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I have a list of dicts as follows:

lst = [{'unitname':'unit1', 'test1': 2, 'test2': 9}, {'unitname':'unit2', 'test1': 24, 'test2': 35}]

How do I contruct a single dict as follows:

dictA = { ('unit1','test1'): 2, ('unit1','test2'): 9, ('unit2','test1'):24, ('unit2','test2' : 35 }

`

I have all the unit names & test names in a list:

unitnames = ['unit1','unit2']
testnames = ['test1','test2']

I tried but missed out some tests for some units.

dictA = {}
for unit in unitnames:
    for dict in lst:
        for k,v in dict.items():
            dictA[unit,k] = v

Advices? Thanks.

share|improve this question
up vote 1 down vote accepted
dictA = {}
for d in lst:
    unit = d['unitname']
    for test in testnames:
        if test in d:
            dictA[unit,test] = d[test]

I'm assuming (1) that all the dicts in your list have a unitname key, (2) that its value is always one of the units you're interested in, (3) that some dicts in the list may have entries for tests you aren't interested in, and (4) that some tests you're interested in may be absent from some dicts in the list. Those assumptions are a bit arbitrary; if any happen to be wrong it shouldn't be hard to adjust the code for them.

share|improve this answer
    
it works. yes, your assumptions tallies with my case. – siva Mar 22 '11 at 10:19
dict(((d['unitname'], k), t)
     for d in lst
     for (k, t) in d.iteritems()
     if k != 'unitname')
share|improve this answer
    
wow.. impressive! though takes time to digest the one-liner.. :) thanks. helpful! – siva Mar 22 '11 at 10:09
    
This is impressive, and I'm sure would be a more performance-optimal solution than mine - it might be easier to understand if you formatted it differently (as if it's a normal for loop but with the content on top) I'll put a suggestion of this in my solution. – theheadofabroom Mar 22 '11 at 12:33

You could try:

dictA = {}
for l in lst:
  name = l.pop('unitname')
  for test in l:
      dictA[name, test] = l[test]

Posted at the same time and with the same assumptions as Gareth's solution - however this will not give you the extra item of (name, 'unitname') = name


Marcelo Cantos's solution is quite elegant, but would be easier for mere mortals like us to parse like this:

dict(     ((d['unitname'], k), t)
     for d in lst
       for (k, t) in d.iteritems()
         if k != 'unitname'
    )
share|improve this answer
    
thanks. it works. didn't know 'pop' works for dictionaries in list. helpful! – siva Mar 22 '11 at 10:17
    
@siva Gah! I didn't see that you had the test and unit names in a list when I posted, ergo my solution doesn't use them. :P IMHO duplicating this data seems pointless. As a warning, popping an item from a dict will mutate it in all scopes containing a reference to that dictionary. if you don't want this you can do a shallow-copy of the dict by putting l = l.copy() on a line before name = l.pop('unitname') – theheadofabroom Mar 22 '11 at 12:31
    
In the list-comprehension form, you can't avoid the parentheses around the top-most expression. As-is, the code results in SyntaxError: Generator expression must be parenthesized if not sole argument. – Marcelo Cantos Mar 23 '11 at 1:26
    
ah sorry, I thought it only needed to be a tuple.The point about indentation still stands however. – theheadofabroom Mar 23 '11 at 7:23

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