Brandl116aa622007-08-15 14:28:22 +0000893
894A future statement typed at an interactive interpreter prompt will take effect
895for the rest of the interpreter session. If an interpreter is started with the
896:option:`-i` option, is passed a script name to execute, and the script includes
897a future statement, it will be in effect in the interactive session started
898after the script is executed.
899
900
901.. _global:
902
903The :keyword:`global` statement
904===============================
905
Christian Heimesfaf2f632008-01-06 16:59:19 +0000906.. index::
907 statement: global
908 triple: global; name; binding
Georg Brandl116aa622007-08-15 14:28:22 +0000909
910.. productionlist::
911 global_stmt: "global" `identifier` ("," `identifier`)*
912
Georg Brandl116aa622007-08-15 14:28:22 +0000913The :keyword:`global` statement is a declaration which holds for the entire
914current code block. It means that the listed identifiers are to be interpreted
915as globals. It would be impossible to assign to a global variable without
916:keyword:`global`, although free variables may refer to globals without being
917declared global.
918
919Names listed in a :keyword:`global` statement must not be used in the same code
920block textually preceding that :keyword:`global` statement.
921
922Names listed in a :keyword:`global` statement must not be defined as formal
923parameters or in a :keyword:`for` loop control target, :keyword:`class`
924definition, function definition, or :keyword:`import` statement.
925
926(The current implementation does not enforce the latter two restrictions, but
927programs should not abuse this freedom, as future implementations may enforce
928them or silently change the meaning of the program.)
929
930.. index::
931 builtin: exec
932 builtin: eval
933 builtin: compile
934
935**Programmer's note:** the :keyword:`global` is a directive to the parser. It
936applies only to code parsed at the same time as the :keyword:`global` statement.
937In particular, a :keyword:`global` statement contained in a string or code
938object supplied to the builtin :func:`exec` function does not affect the code
939block *containing* the function call, and code contained in such a string is
940unaffected by :keyword:`global` statements in the code containing the function
941call. The same applies to the :func:`eval` and :func:`compile` functions.
942
Georg Brandl02c30562007-09-07 17:52:53 +0000943
944.. _nonlocal:
945
946The :keyword:`nonlocal` statement
947=================================
948
949.. index:: statement: nonlocal
950
951.. productionlist::
952 nonlocal_stmt: "nonlocal" `identifier` ("," `identifier`)*
953
Georg Brandlc5d98b42007-12-04 18:11:03 +0000954.. XXX add when implemented
Georg Brandl06788c92009-01-03 21:31:47 +0000955 : ["=" (`target_list` "=")+ expression_list]
956 : | "nonlocal" identifier augop expression_list
Georg Brandlc5d98b42007-12-04 18:11:03 +0000957
Georg Brandl48310cd2009-01-03 21:18:54 +0000958The :keyword:`nonlocal` statement causes the listed identifiers to refer to
959previously bound variables in the nearest enclosing scope. This is important
960because the default behavior for binding is to search the local namespace
Georg Brandlc5d98b42007-12-04 18:11:03 +0000961first. The statement allows encapsulated code to rebind variables outside of
962the local scope besides the global (module) scope.
963
Georg Brandlc5d98b42007-12-04 18:11:03 +0000964.. XXX not implemented
965 The :keyword:`nonlocal` statement may prepend an assignment or augmented
966 assignment, but not an expression.
967
968Names listed in a :keyword:`nonlocal` statement, unlike to those listed in a
969:keyword:`global` statement, must refer to pre-existing bindings in an
970enclosing scope (the scope in which a new binding should be created cannot
971be determined unambiguously).
972
Georg Brandl48310cd2009-01-03 21:18:54 +0000973Names listed in a :keyword:`nonlocal` statement must not collide with
Georg Brandlc5d98b42007-12-04 18:11:03 +0000974pre-existing bindings in the local scope.
975
976.. seealso::
977
978 :pep:`3104` - Access to Names in Outer Scopes
979 The specification for the :keyword:`nonlocal` statement.
Georg Brandl02c30562007-09-07 17:52:53 +0000980
981
Georg Brandl116aa622007-08-15 14:28:22 +0000982.. rubric:: Footnotes
983
984.. [#] It may occur within an :keyword:`except` or :keyword:`else` clause. The
Georg Brandlc5d98b42007-12-04 18:11:03 +0000985 restriction on occurring in the :keyword:`try` clause is implementor's
986 laziness and will eventually be lifted.