15

In python I would like to build up an dictionary of arrays using the dictionary get method to by default supply an empty list to then populate with information e.g.:

dict = {}
for i in range( 0, 10 ):
    for j in range( 0, 100 ):
        dict[i] = dict.get( i, [] ).append( j )

However when I try the above code I get no exceptions but my list ends up like the following:

AttributeError: 'NoneType' object has no attribute 'append'

Lists have an append method, so I simplified my test to the following:

dict = {}
for i in range( 0, 10 ):
    dict[i] = dict.get( i, [] ).append( i )

And the output was the following:

{0: None, 1: None, 2: None, 3: None, 4: None, 5: None, 6: None, 7: None, 8: None, 9: None}

So my question is why is dict.get( i, [] ) returning None by default and not []? Doing dict.get( i, list() ) has the same problem, so I am a bit stumped.

  • 5
    Please please please do not use dict as a variable name. It clashes with the built-in dict class. – Nicholas Knight Apr 24 '11 at 17:49
  • 1
    I don't typically do that, I just wanted to be clear as to what the variable was. – Danielb Apr 24 '11 at 18:03
  • You don't want the dict[i] = in front of the setdefault. See my edited answer. – Gabe Apr 24 '11 at 18:14
  • Your first setdefault code is flawed, don't assign back to dict[i]. dict.setdefault( i, [] ).append( j ) should be all you need. – Steve Mayne Apr 24 '11 at 18:15
  • Your correct, I just figured that out. May thanks, I wish I could make you all as correct :( – Danielb Apr 24 '11 at 18:18
19

It's not dict.get( i, [] ) that's returning None, it's append. You probably want to use dict.setdefault(i, []).append(j) or just use a defaultdict in the first place.

Here's how you would do it:

d = {}
for i in range( 0, 10 ):
    for j in range( 0, 100 ):
        d.setdefault( i, [] ).append( j )

Note that I changed dict to d because dict already means something in Python (you're redefining it) and I removed the superfluous dict[i] = that was causing the error message.

23

To solve this you need to use Python's defaultdict.

http://docs.python.org/library/collections.html#defaultdict-examples

from collections import defaultdict 

dict = defaultdict(list)
for i in range( 0, 10 ):
    for j in range( 0, 100 ):
        dict[i].append( j )
  • This is the right answer. There are no bonus points in Python for 'rolling your own'. – jwg May 26 '15 at 7:37
3

The problem is that append returns None instead of the list object. So

dict[i] = dict.get( i, [] ).append( j ) assigns None to dict[i]

However, you can do much simpler:

dict.setdefault( i, [] ).append( j )

.. quoting the docs for setdefault:

If key is in the dictionary, return its value. If not, insert key with a value of default and return default

So if the key i is not yet present it creates it and stores the default value in it, in either case it returns the key value - which is a reference to the list, so you can modify it directly.

  • Doing the append and setdefault on the same line caused an exception for me on Python 2.7.1. – Danielb Apr 24 '11 at 18:14
  • Works for me with both 2.6 and 3.1 – Alexander Gessler Apr 24 '11 at 18:21
2

append doesn't return a list. It appends the value to the list and returns None.

Instead of this:

 dict[i] = dict.get( i, [] ).append( j ) 

You could do this:

 dict.setdefault(i, [])
 dict[i].append( j )
  • 1
    or, on one line: dict.setdefault(i, []).append( j ) - although it should be noted that defaultdict is faster. – Steve Mayne Apr 24 '11 at 18:17
1

An alternative that uses the get method by taking advantage of list addition.

d = {}
for i in range(0, 10):
    for j in range(0, 100):
        d[i] = d.get(i, []) + [j]
  • Problem is this requires first making a one element list out of j in order to take advantage of it. – martineau Jul 1 '15 at 18:41

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