133
def shuffle(self, x, random=None, int=int):
    """x, random=random.random -> shuffle list x in place; return None.

    Optional arg random is a 0-argument function returning a random
    float in [0.0, 1.0); by default, the standard random.random.
    """

    randbelow = self._randbelow
    for i in reversed(range(1, len(x))):
        # pick an element in x[:i+1] with which to exchange x[i]
        j = randbelow(i+1) if random is None else int(random() * (i+1))
        x[i], x[j] = x[j], x[i]

When I run the shuffle function it raises the following error, why is that?

TypeError: 'dict_keys' object does not support indexing
  • What's your question ? What is x ? – Paco Jun 26 '13 at 14:19
  • 6
    seems to be an python3 error – DataEngineer Oct 4 '17 at 22:55
219

Clearly you're passing in d.keys() to your shuffle function. Probably this was written with python2.x (when d.keys() returned a list). With python3.x, d.keys() returns a dict_keys object which behaves a lot more like a set than a list. As such, it can't be indexed.

The solution is to pass list(d.keys()) (or simply list(d)) to shuffle.

  • 20
    . . . Or just list(d) which will give you a list of keys on both python2.x and python3.x without making any copies :-) – mgilson Aug 28 '14 at 5:15
  • 7
    This is a strange breaking change design decision for python3. – Jason Jun 19 '17 at 23:49
  • 9
    You might think so, but I definitely think that it was the correct decision. The dict_keys object behaves a lot more like just the keys half of a dict. Specifically, they support O(1) membership testing (and other set-like methods that can be implemented efficiently on top of that fact). These things aren't possible with a list and if you want a list of the dict's keys, you've always been able to simply do list(your_dictionary) to get it. – mgilson Jun 20 '17 at 0:03
  • this is helpful for me to see that python3 requires us to wrap the dictionary with list. – DataEngineer Oct 4 '17 at 1:29
  • 2
    @Crt -- shuffle is the name of the function in the original poster's code (the function that is throwing the error). Looking at the code, I think that it was copy/pasted from random.shuffle's implementation in the standard library :-) – mgilson May 17 '18 at 19:51
11

You're passing the result of somedict.keys() to the function. In Python 3, dict.keys doesn't return a list, but a set-like object that represents a view of the dictionary's keys and (being set-like) doesn't support indexing.

To fix the problem, use list(somedict.keys()) to collect the keys, and work with that.

8

Convert an iterable to a list may have a cost. Instead, to get the the first item, you can use:

next(iter(keys))

Or, if you want to iterate over all items, you can use:

items = iter(keys)
while True:
    try:
        item = next(items)
    except StopIteration as e:
        pass # finish
1

In Python 2 dict.keys() return a list, whereas in Python 3 it returns a generator.

You could only iterate over it's values else you may have to explicitly convert it to a list i.e. pass it to a list function.

0

Why you need to implement shuffle when it already exists? Stay on the shoulders of giants.

import random

d1 = {0:'zero', 1:'one', 2:'two', 3:'three', 4:'four',
     5:'five', 6:'six', 7:'seven', 8:'eight', 9:'nine'}

keys = list(d1)
random.shuffle(keys)

d2 = {}
for key in keys: d2[key] = d1[key]

print(d1)
print(d2)
  • The answer is general-knowledge relevant, but it doesn't address to what the OP was asking. – J. C. Rocamonde Apr 28 '17 at 18:46
  • You're right. It seems he want to implement his own randomizer. – FooBar167 Apr 29 '17 at 8:18
  • 1
    psah, maybe he didn't actually know that he could use the built-in, but the question actually seems to be about a type-error. Still, I hope he switched and used your option (unless it is something very specific) to follow the basic DRY and code-economy principles. – J. C. Rocamonde Apr 29 '17 at 9:29

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