21

I have a data structure similar to this

table = [
    ("marley", "5"),
    ("bob", "99"),
    ("another name", "3")
]

What I would like to do, to get the sum of the 2nd column (5 + 99 + 3) functionally like this:

total = sum(table, lambda tup : int(tup[1]))

That would be similar syntax to the python function sorted, but that's not how you would use python's sum function.

What's the pythonic/functional way to sum up the second column?

35

One approach is to use a generator expression:

total = sum(int(v) for name,v in table)
8

reduce can help

total = reduce(lambda x,y:x+int(y[1]), table,0)
8

If you want to use lambda the following should solve it:

total = sum(map(lambda x: int(x[1]), table))
3
sum(map(int,zip(*table)[-1]))

is one way to do it ... there are many options however

  • 1
    option1 - sum(map(int, map(operator.itemgetter(1), table))) – wwii Jul 30 '14 at 22:13
2

You can also get at the values in a dictionary:

total = sum(map(int, dict(table).values())

This may be a little obscure.

  • 2
    This answer works, but it creates a dictionary per row in the table. This isn't very memory efficient. – hlin117 Jul 30 '14 at 22:15
  • 1
    It creates just one dictionary using the table, and iterates over the values converting each one to an integer, and then sums them. For a big table it could be prohibitive. @PeterdeRivaz's answer using a generator is the most Pythonic. – Peter Wood Jul 31 '14 at 9:42
0

One way is using indexing.

total=sum(items[1] for items in table)

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