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I am trying to Download image (.png) file from MYSQL. some time it works fine.unable find exact problem. it works properly on Jboss server. throws an error while trying to run in my local machine on Apche.

Please help me to FIX the error. Here is my java code.

    try {
        conection = SQLUtil.createConnection(Constant.DataSourceName);
        st = conection.prepareStatement("SELECT image FROM TABLE_NAME WHERE Userid="+ getUserId());
        result = st.executeQuery();
        result.next();

        if(!result.next()){
        input = result.getAsciiStream(1);
        }
        FileOutputStream output = new FileOutputStream(getSignatureImageDestinationPath());
        int ch = input.read();
        while (ch != -1) {
            output.write((char) ch);
            ch = input.read();
        }
        output.close();
        input.close();
        result.close();
        SQLUtil.closeConnection(conection);
    } catch (Exception e) {
        System.out.println(e+":Error");
    } finally {
        if (st != null) {
            SQLUtil.closeConnection(conection);
        }
    }

Here is Stack trace output:

java.sql.SQLException: After end of result set
at com.mysql.jdbc.SQLError.createSQLException(SQLError.java:1074)
at com.mysql.jdbc.SQLError.createSQLException(SQLError.java:988)
at com.mysql.jdbc.SQLError.createSQLException(SQLError.java:974)
at com.mysql.jdbc.SQLError.createSQLException(SQLError.java:919)
at com.mysql.jdbc.ResultSetImpl.checkRowPos(ResultSetImpl.java:854)
at com.mysql.jdbc.ResultSetImpl.getAsciiStream(ResultSetImpl.java:1275)
at org.apache.tomcat.dbcp.dbcp.DelegatingResultSet.getAsciiStream(DelegatingResultSet.java:253)
at org.apache.tomcat.dbcp.dbcp.DelegatingResultSet.getAsciiStream(DelegatingResultSet.java:253)
at com.ninenexus.model.Signature.getSignatureImage(Signature.java:173)
at com.ninenexus.servlets.SaveMySignature.mySignatureDisplay(SaveMySignature.java:69)
at com.ninenexus.servlets.SaveMySignature.doPost(SaveMySignature.java:35)
at javax.servlet.http.HttpServlet.service(HttpServlet.java:641)
at javax.servlet.http.HttpServlet.service(HttpServlet.java:722)
at org.apache.catalina.core.ApplicationFilterChain.internalDoFilter(ApplicationFilterChain.java:306)
at org.apache.catalina.core.ApplicationFilterChain.doFilter(ApplicationFilterChain.java:210)
at org.apache.catalina.core.StandardWrapperValve.invoke(StandardWrapperValve.java:240)
at org.apache.catalina.core.StandardContextValve.invoke(StandardContextValve.java:161)
at org.apache.catalina.core.StandardHostValve.invoke(StandardHostValve.java:164)
at org.apache.catalina.valves.ErrorReportValve.invoke(ErrorReportValve.java:100)
at org.apache.catalina.core.StandardEngineValve.invoke(StandardEngineValve.java:118)
at org.apache.catalina.connector.CoyoteAdapter.service(CoyoteAdapter.java:380)
at org.apache.coyote.http11.Http11Processor.process(Http11Processor.java:243)
at org.apache.coyote.http11.Http11Protocol$Http11ConnectionHandler.process(Http11Protocol.java:188)
at org.apache.tomcat.util.net.JIoEndpoint$SocketProcessor.run(JIoEndpoint.java:288)
at java.util.concurrent.ThreadPoolExecutor.runWorker(Unknown Source)
at java.util.concurrent.ThreadPoolExecutor$Worker.run(Unknown Source)
at java.lang.Thread.run(Unknown Source)
share|improve this question
1  
where is your stacktrace? –  Marco Forberg May 7 '13 at 11:50
1  
What's the error, specifically, when it doesn't work? Be sure to close all resources in the finally block. Also, why are you using characters to represent binary data? –  bdkosher May 7 '13 at 11:50
    
Marco Forberg.in cath block –  khAn May 7 '13 at 11:51
    
BDKosher .i am closing all the opened connections.. –  khAn May 7 '13 at 11:53
    
Provide stacktrace. –  Makky May 7 '13 at 11:53

2 Answers 2

up vote 5 down vote accepted

You are calling result.next() twice. I'm assuming that your query returns only 1 row since you are trying to match by Userid. When the second result.next() is being called, there is no row to be returned in the ResultSet. This is why an SQLException is being thrown. Remove the 1st result.next() like so:

result = st.executeQuery();
if(!result.next()){
    input = result.getAsciiStream(1);
    }
share|improve this answer
    
That still won't work will it? It's saying if NOT result.next(). –  DaveHowes May 7 '13 at 12:09
    
Doesn't matter, the call itself will trigger the exception. –  Aashray May 7 '13 at 12:20
    
OK, I can see that the exception will be throw by the second call. But lets say he removes the first call to result.next(). The remaining call will return true, meaning that the input variable will not be populated won't it? –  DaveHowes May 7 '13 at 12:54
    
Logically, I don't know what he's trying to do, but it won't enter the if block if the result set is not empty. –  Aashray May 7 '13 at 13:31

The second result.next is moving you past the end of the result set.

I think you want

result = st.executeQuery();
if(result.next()){
   input = result.getAsciiStream(1);

}

share|improve this answer
    
1+ for response...:) –  khAn Nov 19 '13 at 19:46

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