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According to the $.grep() documentation I would think that the code below would print 2. But instead it's printing 0,1,2. See this fiddle. Am I going loco?

var arr = [0, 1, 2];

$.grep( arr, function(n,i) {
    return n > 1;
});

$('body').html( arr.join() );
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Here's the fiddle that works: jsfiddle.net/FZuVX/9 –  ryanve Dec 26 '11 at 16:46

2 Answers 2

up vote 6 down vote accepted

$.grep returns a new array - it doesn't modify your existing one.

You want

arr = $.grep( arr, function(n,i) {
    return n > 1;
});

Check out the $.grep docs for more information

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That's it! Thx. So it works similar to $.map(), not $.each() –  ryanve Dec 26 '11 at 16:39
    
@ryanve - yes - it works similar to $.map - exactly –  Adam Rackis Dec 26 '11 at 16:40

You're missing a key part.

"Description: Finds the elements of an array which satisfy a filter function. The original array is not affected."

var newArray = $.grep( arr, function(n,i) {
    return n > 1;
});

$('body').html( newArray.join() );
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Nice thanks -- I think it was the examples at the bottom that confused me then b/c they make it sound like it's the opposite. Plus I learned PHP first and PHP's array_filter returns the same array so I guess I throught it was the same. –  ryanve Dec 26 '11 at 16:41

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