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I have a dictionary:

d = {'a':[1,3], 'b':[3,4,5,6], 'c':[1], 'd':[1,2,3] }

I want to make a smaller, new dictionary with the top two key:value pairs, sorted by the len of the lists in value. So in this case, I want:

newd = {'b':[3,4,5,6], 'd':[1,2,3] }

I tried this answer but got this error:

NameError: global name 'd' is not defined
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closed as off-topic by Felix Kling, tiago, ekhumoro, BRPocock, S.L. Barth Feb 28 at 16:02

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions concerning problems with code you've written must describe the specific problem — and include valid code to reproduce it — in the question itself. See SSCCE.org for guidance." – Felix Kling, tiago, ekhumoro
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Please post exactly how you tried to implement the other solution. It looks exactly like what you wanted, so you must have made a mistake when you adapted the code. When I use the other code it works perfectly fine for me. –  Felix Kling Dec 9 '13 at 6:21
    
@FelixKling I didn't adapt the code. I just copy and pasted from the answer. –  mchangun Dec 9 '13 at 6:26
2  
Well, I did as well and it works for me. See codepad.org/RyobPnHY. Did you copy the >>> as well by any chance? As it is, this question is just a duplicate. We cannot help you to learn to copy&paste code properly. –  Felix Kling Dec 9 '13 at 6:26
    
"top two key:value pairs, sorted by the len of the lists in value" - you know dicts have no order, right? If you just want the key-value pairs with the top two longest values, you're fine, but if you want the dict to be sorted by value length, you're going to have problems. –  user2357112 Dec 9 '13 at 7:36
    
@user2357112 I don't care about the order in the new dictionary, just that they contain the top n key:values pairs according to length of value. –  mchangun Dec 9 '13 at 8:11

2 Answers 2

up vote 3 down vote accepted

One approach is to sort the items according to length of value, and then create a dictionary from the last two items.

sorted_items = sorted(d.items(), key = lambda item : len(item[1]))
newd = dict(sorted_items[-2:])
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1  
I'd argue that passing reverse=true to sorted is more performant than reversing the whole list afterwards. It's probably also helpful if you explain what [::-1] means exactly. –  Felix Kling Dec 9 '13 at 6:25
    
Or slice off the last two dict(sorted_items[-2:]) –  gnibbler Dec 9 '13 at 6:27
    
@Felix King: It probably is. Adjusted the code to just slice the last two anyway. –  oadams Dec 9 '13 at 6:28
    
@gnibbler, I was making that edit similar to what you suggested, but reversal is irrelevant if you just slice the last two. –  oadams Dec 9 '13 at 6:29
    
@halex and mgilson. Yes, thanks! –  oadams Dec 9 '13 at 6:30

Seems like a job for heapq:

big_items = heapq.nlargest(2, d.items(), key=lambda x: len(x[1]))
newd = dict(big_items)

The advantage of heapq over sorted is that this provides an O(N) time complexity whereas sorted will yield an O(NlogN) time complexity. For small dicts, this probably doesn't matter much. sorted may even be faster due to a more optimized implementation, but for big dicts, this might actually buy you a significant speedup.


(on python2.x, you can use d.iteritems() instead of d.items())

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+1 although sorted is probably faster most of the time. –  gnibbler Dec 9 '13 at 6:26
    
@gnibbler -- That depends on the size of the dictionary. –  mgilson Dec 9 '13 at 6:27
    
I know about the big-O, but the constant is quite large in this case, so it takes a while before the log overtakes it. –  gnibbler Dec 9 '13 at 6:29
    
@gnibbler -- Yeah, I added a caveat in there about using sorted for smaller dicts. –  mgilson Dec 9 '13 at 6:32
1  
@mchangun -- Not sure. The best thing to do would be to timeit to find out. –  mgilson Dec 9 '13 at 6:49

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