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I have a list of integers. I want to know whether the number 13 appears in it and, if so, where. Do I have to search the list twice, as in the code below?

if 13 in intList:
   i = intList.index(13)

In the case of dictionaries, there's a get function which will ascertain membership and perform look-up with the same search. Is there something similar for lists?

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5 Answers 5

up vote 12 down vote accepted

You answered it yourself, with the index() method. That will throw an exception if the index is not found, so just catch that:

def getIndexOrMinusOne(a, x):
  try:
    return a.index(x)
  except ValueError:
    return -1
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Never use an empty except clause. You should do except IndexError. –  Bluebird75 Mar 16 '09 at 13:10
    
that wouldn't work. [].index() throws a ValueError –  IfLoop Mar 16 '09 at 13:11
    
You're probably abusing lists if you need to do things this way; this looks like a code smell. –  John Feminella Mar 16 '09 at 13:16
    
Uh? This works, I tested it ... The except is not empty, it contains the return? –  unwind Mar 16 '09 at 13:18
    
He means you should not do a "global" except but rather specify what you are catching, ValueError, etc. –  Paolo Bergantino Mar 16 '09 at 13:20

It looks like you'll just have to catch the exception...

try:
    i = intList.index(13)
except ValueError:
    i = some_default_value
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No, there isn't a direct match for what you asked for. There was a discussion a while back on the Python mailing list about this, and people reached the conclusion that it was probably a code smell if you needed this. Consider using a dict or set instead if you need to test membership that way.

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I think you didn't read carefully the question. –  vartec Mar 16 '09 at 13:15
    
Ah, whoops; you're right. Fixed! –  John Feminella Mar 16 '09 at 13:20
    
This just condenses the syntax of the original code sample. The performance problem is unaddressed. Python still tests if item in list first, then searches for the index of item in the list. –  David Berger Mar 16 '09 at 15:36
    
@David: You're right. I should probably just delete the code and focus on the second paragraph, which was my real point. The other solutions all seem to trade the list check for an expensive exception-throw/catching situation. –  John Feminella Mar 16 '09 at 15:39

You can catch the ValueError exception, or you can do:

i = intList.index(13) if 13 in intList else -1

(Python 2.5+)

BTW. if you're going to do a big batch of similar operations, you might consider building inverse dictionary value -> index.

intList = [13,1,2,3,13,5,13]
indexDict = defaultdict(list)
for value, index in zip(intList, range(len(intList))):
   indexDict[value].append(index)

indexDict[13]
[0, 4, 6]
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Just put what you got in a function and use it:)

You can either use if i in list: return list.index(i) or the try/except, depending on your preferences.

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