Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Possible Duplicate:
How to sum dict elements

I have a list of dictionaries as following:

[{'Name': 'A', 'amt':100},
 {'Name': 'B', 'amt':200},
 {'Name': 'A', 'amt':300},
 {'Name': 'C', 'amt':400},
 {'Name': 'C', 'amt':500},
 {'Name': 'A', 'amt':600}]

I want to sum amt for each name and get following result in list of dict:

 [{'Name':'A', 'amt':1000},
  {'Name':'B', 'amt':200},
  {'Name':'C', 'amt':900}]
share|improve this question

marked as duplicate by John Zwinck, Adam Wagner, VMAtm, Anna Lear Dec 21 '11 at 5:47

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
What have you tried? –  John Zwinck Dec 21 '11 at 2:43
2  
have you done anything (anything at all)? or is this another case of a "make my code" question? –  juliomalegria Dec 21 '11 at 3:07
add comment

5 Answers

up vote 4 down vote accepted
from collections import defaultdict

c = defaultdict(int)
for d in list_of_dictionaries:
    c[d['Name']] += d['amt']

It produces c:

{'A': 1000, 'C': 900, 'B': 200}

To convert it to list of dictionaries:

[{'Name': name, 'amt': amt} for name, amt in c.items()]

Result:

[{'Name': 'A', 'amt': 1000}, {'Name': 'C', 'amt': 900}, {'Name': 'B', 'amt':200}]
share|improve this answer
    
awesome. Thank you. –  Mav Dec 21 '11 at 4:09
add comment
output_dict = {}
for i in dict_list:
    if i['Name'] in output_dict:
        output_dict[i['Name']] = i['amt']
    else:
        output_dict[i['Name']] += i['amt']

Will give you a dictionary where the keys are names and amounts are values. If you must have it as a list of dicts:

[{'Name':key, 'amt':value} for key, value in output_dict.items()]
share|improve this answer
add comment

Example solution

I am not sure it is "beautiful/Pythonic enough", but it is surely short and works without additional modules:

def get_amt(name):
    return lambda x: x['amt'] if x['Name']==name else 0

names = sorted(set(map(lambda x: x['Name'], data)))
result = [{'Name':name,'amt':sum(map(get_amt(name), data))} for name in names]

Proof

Proof is here: http://codepad.org/L1gcTpVK

If you supply data as in the question, the result will be equal to this:

[{'Name': 'A', 'amt': 1000}, {'Name': 'B', 'amt': 200}, {'Name': 'C', 'amt': 900}]

which is exactly as requested :)

share|improve this answer
add comment

Another possible solution, this time using itertools:

lst = [
{'Name': 'A', 'amt':100},
{'Name': 'B', 'amt':200},
{'Name': 'A', 'amt':300},
{'Name': 'C', 'amt':400},
{'Name': 'C', 'amt':500},
{'Name': 'A', 'amt':600}]

import itertools as it
keyfunc = lambda x: x['Name']

groups = it.groupby(sorted(lst, key=keyfunc), keyfunc)
[{'Name':k, 'amt':sum(x['amt'] for x in g)} for k, g in groups]
share|improve this answer
add comment

You can do it like this:

def sum(dict_list):
    result_list = []
    name_dict = {}
    for dict_item in dict_list:
        name = dict_item['Name']
        amt = dict_item['amt']
        if name_dict.has_key(name):
            pos = name_dict[name]
            result_list[pos] = {'Name':name, 'amt': (result_list[pos]['amt']+amt)}
        else:
            result_list.append(dict_item)
            name_dict[name] = len(result_list) - 1
    return result_list
share|improve this answer
add comment

Not the answer you're looking for? Browse other questions tagged or ask your own question.