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I have a python program which prints out some lists which are created by other python programs in the format of: [0, [], 0, 1, [], 1]

And I would like to change the 0's and 1's to letters, i.e. in the above input, I want to have [x, [], x, y, [], y] as output

So far my code to do this looks like:

for x in search.Search(s, s.run()):
    if x == 0:
        return x
    elif x == 1
        return y

I know I'm missing something but I'm not too sure what :(

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6 Answers 6

up vote 4 down vote accepted

Use a list comprehension:

subst = {0: 'x', 1: 'y'}
return [subst.get(v, v) if v else v for v in search.Search(s, s.run()]

By using return you exit the loop early.

The if v else v helps avoid attempting to use the empty lists as keys (which would raise a TypeError; lists are not hashable and thus not allowed as keys). The alternative strategy would be:

from collections import Hashable

subst = {0: 'x', 1: 'y'}
hashable = lambda v: isinstance(v, Hashable)
return [subst.get(v, v) if hashable(v) else v for v in search.Search(s, s.run()]

The subst map is a little easier to extend; but using a function to map the value (as used in Jacob's answer) could be more readable to you.

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Nop, this will raise Error.TypeError: unhashable type: 'list' –  Ashwini Chaudhary Dec 21 '12 at 12:11
    
Because the list contains other lists => [0, [], 0, 1, [], 1]. You could use [map.get(v, v) if v else v ... if the sublists are always empty, but that would look a little strange IMHO. –  sloth Dec 21 '12 at 12:14
    
@MartijnPieters see this ideone.com/MI50pk. –  Ashwini Chaudhary Dec 21 '12 at 12:17
    
@DominicKexel: Indeed! I think in this case the if works well enough, otherwise a isinstance is needed. –  Martijn Pieters Dec 21 '12 at 12:17
    
@MartijnPieters your code seems rather complex for what is a simple question :s –  Jakob Bowyer Dec 21 '12 at 12:25

Return breaks execution, you probably want something like this

def switch_letter(x):
    if x == 0:
        return 'x'
    if x == 1:
        return 'y'
    return x

my_letters = [switch_letter(x) for x in search.Search(s, s.run())] 
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This answer is similar to Martjin's answer. May be you can try this. But it works for python>2.4

>>> a=[0, [], 0, 1, [], 1]
>>> s={0:'x',1:'y'}
>>> [x if isinstance(x,list) else s.get(x,'') for x in a]
['x', [], 'x', 'y', [], 'y']
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    python 3.2
     a= [0, [], 0, 1, [], 1]
     b={0:"x",1:"y"}
     result=[b[i] if isinstance(i,int) else [] for i in a]


  2. [i  if isinstance(i,list) else b[i] for i in a ]
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I think the built-in function map is less verbose and simpler for a non-python programmer to understand than a list compression.

def sust(item):
    if item == 0:
        return "x"
    if item == 1:
        return "y"
    return item
output = map(sust, search.Search(s, s.run()))
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Generators allow if-else statement inside. In this case your code will looks next.

['y' if i else 'x' for i in search.Search(s, s.run()]
share|improve this answer
    
did you even checked your output? he wants [x, [], x, y, [], y] and your code returns ['x', 'x', 'x', 'y', 'x', 'y']. –  Ashwini Chaudhary Dec 21 '12 at 12:20
    
This would substitute x for the empty lists as well. –  Martijn Pieters Dec 21 '12 at 12:23

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