787

How do I check whether a variable is an integer?

  • 2
    possible duplicate of What's the canonical way to check for type in python? – S.Lott Aug 17 '10 at 10:53
  • 3
    @Hulk: You seem to be under the impression that type is the right way to do this. It is (almost certainly) not. – Katriel Aug 17 '10 at 12:16
  • 2
    @Hulk: No offense taken. But to be clear, the only way you can catch an exception (that I know of) is by using an except clause. I suggested you catch the TypeError exception. – Jungle Hunter Aug 17 '10 at 16:54
  • 13
    This question is ambiguous, and the answers are accordingly divided. Some are answering how to check the type of a variable (5→True, 5.0→ False), while others are answering how to check that the value is an integer (5→True, 5.0→True, Fraction(5,1)→True, 5.4→False). Maybe the question and answers should be split up accordingly? – endolith May 10 '13 at 14:39
  • 1
    The most simple way (which works in Python 2.7.11) is int(var) == var. Works with .0 floats, returns boolean. – oisinvg Oct 21 '17 at 20:05

42 Answers 42

945

If you need to do this, do

isinstance(<var>, int)

unless you are in Python 2.x in which case you want

isinstance(<var>, (int, long))

Do not use type. It is almost never the right answer in Python, since it blocks all the flexibility of polymorphism. For instance, if you subclass int, your new class should register as an int, which type will not do:

class Spam(int): pass
x = Spam(0)
type(x) == int # False
isinstance(x, int) # True

This adheres to Python's strong polymorphism: you should allow any object that behaves like an int, instead of mandating that it be one.

BUT

The classical Python mentality, though, is that it's easier to ask forgiveness than permission. In other words, don't check whether x is an integer; assume that it is and catch the exception results if it isn't:

try:
    x += 1
except TypeError:
    ...

This mentality is slowly being overtaken by the use of abstract base classes, which let you register exactly what properties your object should have (adding? multiplying? doubling?) by making it inherit from a specially-constructed class. That would be the best solution, since it will permit exactly those objects with the necessary and sufficient attributes, but you will have to read the docs on how to use it.

  • 34
    For Python 2.x to check for an integer you really need to use isinstance(x, (int, long)). After all a long is an integer too! – Scott Griffiths Aug 17 '10 at 10:29
  • 2
    Hmm. I wonder about the BUT part! isn't proper and clear data checking on method input(e.g. start, before beginning to do anyting with a variable) good practice in python as it should generally be in any programming? So, for example, before I give data to a database query when wanting to fetch an objetc by id, which is an integer, I check if input is actually and integer and useable before handing it to the database layer. – Henning Jun 15 '13 at 9:49
  • 3
    @Henning I believe the "Pythonic" answer would be "no." By duck typing, it's only a problem if it would cause an error in the database level, and there's no way to tell if that's the case based on the type. So according to the BUT section, the best course of action would be to simply let the database layer throw the error and deal with it when it comes up. Anything with compatible behavior could be used; the int/long issue is a great example; what if someone has a custom short type? It's compatible with int and the database, but your code wouldn't accept it if it checked the type. – jpmc26 Jul 5 '13 at 23:01
  • 3
    @katrielalex This might sound stupid to you but can you explain to me why is isinstance( True, int ) is returning True. – Nagri Nov 18 '13 at 8:04
  • 6
    Because Python bool (True, False) is a subclass of int =) It was a design decision of Python that booleans are just like integers, which goes hand in hand with the notion that any object can be evaluated as a boolean. – Katriel Nov 19 '13 at 15:09
91

All proposed answers so far seem to miss the fact that a double (floats in python are actually doubles) can also be an integer (if it has nothing after the decimal point). I use the built-in is_integer() method on doubles to check this.

