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Say I have a list of numbers. How would I do to check that every item in the list is an int?
I have searched around, but haven't been able to find anything on this.

for i in myList:
  result=isinstance(i, int)
  if result == False:
    break

would work, but looks very ugly and unpythonic in my opinion.
Is there any better(and more pythonic) way of doing this?

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1  
Why would you need to check this in the first place? Using duck typing is pythonic, checking types for no good reason isn't - do you have a good reason? –  delnan May 15 '11 at 16:17
    
You're masking the built-in list. –  senderle May 15 '11 at 16:31
    
@senderle oops, just noticed that. Fixed now –  vurp0 May 15 '11 at 17:27

5 Answers 5

>>> my_list = [1, 2, 3.25]
>>> all(isinstance(item, int) for item in my_list)
False

>>> other_list = range(3)
>>> all(isinstance(item, int) for item in other_list)
True
>>> 
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The double parens are optional if the generator expression is the only argument. –  delnan May 15 '11 at 16:18
    
@delnan: good catch, see edit –  Dragan Chupacabric May 15 '11 at 16:20
    
Thanks! This is exactly what I was looking for. –  vurp0 May 15 '11 at 16:24
    
+1 all function makes more sense than any function. (pretty sure they are equivalent in terms of runtime though) –  WirthLuce May 15 '11 at 16:25
    
To check if each element in that list is an int you can also use this, that seems easier to read to me: all(type(item) is int for item in my_list) –  gerlos Aug 3 at 9:24

The following statement should work. It uses the any builtin and a generator expression:

any(not isinstance(x, int) for x in l)

This will return true if there is a non-int in the list. E.g.:

>>> any(not isinstance(x, int) for x in [0,12.])
True
>>> any(not isinstance(x, int) for x in [0,12])
False

The all builtin could also accomplish the same task, and some might argue it is makes slightly more sense (see Dragan's answer)

all(isinstance(x,int) for x in l)
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In [1]: a = [1,2,3]

In [2]: all(type(item)==int for item in a)
Out[2]: True
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One approach would not be to test, but to insist. This means your program can handle a broader range of inputs intelligently -- it won't fail if someone passes it a float instead.

int_list = [int(x) for x in int_list]

or (in-place):

for i, n in enumerate(int_list):
    int_list[i] = int(n)

If something can't be converted, it will throw an exception, which you can then catch if you care to.

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lst = [1,2,3]
lst2 = [1,2,'3']

list_is_int = lambda lst: [item for item in lst if isinstance(item, int)] == lst

print list_is_int(lst)
print list_is_int(lst2)

suxmac2:~$ python2.6 xx.py 
True
False

....one possible solution out of many using a list comprehension or filter()

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1  
This creates another list in memory which could be very problematic if the list is large. A generator expression is preferable. –  WirthLuce May 15 '11 at 16:24

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