176

Here's how I did it:

inNumber = somenumber
inNumberint = int(inNumber)
if inNumber == inNumberint:
    print "this number is an int"
else:
    print "this number is a float"

Something like that.
Are there any nicer looking ways to do this?

  • 4
    >>> 5.0 == int(5.0) True – Wooble Dec 27 '10 at 19:20
  • 4
    The trick is to search on SO for all the other times this question was asked. Each of those will provide a repeat of the same, standard answer. – S.Lott Dec 27 '10 at 19:21
  • 1
    ... And why do you need to know? – Karl Knechtel Dec 27 '10 at 21:45
  • 1
    related: How to check if a float value is a whole number. – jfs Oct 19 '14 at 11:47
  • @Wooble: it fails for larger numbers. – jfs Oct 19 '14 at 11:48

16 Answers 16

250

Use isinstance.

>>> x = 12
>>> isinstance(x, int)
True
>>> y = 12.0
>>> isinstance(y, float)
True

So:

>>> if isinstance(x, int):
        print 'x is a int!'

x is a int!

_EDIT:_

As pointed out, in case of long integers, the above won't work. So you need to do:

>>> x = 12L
>>> import numbers
>>> isinstance(x, numbers.Integral)
True
>>> isinstance(x, int)
False
  • wouldn't issubclass be more generic? – David Heffernan Dec 27 '10 at 19:26
  • 2
    @David: issubclass would be an error, as it works on classes. isinstance checks if a given object is an instance of a class or one of that class's subclasses, so it's perfectly generic. Methinks that isinstance(obj, cls) is equivalent to issubclass(obj.__class__, cls) – user395760 Dec 27 '10 at 19:33
  • 7
    This doesn't work for other integer types, for example if x = 12L. I know only int was asked for, but it's nice to fix other problems before they happen. The most generic is probably isinstance(x, numbers.Integral). – Scott Griffiths Dec 27 '10 at 19:39
  • @delnan Thanks, I wasn't aware that isinstance checked for subclasses. Thinking about it, it seems obvious now that it makes no sense to do anything else. If one wants to check to class identity then one can write type(obj) is cls. – David Heffernan Dec 27 '10 at 19:39
  • 9
    For Python 2, there is also the direct double check: isinstance(x, (int, long)). – Eric O Lebigot Apr 28 '13 at 13:05
78

I like @ninjagecko's answer the most.

This would also work:

for Python 2.x

isinstance(n, (int, long, float)) 

Python 3.x doesn't have long

isinstance(n, (int, float))

there is also type complex for complex numbers

49

One-liner:

isinstance(yourNumber, numbers.Real)

This avoids some problems:

>>> isinstance(99**10,int)
False

Demo:

>>> import numbers

>>> someInt = 10
>>> someLongInt = 100000L
>>> someFloat = 0.5

>>> isinstance(someInt, numbers.Real)
True
>>> isinstance(someLongInt, numbers.Real)
True
>>> isinstance(someFloat, numbers.Real)
True
  • 5
    In Python 3 isinstance(99**10,int) is True. – Carlos A. Gómez Jul 7 '17 at 14:19
13

It's easier to ask forgiveness than ask permission. Simply perform the operation. If it works, the object was of an acceptable, suitable, proper type. If the operation doesn't work, the object was not of a suitable type. Knowing the type rarely helps.

Simply attempt the operation and see if it works.

inNumber = somenumber
try:
    inNumberint = int(inNumber)
    print "this number is an int"
except ValueError:
    pass
try:
    inNumberfloat = float(inNumber)
    print "this number is a float"
except ValueError:
    pass
  • 5
    Is there any reason to do this when type and isinstance can do the job? – user225312 Dec 27 '10 at 19:28
  • 7
    int(1.5) doesn't raise ValueError, and you obviously know that--giving a wrong answer on purpose? Seriously? – Glenn Maynard Dec 27 '10 at 19:57
  • 3
    @Glenn: I assume S.Lott understood the question as "check if a string is an int or float" (in which case it would actually be a good solution). – user395760 Dec 27 '10 at 20:00
  • @A A: class MetaInt(type): pass; class Int(int): __metaclass__ = MetaInt; type(Int(1)) == int. (Sorry for the bad syntax but I cannot do more on one line.) – mg. Dec 27 '10 at 20:13
  • 2
    @A A: Yes. The reason is that this is simpler and more reliable. The distinction between int and float may not even be relevant for many algorithms. Requesting the type explicitly is usually a sign of bad polymorphism or an even more serious design problem. In short. Don't Check for Types. It's Easier to Ask Forgiveness than Ask Permission. – S.Lott Dec 27 '10 at 21:06
8

What you can do too is usingtype() Example:

if type(inNumber) == int : print "This number is an int"
elif type(inNumber) == float : print "This number is a float"
  • This would fail in the [admittedly rare] case that the number in question is a SUBCLASS of int or float. (Hence why "isinstance" would be considered "better", IMO.) – Dan H Dec 14 '18 at 19:10
5

Here's a piece of code that checks whether a number is an integer or not, it works for both Python 2 and Python 3.

import sys

if sys.version < '3':
    integer_types = (int, long,)
else:
    integer_types = (int,)

isinstance(yourNumber, integer_types)  # returns True if it's an integer
isinstance(yourNumber, float)  # returns True if it's a float

Notice that Python 2 has both types int and long, while Python 3 has only type int. Source.

