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I'm using sqlalchemy-flask for my projects as well as json module.

I have two classes I'm pulling data from.

The two data types are Ints and List (I made sure of this by using type). When I try to append the int to the list I get None. Whats wrong?

def update_retweet_count(TWEET, TWEET_has_retweet):

    if type(json.loads(TWEET_has_retweet.js_rt)) != list:
        list_of_retweets = list([0])
    else:
        list_of_retweets = list(json.loads(TWEET_has_retweet.js_rt))

    new_rtc = int(TWEET.tmp_rt_count)

    x = list_of_retweets.append(new_rtc)
    print x 

When I run above X is None.

4 Hours later I try this below and It works!

def update_retweet_count(TWEET, TWEET_has_retweet):
    if type(json.loads(TWEET_has_retweet.js_rt)) != list:
        list_of_retweets = list([0])
    else:
        list_of_retweets = list(json.loads(TWEET_has_retweet.js_rt))

    lst =[]

    new_rtc = int(TWEET.tmp_rt_count)

    [lst.append(y) for y in list_of_retweets]

    lst.append(new_rtc)

    print lst

Why does the first code not work?

Thank you!

Fernando

share|improve this question
    
A couple comments: 1) list([0]) is the same as just [0]. 2) you could probably just do lst = list_of_retweets, or at worst lst = list(list_of_retweets). –  mgilson Sep 14 '12 at 17:03
    
Noted. Thanks for the feedback –  nava Sep 14 '12 at 20:53

1 Answer 1

up vote 3 down vote accepted

list.append always returns None: it changes the list in place. You do:

x = list_of_retweets.append(new_rtc)
print x

in the first example and:

lst.append(new_rtc)
print lst

in the second (correct) example.

share|improve this answer
    
Argv ... you beat me to it. –  mgilson Sep 14 '12 at 17:00
    
@mgilson: FGITW, but you'll outdraw me next time. (Incidentally, is "Argv" what programmers say when they're frustrated?) –  David Robinson Sep 14 '12 at 17:02
    
Yeah, I saw that somewhere, and thought it was funny, so I've started saying it... –  mgilson Sep 14 '12 at 17:03
    
Thanks alot guys! –  nava Sep 14 '12 at 17:32

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