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I'm trying to get the details of Amazon product from its ASIN. The product API allows to do a Itemlookup with ASIN, but the return value is in XML.

I want to do this call for Itemlookup from client side, so would like to do a JSONP call, which I couldn't find.

I found some articles on the web to convert the XML to JSON format using XSLT stylesheet:

(a) https://bitbucket.org/basti/python-amazon-product-api/src/tip/examples/json-results.py

I tried using this python-amazon-product-api and this example, but I couldn't get a JSON return.

(b) http://www.kokogiak.com/gedankengang/2006/05/consuming-amazons-web-api-directly.html

The request I tried to send is:

http://xml-us.amznxslt.com/onca/xml?AWSAccessKeyId=[ACCESS KEY]&AssociateTag=[ASSOCIATE TAG]&ContentType=text%2Fjavascript&IdType=ASIN&ItemId=B008IEGS9W&Operation=ItemLookup&ResponseGroup=Images%2CItemAttributes&Service=AWSECommerceService&Style=http%3A%2F%2Fforums.delphiforums.com%2Fdelphidocsz%2Famazon%2Fjson.xsl&Timestamp=2012-09-04T06%3A40%3A11Z&Signature=AGOqXvVSeMp3YyVkT4mGNXVx0cFGG%2Bh%2FdAebevbbF9o%3D

Please help with getting a JSON format with Amazon product API. Any suggestions are welcome.


The OP can run this style-sheet (input document not used) to determine his XSLT version.

<xsl:stylesheet version="1.0"
  xmlns:xsl="http://www.w3.org/1999/XSL/Transform"
  xmlns:msxsl="urn:schemas-microsoft-com:xslt"
  exclude-result-prefixes="xsl msxsl">
<xsl:output method="html" indent="yes"/>

<xsl:template match="/">
  <html>
    <head><title>About your XSLT Processor</title></head> 
   <body>
     <ul>
       <li>xsl:version=<xsl:value-of select="system-property('xsl:version')" /></li>
       <li>xsl:vendor=<xsl:value-of select="system-property('xsl:vendor')" /></li>
       <li>xsl:vendor-url=<xsl:value-of select="system-property('xsl:vendor-url')" /></li>
       <li>xsl:product-name=<xsl:value-of select="system-property('xsl:product-name')" /></li>
       <li>xsl:product-version=<xsl:value-of select="system-property('xsl:product-version')" /></li>
       <li>xsl:is-schema-aware=<xsl:value-of select="system-property('xsl:is-schema-aware')" /></li>
       <li>xsl:supports-serialization=<xsl:value-of select="system-property('xsl:supports-serialization')" /></li>
       <li>xsl:supports-backwards-compatibility=<xsl:value-of select="system-property('xsl:supports-backwards-compatibility')" /></li>
       <li>msxsl:version=<xsl:value-of select="system-property('msxsl:version')" /></li>
     </ul>  
   </body>  
 </html>  
</xsl:template>

</xsl:stylesheet>
share|improve this question
    
Please supply a sample of the return value XML, and your particular required JSON format. It should then be possible to write an XSLT style-sheet to transform it into JSON. What version of XSLT can you use? 1.0? or 2.0? –  Sean B. Durkin Sep 4 '12 at 7:23
    
Please find the XML response at gist.github.com/3626354 . I would like to extract the product Title, details page link, the medium image of the product. I'm not sure of the version of the XSLT. How to find it out? –  thomastinu Sep 4 '12 at 21:06
    
Please run the stylesheet that I have included, and report results. –  Sean B. Durkin Sep 5 '12 at 0:43
    
Also, given the document you have linked, please list the JSON output that you would expect. –  Sean B. Durkin Sep 5 '12 at 0:48
    
And what if the Title contains a double quote (") character? Will you be satisfied with a simple solution that ignores this possiblity? Or do you want a robust solution that JSON encodes values (that is to say escapes the double quotes)? (Refer Max Shawabkeh's answer to stackoverflow.com/questions/2732409) –  Sean B. Durkin Sep 5 '12 at 1:38

1 Answer 1

Try either of these ::

  1. Amazon JSON API - This is a ruby webservice to pass through requests and translate the responses to JSON.
  2. Try any of these Javascript functions to convert the XML you already have into JSON :
    1. http://goessner.net/download/prj/jsonxml/
    2. http://davidwalsh.name/convert-xml-json
    3. http://www.fyneworks.com/jquery/xml-to-json/
    4. http://www.thomasfrank.se/xml_to_json.html

I've tried thomasfrank myself. Its easy and works well :)

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