If you want to check whether your number is a float that represents an int, do this

(isinstance(yourNumber, float) and (yourNumber).is_integer())  # True for 3.0

If you don't need to distinguish between int and float, and are ok with either, then ninjagecko's answer is the way to go

import numbers

isinstance(yourNumber, numbers.Real)
5

You can use modulo to determine if x is an integer numerically. The isinstance(x, int) method only determines if x is an integer by type:

def isInt(x):
    if x%1 == 0:
        print "X is an integer"
    else:
        print "X is not an integer"
  • 3.2 % 2 yields 1.4. Whatchu talkin' 'bout, Willi(s|am)? Also, you will get a TypeError if x is not a number to begin with, so your program would exit prematurely if you followed this advice ... – dylnmc Oct 2 '17 at 2:17
  • @dylnmc Then you can use the isinstance() method to determine if x is a number. Also, 3.2 % 1 yields 0.2. If a number is evenly divisible by 1, it is an integer numerically. This method was useful to me even though it may not have been for you. – William Gerecke Oct 2 '17 at 2:36
  • this is true; x%1 == 0 should be true for only ints (but it will also be true for floats with only a zero following decimal point). If you know it's going to be an int (eg, if this is a param to a function), then you could just check with modulo. I bet that is faster than Math.floor(x) == x. On the not-so-bright side, this will be True if you pass a float like 1.0 or 5.0, and you will encounter the same problem using what the original poster mentioned in his/her question. – dylnmc Oct 10 '17 at 14:11
  • This solved my problem with simplicity, thank you! – Ângelo Polotto Sep 9 '18 at 3:29
5

I know it's an old thread but this is something that I'm using and I thought it might help.

It works in python 2.7 and python 3< .

def is_float(num):
    """
    Checks whether a number is float or integer

    Args:
        num(float or int): The number to check

    Returns:
        True if the number is float
    """
    return not (float(num)).is_integer()


class TestIsFloat(unittest.TestCase):
    def test_float(self):
        self.assertTrue(is_float(2.2))

    def test_int(self):
        self.assertFalse(is_float(2))
4

pls check this: import numbers

import math

a = 1.1 - 0.1
print a 

print isinstance(a, numbers.Integral)
print math.floor( a )
if (math.floor( a ) == a):
    print "It is an integer number"
else:
    print False

Although X is float but the value is integer, so if you want to check the value is integer you cannot use isinstance and you need to compare values not types.

  • This's what i need, thanks – selfboot Apr 17 at 3:27
3

how about this solution?

if type(x) in (float, int):
    # do whatever
else:
    # do whatever
2

Tried in Python version 3.6.3 Shell

>>> x = 12
>>> import numbers
>>> isinstance(x, numbers.Integral)
True
>>> isinstance(x,int)
True

Couldn't figure out anything to work for.

0
absolute = abs(x)
rounded = round(absolute)
if absolute - rounded == 0:
  print 'Integer number'
else:
  print 'notInteger number'
-1
def is_int(x):
  absolute = abs(x)
  rounded = round(absolute)
  if absolute - rounded == 0:
    print str(x) + " is an integer"
  else:
    print str(x) +" is not an integer"


is_int(7.0) # will print 7.0 is an integer
  • func checks for ints but also returns true for floats that are .0 – Gideon Lytes Nov 3 '17 at 18:13
  • Please explain why/how your contribution solves the OPs question. – Heri Nov 3 '17 at 19:17
  • @Heri he is looking to check if a number is an int or a float, the function I defined can do that, abs is an inbuilt python func that returns the absolute value of the number, round is also an inbuilt func that rounds off the number, if I subtract the rounded number from the absolute one, and I get a zero, then the number is an int, or it has a zero as after its decimal places – Gideon Lytes Nov 4 '17 at 18:28
-1

Try this...

def is_int(x):
  absolute = abs(x)
  rounded = round(absolute)
  return absolute - rounded == 0
-1

Update: Try this


inNumber = [32, 12.5, 'e', 82, 52, 92, '1224.5', '12,53',
            10000.000, '10,000459', 
           'This is a sentance, with comma number 1 and dot.', '121.124']

try:

    def find_float(num):
        num = num.split('.')
        if num[-1] is not None and num[-1].isdigit():
            return True
        else:
            return False

    for i in inNumber:
        i = str(i).replace(',', '.')
        if '.' in i and find_float(i):
            print('This is float', i)
        elif i.isnumeric():
            print('This is an integer', i)
        else:
            print('This is not a number ?', i)

except Exception as err:
    print(err)
  • @JJJ Of course I tried it. Did you? – Magotte Jun 21 at 11:40
  • Yes I did and it didn't work. And I'm pretty sure you didn't really try it. Because it doesn't work. – JJJ Jun 21 at 12:01
  • Certainly, there is a less offensive way to respond. Although you are right I just run more test's it doesn't work in every case. – Magotte Jun 21 at 12:08
  • @JJJ How about this solution? – Magotte Jun 21 at 12:54
-5

variable.isnumeric checks if a value is an integer:

 if myVariable.isnumeric:
    print('this varibale is numeric')
 else:
    print('not numeric')

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