Example (to do something every xth time in a for loop):

for index in range(y): 
    # do something
    if (index/x.).is_integer():
        # do something special

Edit:

You can always convert to a float before calling this method. The three possibilities:

>>> float(5).is_integer()
True
>>> float(5.1).is_integer()
False
>>> float(5.0).is_integer()
True

Otherwise, you could check if it is an int first like Agostino said:

def is_int(val):
    if type(val) == int:
        return True
    else:
        if val.is_integer():
            return True
        else:
            return False
  • 2
    Do you have a link to documentation for this is_integer function? I can't find one. – Gabe Apr 11 '13 at 21:30
  • 4
    There is not much, but here is the official documentation: docs.python.org/2/library/stdtypes.html#float.is_integer – saroele Apr 12 '13 at 8:41
  • 3
    That's good to know. Although, it's a float method, so it's not a general-purpose function that can be applied to any type to determine whether it's an integer. – Craig McQueen Sep 12 '13 at 23:50
  • 3
    First check if it's an int (or a long), then check if it's a float and, if it is, check if is_integer() is true. Notice that there is no long type in Python 3. – Agostino Apr 29 '15 at 18:44
  • 1
    int(x) == x covers floats, too. – endolith Feb 22 '18 at 21:01
64

If you really need to check then it's better to use abstract base classes rather than concrete classes. For an integer that would mean:

>>> import numbers
>>> isinstance(3, numbers.Integral)
True

This doesn't restrict the check to just int, or just int and long, but also allows other user-defined types that behave as integers to work.

  • 3
    isinstance(Fraction(5,1), numbers.Integral) → False. Is that right? – endolith Jun 30 '12 at 17:10
  • 5
    @endolith: My answer (and the others) say whether the variable's type is an integer rather than if the variable itself could be converted to an integer without losing information. So yes your example is False, in the same way as checking the 'integerness' of 5.00 would be. – Scott Griffiths Jun 30 '12 at 22:29
  • 3
    ... but I suppose you could also do an 'is this object exactly representable as an integer' test along the lines of type(f)(int(f)) == f. – Scott Griffiths Jun 30 '12 at 22:32
  • 2
    @martineau: but that method doesn't get user-defined integer types which is the point of using the abstract base class. Testing for particular numbers is definitely a hack - the obvious point to make is that the numbers you've chosen won't work for 64-bit Python 2.x. – Scott Griffiths Jun 26 '13 at 7:25
  • 1
    @martineau: but the type might not be a subclass of int, it might just represent integer numbers. An example would be the numpy int16 type. Now admittedly this doesn't use the ABC either, but it could if it wanted to say it's an integer type of object but didn't want actually be an int. Oh and wait until they make a 128-bit Python build :) – Scott Griffiths Jun 26 '13 at 8:25
51

Here's a summary of the different methods mentioned here:

  • int(x) == x
  • try x = operator.index(x)
  • isinstance(x, int)
  • isinstance(x, numbers.Integral)

and here's how they apply to a variety of numerical types that have integer value:

Table of methods for checking whether Python numerical types are integers

You can see they aren't 100% consistent. Fraction and Rational are conceptually the same, but one supplies a .index() method and the other doesn't. Complex types don't like to convert to int even if the real part is integral and imaginary part is 0.

(np.int8|16|32|64(5) means that np.int8(5), np.int32(5), etc. all behave identically)

  • Your sympy.Rational test doesn't quite do what you're thinking, because sympy.Rational(5) evaluates to an instance of sympy.Integer. Any operation that would produce a Rational with an integer value instead produces an Integer. – user2357112 Jan 26 at 19:23
  • @user2357112 How is that not "what I'm thinking"? – endolith Jan 27 at 0:42
  • You say sympy.Rational supports operator.index, but it doesn't. What's going on is that sympy aggressively switches to more specific types. sympy.Rational(5) doesn't really fit under the "rational" subsection of the table. – user2357112 Jan 27 at 2:29
  • @user2357112 But Rational(5) can't even exist. It's converted to Integer immediately, which does support operator.index. – endolith Jan 27 at 2:51
  • We seem to both understand that, but it's not the message your answer conveys. – user2357112 Jan 27 at 2:53
36
>>> isinstance(3, int)
True

See here for more.

Note that this does not help if you're looking for int-like attributes. In this case you may also want to check for long:

>>> isinstance(3L, (long, int))
True

I've seen checks of this kind against an array/index type in the Python source, but I don't think that's visible outside of C.

Token SO reply: Are you sure you should be checking its type? Either don't pass a type you can't handle, or don't try to outsmart your potential code reusers, they may have a good reason not to pass an int to your function.

