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I am trying to get the request parameter which has '&' sybol in starting like:- http://localhost:8080/simple.jsp?my=&234587

On other page I'm getting it like String value=request.getParameter("my"); value.substring(0,4);

I want to get &234, please suggest i am not getting any value.

Thanks, Ars

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4 Answers 4

up vote 3 down vote accepted

In this example you have not one, but two parameters:

  1. my
  2. 234

234 is not a value here. The & separates query parameters. If you need that ampersand to be part of the value of my, it needs to be escaped in the URL as %26.

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Thanks but i cant modify the url its coming from third party tool i.e. i cant change my self the '&' sign to %26, do we have any code to get the complete url from address bar so that we can replace the & manually with %26 and then perform the opration? –  Ars Jun 7 '12 at 18:36
    
If you get it like that from a third party tool, file a bug with them. It is not compliant if it is meant to be a value of my. –  Mark Rotteveel Jun 7 '12 at 18:40
    
okay is there any way that i can get only the value after ampersand i.e. 234587 ??? –  Ars Jun 7 '12 at 18:47

thanks for resonse i found the answer, I used request.getQueryString(); to get the whole string i.e. &234587 and then parsed it accordingly.

:)

Thanks once again.

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You will most likely have to encode the '&' in the url:

http://localhost:8080/simple.jsp?my=%26234587

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Thanks but i cant modify the url its coming from third party tool i.e. i cant change my self the '&' sign to %26, do we have any code to get the complete url from address bar so that we can replace the & manually with %26 and then perform the opration? –  Ars Jun 7 '12 at 18:35

If you will be handling only Get request. You can write something like this.

String requestURI=request.getRequestURI();
String pContent=requestURI.split("?")[1];
String[] pArray= pContent.split("&");
String value="";                  
for (int i=0 ;i<pArray.length;i++) {
  if(pArray[i].equals("my"+"=")){
   value="&" + pArray[i+1];
   break;
  }
} 
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