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I have a dict,

d = {'a': [4,'Adam', 2], 'b': [3,'John', 4], 'c': [4,'Adam', 3], 'd': [4,'Bill', 3], 'e': [4,'Bob'], 'f': [4, 'Joe'], 'g': [4, 'Bill']}

Is there any quick way to get a sum of the numbers in each of the lists in the dictionary?

For example, a should return 6, b should return 7, so on.

Currently, I am doing this.

for i in d:
    l2=[]
    for thing in d[i]:
        if type(thing) == int:
            l2.append(thing)
        print sum(l2)

Possible for a quicker fix than having to go through each time and append the numbers to a list?

Thanks!

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a note, you should use if isinstance(thing, int) instead of type() –  Ryan Haining Aug 14 '12 at 0:10
    
howcome? just for efficiency? –  user1530318 Aug 14 '12 at 0:11
3  
Why do you have mixed types in a list? –  Ignacio Vazquez-Abrams Aug 14 '12 at 0:13

4 Answers 4

up vote 6 down vote accepted

Here is a fairly straight forward way using a dictionary comprehension:

sums = {k: sum(i for i in v if isinstance(i, int)) for k, v in d.items()}

Or on Python 2.6 and below:

sums = dict((k, sum(i for i in v if isinstance(i, int))) for k, v in d.items())

Example:

>>> {k: sum(i for i in v if isinstance(i, int)) for k, v in d.items()}
{'a': 6, 'c': 7, 'b': 7, 'e': 4, 'd': 7, 'g': 4, 'f': 4}
share|improve this answer
    
What if I wanted just the number returned. so instead of a dictionary of sums returned, just the sums outputted. Or maybe, given a dictionary list, such as {'a':[4,'bill',2]), it should return 6. –  user1530318 Aug 14 '12 at 0:23
    
If there is only one key in the dictionary you could use sum(i for v in d.values() for i in v if isinstance(i, int)), however if there are multiple keys then returning just the sums would give you an arbitrary order as described in nebffa's answer. –  Andrew Clark Aug 14 '12 at 17:39

In this case, since the numbers are all in the 1st and 3rd positions of the lists

>>> {k: sum(v[::2]) for k,v in d.items()}
{'a': 6, 'c': 7, 'b': 7, 'e': 4, 'd': 7, 'g': 4, 'f': 4}
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If you want to output as a list, use a list comprehension:

d = {'a': [4,'Adam', 2], 'b': [3,'John', 4], 'c': [4,'Adam', 3], 'd': [4,'Bill',
3], 'e': [4,'Bob'], 'f': [4, 'Joe'], 'g': [4, 'Bill']}

sums = [sum(i for i in v if isinstance(i, int)) for k, v in d.items()]

[6, 7, 7, 4, 7, 4, 4]

As you can see this doesn't quite match up. Manually adding the items in d gives

[6, 7, 7, 7, 4, 4, 4]

So why the mismatch?

It's because dictionaries are unsorted

As soon as you create d as a dictionary, it rearranges its items, and therefore outputting such a list comprehension will give you the correct sums, but you don't know which sum corresponds to which dictionary item.

This is why F.J.'s dictionary comprehension suggestion seems the best option here.

Unless you see it is workable with the list comprehension somehow?

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If your dictionary having float values then the above code will not work, You will get output as 0 value.

So, For handling integers and float, you can use below code.

In comprehension way,

sums = {k: sum(i for i in v if not isinstance(i, str)) for k, v in d.items()}

OR

You can use common function to check whether the given input is number or not then we can sum the values,

d = {'a': [4,'Adam', 2], 'b': [3,'John', 4], 'c': [4,'Adam', 3], 'd': [4,'Bill', 3], 'e': [4,'Bob'], 'f': [4, 'Joe'], 'g': [4, 'Bill']}


def get_num(str):
    """ 
        This function converts the number/number string into a float. Otherwise, returns 0        
     """
    try:
        return float(str)
    except:
        return 0.0

if __name__ == '__main__':
    # example list which contains numbers and strings
    sums = {k:sum(get_num(value) for value in v) for k, v in d.items()}
    print sums
    ## output for the given input dict d
    ## {'a': 6.0, 'c': 7.0, 'b': 7.0, 'e': 4.0, 'd': 7.0, 'g': 4.0, 'f': 4.0}
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