712

Is there a way to check if the type of a variable in python is string. like:

isinstance(x,int);

for integer values?

20 Answers 20

1059

In Python 2.x, you would do

isinstance(s, basestring)

basestring is the abstract superclass of str and unicode. It can be used to test whether an object is an instance of str or unicode.


In Python 3.x, the correct test is

isinstance(s, str)

The bytes class isn't considered a string type in Python 3.

  • 10
    @Yarin: No. But it doesn't matter, because Python 3.x is not meant to be compatible with Python 2.x at all. – netcoder Jul 15 '13 at 17:45
  • 2
    I found that isinstance(s, str) works with py27, tested on : Python 2.7.5 (default, Aug 25 2013, 00:04:04) [GCC 4.2.1 Compatible Apple LLVM 5.0 (clang-500.0.68)] on darwin. – kakyo Jan 16 '14 at 21:38
  • 23
    @kakyo: The problem is that it will miss unicode objects, which should also be considered strings. Both the type str and the type unicode have the common base class basestring, and this is what you want to check for. – Sven Marnach Jan 16 '14 at 21:41
  • 7
    @Yarin if you're porting something from 2.x to 3.x, you can always assign basestring = str. – Jack Apr 20 '15 at 23:50
  • 8
    @AdamErickson For compatibility with what exactly? It doesn't help for compatibility with Python 3, since there is no unicode in Python 3. My recommendation for compatibility between Python 2 and 3 is to use the "six" library. (Specifically isintance(s, six.string_types) in this case) – Sven Marnach Aug 12 '16 at 14:55
218

I know this is an old topic, but being the first one shown on google and given that I don't find any of the answers satisfactory, I'll leave this here for future reference:

six is a Python 2 and 3 compatibility library which already covers this issue. You can then do something like this:

import six

if isinstance(value, six.string_types):
    pass # It's a string !!

Inspecting the code, this is what you find:

import sys

PY3 = sys.version_info[0] == 3

if PY3:
    string_types = str,
else:
    string_types = basestring,
  • 3
    E.g. for a one liner: value_is_string = isinstance(value, str if sys.version_info[0] >= 3 else basestring), where >= assumes any eventual Python 4+ keeps the str root class for strings. – Pi Marillion Oct 22 '16 at 13:13
55

In Python 3.x or Python 2.7.6

if type(x) == str:
  • 9
    I like the elegance of "if type(x) in (str, unicode):", but I see PyLint flags it as "unidiomatic". – eukras Dec 22 '15 at 18:12
  • 9
    Comparing types with == is explicitly discouraged by PEP8, and has several downsides in addition to be considered "unidiomatic", e.g. it does not detect instances of subclasses of str, which should be considered strings as well. If you really want to check for exactly the type str and explicitly exclude subclasses, use type(x) is str. – Sven Marnach Oct 28 '17 at 14:03
15

you can do:

var = 1
if type(var) == int:
   print('your variable is an integer')

or:

var2 = 'this is variable #2'
if type(var2) == str:
    print('your variable is a string')
else:
    print('your variable IS NOT a string')

hope this helps!

13

The type module also exists if you are checking more than ints and strings. http://docs.python.org/library/types.html

  • 5
    More specifically, types.StringTypes. – musiphil Oct 15 '15 at 17:15
  • 2
    types.StringTypes appears to no longer exist in Python 3 :( – Ibrahim Feb 14 '18 at 20:18
11

since basestring isn't defined in Python3, this little trick might help to make the code compatible:

try: # check whether python knows about 'basestring'
   basestring
except NameError: # no, it doesn't (it's Python3); use 'str' instead
   basestring=str

after that you can run the following test on both Python2 and Python3

isinstance(myvar, basestring)
  • 4
    Or if you want to catch byte strings too: basestring = (str, bytes) – Mark Ransom Mar 26 '16 at 23:06
10

Edit based on better answer below. Go down about 3 answers and find out about the coolness of basestring.

Old answer: Watch out for unicode strings, which you can get from several places, including all COM calls in Windows.

if isinstance(target, str) or isinstance(target, unicode):
  • 1
    Good catch. I didn't know about basestring. It's mentioned about 3 posts down and seems like a better answer. – Wade Hatler Feb 19 '14 at 17:26
  • 6
    isinstance() also takes a tuple as the second argument. So even if basestring did not exist, you could just use isinstance(target, (str, unicode)). – Martijn Pieters Jun 13 '15 at 15:22
  • 3
    In python 3.5.1, unicode does not appear to be defined: NameError: name 'unicode' is not defined – Eric Hu Feb 19 '16 at 13:32
10

Python 2 / 3 including unicode

from __future__ import unicode_literals
from builtins import str  #  pip install future
isinstance('asdf', str)   #  True
isinstance(u'asdf', str)  #  True

http://python-future.org/overview.html

  • 1
    Thanks a lot! There are dozens of various answers around the internet but the only good is this one. The first line makes type('foo') being unicode by default in python 2, and the second one make str being instance of unicode. Thoses makes the code valid in Python 2 and 3. Thanks again ! – Narann Oct 8 at 8:35
8

Also I want notice that if you want to check whether the type of a variable is a specific kind, you can compare the type of the variable to the type of a known object.

