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In XPages, in the file upload control, after a user selects a file but before it's saved how can you get the filename? I'm not interested in the path as I believe that's not getable due to security issues but I would like to get the filename and extension if at all possible.

Thanks!

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3 Answers 3

Actually you can get the file and fully manipulate it, read it, do whatever you want with it, its stored in the xsp folder on the server, to which you have read/write access... here is a code snippet that interacts with the file, I usually call from beforeRenderResponse...

var fileData:com.ibm.xsp.http.UploadedFile = facesContext.getExternalContext().getRequest().getParameterMap().get(getClientId('<INSERT ID OF UPLOAD CONTROL HERE (ie. fileUpload1)>'));

if (fileData != null) {
    var tempFile:java.io.File = fileData.getServerFile();
    // Get the path
    var filePath:String = tempFile.getParentFile().getAbsolutePath();
    // Get file Name
    var fileName:String = tempFile.getParentFile().getName();
    // Get the Name of the file as it appeared on the client machine - the name on the server will NOT be the same
    var clientFileName:String = fileData.getClientFileName();
}
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Something you might find interesting: by default, the temporary location where the uploaded data is stored on the server is in the same subfolder structure as the serialized component trees (for apps that don't store all pages in memory). –  Tim Tripcony Aug 5 '12 at 18:43
    
Be aware that there's a typo in the last line: fileDate should be fileData (tried to edit it but an edit requires a minimum of 6 characters changed). –  Mark Leusink Sep 25 '12 at 10:51
    
Thanks Mark, I fixed. –  Jeremy Hodge Sep 25 '12 at 12:48

It sounds like you are referring to needing to get the data via CSJS, which you can do with the following code:

var filename = document.getElementById('#{id:fileUpload1}').split('\\').pop();
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