  • +1: After all, decimal.Decimal and fractions.Rational often works where you've so carefully checked for int. Type checking in advance prevents legal, appropriate use. It doesn't prevent any problems. – S.Lott Aug 17 '10 at 11:05
  • 1
    I had a variable in a dictionary so have to do a type check in this case – Hulk Aug 17 '10 at 12:06
  • 2
    @Hulk: Why is that case special? – Katriel Aug 17 '10 at 12:17
  • The requirement was such that if value of the variable is not a integer then not to process further.. – Hulk Aug 17 '10 at 13:41
  • 2
    @Hulk: "if value of the variable is not a integer then not to process further" Best handled by exception surrounding the loop. This does not need any type checking. – S.Lott Aug 17 '10 at 14:20
19

Why not try something like:

if x%1 == 0: 
  • 6
    -1 because this is not code I would want to see in production or by my teammates. It hides your intention. Most of the other answers here are much more explicit and should be preferred. – Dennis Nov 5 '14 at 0:37
  • 16
    @Dennis: but this works also for floats with decimal part equal to zero. You can wrap it in a function and it will be explicit. – Marco Sulla Apr 18 '16 at 12:06
  • What if x is not even a number, say a string? – Jason Sep 4 '17 at 7:49
18

Rather than over complicate things, why not just a simple

if type(var) is int:
13

A simple method I use in all my software is this. It checks whether the variable is made up of numbers.

test = input("Enter some text here: ")
if test.isdigit() == True:
   print("This is a number.")
else:
   print("This is not a number.")
  • 1
    This works for vars that are strings, but crashes for vars that are already digits (isdigit() is a string method in python). – shacker Aug 10 '15 at 21:02
  • Also isdigit returns False for negative numbers and floats: '-10'.isdigit() and '1.5'.isdigit(). – Anton Tarasenko Oct 14 '18 at 12:10
11

it's really astounding to see such a heated discussion coming up when such a basic, valid and, i believe, mundane question is being asked.

some people have pointed out that type-checking against int (and long) might loose cases where a big decimal number is encountered. quite right.

some people have pointed out that you should 'just do x + 1 and see whether that fails. well, for one thing, this works on floats too, and, on the other hand, it's easy to construct a class that is definitely not very numeric, yet defines the + operator in some way.

i am at odds with many posts vigorously declaring that you should not check for types. well, GvR once said something to the effect that in pure theory, that may be right, but in practice, isinstance often serves a useful purpose (that's a while ago, don't have the link; you can read what GvR says about related issues in posts like this one).

what is funny is how many people seem to assume that the OP's intent was to check whether the type of a given x is a numerical integer type—what i understood is what i normally mean when using the OP's words: whether x represents an integer number. and this can be very important: like ask someone how many items they'd want to pick, you may want to check you get a non-negative integer number back. use cases like this abound.

it's also, in my opinion, important to see that (1) type checking is but ONE—and often quite coarse—measure of program correctness, because (2) it is often bounded values that make sense, and out-of-bounds values that make nonsense. sometimes just some intermittent values make sense—like considering all numbers, only those real (non-complex), integer numbers might be possible in a given case.

funny non-one seems to mention checking for x == math.floor( x ). if that should give an error with some big decimal class, well, then maybe it's time to re-think OOP paradigms. there is also PEP 357 that considers how to use not-so-obviously-int-but-certainly-integer-like values to be used as list indices. not sure whether i like the solution.

  • 1
    Some of the use cases for such a test involve treating an integer as a special case; for that, you can just be prepared for x==math.floor(x) or x == int(x) to raise an exception, and then treat that as "no". But other use cases involve wanting to get an early, clearer exception rather than a more confusing one later, when a non-integer parameter just doesn't make sense. We have an assortment of answers to this question, for different use cases. – greggo Jul 6 '15 at 19:08
8

Found a related question here on SO itself.

Python developers prefer to not check types but do a type specific operation and catch a TypeError exception. But if you don't know the type then you have the following.

