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The request parameter is like decrypt?param=5FHjiSJ6NOTmi7/+2tnnkQ==.

In the servlet, when I try to print the parameter by String param = request.getParameter("param"); I get 5FHjiSJ6NOTmi7/ 2tnnkQ==. It turns the character + into a space. How can I keep the orginal paramter or how can I properly handle the character +.

Besides, what else characters should I handle?

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3 Answers 3

up vote 1 down vote accepted

You have two choices

URL encode the parameter

If you have control over the generation of the URL you should choose this. If not...

Manually retrieve the parameter

If you can't change how the URL is generated (above) then you can manually retrieve the raw URL. Certain methods decode parameters for you. getParameter is one of them. On the other hand, getQueryString does not decode the String. If you have only a few parameters it shouldn't be difficult to parse the value yourself.

request.getQueryString();
//?param=5FHjiSJ6NOTmi7/+2tnnkQ==
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If you want to use the '+' character in a URL you need to encode it when it is generated. For '+' the correct encoding is %2b

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No, the correct encoding is %2b. –  dcsohl Oct 10 '13 at 21:07
    
Sorry got hung up on the space rather than the +. I'll fix my answer. –  Mark Thomas Oct 10 '13 at 21:54

Use URLEncoder,URLDecoder's static methods for encoding and decoding URLs.

For example : - Encode the URL param using

    URLEncoder.encode(url,"UTF-8") 

Back in the server side , decode this parameter using

    URLDecoder.decode(url,"UTF-8") 

decode method returns a String type of the decoded URL.

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3  
In servlets, there's never a need to URL-decode a request.getParameter(). The container does that all by itself. –  BalusC Oct 10 '13 at 18:12

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