Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

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.

share|improve this question
3  
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
    
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

5 Answers 5

up vote 2 down vote accepted

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.

share|improve this answer

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 )
share|improve this answer
    
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

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.

share|improve this answer
    
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

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 )
share|improve this answer

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]
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.