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I have a few 'list' containing few dictionaries- say 3 dicts. 3 dictionaries as follows:

lstone = [{'dc_test': 1}, {'ac_test':2}, {'con_test':3}]
lsttwo = [{'dc_test': 4}, {'ac_test':5}, {'con_test':6}]

How do i create new lists as follows:

newlistone = ['dc_test',1,4]
newlisttwo = ['ac_test',2,5]
newlistthree = ['con_test',3,6]

My objective is to write a new csv file, so that it shows as follows:

dc_test,1,4
ac_test,2,5
con_test,3,5
share|improve this question
Will the dicts in the original lists always contain exactly one key-value pair? Will the two lists always contain dicts with identical keys? – Wooble Mar 18 '11 at 12:31
2  
Do you really need the resulting lists to be assigned to separate variables? – Vlad H Mar 18 '11 at 12:32
@Wooble: yes, ori dicts is one key-value pair.yes identical, keys too. @Vlad: dont understand, but the orders needs to be maintained in the resulting list. – siva Mar 18 '11 at 12:35

3 Answers

up vote 5 down vote accepted

First convert your list to dictionaries

d = [dict(itertools.chain(*(d.iteritems() for d in a)))
     for a in [lstone, lsttwo]]

Next build the transposed list:

keys = d[0].keys()
transposed = [[e[k] for k in keys] for e in d]

Finally, transpose and use csv.writer to write this to a file:

with open("a.csv", "wb") as f:
    csv.writer(f).writerows(zip(keys, *transposed))
share|improve this answer
What if not all of the keys are present in d[0]? – Apalala Mar 18 '11 at 13:35
Works like a charm. Thanks! Trying to understand step 1 by taking them into parts. Tranposing is the keything in the steps, I guess. – siva Mar 18 '11 at 13:54
@siva: transposing isn't that relevant. I just used it as a convenient way to get the keys in. You could also use data = [[k] + [e[k] for e in d] for k in keys] to get the data in the right orientation right away. (You'd need .writerows(data) further down.) – Sven Marnach Mar 18 '11 at 15:22
up vote 1 down vote

This is how you can create the lists:

def makeLists(*lists):
    for dicts in zip(*lists):
        key = dicts[0].iterkeys().next()
        yield [key] + [d[key] for d in dicts]

newlistone, newlisttwo, newlistthree = makeLists(lstone, lsttwo)

This code assumes that each list contains the same number of dictionaries, and that corresponding dictionaries contain exactly on entry with the same key.

To write it all to a file use this:

with open("test.txt", "w") as file:
    file.write(",".join(newlistone) + "\n")
    # other lines individually

You can also put all lists in one list and loop over them when writing to the file.

share|improve this answer
helpful.. but getting an error :: mx, mn = makeLists(max_val, min_val ValueError: too many values to unpack. My ori list kinda have hundreds of dicts in them. – siva Mar 18 '11 at 12:48
@siva: Then just use myLists = list(makeLists(...)). Also, this is very basic stuff, maybe you should read the tutorial first. – Björn Pollex Mar 18 '11 at 12:50
yes, you are right. im starting from scratch and starting to love python. experimenting bits here and there. still in the learning curve. :) only going through the tutorial on need-basis but get stucks sometimes. – siva Mar 18 '11 at 12:57
up vote 1 down vote

Are you sure the input data can't be represented with 2-tuples instead of dicts?

If the answer is no, then other solutions I've seen so far won't work for all possible cases, like an input item having more than one entry in the dict. This one will:

from collections import defaultdict
lstone = [{'dc_test': 1}, {'ac_test':2}, {'con_test':3}]
lsttwo = [{'dc_test': 4}, {'ac_test':5}, {'con_test':6}]

# merge
merge = defaultdict(list)
for e in lstone + lsttwo:
    for k, v in e.items():
        merge[k].append(v)
# flatten
result = [ [k] + v for k, v in merge.items()] 
print result
# your option as to how to convert to CSV
share|improve this answer
works too!.. what possible cases that other solutions wont work are you referring to? examples? – siva Mar 18 '11 at 14:23
One of the inputs could be [{'dc_test': 1, 'ac_test':2}, {'con_test':3}] – Apalala Mar 18 '11 at 15:06

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