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I had list of lists for example

res = [[None,'A','B'],[19980228, 'd1', 't1'],[19980302, 'd2', 't2'],[19980303, 'd3', 't3']]

Now i need to frame the above result as dictionary of list of tuples like

{'A': [(19980228, 'd1'), (19980302, 'd2'), (19980303, 'd3')], 
 'B': [(19980228, 't1'), (19980302, 't2'), (19980303, 't3')]}

Please let this me know this concept, Thanks in advance.

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3 Answers 3

this should do it:

x, A, B = res[0]
output = {A:[], B:[]}
for a,b,c in res[1:]:
  output[A].append((a, b))
  output[B].append((a, c))
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>>> res = [[None,'A','B'],[19980228, 'd1', 't1'],[19980302, 'd2', 't2'],[19980303, 'd3', 't3']]
>>> {a:[(r[0], r[i]) for r in res[1:]] for i, a in enumerate(res[0]) if a}
{'A': [(19980228, 'd1'), (19980302, 'd2'), (19980303, 'd3')], 'B': [(19980228, 't1'), (19980302, 't2'), (19980303, 't3')]}

Note: as @shuzOMGchen points out, this requires "dictionary comprehensions" which were added in python 2.7 and 3.0, so if you are using an earlier version than you will have to change the code a bit. Here it is without using a dict comprehension(it's pretty ugly, I just tried to copy my logic from above)

>>> res = [[None,'A','B'],[19980228, 'd1', 't1'],[19980302, 'd2', 't2'],[19980303, 'd3', 't3']]
>>> d = {}
>>> for i, a in enumerate(res[0]):
...     if a:
...         d[a] = [(r[0], r[i]) for r in res[1:]]
... 
>>> d
{'A': [(19980228, 'd1'), (19980302, 'd2'), (19980303, 'd3')], 'B': [(19980228, 't1'), (19980302, 't2'), (19980303, 't3')]}
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how does it work?, wait I think I'm getting it .. thats really smart! –  aisbaa Apr 20 '12 at 8:09
1  
Please note that this technique takes advantage of "dictionary comprehensions", a feature that was added in python 2.7 and 3.0, so if you're pre-2.7 this will turn hairier. Dictionary comprehensions are described in python.org/dev/peps/pep-0274 –  shu zOMG chen Apr 20 '12 at 8:49
    
@shuzOMGchen That's a good point, I'm so used to having them that I hadn't even thought about that. I've edited a small warning into my post, thanks for the tip. –  Nolen Royalty Apr 20 '12 at 14:40
>>> res = [[None,'A','B'],[19980228, 'd1', 't1'],[19980302, 'd2', 't2'],[19980303, 'd3', 't3']]
>>> d = dict((x[0],x[1:]) for x in zip(*res))
>>> nums = d.pop(None)
>>> for key in d:
        d[key] = zip(nums,d[key])


>>> d
{'A': [(19980228, 'd1'), (19980302, 'd2'), (19980303, 'd3')], 'B': [(19980228, 't1'), (19980302, 't2'), (19980303, 't3')]}
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