Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Does anyone know if there is any builtin python method that will check if something is a valid python variable name, INCLUDING a check against reserved keywords? (so, ie, something like 'in' or 'for' would fail...)

Failing that, does anyone know of where I can get a list of reserved keywords (ie, dyanamically, from within python, as opposed to copy-and-pasting something from the online docs)? Or, have another good way of writing your own check?

Surprisingly, testing by wrapping a setattr in try/except doesn't work, as something like this:

setattr(myObj, 'My Sweet Name!', 23)

...actually works! (...and can even be retrieved with getattr!)

share|improve this question
1  
That's because setattr and getattr just work off of the object's __dict__. –  asmeurer Oct 3 '12 at 2:02

4 Answers 4

up vote 10 down vote accepted

The keyword module contains the list of all reserved keywords:

>>> import keyword
>>> keyword.iskeyword("in")
True
>>> keyword.kwlist
['and', 'as', 'assert', 'break', 'class', 'continue', 'def', 'del', 'elif', 'else', 'except', 'exec', 'finally', 'for', 'from', 'global', 'if', 'import', 'in', 'is', 'lambda', 'not', 'or', 'pass', 'print', 'raise', 'return', 'try', 'while', 'with', 'yield']

Note that this list will be different depending on what major version of Python you are using, as the list of keywords changes (especially between Python 2 and Python 3).

If you also want all builtin names, use __builtins__

>>> dir(__builtins__)
['ArithmeticError', 'AssertionError', 'AttributeError', 'BaseException', 'BlockingIOError', 'BrokenPipeError', 'BufferError', 'BytesWarning', 'ChildProcessError', 'ConnectionAbortedError', 'ConnectionError', 'ConnectionRefusedError', 'ConnectionResetError', 'DeprecationWarning', 'EOFError', 'Ellipsis', 'EnvironmentError', 'Exception', 'False', 'FileExistsError', 'FileNotFoundError', 'FloatingPointError', 'FutureWarning', 'GeneratorExit', 'IOError', 'ImportError', 'ImportWarning', 'IndentationError', 'IndexError', 'InterruptedError', 'IsADirectoryError', 'KeyError', 'KeyboardInterrupt', 'LookupError', 'MemoryError', 'NameError', 'None', 'NotADirectoryError', 'NotImplemented', 'NotImplementedError', 'OSError', 'OverflowError', 'PendingDeprecationWarning', 'PermissionError', 'ProcessLookupError', 'ReferenceError', 'ResourceWarning', 'RuntimeError', 'RuntimeWarning', 'StopIteration', 'SyntaxError', 'SyntaxWarning', 'SystemError', 'SystemExit', 'TabError', 'TimeoutError', 'True', 'TypeError', 'UnboundLocalError', 'UnicodeDecodeError', 'UnicodeEncodeError', 'UnicodeError', 'UnicodeTranslateError', 'UnicodeWarning', 'UserWarning', 'ValueError', 'Warning', 'ZeroDivisionError', '_', '__build_class__', '__debug__', '__doc__', '__import__', '__name__', '__package__', 'abs', 'all', 'any', 'ascii', 'bin', 'bool', 'bytearray', 'bytes', 'callable', 'chr', 'classmethod', 'compile', 'complex', 'copyright', 'credits', 'delattr', 'dict', 'dir', 'divmod', 'enumerate', 'eval', 'exec', 'exit', 'filter', 'float', 'format', 'frozenset', 'getattr', 'globals', 'hasattr', 'hash', 'help', 'hex', 'id', 'input', 'int', 'isinstance', 'issubclass', 'iter', 'len', 'license', 'list', 'locals', 'map', 'max', 'memoryview', 'min', 'next', 'object', 'oct', 'open', 'ord', 'pow', 'print', 'property', 'quit', 'range', 'repr', 'reversed', 'round', 'set', 'setattr', 'slice', 'sorted', 'staticmethod', 'str', 'sum', 'super', 'tuple', 'type', 'vars', 'zip']

And note that some of these (like copyright) are not really that big of a deal to override.

One more caveat: note that in Python 2, True, False, and None are not considered keywords. However, assigning to None is a SyntaxError. Assigning to True or False is allowed, though not recommended (same with any other builtin). In Python 3, they are keywords, so this is not an issue.

share|improve this answer
    
The above list doesn't include the names of built-in objects/ types, so it wouldn't catch other common mistakes (like naming a text variable "str" or a list "list"). I'm not sure how to retrieve a list of these programatically, aside from using help(builtins) in an interactive python command line. –  abought Oct 3 '12 at 2:03
2  
you can use str as a variable name in python (you shouldnt but you can)... –  Joran Beasley Oct 3 '12 at 2:04
    
I added how to get all builtin names. –  asmeurer Oct 3 '12 at 2:07
    
You can use it as a variable name, but it's not generally a good idea to shadow built-in functions or variable types; it can interfere with legitimate uses. ( wiki.python.org/moin/BeginnerErrorsWithPythonProgramming ) –  abought Oct 3 '12 at 2:08
2  
I also added one caveat about None in Python 2. It is not considered a keyword, but assigning to it is a SyntaxError. –  asmeurer Oct 3 '12 at 2:11

John: as a slight improvement, I added a $ in the re, otherwise, the test does not detect spaces:

import keyword 
import re
my_var = "$testBadVar"
print re.match("[_A-Za-z][_a-zA-Z0-9]*$",my_var) and not keyword.iskeyword(my_var)
share|improve this answer
2  
FYI, Unicode strings are valid identifiers. –  Charles Merriam Jun 7 '13 at 5:40

Python 3 now has 'foo'.isidentifier(), so that seems to be the best solution for recent Python versions. Thanks fellow runciter@freenode for suggestion.

