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Stupid question ahead: I want an idiomatic way to find the first element in a list that matches a predicate.

The current code is quite ugly:

[x for x in seq if predicate(x)][0]

I've thought about changing it to:

from itertools import dropwhile
dropwhile(lambda x: not predicate(x), seq).next()

But there must be something more elegant... And it would be nice if it returns a None value rather than raise an exception if no match is found.

I know I could just define a function like:

def get_first(predicate, seq):
    for i in seq:
        if predicate(i): return i
    return None

But it is quite tasteless to start filling the code with utility functions like this (and people will probably not notice that they are already there, so they tend to be repeated over time) if there are built ins that already provide the same.

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possible duplicate of python sequence find function –  Piotr Dobrogost Oct 2 '13 at 20:31
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4 Answers

up vote 51 down vote accepted

next(x for x in seq if predicate(x))

It raises StopIteration if there is none.

next(ifilter(predicate, seq), None)

returns None if there is no such element.

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3  
Or you can supply a second "default" argument to next that is used instead of raising the exception. –  Karl Knechtel Dec 16 '11 at 12:50
3  
years programming in Python and I wasn't aware of next builtin ^_^ –  fortran Dec 16 '11 at 12:51
1  
@fortran: next() is available since Python 2.6 You could read What's New page to quickly familiarize yourself with new features. –  J.F. Sebastian Dec 16 '11 at 13:02
    
I am a python newbie and read the docs and the ifilter uses the "yield" method. I assume this means that the predicate is lazily evaluated as we go. i.e, we dont run the predicate through the entire list because I have a predicate function that is a bit expensive and I want to only iterate till the point where we find an item –  Calm Storm Nov 23 '12 at 13:43
1  
these solutions are fancy, but I prefer the simple utility function in the question. unfortunately python lambda syntax is a bit ugly –  Sam Watkins Jan 18 '13 at 5:56
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You could use a generator expression with a default value and then next it:

next((x for x in seq if predicate(x)), None)

Although for this one-liner you need to be using Python >= 2.6.

This rather popular article further discusses this issue: Cleanest Python find-in-list function?.

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2  
Our three answers are nearly identical and posted simultaneously... yet, you were the first one to mention the default argument! +1 –  mac Dec 16 '11 at 12:53
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I don't think there's anything wrong with either solutions you proposed in your question.

In my own code, I would implement it like this though:

(x for x in seq if predicate(x)).next()

The syntax with () creates a generator, which is more efficient than generating all the list at once with [].

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And not only that - with [] you might run into problems if the iterator never ends or its elements are hard to create, the later it gets... –  glglgl Dec 16 '11 at 12:54
3  
'generator' object has no attribute 'next' on Python 3. –  J.F. Sebastian Dec 16 '11 at 12:57
    
@glglgl - As for the first point (never ends) I doubt it, as the argument is a finite sequence [more precisely a list according to the OP' question]. As for the second: again, since the argument supplied is a sequence, the objects should have already been created and stored by the time this function is called.... or am I missing something? –  mac Dec 16 '11 at 12:58
    
@J.F.Sebastian - Thank you, I wasn't aware of that! :) Out of curiosity, what's the design principle behind this choice? –  mac Dec 16 '11 at 12:58
    
@mac - For consistency with the double underscore of other special methods. See python.org/dev/peps/pep-3114 –  Chewie Dec 16 '11 at 13:13
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J.F. Sebastian's answer is most elegant but requires python 2.6 as fortran pointed out.

For Python version < 2.6, here's the best I can come up with:

from itertools import repeat,ifilter,chain
chain(ifilter(predicate,seq),repeat(None)).next()

Alternatively if you needed a list later (list handles the StopIteration), or you needed more than just the first but still not all, you can do it with islice:

from itertools import islice,ifilter
list(islice(ifilter(predicate,seq),1))

UPDATE: Although I am personally using a predefined function called first() that catches a StopIteration and returns None, Here's a possible improvement over the above example: avoid using filter / ifilter:

from itertools import islice,chain
chain((x if predicate(x) else None for x in seq),repeat(None)).next()
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3  
Yikes! if it comes down to that, I would just do the simple "for" loop with an "if" inside it -- much easier to read –  Nick Perkins Aug 29 '12 at 14:31
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