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Say you have a dictionary as shown:

d = { 'a': ['s','b'], 'b': ['x1','y1','z1'] }

How could i produce the following output:

s, x1, b, y1, z1

Thanks

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5  
You're going to have to explain in more detail exactly what you want. Which "b" is that in your output, since there are two in your input? –  Greg Hewgill Jan 26 '12 at 0:35
1  
how are you trying to sort them? dict's don't store values aphabetically, they store them according to a hash map –  Joel Cornett Jan 26 '12 at 0:36
4  
What's the logic behind the output? –  bluepnume Jan 26 '12 at 0:37
    
I am guessing that your logic is to iterate through multiple lists simultaneously. In other words: print x[0],y[0],z[0],'\n',x[1],y[1],z[1] ... where x, y and z are lists(in your case the values in your dictionary. If I am right look for iterating over multiple lists in python. You should use map or zip –  Lelouch Lamperouge Jan 26 '12 at 0:56
    
your question is just plain lazy. –  alfa64 Jan 26 '12 at 1:18

10 Answers 10

up vote 5 down vote accepted
from itertools import izip_longest

d = { 'a': ['s','b'], 'b': ['x1','y1','z1'] }

print([i for t in izip_longest(*[d[k] for k in sorted(d)])
                  for i in t if i is not None])

(N.B. izip_longest was renamed to zip_longest in Python 3.)

Explanation:

izip_longest creates a tuple for the first elements, a tuple for the second elements etc. In this case [('s', 'x1'), ('b', 'y1'), (None, 'z1')]. After that it's simply creating a list while filtering out None.

You need izip_longest here instead of just zip otherwise the result will be [('s', 'x1'), ('b', 'y1')].

With intermediate steps:

sorted_lists = [d[k] for k in sorted(d)]
tuples = izip_longest(*sorted_lists)
result = [i for t in tuples for i in t if i is not None]
print(result)
share|improve this answer
    
+1 for a bit more verbose. –  RanRag Jan 26 '12 at 1:41

While Im not stoked about the appending and whatnot, this at least gets your exact result.

keys = sorted(d.keys())
total = max([len(v) for v in d.values()])
output = []
for i in xrange(total):
    for key in keys:
        try: output.append(d[key][i])
        except IndexError: pass

>>> output
['s', 'x1', 'b', 'y1', 'z1']
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+1 only answer with exact output as required by user. –  RanRag Jan 26 '12 at 0:56
    
At least catch KeyError instead of all exceptions. –  Rob Wouters Jan 26 '12 at 1:41
    
@RobWouters - Actually it would have to be both a KeyError and an IndexError. I do a catch all to quickly handle the fact that the lists will be different sizes and the index is going for the max size. –  jdi Jan 26 '12 at 2:06
    
@RobWouters - there ya go –  jdi Jan 26 '12 at 2:13
    
@jdi, actually I don't see how it can throw a KeyError here? So just IndexError should be enough. –  Rob Wouters Jan 26 '12 at 2:26

I think what he wants is first print all the first element of different values in dict & then second and so on until minimum of a list is reached. Then, he just prints the remaining.

d={'a':['s','b'],'b':['x1','y1','z1']}

min = len(d['a']) if (len(d['a']) < len(d['b']) ) else len(d['b'])

for i in range(0,min):
    p = d.keys()
    print d[p[0]][i], d[p[1]][i],

print d['b'][min:][0]
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1  
This only works with dictionaries with two keys. And with both lists this exact size. Not great. –  Rob Wouters Jan 26 '12 at 1:54

maybe zip() http://docs.python.org/library/functions.html#zip can help you (I know it's not exactly you want, but maybe you'll find out how to get correct result:

>>> zip(*d.values())
[('s', 'x1'), ('b', 'y1')]
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Best answer so far, but you won't get an ordered output since dict are not ordered by definition. –  e-satis Jan 26 '12 at 0:55

I can't believe there are so many answers to such a vague question! But then again I'm no better. :-) My first thought was to do this the way that had already been done using izip_longest, but I wasn't a fan of using None as a special value-- what if None was an element of the list, after all?

So instead, and assuming the "standard interpretation", how about:

>>> d = {'a': ['s', 'b'], 'b': ['x1', 'y1', 'z1']}
>>> [x[2] for x in sorted((i,k,v) for k in d for i,v in enumerate(d[k]))]
['s', 'x1', 'b', 'y1', 'z1']

This only requires that the keys be sortable, and if they're not then we're wrong anyway.

(Okay, to be perfectly honest, I first came up with zip(*sorted(chain(*(enumerate(d[k]) for k in sorted(d)))))[1], but I've been using itertools too much lately and that has too many parentheses for my liking.)

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That's a neat solution. +1 –  Rob Wouters Jan 26 '12 at 16:58
result = []
d = { 'a':['s','b'], 'b':['x1','y1','z1'] }

result.append(d['a'][0])
result.append(d['b'][0])
result.append(d['a'][1])
result.append(d['b'][1])
result.append(d['b'][2])
print(result)

That will give you the answer you want. I'm not sure what you were looking for in particular.

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If I'm reading this correctly:

 result = []
 for x in d.values():
     for y in x:
          result.append(y)
 return result

Of course this assumes every value in d is iterable.

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Your question is a little unclear to me but are you trying to achieve this

>>> d = { 'a': ['s','b'], 'b': ['x1','y1','z1'] }
>>> data = []
>>> for value in d.values():
...      for val in value:
...           data.append(val)
...
>>> data
['s', 'b', 'x1', 'y1', 'z1']
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You output doesn't match with what the user wants. See my answer. –  shadyabhi Jan 26 '12 at 1:24
    
Yeah already did it. –  RanRag Jan 26 '12 at 1:38
    
See @Rob answer. I was trying to achieve that using izip_longest. –  RanRag Jan 26 '12 at 1:40
>>> print ",".join([d['a'][0],d['b'][0],d['a'][1],d['b'][1],d['b'][2]])
s,x1,b,y1,z1

Can't help you much more without knowing more about your problem. Of course there are nice ways of outputting

If you're wanting order of keys and values, You could try something such as:

>>> tuples=[tuple([k]+d[k]) for k in d]
>>> tuples.sort()
>>> tuples
[('a', 's', 'b'), ('b', 'x1', 'y1', 'z1')]
>>> tuples_without_keys=[i[1:] for i in tuples]
>>> tuples_without_keys
[('s', 'b'), ('x1', 'y1', 'z1')]
>>> import itertools
>>> ans=itertools.izip_longest(*tuples_without_keys)
>>> ans=list(ans)
>>> ans
[('s', 'x1'), ('b', 'y1'), (None, 'z1')]
>>> [i for k in ans for i in k if i is not None]
['s', 'x1', 'b', 'y1', 'z1']
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Here's an answer just as lazy, vague, and helpful as the OP's question.

Also, this smells like a homework question; if it is, it should be mentioned in the question.

import random
d = { 'a': ['s','b'], 'b': ['x1','y1','z1'] }
output = d['a']+d['b']
while output != ['s','x1','b','y1','z1']:
    random.shuffle(output)
print output

Please clarify your question if you want more helpful answers.

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