Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a Servlet that sends back a JSON Object and I would like to use this servlet in another Java project. I have this method that gets me the results:

public JSONArray getSQL(String aServletURL)
{
 JSONArray toReturn = null;
 String returnString = "";
 try
 {
    URL myUrl = new URL(aServletURL);
        URLConnection conn = myUrl.openConnection();
        conn.setDoOutput(true);
        BufferedReader in = new BufferedReader( new InputStreamReader( conn.getInputStream() ) );
        String s;
        while ((s = in.readLine()) != null )
         returnString += s;
        in.close();

        toReturn = new JSONArray(returnString);
 }
 catch(Exception e)
 {
    return new JSONArray();
 }
        return toReturn;
}

This works pretty will, but the problem I am facing is the following: When I do several simultaneous requests, the results get mixed up and I sometimes get a Response that does not match the request I send.

I suspect the problem to be related to the way I get the response back: The Reader reading a String from the InputStream of the connection.

How can I make sure that I get one reques -> one corresponding reply ? Is there a better way to retrieve my JSON object from my servlet ?

Cheers, Tim

share|improve this question
    
Is this ajax call? If so, are you checking responsestatus code? –  Nambari Jan 13 '12 at 8:55
    
Mark this method as synchronized. What type of your current project in which you are requesting servlet. –  AVD Jan 13 '12 at 8:58
    
toReturn is never declared in the method. So I would guess : global variable -> concurrency problems. Or is it just a bad copy/paste ? –  Grooveek Jan 13 '12 at 9:00
    
Hello, @Grooveek: Sry Copy Paste Error, I edited it. It is declared now. –  Tim Jan 13 '12 at 9:03
    
@thinksteep: What do you mean with AJAX call ? This is a normal Java project - I am simply trying to call and use a servlet that exists somewhere. –  Tim Jan 13 '12 at 9:04

2 Answers 2

up vote 1 down vote accepted

When I do several simultaneous requests, the results get mixed up and I sometimes get a Response that does not match the request I send.

Your servlet is not thread safe. I'd bet that you've improperly assigned request scoped data either directly or indirectly as instance or class variables of the servlet. This is a common beginner's mistake.

Carefully read this How do servlets work? Instantiation, session variables and multithreading and fix your servlet code accordingly. The problem is not in the URLConnection code shown so far, although it indicates that you're doing exactly the same job in both doGet() and doPost(), which in turn is already a smell as to how the servlet is designed.

share|improve this answer

Try removing setDoOutput(true), you are using the connection only for input and so you shouldn't use it.

Edit: alternatively try using HttpClient, it's much nicer that using "raw" Java.

share|improve this answer
    
It did not change anything. The Servlet I am using with Java is also used by Javascript with JQUERY and there is that JSON Callback thing I have read about. It is used to mark each JSON response with a unique ID. Is it possible that I need something similar ? –  Tim Jan 13 '12 at 11:06
    
Can you show us the relevant portion of the servlet code? –  Viruzzo Jan 13 '12 at 11:12
    
Here it is: code statham = new JSONArray(); ... // Fill the results ... // Send back the results JSON String callBack = request.getParameter("jsoncallback"); if(callBack != null) out.print(callBack + "(" + statham + ");"); else out.print(statham); out.close();code –  Tim Jan 13 '12 at 11:22
    
Uhm this seems like JSONP, which would in fact need to send back a request id to work correctly, but it's only done if the "jsoncallback" is sent. With what aServletURL are you calling the method? –  Viruzzo Jan 13 '12 at 11:25
    
I am using org.json. The servletUrl is like this: host:8080/ToolsWeb/… –  Tim Jan 13 '12 at 11:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.