3

I am getting an error saying "dict_key object does not support indexing" at:

return len(G[G.keys()[0]])

I realised it used to work in python 2.7.x but not in python 3.How should i change this statement to make it work in python 3.

6

In Python 2.x, G.keys() returns a list, but Python 3.x returns a dict_keys object instead. The solution is to wrap G.keys() with call to list(), to convert it into the correct type:

return len(G[list(G.keys())[0]])
  • When i try this statement,I am getting "the list out of index" error. – user3258267 Nov 1 '14 at 20:59
  • This happens if G is empty, but the same would happen on Python 2.x as far as I'm aware. – GoBusto Nov 1 '14 at 21:09
  • If you have Python 2.x code that you need to run with 3.x, you may want to take a look at the command 2to3: it shows you what needs to be changed and how in order for the code to be Python 3.x compatible. The command should have been installed with your Python distribution. – Jarno Lamberg Nov 1 '14 at 23:32
1

In Python 3, the objects returned by keys, values, and items are dictionary view objects, which don't support indexing.

Try, instead:

len(next(iter(G.values())))

This gets the dictionary view object for the dictionary's values, gets its iterator, grabs the first item from the iterator (the first value in the dictionary), and returns its length.

Unlike other methods that create a new list of the keys or values, it should take approximately the same amount of time no matter the size of the dictionary.

It works in both Python 2 and Python 3 (though to be efficient you'd need to use itervalues or viewvalues on Python 2).

  • I am getting an error called "Stop Iteration" – user3258267 Nov 1 '14 at 23:23
  • @user3258267 That'll happen if G is empty. If you want to default to 0, you can use len(next(iter(dct.values()), [])) – agf Nov 1 '14 at 23:32

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