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I have a list like that:

lst = ['something', 'foo1', 'bar1', 'blabla', 'foo2']

Is it possible to get the index of the first item starting with "foo" (foo1) using regular expressions and lst.index() like:

ind = lst.index("some_regex_for_the_item_starting_with_foo") ?

I know I can create a counter and a for loop and use method startswith(). I am curious if I miss some shorter and more elegant way.

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5 Answers 5

up vote 3 down vote accepted

I think that it's ok and you can use startswith method if it do what you really want(i am not sure that you really need regEx here - however code below can be easily modified to use regEx):

data = ['text', 'foo2', 'foo1', 'sample']
indeces = (i for i,val in enumerate(data) if val.startswith('foo'))

Or with regex:

from re import match
data = ['text', 'foo2', 'foo1', 'sample']
indeces = (i for i,val in enumerate(data) if match('foo', val))
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No, unfortunately there is no key parameter for list.index. Having that a solution could have been

# warning: NOT working code
result = L.index(True, key=lambda x: regexp.match(x) is not None)

Moreover given that I just discovered that lambda apparently is considered in the python community an abomination I'm not sure if more key parameters are going to be added in the future.

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Don't you think key is useful without lambda? With operator.itemgetter for example? I'm also curious who thinks lambda is an abomination. It can be really ugly, sure, but it's an important part of the language I think, especially when you have a built-in function that doesn't do quite what you want. –  senderle Jul 10 '11 at 16:56
    
@senderle: yes key can be useful with other cases but in many common cases using a small anonymous closure is just perfect for key. About why lambda is so hated I just discovered this recently (at EuroPython) where I was asking why in an example function.Partial had been used in a case that should have been a job for lambda and Alex Martelli replied <<The only reasonable phrase which contains both 'lambda' and 'should' is 'lambda should be removed from Python'>>. See for a longer explanation stackoverflow.com/q/3252228/320726 –  6502 Jul 10 '11 at 17:34
    
thanks, that clears things up for me. I think this is a case where (for me), practicality beats purity. I see AM's side of things, though; I guess I wouldn't cry (too hard) if lambda were removed. –  senderle Jul 10 '11 at 17:45

There is no way to do it using the lst.index, however here is an alternative method that you may find more elegant than a for loop:

try:
    ind = (i for i, v in enumerate(lst) if v.startswith("foo")).next()
except StopIteration:
    ind = -1   # or however you want to say that the item wasn't found

As senderle pointed out in a comment, this can be shortened by using the next() built-in function (2.6+) with a default value to shorten this to one line:

ind = next((i for i, v in enumerate(lst) if v.startswith("foo")), -1)
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1  
+1 (from a while ago), but it just occurred to me that you could use the next built-in function with a default value for a one-liner: ind = next((i for i, v in enumerate(lst) if v.startswith("foo")), -1)). –  senderle Jul 10 '11 at 16:46
l = ['something', 'foo1', 'bar1', 'blabla', 'foo2']
l.index(filter(lambda x:x.startswith('foo'),l)[0])
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I'll keep in mind this solution. I just started learning python and didnt know it means the same as "i for i,val in ...". Now I know that. Thank you for your efforts –  rightaway717 Jul 8 '11 at 12:11

It would be kind of cool to have something like this built in. Python doesn't though. There are a few interesting solutions using itertools. (These also made me wish for a itertools.takewhile_false. If it existed, these would be more readable.)

>>> from itertools import takewhile
>>> import re
>>> m = re.compile('foo.*')
>>> print len(tuple(itertools.takewhile(lambda x: not m.match(x), lst)))
1

That was my first idea, but it requires you to create a temporary tuple and take its length. Then it occurred to me that you could just do a simple sum, and avoid the temporary list:

>>> print sum(1 for _ in takewhile(lambda x: not m.match(x), lst))
1

But that's also somewhat cumbersome. I prefer to avoid throw-away variables when possible. Let's try this again.

>>> sum(takewhile(bool, (not m.match(x) for x in lst)))
1

Much better.

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Your solution is quite extraodinary and at the same time not quite readable, however I got what you did. I guess using "not" instead of using a function takewhile_false is more natural though. The same thing is if there was a while_false loop instead of "while smth != smth2" –  rightaway717 Jul 8 '11 at 12:08
    
I've found "dropwhile" in itertools. I guess this is just what you meant by "takewhile_false" –  rightaway717 Jul 9 '11 at 7:40
    
@rightaway717, no, dropwhile discards items until the predicate is true, and then takes the rest, just as takewhile takes items until the predicate is true and discards the rest. In other words, given the same iterable and predicate, takewhile will yield the first part of the list, and dropwhile will yield the second part of the list. –  senderle Jul 9 '11 at 15:26
    
Sorry but this is terrible, you're building a tuple (potentially large) just to compute an index? –  alexis Feb 18 '12 at 23:00
    
@alexis, well, that's why I improved on the first version, as you surely must have seen if you read the whole post. The later versions don't create tuples. I suppose it's possible that sum builds a tuple internally -- in which case I have to take issue with the implementation of sum. –  senderle Feb 19 '12 at 1:20

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