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I would like to omit creating File. My DataHandler Object contains zip file with one entry inside. I need to get properly InputStream which could read zipped content.

Actually, my "flow" is as following: DataHandler -> File -> ZipFile -> first ZipEntry.getInputStream().

Is there a way to not create File/ZipFile object?

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3 Answers 3

Yes, you can use a ZipInputStream instead.

EDIT: It depends how your zipped content is stored inside your DataHandler.

If it's stored in a byte array...

byte[] zippedContent = dataHandler.getContent();
InputStream in = new ByteArrayInputStream(zippedContent);
ZipInputStream zipIn = new ZipInputStream(in)
ZipEntry zipEntry = zipIn.getNextEntry();

If it provides access to an InputStream...

ZipInputStream zipIn = new ZipInputStream(dataHandler.getInputStream());
ZipEntry zipEntry = zipIn.getNextEntry();

Now you can read the expanded content from the ZipInputStream, as you would any other InputStream.

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Thanks for answer, but how I could fill byte[] zipContent? Anyway, I can't read all bytes at once, henve byte array seems not to be fine. –  ProblemFactory Nov 12 '12 at 13:45
    
ZipEntry also seems not to have getInputStream method. –  ProblemFactory Nov 12 '12 at 13:51
    
Thanks. I've updated the answer to reflect what you said. –  aetheria Nov 12 '12 at 15:24

You are probably looking for ZipInputStream

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up vote 0 down vote accepted

Solution is:

DataHandler dh = ... 
ZipInputStream zis = new ZipInputStream(dh.getInputStream());
ZipEntry entry = zis.getNextEntry();

...and after that zis is currently set at the beggining of first zip entry.

Thanks to @aetheria & @Janoz for ZipInputStream hint.

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