3

suppose we have a list of dictionaries like this:

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

I want to increment the value of each a-key by one. This is easy to achieve with a loop like this:

for dictionary in l:
  dictionary['a'] += 1

But is it possible to do that with a combination of map and lambda as well? It has to be something like this:

l = map(lambda x: x+1, l)

But I don't know how to specify the a-key in the lambda. lambda x['a'] didn't work. Any suggestions?

Thanks in advance!

  • 2
    Probably not a good idea. Why create a list if all you want is the side effects of mutating the dictionaries? This is wasteful of memory. See this: stackoverflow.com/q/14633298/4996248 – John Coleman Nov 2 '15 at 14:31
  • Why do you want to use map here? This issue could be easily solved in imperative way (your example with for), but using functional paradigm requires strong support for persistent data structures, which Python does not have. In short: instead of changing one value per dictionary, you have to copy each dictionary and replace one value in it. Does not look like a Pythonic-way – awesoon Nov 2 '15 at 14:33
  • map(lambda x:x['a']+1 , l) print l – Prashant Shukla Nov 2 '15 at 14:34
  • It is more like a theoretical playing around without a useful application in mind. But map(lambda x:x['a']+1 , l) print l doesn't work. It returns only a list of the updated entries, i.e. [2, 4, 6]. I want a list like this: [{'a': 2, 'b': 2}, {'a': 4, 'b': 4}, {'a': 6, 'b': 6}] – Flo1895 Nov 2 '15 at 14:46
1
l = [{'a': 1, 'b': 2}, {'a': 3, 'b': 4}, {'a': 5, 'b': 6}]
l = map(lambda x: {'a':x['a']+1,'b':x['b']}, l)
print l #in python 3 you need convert map to list list(l)
>>>[{'a': 2, 'b': 2}, {'a': 4, 'b': 4}, {'a': 6, 'b': 6}]
  • Hmm, ok, it is basically like copying the dictionaries and modifying the entries accordingly. Thanks for sharing the idea. :) – Flo1895 Nov 2 '15 at 15:09
  • 1
    Note, on python3.x, map no longer consumes the input iterable until it needs to (e.g. when you decide to actually iterate over the result). That could cause issues with something like this. – mgilson Nov 2 '15 at 15:55
  • @mgilson right, you need to convert it to a list. I added – levi Nov 2 '15 at 16:39
1

I agree with @John-Colemans that this is not a good idea, but you could implement it like this:

l = [{'a': 1, 'b': 2}, {'a': 3, 'b': 4}, {'a': 5, 'b': 6}]
l = map(lambda x:{'a':x['a']+1,'b':x['b']} , l) 
print l

Gives:

[{'a': 2, 'b': 2}, {'a': 4, 'b': 4}, {'a': 6, 'b': 6}]

This would of course not work if you get entries like {'a':1,'c':2}

  • Yes, it seems like all solutions need the structure of the dictionary and suppose that each dictionary looks the same. – Flo1895 Nov 2 '15 at 15:12
0

As long as we're clear that this isn't a practical thing, you could do it in Python 3 with an anonymous function which returns a dictionary comprehension:

l = list(map(lambda d: {k:d[k]+1 if k == 'a' else d[k] for k in d},l))

This approach works for any number of keys besides 'a'.

l evaluates to:

[{'b': 2, 'a': 2}, {'b': 4, 'a': 4}, {'b': 6, 'a': 6}]

but note that this is a brand-new list of brand-new dictionaries.

If you wanted to keep l itself unchanged and merely mutate the dictionaries, and you don't want to create a list simply to discard it, you could evaluate the following (which will work in Python 2 but with Python 3's lazy iterators never creates any list in memory):

assert(all(map(lambda x: not x , map(lambda d : d.update({'a':d['a']+1}),l))))

This produces no output but once you evaluate it you can verify that the dictionaries have been modified but no copies have been formed and only the value of the a keys have been changed. Needless to say, this is much less readable than the 2-line for loop.

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