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I'm getting this exception in my code:

Caused by: java.net.ConnectException: Connection refused
        at java.net.PlainSocketImpl.socketConnect(Native Method)
        at java.net.PlainSocketImpl.doConnect(PlainSocketImpl.java:351)
        at java.net.PlainSocketImpl.connectToAddress(PlainSocketImpl.java:213)
        at java.net.PlainSocketImpl.connect(PlainSocketImpl.java:200)
        at java.net.SocksSocketImpl.connect(SocksSocketImpl.java:366)
        at java.net.Socket.connect(Socket.java:529)
        at com.sun.net.ssl.internal.ssl.SSLSocketImpl.connect(SSLSocketImpl.java:570)
        at sun.net.NetworkClient.doConnect(NetworkClient.java:158)
        at sun.net.www.http.HttpClient.openServer(HttpClient.java:411)
        at sun.net.www.http.HttpClient.openServer(HttpClient.java:525)
        at sun.net.www.protocol.https.HttpsClient.<init>(HttpsClient.java:272)
        at sun.net.www.protocol.https.HttpsClient.New(HttpsClient.java:329)
        at sun.net.www.protocol.https.AbstractDelegateHttpsURLConnection.getNewHttpClient(AbstractDelegateHttpsURLConnection.java:172)
        at sun.net.www.protocol.http.HttpURLConnection.plainConnect(HttpURLConnection.java:923)
        at sun.net.www.protocol.https.AbstractDelegateHttpsURLConnection.connect(AbstractDelegateHttpsURLConnection.java:158)
        at sun.net.www.protocol.http.HttpURLConnection.getOutputStream(HttpURLConnection.java:1031)
        at sun.net.www.protocol.https.HttpsURLConnectionImpl.getOutputStream(HttpsURLConnectionImpl.java:230)
        at org.apache.cxf.transport.http.URLConnectionHTTPConduit$URLConnectionWrappedOutputStream.setupWrappedStream(URLConnectionHTTPConduit.java:170)
        at org.apache.cxf.transport.http.HTTPConduit$WrappedOutputStream.handleHeadersTrustCaching(HTTPConduit.java:1282)
        at org.apache.cxf.transport.http.HTTPConduit$WrappedOutputStream.onFirstWrite(HTTPConduit.java:1233)
        at org.apache.cxf.transport.http.URLConnectionHTTPConduit$URLConnectionWrappedOutputStream.onFirstWrite(URLConnectionHTTPConduit.java:183)
        at org.apache.cxf.io.AbstractWrappedOutputStream.write(AbstractWrappedOutputStream.java:47)
        at org.apache.cxf.io.AbstractThresholdOutputStream.unBuffer(AbstractThresholdOutputStream.java:89)
        at org.apache.cxf.io.AbstractThresholdOutputStream.write(AbstractThresholdOutputStream.java:63)
        at org.apache.cxf.io.CacheAndWriteOutputStream.write(CacheAndWriteOutputStream.java:71)
        at org.apache.cxf.io.AbstractWrappedOutputStream.write(AbstractWrappedOutputStream.java:51)
        at com.ctc.wstx.io.UTF8Writer.write(UTF8Writer.java:143)
        at com.ctc.wstx.sw.BufferingXmlWriter.flushBuffer(BufferingXmlWriter.java:1366)
        at com.ctc.wstx.sw.BufferingXmlWriter.fastWriteRaw(BufferingXmlWriter.java:1412)
        at com.ctc.wstx.sw.BufferingXmlWriter.writeAttribute(BufferingXmlWriter.java:901)
        at com.ctc.wstx.sw.BaseNsStreamWriter.doWriteAttr(BaseNsStreamWriter.java:508)
        ... 77 more

This is not very helpful to me. But, if I could know the URL that's throwing this exception, this information would be extremely useful. Is there some config option I can turn on to get an error message that shows me the URL? This stack trace does not include any code that I've written, that's why it's so hard for me to debug.

share|improve this question
    
Can we see the code block that you are executing that causes this? If you make the object you're working with accessible outside of the try block, you can test it in the catch block after I believe. – Rogue Nov 18 '13 at 22:01
    
@Rogue: The code throwing this exception is a very big open source project that I have not modified but am using as a framework. The code that throws the exception is very abstracted. It's this line: return oMethod.invoke(portObject, operationInput); oMethod is a java.lang.reflect.Method. As you can see, if I could just get the URL itself it would be way easier than debugging the code. – Daniel Kaplan Nov 18 '13 at 22:03
2  
In this case you would might better off using a packet sniffer such as Wireshark on Windows or tcpdump on Linux to trap the offending connection. – Jim Garrison Nov 18 '13 at 22:10
    
@JimGarrison I'm curious as to why it has to come to this. Is this a poorly designed exception? Or is there a logical reason why this exception can't show me the URL? – Daniel Kaplan Nov 18 '13 at 22:26

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