53

Why can't I get this to work??

$("a").each(function() {
    if ($(this[href$="?"]).length()) {
        alert("Contains questionmark");
    }
});

Ps.: This is just at simplifyed example, to make it easier for you to get an overview.

1
  • $("a").each(function() { console.debug($(this[href$="?"]);if ($(this[href$="?"]).length()) { alert("Contains questionmark"); } });
    – MLS
    Commented Jun 16, 2011 at 15:47

6 Answers 6

115

You could just outright select the elements of interest.

$('a[href*="?"]').each(function() {
    alert('Contains question mark');
});

http://jsfiddle.net/mattball/TzUN3/

Note that you were using the attribute-ends-with selector, the above code uses the attribute-contains selector, which is what it sounds like you're actually aiming for.

5
  • @Matt - Note that quotes around the string to match are required in the current version of jQuery.
    – Ender
    Commented Jun 16, 2011 at 15:59
  • 1
    @Ender according to the API docs, you are right. In practice the quotes are not always necessary, though as you said, they are necessary here.
    – Matt Ball
    Commented Jun 16, 2011 at 16:05
  • @Ender basically the regexp that jQuery uses to parse attribute selectors allows for either quotes or no quotes, but I think the no-quotes is problematic here because ? can have special meaning in a regexp. Check out jsfiddle.net/mattball/GYDQc
    – Matt Ball
    Commented Jun 16, 2011 at 16:09
  • Very cool. I guess they're just playing it safe by having the docs say that quotes are required. Amazing what you can learn by reading source code :)
    – Ender
    Commented Jun 16, 2011 at 16:12
  • This answer is pure gold, especially the j query article. Commented Nov 21, 2019 at 13:34
23
$("a").each(function() {
    if (this.href.indexOf('?') != -1) {
        alert("Contains questionmark");
    }
});
4
  • 1
    It'd be even simpler with just this.href instead of the needless resort to jQuery. It's also not really correct, as the original question seemed to want to find a "?" at the end of the "href" value (which would be an understandable thing to do).
    – Pointy
    Commented Jun 16, 2011 at 15:53
  • 1
    @Pointy I don't think the OP realized he's using the attribute-ends-with selector.
    – Matt Ball
    Commented Jun 16, 2011 at 15:58
  • 1
    @Matt Ball well I understand why you might say that, but looking for a "?" at the end of an "href" might be a useful thing to do. You may be correct, of course; it's also useful to look for a "?" anywhere in an "href". The question is not terribly clear.
    – Pointy
    Commented Jun 16, 2011 at 15:59
  • Worked perfectly for me this :)
    – mjcoder
    Commented Jun 1, 2018 at 13:59
4

use this

$("a").each(function () {
    var href=$(this).prop('href');
    if (href.indexOf('?') > -1) {
        alert("Contains questionmark");
    }
});
3

It doesn't work because it's syntactically nonsensical. You simply can't do that in JavaScript like that.

You can, however, use jQuery:

  if ($(this).is('[href$=?]'))

You can also just look at the "href" value:

  if (/\?$/.test(this.href))
1
  • None of the above gives me an alert, eventhough there is a link with a questionmark in it... Commented Jun 16, 2011 at 15:53
2

Along with the points made by others, the $= selector is the "ends with" selector. You will want the *= (contains) selector, like so:

$('a').each(function() {
    if ($(this).is('[href*="?"')) {
        alert("Contains questionmark");
    }
});

Here's a live demo ->

As noted by Matt Ball, unless you will need to also manipulate links without a question mark (which may be the case, since you say your example is simplified), it would be less code and much faster to simply select only the links you want to begin with:

$('a[href*="?"]').each(function() {
    alert("Contains questionmark");
});
0

Try this:

$("a").each(function() {
    if ($('[href$="?"]', this).length()) {
        alert("Contains questionmark");
    }
});
1
  • This will not work, because it's telling jQuery to look for an <a> tag that's a descendant of the <a> in the ".each()" context.
    – Pointy
    Commented Jun 16, 2011 at 15:48

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