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Recently I had to find which list something was in. I used:

def findPoint(haystack, needle): # haystack = [[1,2,3], [4,5]...,[6,7,8,9]]
    for x in range(len(haystack)):
        if needle in haystack[x]:
            return x
    raise Exception("needle: " + str(needle) + " not in haystack")

There is a haystack.index(needle) method. The question is: "Is there a better way to do this?"

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I was using the index in another function like this. if index1 != index2: haystack[index1].extend(haystack.pop(index2)) –  mbowden Dec 18 '12 at 13:28

2 Answers 2

up vote 6 down vote accepted

Yes, no need for range, for starters

for hay in haystack:
  if needle in hay:
    return hay

And if you really really need the index, use enumerate

for x, hay in enumerate(haystack):
  if needle in hay:
    return x
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You could do something like this with a 1-liner:

def find_point(haystack,needle)
    return next(elem for elem in haystack if needle in elem)

I think should work (but it returns the haystack element). This raises a StopIteration if the needle isn't in any of the haystack elements.

It doesn't sound like you actually need the index, but if you do, use enumerate (as proposed by the excellent answer by Dima Rudnik):

def find_point(haystack,needle):
    return next(idx for idx,elem in enumerate(haystack) if needle in elem)
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