323

Let's say I have a dictionary in which the keys map to integers like:

d = {'key1': 1,'key2': 14,'key3': 47}

Is there a syntactically minimalistic way to return the sum of the values in d—i.e. 62 in this case?

2
  • 2
    Just for fun: implement sum yourself in terms of reduce -- reduce is a more general form (e.g. sum, min and max can all be written in terms of reduce) and can solve other problems (e.g. product) easily.
    – user166390
    Feb 2, 2011 at 23:53
  • 1
    What about Guido's saying -- I think I remember this correctly -- that reduce is going away? I'm with you. Why remove it from the language? Jun 16, 2012 at 19:04

11 Answers 11

636

As you'd expect:

sum(d.values())
5
  • 1
    Well,Python 2.7.12 also works well with sum(d.values()) Jan 17, 2017 at 1:14
  • 7
    @LancelotHolmes Yes, but that builds a list in memory, and can thus be slower/closer to resource limits for large dictionaries. Thus, this answer says "you may want to use" instead of "you must use" when discussing Python 2.
    – phihag
    Feb 25, 2017 at 8:33
  • Nice! I sought it up just because I knew there would be something like that. Not that it takes too much work to write a dead silly for loop though ;)
    – runlevel0
    Mar 23, 2018 at 14:29
  • I don't know if you love python, if you love python 3, or if really are referring to a python 2 Sep 23, 2019 at 20:19
  • 1
    @LucasVazquez This referred to Python 2 (or 1). I removed it since it's irrelevant nowadays – even if you write new code in Python2, you can use d.values().
    – phihag
    Sep 23, 2019 at 20:51
71

In Python 2 you can avoid making a temporary copy of all the values by using the itervalues() dictionary method, which returns an iterator of the dictionary's keys:

sum(d.itervalues())

In Python 3 you can just use d.values() because that method was changed to do that (and itervalues() was removed since it was no longer needed).

To make it easier to write version independent code which always iterates over the values of the dictionary's keys, a utility function can be helpful:

import sys

def itervalues(d):
    return iter(getattr(d, ('itervalues', 'values')[sys.version_info[0]>2])())

sum(itervalues(d))

This is essentially what Benjamin Peterson's six module does.

1
  • 5
    yup, though this does not apply for python 3.
    – tokland
    Feb 2, 2011 at 23:46
20

Sure there is. Here is a way to sum the values of a dictionary.

>>> d = {'key1':1,'key2':14,'key3':47}
>>> sum(d.values())
62
7
d = {'key1': 1,'key2': 14,'key3': 47}
sum1 = sum(d[item] for item in d)
print(sum1)

you can do it using the for loop

5

I feel sum(d.values()) is the most efficient way to get the sum.

You can also try the reduce function to calculate the sum along with a lambda expression:

reduce(lambda x,y:x+y,d.values())
0
4

USE sum() TO SUM THE VALUES IN A DICTIONARY.

Call dict.values() to return the values of a dictionary dict. Use sum(values) to return the sum of the values from the previous step.

d = {'key1':1,'key2':14,'key3':47}
values = d.values()
#Return values of a dictionary    
total = sum(values)
print(total)
4

sum(d.values())

  • "d" -> Your dictionary Variable
2

phihag's answer (and similar ones) won't work in python3.

For python 3:

d = {'key1': 1,'key2': 14,'key3': 47}
sum(list(d.values()))

Update! There are complains that it doesn't work! I just attach a screenshot from my terminal. Could be some mismatch in versions etc.

enter image description here

2
  • Same issue exist even if we try this way Dec 26, 2019 at 0:51
  • it just works fine for me! I updated my answer with a screenshot (cannot do it here); it might have something to do with versions...
    – Reza
    Jan 8, 2020 at 15:24
0

You could consider 'for loop' for this:

  d = {'data': 100, 'data2': 200, 'data3': 500}
  total = 0
  for i in d.values():
        total += i

total = 800

2
  • 1
    Or just sum(d.values()), since .values() returns a List.
    – Linny
    Apr 9, 2020 at 5:49
  • yeah that is another way as well. Apr 10, 2020 at 3:08
0

simplest/silliest solution:

https://trinket.io/python/a8a1f25353

d = {'key1': 1,'key2': 14,'key3': 47}
s = 0
for k in d:
    s += d[k]

print(s)

or if you want it fancier:

https://trinket.io/python/5fcd379536

import functools

d = {'key1': 1,'key2': 14,'key3': 47}
s = functools.reduce(lambda acc,k: acc+d[k], d, 0)

print(s)
-2

You can get a generator of all the values in the dictionary, then cast it to a list and use the sum() function to get the sum of all the values.

Example:

c={"a":123,"b":4,"d":4,"c":-1001,"x":2002,"y":1001}

sum(list(c.values()))
1
  • 1
    How is this an answer, if it does not work. Look more like a comment to other answers. Mar 1, 2020 at 14:30

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