187

I may be having a brain fart here, but I really 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?

  • 3
    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 '14 at 8:24
  • .....Woooowww... definitely a lesson regarding the shortcomings of softly typed languages. Wow... – Benjamin Lindqvist Oct 24 '14 at 8:26
  • Add it as answers and I'll accept. THANKS. – Benjamin Lindqvist Oct 24 '14 at 8:27
  • 1
    Pylint and friends will help you out in the future (I wouldn't call this a shortcoming, really). – user707650 Oct 24 '14 at 8:28
140

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.

| improve this answer | |
224

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"

EDIT 1: The difference between isinstance() and type() and why isinstance() most preferred way to check is that isinstance() checks subclasses in addition, while type() doesn’t.

| improve this answer | |
22

This seems to work for me:

>>>a = ['x', 'y', 'z']
>>>type(a)
<class 'list'>
>>>isinstance(a, list)
True
| improve this answer | |
1

Python 3.7.7

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

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

| improve this answer | |

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