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Let's say I have created a dictionary and stored the following keys and values:

bod = { "Test1" : 12345, "Test2" : 1323242, ... }

Now if I create a new list and have the following values

bof = ["Test3", "Test1", "Test4", "Test2"]

Is it possible to use the dict variable as a call to match it with the list and assign the values of the matched keys inside a new variable using the following code (pseudo)

for l in bof:
    newbof = line.split()
      try:
        newvalues = bod[values]
        print newvalues
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1  
can you post the output you want, because at the moment it's hard to understand. –  root Oct 17 '12 at 6:07
    
What is line? Why do you have a try with no except/finally? –  BrenBarn Oct 17 '12 at 6:08
    
What's the problem with the code? And what is that line variable? –  Rohit Jain Oct 17 '12 at 6:08

3 Answers 3

>>> bod = { "Test1" : 12345, "Test2" : 1323242 }
>>> bof = ["Test3", "Test1", "Test4", "Test2"]
>>> [bod.get(x) for x in bof]
[None, 12345, None, 1323242]

other variations

>>> [bod.get(x, 0) for x in bof]
[0, 12345, 0, 1323242]
>>> [bod[x] for x in bof if x in bod]
[12345, 1323242]
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+1, you understood the question :) –  nneonneo Oct 17 '12 at 6:10
    
i think he does'nt need the None values –  Never Back Down Oct 17 '12 at 6:13
    
.get() will return None when there is no corresponding key in the dict. You can ask it to return any other default value, bod.get(x,0) for example. This avoid a KeyError exception (which is what I suspect the try was for in the OP's question). –  Burhan Khalid Oct 17 '12 at 6:27
    
@InternalServerError, I think the question doesn't specify either way –  gnibbler Oct 17 '12 at 6:44
    
@gnibbler "assign the values of the matched keys inside a new variable", so he wants only matched keys inside the new variable –  Never Back Down Oct 17 '12 at 7:26

Can't fully understand your question, to my understanding,

newvalues=[]
for i in bof:
  if bod.get(i):
    newvalues.append(bod[i])
print newvalues

optimized,

newvalues=[bod[i] for i in bof if bod.get(i)]
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if i in bod is more optimised than if bod.get(i). Also works properly if bod[i] == 0 –  gnibbler Oct 17 '12 at 9:40

as far as i understand:

In [325]: bod = { "Test1" : 12345, "Test2" : 1323242}

In [326]: bof = ["Test3", "Test1", "Test4", "Test2"]

In [327]: [bod[i ]for i in bof if i in bod]
Out[327]: [12345, 1323242]

or if you want to keep the values not in bod:

In [332]: [bod[x] if x in bod else x for x in bof]
Out[332]: ['Test3', 12345, 'Test4', 1323242]

or

[bod.get(x,x) for x in bof]
Out[333]: ['Test3', 12345, 'Test4', 1323242]

Also note that while using get is somwhat more concise, using in is faster:

In [337]: % timeit [bod[x] if x in bod else x for x in bof]
1000000 loops, best of 3: 1.39 us per loop

In [338]: % timeit [bod.get(x,x) for x in bof]
100000 loops, best of 3: 1.88 us per loop
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