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 made a simple servlet in Eclipse running on Tomcat server.

I am running a simple java application which passes a string message=20 to the servlet. The servlet gets the data. I am using

String name= request.getParameter("message");

to get the passed string. When I return the name value back to the application, I am able to get it back. But when I try to process the string name:

int val=Integer.parseInt(name);

I get NumberFormatException. I cannot figure out what the problem is. I have been able to get the value of name variable back from the servlet, but why can't I use it?

The Code I am using is as follows:

CLIENT SIDE CODE

URL url = new URL("http://localhost:8080/DemoServer/demoservelet");

URLConnection conn = url.openConnection();

conn.setDoOutput(true);

BufferedWriter out = new BufferedWriter( new OutputStreamWriter( conn.getOutputStream() ) );

out.write("message=20");

SERVLET CODE

String username = request.getParameter("message").toString();

int val=Integer.parseInt(username);  //get error msg on this line

response.setContentType("text/html");

PrintWriter out = response.getWriter();

out.println("Passed val :"+ username+username.length());


}

I am getting error on the conversion. One more thing on return I am getting a length value of 4 which also does not make any sense?

Please help me regarding this.

share|improve this question
4  
Can you debug to see exactly what the value of name is on that line? –  Dan W May 10 '12 at 21:27
1  
And how did you pass the name and value? –  Paul Vargas May 10 '12 at 21:31
    
What do you see if you print the value of name before you try to parse it? You could enclose the printed value in quotes/brackets to make sure it doesn't contain whitespace. System.out.println("[" + name + "]"); –  jahroy May 10 '12 at 21:35

4 Answers 4

up vote 1 down vote accepted

Are you trying to use GET-style parameter passing or PUSH-style parameter passing?

GET-style passing tacks the parameter on the end of the URL like so:

http://localhost:8080/DemoServer/demoservelet?value=20

A URL like this can be assembled fairly easily. You only need to change your URL-creation line, and can remove the two lines related to opening a BufferedWriter:

URL url = new URL(String.format("http://localhost:8080/DemoServer/demoservelet?value=%d", 20));

POST-style passing has to abide by the HTTP protocol, which is fairly similar to what you're using so far, save for the fact that all parameters must have a trailing newline character. Using your example:

BufferedWriter out = new BufferedWriter(new OutputStreamWriter(conn.getOutputStream()));

out.writeln("message=20");

You could also use a PrintStream, which would make formatting your parameters a little easier to handle if you need to change them:

PrintStream out = new PrintStream(conn.getOutputStream());

out.printf("message=%d\n", 20);

Whether you use GET-style or PUSH-style is up to you, though it depends on the type of data you're passing along.

share|improve this answer

you must to check if name is a valid numbre. name.match("^-?\d+$"); it returns true if it is a number

share|improve this answer
    
the value of the string is 20 i.e. on client side i write like this ("message=20"). On servelet side, I have been to get the value. As when I return back the value from servelet i am getting 20 in return which is fine. But I cannot perform the conversion on that string . I hope u got my point. I will also post my code –  user1388142 May 10 '12 at 22:47

I believe you must write the parameter as a parameter for it to be detected as one.

out.write("<param name=\"message\" value=\"20\">");
share|improve this answer

you have the value of output name,determine the name is a number,when the debug of check values.

share|improve this answer

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.