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When I am sending a TextEdit data as a JSON with data as a combination of "; the app fails every time. In detail if I am entering my username as anything but password as "; the resultant JSON file looks like:-

{"UserName":"qa@1.com","Password":"\";"}

I have searched a lot, what I could understand is the resultant JSON data voilates the syntax which results in throwing Default exception. I tried to get rid of special symbol by using URLEncoder.encode() method. But now the problem is in decoding. Any help at any step will be very grateful.

Logcat:

I/SW_HttpClient(448): sending post: {"UserName":"qa@1.com","Password":"\";"}
I/SW_HttpClient(448): HTTPResponse received in [2326ms]
I/SW_HttpClient(448): stream returned: <!DOCTYPE html PUBLIC ---- AN HTML PAGE.... A DEFAULT HANDLER>
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2  
"the app fails" doesn't give us much information. What exactly happens, where, using what code? –  Jon Skeet Mar 4 '13 at 8:56
    
if fails then you have a good news in form of Logcat share it here –  Usman Kurd Mar 4 '13 at 8:57
    
Exactly-- it is throwing Uncaught exception which is handled by my default Exception handler. –  Saty Mar 4 '13 at 8:57
    
then share it here –  Usman Kurd Mar 4 '13 at 9:01
    
The problem occures only when my password field contains double-quotes followed by semicolon. For double quotes an escape character is inserted automatically but i have heard that java dont have any escape character for semicolon. –  Saty Mar 4 '13 at 9:01

4 Answers 4

Hi try the following code

String EMPLOYEE_SERVICE_URI = Utils.authenticate+"?UserName="+uid+"&Email="+eid+"&Password="+URLEncoder.encode(pwd,"UTF-8");
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Sorry but i had already mentioned that I already tried URLEncoder.encode() method.It converts "; to %22%3B, I don't know how to decode that. –  Saty Mar 4 '13 at 9:05
    
I really don't see how this Answer is relevant. The problem is about JSON not URLs –  Stephen C Mar 4 '13 at 9:07
    
Have u mentioned this in pwd,"UTF-8"the method if not check once ... –  androidgeek Mar 4 '13 at 9:07
    
Yes I did mentioned that.... but now how am i suppose to get the original data!! –  Saty Mar 5 '13 at 5:37

The JSON you provided in the Question is valid.

The JSON spec requires double quotes in strings to be escaped with a backslash. Read the syntax graphs here - http://www.json.org/.

If something is throwing an exception while parsing that JSON, then either the parser is buggy or the exception means something else.


I have searched a lot, what I could understand is the resultant JSON data voilates the syntax

Your understanding is incorrect.

I tried to get rid of special symbol by using URLEncoder.encode() method.

That is a mistake, and is only going to make matters worse:

  1. The backslash SHOULD be there.
  2. The server or whatever that processes the JSON will NOT be expecting random escaping from a completely different standard.

But now the problem is in decoding.

Exactly.

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Backslash is not an escape character for semicolon... not in java atleast. –  Saty Mar 4 '13 at 9:24

Following provided JSON can be parsed through GSON library with below code

private String sampledata = "{\"UserName\":\"qa@1.com\",\"Password\":\"\\\";\"}";

Gson g = new Gson();
g.fromJson(sampledata, sample.class);



public class sample {

    public String UserName;
    public String Password;
}
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For decoding the text I got the solution with..

 URLDecoder.decode(String, String);
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