309

I can't figure out what's wrong with my code:

for key in tmpDict:
    print type(tmpDict[key])
    time.sleep(1)
    if(type(tmpDict[key])==list):
        print 'this is never visible'
        break

the output is <type 'list'> but the if statement never triggers. Can anyone spot my error here?

4
  • 5
    Have you used list as a variable somewhere? Beware that if you're working in the REPL or such it may still be re-defined from a while ago.
    – Ffisegydd
    Oct 24, 2014 at 8:24
  • 2
    .....Woooowww... definitely a lesson regarding the shortcomings of softly typed languages. Wow... Oct 24, 2014 at 8:26
  • Add it as answers and I'll accept. THANKS. Oct 24, 2014 at 8:27
  • 2
    Pylint and friends will help you out in the future (I wouldn't call this a shortcoming, really).
    – user707650
    Oct 24, 2014 at 8:28

5 Answers 5

433

You should try using isinstance()

if isinstance(object, list):
       ## DO what you want

In your case

if isinstance(tmpDict[key], list):
      ## DO SOMETHING

To elaborate:

x = [1,2,3]
if type(x) == list():
    print "This wont work"
if type(x) == list:                  ## one of the way to see if it's list
    print "this will work"           
if type(x) == type(list()):
    print "lets see if this works"
if isinstance(x, list):              ## most preferred way to check if it's list
    print "This should work just fine"

The difference between isinstance() and type() though both seems to do the same job is that isinstance() checks for subclasses in addition, while type() doesn’t.

0
208

Your issue is that you have re-defined list as a variable previously in your code. This means that when you do type(tmpDict[key])==list if will return False because they aren't equal.

That being said, you should instead use isinstance(tmpDict[key], list) when testing the type of something, this won't avoid the problem of overwriting list but is a more Pythonic way of checking the type.

1
27

This seems to work for me:

>>>a = ['x', 'y', 'z']
>>>type(a)
<class 'list'>
>>>isinstance(a, list)
True
10

Python 3.7.7

import typing
if isinstance([1, 2, 3, 4, 5] , typing.List):
    print("It is a list")
4

Although not as straightforward as isinstance(x, list) one could use as well:

this_is_a_list=[1,2,3]
if type(this_is_a_list) == type([]):
    print("This is a list!")

and I kind of like the simple cleverness of that

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