For string you can use this

type(s) == type('')
  • 7
    This is a terrible, terrible way to type check in python. What if another class inherits from str? What about unicode strings, which don't even inherit from str in 2.x? Use isinstance(s, basestring) in 2.x, or isinstance(s, str) in 3.x. – Jack Apr 20 '15 at 23:54
  • 1
    @Jack, please read question, and also notice I do not write that it's the best way, just another way. – Daniil Grankin Apr 24 '15 at 13:41
  • 9
    This is a bad idea for 3 reasons: isinstance() allows for subclasses (which are strings too, just specialised), the extra type('') call is redundant when you can just use str and types are singletons, so type(s) is str is going to be a more efficient test. – Martijn Pieters Jun 13 '15 at 15:15
8

Lots of good suggestions provided by others here, but I don't see a good cross-platform summary. The following should be a good drop in for any Python program:

def isstring(s):
    # if we use Python 3
    if (sys.version_info[0] >= 3):
        return isinstance(s, str)
    # we use Python 2
    return isinstance(s, basestring)

In this function, we use isinstance(object, classinfo) to see if our input is a str in Python 3 or a basestring in Python 2.

  • 1
    This will likely break in Python 4, consider >= at least. – thakis Dec 15 '16 at 22:08
  • 1
    be cleaner to check for six.string_types or six.text_type – daonb Jan 3 '17 at 12:39
  • @daonb importing an entire module just to do a one-line test is the thinking that causes crazy dependency trees and serious bloat to ruin what should be something short small and simple. It's your call of course, but just say'n ... – duanev Jan 14 '17 at 21:55
  • @duanev if you're worried about Python 2/3 compatibility it's a better idea to be using six in the project anyways. Six is also a single file so dependency trees / bloat are not an issue here. – MoxieBall May 24 '18 at 15:24
7

So,

You have plenty of options to check whether your variable is string or not:

a = "my string"
type(a) == str # first 
a.__class__ == str # second
isinstance(a, str) # third
str(a) == a # forth
type(a) == type('') # fifth

This order is for purpose.

6

Alternative way for Python 2, without using basestring:

isinstance(s, (str, unicode))

But still won't work in Python 3 since unicode isn't defined (in Python 3).

5
a = '1000' # also tested for 'abc100', 'a100bc', '100abc'

isinstance(a, str) or isinstance(a, unicode)

returns True

type(a) in [str, unicode]

returns True

  • For Python 2.7.12 I had to remove the quotes: type(a) in [str, unicode] – Adam Erickson Aug 12 '16 at 14:15
4

Here is my answer to support both Python 2 and Python 3 along with these requirements:

  • Written in Py3 code with minimal Py2 compat code.
  • Remove Py2 compat code later without disruption. I.e. aim for deletion only, no modification to Py3 code.
  • Avoid using six or similar compat module as they tend to hide away what is trying to be achieved.
  • Future-proof for a potential Py4.

import sys
PY2 = sys.version_info.major == 2

# Check if string (lenient for byte-strings on Py2):
isinstance('abc', basestring if PY2 else str)

# Check if strictly a string (unicode-string):
isinstance('abc', unicode if PY2 else str)

# Check if either string (unicode-string) or byte-string:
isinstance('abc', basestring if PY2 else (str, bytes))

# Check for byte-string (Py3 and Py2.7):
isinstance('abc', bytes)
1

If you do not want to depend on external libs, this works both for Python 2.7+ and Python 3 (http://ideone.com/uB4Kdc):

# your code goes here
s = ["test"];
#s = "test";
isString = False;

if(isinstance(s, str)):
    isString = True;
try:
    if(isinstance(s, basestring)):
        isString = True;
except NameError:
    pass;

if(isString):
    print("String");
else:
    print("Not String");
1

You can simply use the isinstance function to make sure that the input data is of format string or unicode. Below examples will help you to understand easily.

>>> isinstance('my string', str)
True
>>> isinstance(12, str)
False
>>> isinstance('my string', unicode)
False
>>> isinstance(u'my string',  unicode)
True
-2
s = '123'
issubclass(s.__class__, str)
-5

This is how I do it:

if type(x) == type(str()):
  • 4
    type(str()) is a very roundabout way of saying str. Types are singletons, so type(x) is str is more efficient. isinstance() should be used instead, unless you have very good reasons to ignore subclasses of str. – Martijn Pieters Jun 13 '15 at 15:19
  • if type(x) is str: – shaurya uppal May 21 at 6:35
-6

I've seen:

hasattr(s, 'endswith') 
-11
>>> thing = 'foo'
>>> type(thing).__name__ == 'str' or type(thing).__name__ == 'unicode'
True
  • 1
    In which case would you prefer type(thing).__name__ == 'str' over type(thing) == str or isinstance(thing, str)? Also unicode does not exist in modern versions of Python. – vaultah Jan 12 '18 at 13:06

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