>>> i = 12345
>>> type(i)
<type 'int'>
>>> type(i) is int
True
  • 3
    -1 You should at the very least explain why not to do this. Just posting this code promotes bad Python. (I hate to downvote this, because it's technically correct, but it shouldn't be upvoted.) – Katriel Aug 17 '10 at 10:25
  • There you go. You would be glad to notice it is not up-voted now either. – Jungle Hunter Aug 17 '10 at 10:37
  • Thanks. Downvote removed. (Though you could be a bit more emphatic about not using type =p.) – Katriel Aug 17 '10 at 10:39
8

If you want to check that a string consists of only digits, but converting to an int won't help, you can always just use regex.

import re
x = "01234"
match = re.search("^\d+$", x)
try: x = match.group(0)
except AttributeError: print("not a valid number")

Result: x == "01234"

In this case, if x were "hello", converting it to a numeric type would throw a ValueError, but data would also be lost in the process. Using a regex and catching an AttributeError would allow you to confirm numeric characters in a string with, for instance, leading 0's.

If you didn't want it to throw an AttributeError, but instead just wanted to look for more specific problems, you could vary the regex and just check the match:

import re
x = "h01234"
match = re.search("\D", x)
if not match:
    print("x is a number")
else:
    print("encountered a problem at character:", match.group(0))

Result: "encountered a problem at character: h"

That actually shows you where the problem occurred without the use of exceptions. Again, this is not for testing the type, but rather the characters themselves. This gives you much more flexibility than simply checking for types, especially when converting between types can lose important string data, like leading 0's.

  • No need for regex to do that: all(ch in set(string.digits) for ch in x), but as pointed out elsewhere on this page, it's a bad method anyway. – Thijs van Dien Nov 24 '12 at 20:48
6

why not just check if the value you want to check is equal to itself cast as an integer as shown below?

def isInt(val):
    return val == int(val)
  • 2
    need to enclose (or replace) the test with a try/except block, or it will throw exception if val is, for example, 'a' – MestreLion May 14 '13 at 5:55
  • 1
    Could replace with return val == int(val), and the exception block is needed as MestreLion mentions. – jpmc26 Jul 13 '13 at 7:56
  • 1
    The only solution so far they works for numpy integers too! – Quant Metropolis Dec 9 '14 at 12:41
4

If the variable is entered like a string (e.g. '2010'):

if variable and variable.isdigit():
    return variable #or whatever you want to do with it. 
else: 
    return "Error" #or whatever you want to do with it.

Before using this I worked it out with try/except and checking for (int(variable)), but it was longer code. I wonder if there's any difference in use of resources or speed.

  • 1
    This won't handle "-3", for example. – DSM Jun 16 '12 at 7:04
  • You are right DSM – Ramon Suarez Jun 16 '12 at 12:22
4

Here is a simple example how you can determine an integer

def is_int(x):
    print round(x),
    if x == round(x):
        print 'True',
    else:
        print 'False'

is_int(7.0)   # True
is_int(7.5)   # False
is_int(-1)    # True    
  • From codecademy? :p – Maarten Wolfsen May 15 '17 at 11:59
  • This is not a good solution but not worthy of a downvote – CodeMonkey Oct 5 '17 at 17:31
4

If you are reading from a file and you have an array or dictionary with values of multiple datatypes, the following will be useful. Just check whether the variable can be type casted to int(or any other datatype you want to enforce) or not.

try :
    int(a);
    #Variable a is int
except ValueError : 
    # Variable a is not an int
3

If you just need the value, operator.index (__index__ special method) is the way to go in my opinion. Since it should work for all types that can be safely cast to an integer. I.e. floats fail, integers, even fancy integer classes that do not implement the Integral abstract class work by duck typing.

operator.index is what is used for list indexing, etc. And in my opinion it should be used for much more/promoted.

In fact I would argue it is the only correct way to get integer values if you want to be certain that floating points, due to truncating problems, etc. are rejected and it works with all integral types (i.e. numpy, etc.) even if they may not (yet) support the abstract class.

This is what __index__ was introduced for!

  • Seems to be just the thing. Odd thing though: it accepts True and False but doesn't map them to 1 and 0, it returns the same value (using py2.7). It could be that's because bool is a subclass of int and that's considered good enough for an index. You can always do int(operator.index(x)) to ensure a real int. – greggo Jul 6 '15 at 19:00
3

If you want to check with no regard for Python version (2.x vs 3.x), use six (PyPI) and it's integer_types attribute:

import six

if isinstance(obj, six.integer_types):
    print('obj is an integer!')

