Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have at my disposal huge amount of data, in the form of a list of tuples. Each tuple has a specified format like (a, b, c, d, e). The list of tuples looks like:

tupleList = [('a1', 'b1', 'c1', 'd1', 'e1'),
             ('a2', 'b2', 'c2', 'd2', 'e2'),
             ...
             ('a10000', 'b10000', 'c10000', 'd10000', 'e100000')]

What I want is, to convert each of these tuples to a dictionary, and append the dictionary to a a final list of dictionaries. Can all this be done in a loop? The final list of dictionaries should look like:

finalDictList = [{'key1': 'a1', 'key2': 'b1', 'key3': 'c1', 'key4': 'd1', 'key5': 'e1'},
                 {'key1': 'a2', 'key2': 'b2', 'key3': 'c2', 'key4': 'd2', 'key5': 'e2'},
                 {'key1': 'a3', 'key2': 'b3', 'key3': 'c3', 'key4': 'd3', 'key5': 'e3'},
                 ...
                 {'key1': 'a10000', 'key2': 'b10000', 'key3': 'c10000', 'key4': 'd10000', 'key5': 'e10000'}]

The format of the tuples is fixed. I want to compare afterwords, value of each key of a dictionary with all others. This is why the conversion of tuple to dictionary made sense to me. Please correct me if the design paradigm itself seems wrong. Also, there are >10000 tuples. Declaring that many dictionaries is just not done.

Is there anyway to append dictionary to a list in a loop? Also, if that is possible, can we access each dictionary by it's key values, say, like finalDictList[0]['key1']?

share|improve this question

7 Answers 7

up vote 9 down vote accepted

We're going to mix three important concepts to make this code really small and beautiful. First, a list comprehension, then, the zip method, and finally, the dict method, to build a dictionary out of a list of tuples:

my_list = [('a1', 'b1', 'c1', 'd1', 'e1'), ('a2', 'b2', 'c2', 'd2', 'e2')]
keys = ('key1', 'key2', 'key3', 'key4', 'key5')
final = [dict(zip(keys, elems)) for elems in my_list]

After that, the value of the final variable is:

>>> final
[{'key3': 'c1', 'key2': 'b1', 'key1': 'a1', 'key5': 'e1', 'key4': 'd1'},
{'key3': 'c2', 'key2': 'b2', 'key1': 'a2', 'key5': 'e2', 'key4': 'd2'}]

Also, you can get elements of a certain dictionary using the position of the dictionary in the list and the key you're looking for, i.e.:

>>> final[0]['key1']
'a1'
share|improve this answer
    
Wow. Exactly what I was looking for. Thanks a lot!!! :) –  sneha Jan 20 '12 at 20:37
    
@sneha: glad I helped, if this post solved your problem, you could choose it as accepted (green check on the left) –  juliomalegria Jan 20 '12 at 20:40
    
It did...totally!!! Accepted!!! :) –  sneha Jan 20 '12 at 21:01

Use zip to combine a pre-defined list of key names with each tuple in your input list, then pass the results to dict to make them into dicts. Wrap the whole thing in a list comprehension to process them all in one batch:

keys = ('key1', 'key2', 'key3', 'key4', 'key5')
finalDictList = [dict(zip(keys, values)) for values in tupleList]
share|improve this answer

I'm not sure I see why you need to convert everything to a dictionary, when you've already got a list of tuples.

>>> tupleList = [('a1', 'b1', 'c1', 'd1', 'e1'),
...              ('a2', 'b2', 'c2', 'd2', 'e2'),
...              ('a10000', 'b10000', 'c10000', 'd10000', 'e100000')]
>>> [x[1] for x in tupleList]
['b1', 'b2', 'b10000']

Using Python's list comprehension syntax, you can get a list of all the n-th elements of each tuple.

share|improve this answer
    
I know of this, but the entries in the tuple are related to each other - that is, (a,b,c,d,e) are values that make sense together only. I understand that for comparing this is fine, but i have to work on the complete tuple in case during comparison a match occurs/doesn't occur. I can make this work, but it'll be in a round about way. Thank you! :) –  sneha Jan 20 '12 at 20:29
    
@sneha: Accessing elements of a tuple is almost exactly the same syntax as accessing elements of a dictionary: x[2] vs x["key2"]. If you want, you can define constants like KEY2 = 2, so you can do x[KEY2]. Converting to a list of dictionaries will take up a lot more memory for little benefit. –  Greg Hewgill Jan 20 '12 at 21:19
1  
Hmmm...I guess you have a pretty good point there. Let me reconsider my design. :) –  sneha Jan 20 '12 at 21:41

If the fields are fix you can do this:

fields = ['key1', 'key2', 'key3', 'key4', 'key5']

newList = [dict(zip(fields, vals)) for vals in oldList]
share|improve this answer

If as you say you have a lot of entries, remember that python has namedtuples:

>>> tupleList = [('a1', 'b1', 'c1', 'd1', 'e1'),
...              ('a2', 'b2', 'c2', 'd2', 'e2'),
...              ('a10000', 'b10000', 'c10000', 'd10000', 'e100000')]
>>>
>>> from collections import namedtuple
>>> fv = namedtuple('fivevals', ('key1', 'key2', 'key3', 'key4', 'key5'))
>>> tuplelist = [fv(*item) for item in tupleList]
>>> 
>>> tuplelist[0].key1
'a1'
>>>

Namedtuples can be accesed by key but at the same time they are lightweight and require no more memory than regular tuples.

share|improve this answer
    
Ack! I'm ashamed that I didn't remember that. Good call! –  Kirk Strauser Jan 20 '12 at 20:50
from itertools import izip

keys = ['key1', 'key2', 'key3', 'key4', 'key5']
finalDictList = [dict(izip(names, x)) for x in tupleList]
share|improve this answer
    
Why izip over zip? –  Kirk Strauser Jan 20 '12 at 20:24
    
To avoid building a temporary list in each iteration of course. –  yak Jan 20 '12 at 20:25
    
That seems like you'd be trading a tiny memory allocation for the overhead of a generator. –  Kirk Strauser Jan 20 '12 at 20:46
finalDictList = []
for t in tupleList:
    finalDictList.append({
        'key1': t[0],
        'key2': t[1],
        'key3': t[2],
        'key4': t[3],
        'key5': t[4],
    })

Also, if that is possible, can we access each dictionary by it's key values, say, like finalDictList[0]['key1']?

Absolutely, that is exactly how you would do it.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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