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I have a dict of this form...

d={'s1':{'a':[1,2,3],'b':[4,5,6]},'s2':{'d':[77,88,99],'e':[666,333,444]}}

so i want to print in this format

s1
a, 1
b,4
s1

s1
a,2
b,5
s1

s1
a,3
b,6
s1

s2
d,77
e,666
s2

s2
d,88
e,333
s2

s2
d,99
e,444
s2

i tried in this method

for k,v in d.items():
    print k
    for key,val in v.items():
        print key,val[0] # But this v[0] should change and key also should changthat i am not getting for same loop
    print k

so i have to print main key for all values, where values is one more dict,in that dict each time i should print key for each list item can anyone help me thanks in advance

share|improve this question
1  
Is this data structure correct? –  jdi May 10 '12 at 5:57
1  
Does the order of the output matter? –  Mark Byers May 10 '12 at 6:02
4  
This is one of those questions where if the OP hasn't posted an effort, its just too much work to do it for them and the purpose hasn't been stated so we don't care enough to try. Nutshell: Too obscure, and no effort posted. –  jdi May 10 '12 at 6:04
1  
I guess if you want this particular format then you should try some other data-structure. –  Ashwini Chaudhary May 10 '12 at 6:06
2  
@AshwiniChaudhary: I concur. The amount of effort required to simply reformat this structure suggests that it should be re-examined in the first place. What is it being used for? Is this kind of formatting a comment operation? –  jdi May 10 '12 at 6:08

2 Answers 2

up vote 0 down vote accepted

Here's one way:

>>> d={'s1':{'a':[1,2,3],'b':[4,5,6]},'s2':{'d':[77,88,99],'e':[666,333,444]}}
>>> for k in sorted(d.keys()):
...   v = d[k]
...   for i in xrange(len(v.values()[0])):
...     print k
...     for k2 in sorted(v.keys()):
...       v2 = v[k2]
...       print "%s,%d" % (k2, v2[i])
...     print "%s\n" % k
... 

When I ran this it printed:

s1
a,1
b,4
s1

s1
a,2
b,5
s1

s1
a,3
b,6
s1

s2
d,77
e,666
s2

s2
d,88
e,333
s2

s2
d,99
e,444
s2
share|improve this answer
    
Thats probably the best you can get, since you have to assume the length of all the lists will be equal and take the first length. –  jdi May 10 '12 at 6:14
    
@srgerg thanks ur code is working fine, can u explain what ur code is doing with comments....... thanks for the help –  user1182090 May 10 '12 at 6:49
>>> from itertools import product, starmap
>>> d={'s1':{'a':[1,2,3],'b':[4,5,6]},'s2':{'d':[77,88,99],'e':[666,333,444]}}
>>> for k,v in sorted(d.items()): # use d.iteritems for py2
        for x,y in zip(*starmap(product,sorted(v.items()))):
            print k
            print '{0},{1}'.format(*x)
            print '{0},{1}'.format(*y)
            print k
            print


s1
a,1
b,4
s1

s1
a,2
b,5
s1

s1
a,3
b,6
s1

s2
d,77
e,666
s2

s2
d,88
e,333
s2

s2
d,99
e,444
s2

Explanation

It gets the value pairs with the key of each list in the dictionary so

{'a':[1,2,3],'b':[4,5,6]}

is changed into

[(('a', 1), ('b', 4)), (('a', 2), ('b', 5)), (('a', 3), ('b', 6))]

Here is how that is done:

The first line goes through each key and value in d. These have to be sorted so i can iterate through in ascending order since dictionaries do not have an order.

The value for the key is a dictionary like the one below, it is sorted in tuples of key,value pairs.

d = {'a':[1,2,3],'b':[4,5,6]}
>>> sorted(d.items())
[('a', [1, 2, 3]), ('b', [4, 5, 6])]

Then product is used to get the key paired with every value.

>>> [product(*x) for x in sorted(d.items())]
# iterates through [('a', 1), ('a', 2), ('a', 3)], [('b', 4), ('b', 5), ('b', 6)]

This can be written more simply using starmap, which was built like map although the arguments for the function(in this case product) come in tuples. See doc

>>> starmap(product,sorted(d.items()))
# iterates through [('a', 1), ('a', 2), ('a', 3)], [('b', 4), ('b', 5), ('b', 6)]

Then the lists are zippped together.

>>> zip(*starmap(product,sorted(d.items())))
[(('a', 1), ('b', 4)), (('a', 2), ('b', 5)), (('a', 3), ('b', 6))]
share|improve this answer
    
thanks ur code is also working can u expalin what is product,starmap ..... –  user1182090 May 10 '12 at 6:50
    
@user1182090 alright i will add an explanation to this –  jamylak May 10 '12 at 6:51

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