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Given dictionaries, d1 and d2, create a new dictionary with the following property: for each entry (a, b) in d1, if there is an entry (b, c) in d2, then the entry (a, c) should be added to the new dictionary. How to think of the solution?

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If this is a homework problem, please tag it as such. –  Paul McMillan Oct 29 '09 at 4:28
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What have you tried, so far ? What part seemed problematic? –  mjv Oct 29 '09 at 4:30
    
Please don't post homework questions. Only post your attempts and ask about specific issues you don't understand. –  hasenj Oct 29 '09 at 7:52
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3 Answers

def transitive_dict_join(d1, d2):
  result = dict()
  for a, b in d1.iteritems():
    if b in d2:
      result[a] = d2[b]
  return result

You can express this more concisely, of course, but I think that, for a beginner, spelling things out is clearer and more instructive.

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I agree with Alex, on the need of spelling things out as a novice, and to move to more concise/abstract/dangerous constructs later on.

For the record I'm placing here a list comprehension version as Paul's doesn't seem to work.

>>> d1 = {'a':'alpha', 'b':'bravo', 'c':'charlie', 'd':'delta'}
>>> d2 = {'alpha':'male', 'delta':'faucet', 'echo':'in the valley'}
>>> d3 = dict([(x, d2[d1[x]]) for x in d1**.keys() **if d2.has_key(d1[x])]) #.keys() is optional, cf notes
>>> d3
{'a': 'male', 'd': 'faucet'}

In a nutshell, the line with "d3 =" says the following:

  d3 is a new dict object made from
      all the pairs
          made of x, the key of d1  and d2[d1[x]] 
               (above are respectively the "a"s and the "c"s in the problem)
          where x is taken from all the keys of d1 (the "a"s in the problem)
          if d2 has indeed a key equal to d1[x]
                (above condition avoids the key errors when getting d2[d1[x]])
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Yeah, I didn't test it. Yours does do the trick. –  Paul McMillan Oct 29 '09 at 5:02
    
Is there a reason that makes you use .keys()? Is it different from: d3 = dict([(x, d2[d1[x]]) for x in d1 if d1[x] in d2])? –  Andrea Ambu Oct 29 '09 at 10:42
    
@Andrea No particular reason but a mild attempt at making the expression more explicit for a novice audience (cf Alex' wise take on this). But, you are right x for x in d1 is the idiomatic way of enumerating the keys of d1. –  mjv Oct 29 '09 at 12:34
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#!/usr/local/bin/python3.1
b = {   'aaa' : 'aaa@gmail.com',
    	'bbb' : 'bbb@gmail.com',
    	'ccc' : 'ccc@gmail.com'
    }
a = {'a':'aaa', 'b':'bbb', 'c':'ccc'}
c = {}    

for x in a.keys():
    if a[x] in b:
        c[x] = b[a[x]]

print(c)

OutPut: {'a': 'aaa@gmail.com', 'c': 'ccc@gmail.com', 'b': 'bbb@gmail.com'}

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