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a = 0
b = {'a': [(1, 'a'), (2, 'b'), (3, 'c')], 'b': [(4, 'd'), (5, 'e')]}

for c, d in b.iteritems():
    for e, f in d:
        a += e

// now a = 15

Tried several ways. I want to know a way (if possible) to simplify this sum with a list comprehension:

a = sum(...)

Thank you in advance, pf.me

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2 Answers 2

up vote 6 down vote accepted

a = sum(e for d in b.itervalues() for e, _ in d) works in Python 2.7.

a = sum([e for d in b.itervalues() for e, _ in d]) works in Python 2.3.

I haven't tried it, but a = sum(e for d in b.values() for e, _ in d) should be the Python 3.0 equivalent.

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Cool that you shrinked 2 more chars using itervalues() instead of iteritems(). Good idea! :) –  Paulo Freitas Feb 8 '11 at 3:03
    
What's amusing to me is that the seemingly equivalent [e for e, _ in d for d in b.itervalues()] does not work - at least in Python 2.3. The "for" statements are apparently applied iteratively to whatever value is currently associated with that variable, rather than what should be functionally derived. –  Swiss Feb 8 '11 at 3:04
1  
@pf.me: The point of using itervalues is that values are all that are needed--not to "shrink code". –  Glenn Maynard Feb 8 '11 at 3:15
1  
Can't we just use sum(e[0] for d in b.itervalues() for e in d) [because we dont use _ too] :) –  aNish Feb 8 '11 at 4:02
    
@aNish: Yes, that would work too. –  Gabe Feb 8 '11 at 4:26

sum(j for _,i in b.iteritems() for j,_ in i) will do it.

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