Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Currently I'm doing this:

try:
    something = iterator.next()
    # ...
except StopIteration:
    # ...

But I would like an expression that I can place inside a simple if statement. Is there anything built-in which would make this code look less clumsy?

any() returns False if an iterable is empty, but it will potentially iterate over all the items if it's not. I only need it to check the first item.


Someone asks what I'm trying to do. I have written a function which executes an SQL query and yields its results. Sometimes when I call this function I just want to know if the query returned anything and make a decision based on that.

share|improve this question
    
Also a problem with that code is that you can't package it into a function, because it will eat the first element. Good question. –  superjoe30 Jun 24 '10 at 22:18
    
In my case I don't need the element at all, I just want to know there is at least one element. –  Bastien Léonard Jun 24 '10 at 23:07
add comment

6 Answers

up vote 8 down vote accepted

This isn't really cleaner, but it shows a way to package it in a function losslessly:

def has_elements(iter):
  from itertools import tee
  iter, any_check = tee(iter)
  try:
    any_check.next()
    return True, iter
  except StopIteration:
    return False, iter

has_el, iter = has_elements(iter)
if has_el:
  # not empty

This isn't really pythonic, and for particular cases, there are probably better (but less general) solutions, like the next default.

first = next(iter, None)
if first:
  # Do something

This isn't general because None can be a valid element in many iterables.

share|improve this answer
    
This is probably the best way of doing this. However, it would help to know what the OP is trying to do? There's probably a more elegant solution (this IS Python, after all). –  rossipedia Jun 24 '10 at 22:59
    
Thanks, I think I'm going to use next(). –  Bastien Léonard Jun 24 '10 at 23:07
1  
@Bastien, fine, but do so with an appropriate sentinel (see my answer). –  Alex Martelli Jun 24 '10 at 23:14
    
There's a huge memory leak in this solution. The tee in itertools will have to keep every single element from the original iterator in case any_check ever needs to advance. This is worse than just converting the original iterator to a list. –  Rafał Dowgird Mar 3 '11 at 8:54
add comment

any won't go beyond the first element if it's True. In case the iterator yields something false-ish you can write any(True for _ in iterator).

share|improve this answer
    
Mmh nice, I didn't think of that. –  Bastien Léonard Jun 24 '10 at 23:30
    
I don't know why this answer didn't get more upvotes. –  Bastien Léonard Jul 24 '10 at 13:13
1  
Bastien Léonard: Me neither, it is a nice idea =) –  Jochen Ritzel Jul 24 '10 at 23:21
    
This seems to work for me, with a re.finditer. You can test that any stops at first success easily: run any((x > 100 for x in xrange(10000000))) and then run any((x > 10000000 for x in xrange(100000000))) -- the second should take much longer. –  chbrown Apr 18 '12 at 19:53
2  
The should be the accepted answer. –  Paul Draper Apr 22 '13 at 11:50
show 2 more comments

In Python 2.6+, if name sentinel is bound to a value which the iterator can't possibly yield,

if next(iterator, sentinel) is sentinel:
    print('iterator was empty')

If you have no idea of what the iterator might possibly yield, make your own sentinel (e.g. at the top of your module) with

sentinel = object()

Otherwise, you could use, in the sentinel role, any value which you "know" (based on application considerations) that the iterator can't possibly yield.

share|improve this answer
add comment

you can use:

if zip([None], iterator):
    # ...
else:
    # ...

but it's a bit nonexplanatory for the code reader

share|improve this answer
1  
.. (you can use any 1-item iterable instead of [None]) –  mykhal Jun 24 '10 at 22:58
add comment

__length_hint__ estimates the length of list(it) - it's private method, though:

x = iter( (1, 2, 3) )
help(x.__length_hint__)
      1 Help on built-in function __length_hint__:
      2 
      3 __length_hint__(...)
      4     Private method returning an estimate of len(list(it)).
share|improve this answer
2  
not guaranteed for every iterator. >>> def it(): ... yield 1 ... yield 2 ... yield 3 ... >>> i = it() >>> i.__length_hint__ Traceback (most recent call last): File "<stdin>", line 1, in <module> AttributeError: 'generator' object has no attribute 'length_hint' –  superjoe30 Jun 24 '10 at 22:21
2  
It's also probably legal for it to return 0 for an iterator that has more than zero entries, since it's just a hint. –  Glenn Maynard Jun 24 '10 at 22:35
add comment

This is an overkill iterator wrapper that generally allows to check whether there's a next item (via conversion to boolean). Of course pretty inefficient.

class LookaheadIterator ():

    def __init__(self, iterator):
        self.__iterator = iterator
        try:
            self.__next      = next (iterator)
            self.__have_next = True
        except StopIteration:
            self.__have_next = False

    def __iter__(self):
        return self

    def next (self):
        if self.__have_next:
            result = self.__next
            try:
                self.__next      = next (self.__iterator)
                self.__have_next = True
            except StopIteration:
                self.__have_next = False

            return result

        else:
            raise StopIteration

    def __nonzero__(self):
        return self.__have_next

x = LookaheadIterator (iter ([]))
print bool (x)
print list (x)

x = LookaheadIterator (iter ([1, 2, 3]))
print bool (x)
print list (x)

Output:

False
[]
True
[1, 2, 3]
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.