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I'm receiving a ZipInputStream from another source, and I need to provide the first entry's InputStream to another source.

I was hoping to be able to do this without saving a temp file on a device, however the only way I know of getting an InputStream for an individual entry is via ZipFile.getInputStream(entry) and since I have a ZipInputStream and not a ZipFile, that is not possible.

So the best solution I have is

  1. save incoming InputStream to a file
  2. read file as ZipFile
  3. use first entry's InputStream
  4. delete temp file.
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2 Answers 2

up vote 18 down vote accepted

figured:

it's entirely possible, the call to ZipInputStream.getNextEntry() positions the InputStream at the start of the entry and therefore supplying the ZipInputStream is the equivalent of supplying a ZipEntry's InputStream.

the ZipInputStream is smart enough to handle the entry's EOF downstream, or so it seems.

p.

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2  
I don't get what you mean by this? Can you add a sample of code? –  Whitecat Jan 31 '13 at 17:08
1  
What he means is that a ZipInputStream can be used both for the zip as a whole, and for reading each component. .getNextEntry() proceeds to first component, read it, do another .getNextEntry() and your stream is reset to the second one and so on.. Clever, actually. –  akauppi Aug 7 at 7:21

In addition to @pstanton post here is an example of code. I solved the problem using the following code. It was difficult to understand what the previous answer without an example.

//If you just want the first file in the zipped InputStream use this code. 
//Otherwise loop through the InputStream using getNextEntry()
//till you find the file you want.
private InputStream convertToInputStream(InputStream stream) throws IOException {
    ZipInputStream zis = new ZipInputStream(stream);
    zis.getNextEntry();
    return zis;
} 

Using this code you can return an InputStream of the file that is zipped.

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And after the first component has been read, one can '.getNextEntry()' again, to read the second. –  akauppi Aug 7 at 7:22

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