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Editorial Team
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Asked: 2026-05-11T19:45:20+00:00

In our application, we are allowing users to open files and directories. Java 6

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In our application, we are allowing users to open files and directories.

Java 6 provides us with…

java.awt.Desktop.getDesktop().open(file);

which works great. However, since we need to ensure Java 5 compatibility, we also implement a method of opening files by calling the start command in cmd.exe

String command = "cmd.exe start ...";
Runtime.getRuntime().exec(command);

This is where the problem shows up. It seems that the start command can only handle 8.3 file names, which means that any non-short (8.3) file/directory names cause the start command to fail.

Is there an easy way to generate these short names? Or any other workarounds?

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1 Answer

  1. Editorial Team

    Try something like this

    import java.io.IOException;

class StartExcel {
    public static void main(String args[])
        throws IOException
    {
        String fileName = "c:\\temp\\xls\\test2.xls";
        String[] commands = {"cmd", "/c", "start", "\"DummyTitle\"",fileName};
        Runtime.getRuntime().exec(commands);
    }
}

    It’s important to pass a dummy title to the Windows start command where there is a possibility that the filename contains a space. It’s a feature.

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