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Assuming I have an Amazon product URL like so

http://www.amazon.com/Kindle-Wireless-Reading-Display-Generation/dp/B0015T963C/ref=amb_link_86123711_2?pf_rd_m=ATVPDKIKX0DER&pf_rd_s=center-1&pf_rd_r=0AY9N5GXRYHCADJP5P0V&pf_rd_t=101&pf_rd_p=500528151&pf_rd_i=507846

How could I scrape just the ASIN using javascript? Thanks!

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8 Answers 8

up vote 9 down vote accepted

Amazon's detail pages can have several forms, so to be thorough you should check for them all. These are all equivalent:

http://www.amazon.com/Kindle-Wireless-Reading-Display-Generation/dp/B0015T963C
http://www.amazon.com/dp/B0015T963C
http://www.amazon.com/gp/product/B0015T963C
http://www.amazon.com/gp/product/glance/B0015T963C

They always look like either this or this:

http://www.amazon.com/<SEO STRING>/dp/<VIEW>/ASIN
http://www.amazon.com/gp/product/<VIEW>/ASIN

This should do it:

var url = "http://rads.stackoverflow.com/amzn/click/B0015T963C";
var regex = RegExp("http://www.amazon.com/([\\w-]+/)?(dp|gp/product)/(\\w+/)?(\\w{10})");
m = url.match(regex);
if (m) { 
    alert("ASIN=" + m[4]);
}
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One more possible form: amazon.com/exec/obidos/asin/B0015T963C. Just to be completely comprehensive the regex could be extended with dp|gp/product|exec/obidos/asin. –  darkporter Nov 20 '09 at 23:08
3  
Building on this, and adding support for international characters, odd ports, https, non-US domains, and query/tracking parameters (and I'm using Java) it would be: Pattern asinPattern = Pattern .compile("^(http[s]?://)?([\\w.-]+)(:[0-9]+)?/([\\w-%]+/)?(dp|gp/product|exec/o‌​bidos/asin)/(\\w+/)?(\\w{10})(.*)?$"); –  Jason Thrasher Jul 13 '11 at 18:36

Since the ASIN is always a sequence of 10 letters and/or numbers immediately after a slash, try this:

url.match("/([a-zA-Z0-9]{10})(?:[/?]|$)")

The additional (?:[/?]|$) after the ASIN is to ensure that only a full path segment is taken.

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Actually, the top answer doesn't work if it's something like amazon.com/BlackBerry... (since BlackBerry is also 10 characters).

One workaround (assuming the ASIN is always capitalized, as it always is when taken from Amazon) is (in Ruby):

        url.match("/([A-Z0-9]{10})")

I've found it to work on thousands of URLs.

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something like this should work (not tested)

var match = /\/dp\/(.*?)\/ref=amb_link/.exec(amazon_url);
var asin = match ? match[1] : '';
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The Wikipedia article on ASIN (which I've linkified in your question) gives the various forms of Amazon URLs. You can fairly easily create a regular expression (or series of them) to fetch this data using the match() method.

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@Gumbo: Your code works great!

//JS Test: Test it into firebug.

url = window.location.href;
url.match("/([a-zA-Z0-9]{10})(?:[/?]|$)");

I add a php function that makes the same thing.

function amazon_get_asin_code($url) {
    global $debug;

    $result = "";

    $pattern = "([a-zA-Z0-9]{10})(?:[/?]|$)";
    $pattern = escapeshellarg($pattern);

    preg_match($pattern, $url, $matches);

    if($debug) {
        var_dump($matches);
    }

    if($matches && isset($matches[1])) {
        $result = $matches[1];
    } 

    return $result;
}
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this is my universal amazon ASIN regexp: ~(?:\b)((?=[0-9a-z]*\d)[0-9a-z]{10})(?:\b)~i

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If the ASIN is always in that position in the URL:

var asin= decodeURIComponent(url.split('/')[5]);

though there's probably little chance of an ASIN getting %-escaped.

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It isn't always in that position. Amazon URLs have many forms, like amazon.com/dp/B0015T963C –  ceejayoz Nov 19 '09 at 17:10

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