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I am trying to sort a dictionary which is in the form:

d = {'+A':234, '-B':212, 'A':454, '-C':991, '-A':124}

I want to sort it by key so that it is in the form:

+A, A, -A, +B, B, -B, etc

I have been trying to use sorted(d, key=lambda x: (x[1], x[0]) if len(x) == 2 else x[0]) but I cannot seem to find any way to sort the symbols correctly since they are not in the correct order on the ascii chart. What am I doing wrong?

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sorted(d,...) is only passing the keys to the lambda function. –  John La Rooy Nov 15 '13 at 6:48

3 Answers 3

up vote 5 down vote accepted

This should work:

sorted(d, key=lambda x: (x[1], x[0]) if len(x) == 2 else (x[0], ','))

The ascii value for , lies between + and -, so you can put a dummy , at the end for comparison.

>>> d = {'+A':234, '-B':212, 'A':454, '-C':991, '-A':124, '+B':1, 'B':98, '+C':232, 'C':23}
>>> sorted(d, key=lambda x: (x[1], x[0]) if len(x) == 2 else (x[0], ','))
['+A', 'A', '-A', '+B', 'B', '-B', '+C', 'C', '-C']

You can also simply reverse the key and append a , for the comparator:

sorted(d, key=lambda x: x[::-1] + ',')

So +A, A, -A are compared as A+,, A and A-,.

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That is very smart –  TerryA Nov 15 '13 at 7:01
This only appears to work because there's no '+B' 'B' '+C' 'C' in your sample! –  John La Rooy Nov 15 '13 at 10:04
@gnibbler Good catch, I should put the alphabet first in the order. Fixed! –  Hari Shankar Nov 15 '13 at 11:04
This is what I ended up using.. Great post thanks a lot –  user2962623 Nov 17 '13 at 20:38

One simple way to do it

rank = ['+A', 'A', '-A', '+B', 'B', '-B', ...]
sorted(d.items(), key=lambda i: rank.index(i[0]))

If there are a lot of ranks, it'll be better to use a dict

rank = {'+A': 0, 'A': 1, '-A': 2, '+B': 3, 'B': 4, '-B': 5, ...}
sorted(d.items(), key=lambda i: rank[i[0]])

You can use a lambda function like this. Note that it's important to use the backward slice to make sure the letters are sorted before their modifiers.

sorted(d.items(), key=lambda i:(','+i[0])[::-1])

But I think the explicit rank is clearer and not prone to bugs like the one in @Hari's answer. (5 people voted for it without noticing the bug so far)

If you really do just need the keys sorted (why?), you can simply use rank.get instead of a lambda function:

>>> rank = {'+A': 0, 'A': 1, '-A': 2, '+B': 3, 'B': 4, '-B': 5, '+C': 6, 'C': 7, '-C': 8}
>>> d = {'+A':234, '-B':212, 'A':454, '-C':991, '-A':124}
>>> sorted(d, key=rank.get)
['+A', 'A', '-A', '-B', '-C']

but it's probably better to skip sorted altogether

>>> rank = ['+A', 'A', '-A', '+B', 'B', '-B', '+C', 'C', '-C']
>>> d = {'+A':234, '-B':212, 'A':454, '-C':991, '-A':124}
>>> [k for k in rank if k in d]
['+A', 'A', '-A', '-B', '-C']

If you hate typing all those '

>>> rank = '+A A -A +B B -B +C C -C'.split()
share|improve this answer

I'd sort by:

  • Just the letter - strip off leading -+
  • Put another weight on the + (-1) so it comes first, - so it's last (1) otherwise 0


sorted(d.iteritems(), key=lambda L: (L[0].lstrip('-+'), {'-': 1, '+': -1}.get(L[0][0], 0)))
# [('+A', 234), ('A', 454), ('-A', 124), ('-B', 212), ('-C', 991)]
share|improve this answer
You can also use L[0][-1] instead of lstrip –  John La Rooy Nov 16 '13 at 19:33

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