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$("a[rel=example_1],a[rel=example_2],a[rel=example_3],a[rel=example_4],a[rel=example_5],a[rel=example_6],a[rel=example_7],a[rel=example_8],a[rel=example_9],a[rel=example_10]").fancybox({............

Hello, right now I have to manually enter those codes.

Is there an easy way to increment the numbers?

I know I can use something similar to a[rel=example_[1-10]]. What is the correct syntax?

many thanks

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6 Answers 6

up vote 4 down vote accepted

One potential solution would be to use a loop.

var element = 'a[rel=example_';
var elements = [];

for(var i = 1; i <= 10; i++){
    elements.push(element + i.toString() + ']');
}

elements = elements.join(', ');

$(elements).fancybox()

Alternatively, if you wanted to match all elements with a rel containing "example_", you can use an attribute selector like this:

$('a[rel*="example_"]').fancybox()

Finally, you could simply use a class to link all of the elements and select them by referencing the common class.

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thank you for your answer, both two ways seemed dont work for fancybox. neither $('a[rel*="example_"]').fancybox({.........}) or use var method. Is that fancybox problem? –  olo Jul 25 '12 at 4:38
1  
sorry my fault!! it works!!! thanks a lot for your help –  olo Jul 25 '12 at 4:45

You can use attribute starts with selector

a[rel^="example_"]

This will select all a elements that have a rel attribute that begins with "example_". I'd recommend this over loops if you want to select all the elements that match that pattern.

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thanks for that, but doesnt work on Fancybox –  olo Jul 25 '12 at 4:43
    
It works, sorry My bad. thank you very much –  olo Jul 25 '12 at 4:45

If it's ok for you - you could go with

$('a[rel^="example_"]').

and it will match all a that have rel started with example_

Otherwise - use fine-filtering for it:

$('a[rel^="example_"]').filter(function() {
    var match = $(this).prop('rel').match(/^example_(\d+)$/);
    return match.length == 2 && parseInt(match[1]) <= 10;
})

The callback for the .filter() explicitly checks if there is a number 1..10 after underscore

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use a for or while loop. Each time it iterates add one to a counter variable or if you use a for loop it will do that by itself.

heres some pseudocode:

var output

for count 1 to 10:

output .= $("a[rel='example'" + count];

next for
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You could select all the element that start with "example_" using this selector:

$('a[rel^=example_])
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You can generate a string to be used as a query:

var query = [];
for(var i=1;i<=10;i++)
    query.push('a[rel=example_' + i + ']');
$(query.join(',')).fancybox({});
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