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In Java you have to do new ZipFile(new File("xxx.zip")); to unzip a zip file.

Now I get a byte array whose content is a zip file. I get this byte array from database instead of a file. I would like to unzip this "byte array file" but there is no ZipFile constructor for byte array or String (I mean the content instead of the file path).

Is there any solution? (Of course I do not want to write this byte array to an actual file and read it into memory again.)

Thanks!

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so your byte array contains a zipped file and you want to extract it , right ??? –  Hussain Akhtar Wahid 'Ghouri' Dec 28 '12 at 16:33
4  
You can use a ZipInputStream instead. –  Perception Dec 28 '12 at 16:34
    
@HussainAkhtarWahid Yes, it's content is exactly a zip file compressing a file with a specific name. –  htyleo Dec 29 '12 at 9:11

2 Answers 2

up vote 3 down vote accepted

Use a ByteArrayInputStream inside the ZipInputStream which is created from a byte array

byte[] ba;

InputStream is = new ByteArrayInputStream(ba);
InputStream zis = new ZipInputStream(is);

Use zis to read the contents uncompressed

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Implementations of ZipFile requires it to be a file. Memory mapping may be used, for instance. In general it is assumed that the archive may be huge.

As @Perception mentions, ZipInputStream can be used to read sequentially through the stream. Third-party libraries may be available to replace ZipFile.

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