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.

I have a basic problem in python. I have this list:

['[A]',a,b,c,x,y,'[B]',d,f,'[C]',g,h,e]

I would like to transform it into a dictionary:

{A:[a,b,c,x,y],B:[d,f],C:[g,h,e]} 

Does anyone have any elegant idea? Thank you

share|improve this question
1  
are the chunks always the same size? –  WeaselFox Mar 11 at 8:10
    
Are they all supposed to be strings? –  Aesthete Mar 11 at 8:11
    
What rule is used to determine the key and values - there's several options here: 1) They're equal sized, 2) The key is in a list, 3) The key is anything that's an uppercase letter (if indeed they're strings) –  Jon Clements Mar 11 at 8:13
    
no they are not always the same size @WeaselFox –  user3328690 Mar 11 at 8:40
    
the rule to determine the key is that it's a string as '[someString]' –  user3328690 Mar 11 at 9:07

4 Answers 4

up vote 4 down vote accepted

If you're using the fact the key is in a list, then you can group by list or not, pair up the results and feed them to a dict, eg:

from itertools import groupby, izip

data = [['A'],'a','b','c',['B'],'d','e','f',['C'],'g','h','e']
grouped = (next(g)[0] if k else list(g) for k, g in groupby(data, lambda L: isinstance(L, list)))
result = dict(izip(*[iter(grouped)] * 2))
#{'A': ['a', 'b', 'c'], 'C': ['g', 'h', 'e'], 'B': ['d', 'e', 'f']}

Updated based on comment

the ... are strings :['[A]','a','b','c','x','y','[B]','d','f','[C]','g','h','e'] and the rule to determine the key is that it's a string as '[someString]'

Change the grouping to utilise a regular expression (adjust as needed), eg:

import re

grouped = (k.group(1) if k else list(g) for k, g in groupby(data, re.compile(r'\[(.*?)\]$').match))
share|improve this answer
    
thanks for the answer the matter is my keys are not list they are strings : ["[A]",...,"[X]",...,"[Y]",...] –  user3328690 Mar 11 at 9:02
    
@user3328690 okay... what other information is missing then... the ...'s - what are they? Are they objects or strings? Might be simpler if you could provide a real line of code/example data... –  Jon Clements Mar 11 at 9:06
    
the ... are strings :['[A]','a','b','c','x','y','[B]','d','f','[C]','g','h','e'] and the rule to determine the key is that it's a string as '[someString]' –  user3328690 Mar 11 at 9:10
    
@user3328690 I believe that radically changes the question. –  thefourtheye Mar 11 at 9:14
    
thanks @JonClements that was exactly what I needed –  user3328690 Mar 11 at 9:42

Assuming the chunks are always the same size, you could write a dictionary comprehension like this (input list is l):

{l[i][0]: l[i+1:i+4] for i in range(0, len(l), 4)}
share|improve this answer

If the chunk size is dynamic, I would use some assumptions about the types of the config variables in combination with type-checking (which is generally not a very good idea in python, but in this case I think it helps readability):

from collections import defaultdict

a = [['A'],'a','b','c',['B'],'d','e','f',['C'],'g','h','e']

grouper = None
config = defaultdict(list)
for x in a:
    if isinstance(x, (list, tuple)):
        # We encountered a list or tuple, so this is a new section
        grouper = x[0]
    else:
        config[grouper].append(x)

print config

Result:

defaultdict(<type 'list'>, {'A': ['a', 'b', 'c'], 'B': ['d', 'e', 'f'], 'C': ['g', 'h', 'e']})
share|improve this answer

I know its stupid...
I know.
But it works :)

def convert(l):
    keys = [i for i in l if isinstance(i, list)]
    keys_index = [l.index(i) for i in keys]
    keys_index.append(None)
    result = {}
    for i in range(0, len(keys_index)-1):
        result[l[keys_index[i]][0]] = [j for j in l[keys_index[i]+1:keys_index[i+1]]]
    return result
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.