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Is there really no method that determines the number of elements that satisfy a Predicate in an Iterable? Was I right to do this:

return Lists.newArrayList(Iterables.filter(iterable, predicate)).size()

If so, what is the reason that there is no method

Iterable.frequency(Iterable<T>, Predicate<T>)

Cheers

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3 Answers 3

up vote 15 down vote accepted

This may be easier:

return Iterables.size(Iterables.filter(iterable, predicate));

It avoids the allocation of all that array memory.

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That's nicer. Internally it creates a counter and iterates through the filtered elements once. –  kungfoo Dec 8 '10 at 13:47
1  
Yes, it's better - but beware, if the Iterable refers to a somewhat dynamic "collection" (like a database table), you get an unreliable value in general. The "size" may be different each time you call filter. It's just a snapshot. –  Andreas_D Dec 8 '10 at 14:49
    
Sure, but how can any other solution avoid that? In general, if the collection is changing, the best you can hope for is a value that was correct and some point in time between the beginning and end of your call. In some cases, you don't even get that - imagine a list which is concurrently modified, going through the following states: A,B,C -> B,C -> B,C,D The list never has size 4, but you might count four elements during iteration since you can see both A and D, if the concurrent modification occurs at the right moment. –  BeeOnRope Dec 12 '13 at 22:46

This filter method does not create a collection. It creates a new Iterable with a new iterator and the filtering is done on demand, like when you actually iterate over the Iterable.

So yes, the guava framework could have a frequency(Iterable, Predicate) method, but this method would have to create the iterator internally just to get the number of iteration steps. And throw it away afterwards. And if your iterator works on dynamic collections (like database tables), the frequency "size" and the filter "size" may even be different.

If you need both (iterator and size), take the iterable, feed it in a suitable collection (freeze) and use the collections size() method. This guarantees a true size value for the (frozen) collection based on the filtered Iterable.

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I am not terribly sure why this got down-voted... –  Adam Paynter Dec 8 '10 at 14:05
    
I think it was voted down, because that's what I did in the initial code, froze the Collection that results from applying the filter right now and the used the size() method on that one. The original question resulted from the fact that there is a method Iterables.frequency(Iterable<T>, Object o) which counts elements that are equals() to o. –  kungfoo Dec 8 '10 at 15:47

When the iterable is a collection, you could say

return Collections2.filter(collection, predicate).size();

There hasn't been much demand for an Iterable.frequency(iterable, predicate) method.

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