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I am reading data from a webservice. The issue if I put the link on the browser it works fine. When I run like this give me error. I am suspecting is it due to the way how I send my parameters. My paramater list has this dID=1,5,7,11,14,18,26&FromDate=18 Sep 2012 00:00 am&ToDate=18 Sep 2012 10:00 am. Do I need to do some encoding here?

URL xmlURLDM = new URL(urlDM);
InputStream xml2 = xmlURLDM.openStream();

I get this error Server returned HTTP response code: 400 for URL: 
        at xmlreader.main(
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What's urlDM supposed to be? – Jon Lin Sep 18 '12 at 4:03
It is a an url string. e.g. url....?dID=1,5,7,11,14,18,26&FromDate=18 Sep 2012 00:00 am&ToDate=18 Sep 2012 10:00 am – user837306 Sep 18 '12 at 4:07

2 Answers 2

up vote 3 down vote accepted

You do need encoding, most likley it is the spaces in your URL that is causing the trouble. Use Javas built in url-encoding. eg:

String encoded = URLEncoder.encode(myUrl, "UTF-8");

... call web service with encoded as URL

There can be other reasons for the status code being 400, but this encoding issue is probably your first stumbling block.

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If I do the whole url I get error so I just do on the FromDate and ToDate values and then join it back to original string and send as url is that right to do ? – user837306 Sep 18 '12 at 4:33
I get this error if I put the whole url no protocol:. – user837306 Sep 18 '12 at 4:35

The Documentation of URL says,

The URL class does not itself encode or decode any URL components according to the escaping mechanism defined in RFC2396. It is the responsibility of the caller to encode any fields, which need to be escaped prior to calling URL, and also to decode any escaped fields, that are returned from URL. Furthermore, because URL has no knowledge of URL escaping, it does not recognise equivalence between the encoded or decoded form of the same URL.

So please use URLEncoder.encode() before you invoke URL()

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