For Python 2, easiest possible way to check if given string is valid Python identifier is to let Python parse it itself.

There are two possible approaches. First is use tokenize module and check stream of tokens to contain only our name:

import keyword
import tokenize

def isidentifier(ident):
    """Determines, if string is valid Python identifier."""

    # Smoke test — if it's not string, then it's not identifier, but we don't
    # want to just silence exception. It's better to fail fast.
    if not isinstance(ident, str):
        raise TypeError('expected str, but got {!r}'.format(type(ident)))

    # Quick test — if string is in keyword list, it's definitely not an ident.
    if keyword.iskeyword(ident):
        return False

    readline = (lambda: (yield ident.encode('utf-8-sig')))().__next__
    tokens = list(tokenize.tokenize(readline))

    # You should get exactly 3 tokens
    if len(tokens) != 3:
        return False

    # First one is ENCODING, it's always utf-8 because we explicitly passed in
    # UTF-8 BOM with ident.
    if tokens[0].type != tokenize.ENCODING:
        return False

    # Second is NAME, identifier.
    if tokens[1].type != tokenize.NAME:
        return False

    # Name should span all the string, so there would be no whitespace.
    if ident != tokens[1].string:
        return False

    # Third is ENDMARKER, ending stream
    if tokens[2].type != tokenize.ENDMARKER:
        return False

    return True

Second is to use ast, and check if AST of single expression is of desired shape:

import ast

def isidentifier(ident):
    """Determines, if string is valid Python identifier."""

    # Smoke test — if it's not string, then it's not identifier, but we don't
    # want to just silence exception. It's better to fail fast.
    if not isinstance(ident, str):
        raise TypeError('expected str, but got {!r}'.format(type(ident)))

    # Resulting AST of simple identifier is <Module [<Expr <Name "foo">>]>
    try:
        root = ast.parse(ident)
    except SyntaxError:
        return False

    if not isinstance(root, ast.Module):
        return False

    if len(root.body) != 1:
        return False

    if not isinstance(root.body[0], ast.Expr):
        return False

    if not isinstance(root.body[0].value, ast.Name):
        return False

    if root.body[0].value.id != ident:
        return False

    return True

And here are few tests to check it works:

assert(isidentifier('foo'))
assert(isidentifier('foo1_23'))
assert(not isidentifier('pass'))    # syntactically correct keyword
assert(not isidentifier('foo '))    # trailing whitespace
assert(not isidentifier(' foo'))    # leading whitespace
assert(not isidentifier('1234'))    # number
assert(not isidentifier('1234abc')) # number and letters
assert(not isidentifier('👻'))      # Unicode not from allowed range
assert(not isidentifier(''))        # empty string
assert(not isidentifier('   '))     # whitespace only
assert(not isidentifier('foo bar')) # several tokens
assert(not isidentifier('no-dashed-names-for-you')) # no such thing in Python

# Unicode identifiers are only allowed in Python 3:
assert(isidentifier('℘᧚')) # Unicode $Other_ID_Start and $Other_ID_Continue

Also, fun fact — despite ℘᧚ is perfectly valid Python 3 identifier, tokenize module thinks it's an error token. ast works fine, though :)

share|improve this answer
    
Relevant. Investigating. –  Veedrac Apr 12 at 5:55

The list of python keywords is short so you can just check syntax with a simple regex and membership in a relatively small list of keywords

import keyword #thanks asmeurer
import re
my_var = "$testBadVar"
print re.match("[_A-Za-z][_a-zA-Z0-9]*",my_var) and not keyword.iskeyword(my_var)

a shorter but more dangerous alternative would be

my_bad_var="%#ASD"
try:exec("{0}=1".format(my_bad_var))
except SyntaxError: #this maynot be right error
   print "Invalid variable name!"

and lastly a slightly safer variant

my_bad_var="%#ASD"

try:
  cc = compile("{0}=1".format(my_bad_var),"asd","single")
  eval(cc)
  print "VALID"
 except SyntaxError: #maybe different error
  print "INVALID!"
share|improve this answer
1  
Don't use a predetermined set of keywords. That will not be portable between Python versions, where the keyword list changes. –  asmeurer Oct 3 '12 at 2:00
1  
there are alternatives that dont ... but your method is better :P (now fixed) –  Joran Beasley Oct 3 '12 at 2:02
1  
Shouldn't the regular expression include _ in the second part as well? Also, you have 0-0 instead of 0-9. –  asmeurer Oct 3 '12 at 2:12
    
thank you on both counts :L .... fixed (on a side note i think if you asked the google it would find an exact regex from python specs for you or at least a definition) –  Joran Beasley Oct 3 '12 at 2:13

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.