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Environment used is Google App Engine. The zip file was uploaded in BlobStore.

I have the following code:

ZipInputStream zis = ...
ZipEntry ze = zis.getNextEntry();
while( ze != null){
    System.out.println(ze.getName());
    ze = zis.getNextEntry();
}

How to determine the content type of each file in zip archive? ze.getName method display the name of the file. How about the file type?

Thanks

share|improve this question
    
You could use the standard hackish method of extracting the extension from the filename (lastIndexOf(".")) –  Bucco Nov 9 '12 at 7:13
    
can't you determine from the file extension? –  dbrin Nov 9 '12 at 7:13
    
Is file extension enough? –  JR Galia Nov 9 '12 at 7:14
    
Hmm, wouldn't the OP need additional info such as if there were no extension, or someone messed with their files and named "txt" as "pdf"? I guess just handle -1 and when the name is like "SillyFileExtension.". Just do the same stuff that you do with normal Files - regex? –  Bucco Nov 9 '12 at 7:19
    
@JRGalia: It is totally possible to spoof the extension, or even the file signature unless the tool is very thorough (which I doubt there is any, though). The problem is how close you want the content type detection to do: extension based, or file signature (detection of content type is at most up to the file signature from what I have seen). –  nhahtdh Nov 9 '12 at 7:23

1 Answer 1

You can use the mime type instead of trying to guess by the file extensions, that may be missing in some cases. Here are the options to establish the mime type of a file:

  1. Using javax.activation.MimetypesFileTypeMap, like:

    System.out.println("Mime Type of " + f.getName() + " is " +
        new MimetypesFileTypeMap().getContentType(f));
    
  2. Using java.net.URL

    URL u = new URL(fileUrl);
    URLConnection uc = u.openConnection();
    type = uc.getContentType();
    
  3. Using Apache Tika

    ContentHandler contenthandler = new BodyContentHandler();
    Metadata metadata = new Metadata();
    metadata.set(Metadata.RESOURCE_NAME_KEY, f.getName());
    Parser parser = new AutoDetectParser();
    // OOXMLParser parser = new OOXMLParser();
    parser.parse(is, contenthandler, metadata);
    System.out.println("Mime: " + metadata.get(Metadata.CONTENT_TYPE));
    System.out.println("Title: " + metadata.get(Metadata.TITLE));
    System.out.println("Author: " + metadata.get(Metadata.AUTHOR));
    System.out.println("content: " + contenthandler.toString());
    
  4. Using JMimeMagic

    MagicMatch match = parser.getMagicMatch(f);
    System.out.println(match.getMimeType()) ;
    
  5. Using mime-util

    Collection<?> mimeTypes = MimeUtil.getMimeTypes(f);
    
  6. Using DROID

    Droid (Digital Record Object Identification) is a software tool to 
    perform automated batch identification of file formats.
    
  7. Aperture framework

    Aperture is an open source library and framework for crawling and indexing
    information sources such as file systems, websites and mail boxes.
    

See Get the Mime Type from a File for more details for each of the above options.

In this case the easiest way is to use the first solution, javax.activation.MimetypesFileTypeMap, like:

MimetypesFileTypeMap mtft = new MimetypesFileTypeMap();
String mimeType = mtft.getContentType(ze.getName());
System.out.println(ze.getName()+" type: "+ mimeType);
share|improve this answer
1  
Im not sure which one can be used with ZipEntry. –  JR Galia Nov 9 '12 at 7:55
    
@JRGalia See my updated answer. The easiest way is to use the first method. –  dan Nov 9 '12 at 14:02
1  
it's a ZipEntry of a zip appengine file. –  JR Galia Nov 10 '12 at 11:26
    
I use new MimetypesFileTypeMap().getContentType(zipEntry.getName());. –  Maarten Oct 6 '13 at 19:18
    
@Maarten Thanks, that is already the first option that I suggested in my answer :). –  dan Oct 7 '13 at 9:42

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