Within six (a very light-weight single-file module), it's simply doing this:

import sys
PY3 = sys.version_info[0] == 3

if PY3:
    integer_types = int,
else:
    integer_types = (int, long)
3

use the int function to help

intchecker = float(input('Please enter a integer: '))
intcheck = 0
while intcheck != 1:
    if intchecker - int(intchecker) > 0:
        intchecker = float(input("You didn't enter a integer. "
                                 "Please enter a integer: "))
    else:
        intcheck = 1
print('you have entered a integer')
3

A simple way to do this is to directly check if the remainder on division by 1 is 0 or not.

if this_variable % 1 == 0:
    list.append(this_variable)
else:
    print 'Not an Integer!'
3

In the presence of numpy check like ..

isinstance(var, numbers.Integral)

.. (slow) or ..

isinstance(var, (int, long, np.integer))

.. in order to match all type variants like np.int8, np.uint16, ...

(Drop long in PY3)

Recognizing ANY integer-like object from anywhere is a tricky guessing game. Checking

var & 0 == 0 

for truth and non-exception may be a good bet. Similarly, checking for signed integer type exclusively:

var ^ -1 ==  -var - 1
2

I was writing a program to check if a number was square and I encountered this issue, the code I used was:

import math
print ("this program will tell you if a number is square")
print ("enter an integer")
num = float(input())
if num > 0:
    print ("ok!")
    num = (math.sqrt(num))
    inter = int(num)
    if num == inter:
            print ("It's a square number, and its root is")
            print (num)
    else:
            print ("It's not a square number, but its root is")
            print (num)
else:
    print ("That's not a positive number!")

To tell if the number was an integer I converted the float number you get from square rooting the user input to a rounded integer (stored as the value ), if those two numbers were equal then the first number must have been an integer, allowing the program to respond. This may not be the shortest way of doing this but it worked for me.

  • That doesn't seem like a correct algorithm, since it will fail for integers bigger than what a float mantissa can hold. Try it with 12345678901234567890123456789012 (which is not a square) and see if it gives the right answer. You should implement an integer square root algorithm instead. – Craig McQueen Sep 13 '13 at 0:04
  • See this question regarding integer square roots. – Craig McQueen Sep 13 '13 at 0:18
2
#!/usr/bin/env python

import re

def is_int(x):

    if(isinstance(x,(int,long))):

        return True
    matchObj = re.match(r'^-?\d+\.(\d+)',str(x))

        if matchObj:

        x = matchObj.group(1)

        if int(x)-0==0:

            return True

     return False

print is_int(6)

print is_int(1.0)

print is_int(1.1)

print is_int(0.1)

print is_int(-956.0)
2

If you have not int you can do just this:

var = 15.4
if(var - int(var) != 0):
    print "Value is not integer"
2

A more general approach that will attempt to check for both integers and integers given as strings will be

def isInt(anyNumberOrString):
    try:
        int(anyNumberOrString) #to check float and int use "float(anyNumberOrString)"
        return True
    except ValueError :
        return False

isInt("A") #False
isInt("5") #True
isInt(8) #True
isInt("5.88") #False *see comment above on how to make this True
2

You can also use str.isdigit. Try looking up help(str.isdigit)

def is_digit(str):
      return str.isdigit()
1

If you want to write a Python 2-3 compatible code

To test whether a value is an integer (of any kind), you can to do this :

# Python 2 and 3: 
import sys
if sys.version_info < (3,):
    integer_types = (int, long,)
else:
    integer_types = (int,)

>>> isinstance(1, integer_types)
True

# Python 2 only:
if isinstance(x, (int, long)):
     ...

# Python 3 only:
if isinstance(x, int):
    ...

source : http://python3porting.com/differences.html

1

The simplest way is:

if n==int(n):
    --do something--    

Where n is the variable

0

you can do this by:

name = 'Bob'
if type(name) == str:
    print 'this works'
else:
    print 'this does not work'

and it will return 'this works'... but if you change name to int(1) then it will return 'this does not work' because it is now a string... you can also try:

name = int(5)
if type(name) == int:
    print 'this works'
else:
    print 'this does not work'

and the same thing will happen

0

There is another option to do the type check.

For example:

  n = 14
  if type(n)==int:
  return "this is an int"
0

You can do this.

if type(x) is int:

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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