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I have a InputStream that I pass to a method to do some processing. I will use the same InputStream in other method, but after the first processing, the InputStream appears be closed inside the method.

How I can clone the InputStream to send to the method that closes him? There is another solution?

EDIT: the methods that closes the InputStream is an external method from a lib. I dont have control about closing or not.

private String getContent(HttpURLConnection con) {
    InputStream content = null;
    String charset = "";
    try {
        content = con.getInputStream();
        CloseShieldInputStream csContent = new CloseShieldInputStream(content);
        charset = getCharset(csContent);            
        return  IOUtils.toString(content,charset);
    } catch (Exception e) {
        System.out.println("Error downloading page: " + e);
        return null;
    }
}

private String getCharset(InputStream content) {
    try {
        Source parser = new Source(content);
        return parser.getEncoding();
    } catch (Exception e) {
        System.out.println("Error determining charset: " + e);
        return "UTF-8";
    }
}
share|improve this question
    
Do you want to "reset" the stream after the method has returned? I.e., read the stream from the beginning? –  aioobe May 7 '11 at 20:43
    
Yes, the methods that closes the InputStream returns the charset it was encoded. The second method is to convert the InputStream to a String using the charset found in the first method. –  Renato Dinhani Conceição May 7 '11 at 20:49
    
You should in that case be able to do what I'm describing in my answer. –  Kaj May 7 '11 at 20:55
    
I dont know the best way to resolve it, but I resolve my problem otherwise. The method toString of the Jericho HTML Parser returns the String formatted in the correct format. It's all I need at moment. –  Renato Dinhani Conceição May 8 '11 at 3:45

6 Answers 6

up vote 59 down vote accepted

If all you want to do is read the same information more than once, and the input data is small enough to fit into memory, you can copy the data from your InputStream to a ByteArrayOutputStream.

Then you can obtain the associated array of bytes and open as many "cloned" ByteArrayInputStreams as you like.

ByteArrayOutputStream baos = new ByteArrayOutputStream();

// Fake code simulating the copy
// You can generally do better with nio if you need...
// And please, unlike me, do something about the Exceptions :D
byte[] buffer = new byte[1024];
int len;
while ((len = input.read(buffer)) > -1 ) {
    baos.write(buffer, 0, len);
}
baos.flush();

// Open new InputStreams using the recorded bytes
// Can be repeated as many times as you wish
InputStream is1 = new ByteArrayInputStream(baos.toByteArray()); 
InputStream is2 = new ByteArrayInputStream(baos.toByteArray()); 

But if you really need to keep the original stream open to receive new data, then you will need to track this external close() method and prevent it from being called somehow.

share|improve this answer
    
I fount another solution to my problem thar not involves copying the InputStream, but I think if I need copy the InputStream, this is the best solution. –  Renato Dinhani Conceição May 8 '11 at 5:03
    
That code does exactly what I described in my answer –  Kaj May 8 '11 at 7:49
3  
This approach consumes memory proportional to the full content of the input stream. Better to use TeeInputStream as described in the answer over here. –  aioobe Mar 3 '13 at 10:13
    
IOUtils (from apache commons) has a copy method which would do the buffer read/write in the middle of your code. –  rethab Jun 5 at 7:43

You want to use this: http://commons.apache.org/io/api-release/org/apache/commons/io/input/CloseShieldInputStream.html

This is a wrapper that will prevent the stream from being closed. You'd do something like this.

InputStream is = null;

is = getStream(); //obtain the stream 
CloseShieldInputStream csis = new CloseShieldInputStream(is);

// call the bad function that does things it shouldn't
badFunction(csis);

// happiness follows: do something with the original input stream
is.read();
share|improve this answer
    
Looks good, but dont works here. I will edit my post with the code. –  Renato Dinhani Conceição May 7 '11 at 21:23
    
CloseShield isn't working because your original HttpURLConnection input stream is beeing closed somewhere. Shouldn't your method call IOUtils with the protected stream IOUtils.toString(csContent,charset)? –  Anthony Accioly May 7 '11 at 21:41
    
Maybe can be this. I can prevent from the HttpURLConnection be closed? –  Renato Dinhani Conceição May 7 '11 at 22:16
    
What is the Source class doing? Is it the call that is closing the stream? –  Femi May 7 '11 at 22:18
    
@Renato. Maybe the problem is not the close() call at all, but the fact the Stream is being read to the end. Since mark() and reset() may not be the best methods for http connections, maybe you should take a look at the byte array approach described at my answer. –  Anthony Accioly May 7 '11 at 22:48

I realize this is an old post, but be careful here:

while ((len = input.read(buffer)) > -1 /* not 0 */ ) {
    baos.write(buffer, 0, len);
}

InputStream.read(byte[]) may return 0 when there is still data to receive but no data is available now, as in the case of a slow HTTP connection.

share|improve this answer
1  
I realize this is an old post, but I think it is misleading. According to Java docs for read(byte[]) docs.oracle.com/javase/7/docs/api/java/io/…, it will only return zero if the size of the byte array is zero. Otherwise, the method will block until at least one byte is available. (There is nothing wrong with the change suggested here, though.) –  tcovo Oct 16 '13 at 18:14

You can't clone it, and how you are going to solve your problem depends on what the source of the data is.

One solution is to read all data from the InputStream into a byte array, and then create a ByteArrayInputStream around that byte array, and pass that input stream into your method.

Edit 1: That is, if the other method also needs to read the same data. I.e you want to "reset" the stream.

share|improve this answer
    
Can show me some code? –  Renato Dinhani Conceição May 7 '11 at 20:57
    
I don't know what part you need help with. I guess you know how to read from a stream? Read all data from the InputStream, and write the data to ByteArrayOutputStream. Call toByteArray() on the ByteArrayOutputStream after you have completed reading all data. Then pass that byte array into the constructor of a ByteArrayInputStream. –  Kaj May 7 '11 at 21:07

If the data read from the stream is large, I would recommend using a TeeInputStream from Apache Commons IO. That way you can essentially replicate the input and pass a t'd pipe as your clone.

share|improve this answer

This might not work in all situations, but here is what I did: I extended the FilterInputStream class and do the required processing of the bytes as the external lib reads the data.

public class StreamBytesWithExtraProcessingInputStream extends FilterInputStream {

    protected StreamBytesWithExtraProcessingInputStream(InputStream in) {
        super(in);
    }

    @Override
    public int read() throws IOException {
        int readByte = super.read();
        processByte(readByte);
        return readByte;
    }

    @Override
    public int read(byte[] buffer, int offset, int count) throws IOException {
        int readBytes = super.read(buffer, offset, count);
        processBytes(buffer, offset, readBytes);
        return readBytes;
    }

    private void processBytes(byte[] buffer, int offset, int readBytes) {
       for (int i = 0; i < readBytes; i++) {
           processByte(buffer[i + offset]);
       }
    }

    private void processByte(int readByte) {
       // TODO do processing here
    }

}

Then you simply pass an instance of StreamBytesWithExtraProcessingInputStream where you would have passed in the input stream. With the original input stream as constructor parameter.

It should be noted that this works byte for byte, so don't use this if high performance is a requirement.

share|improve this answer
    
Elegant solution. –  n13 May 23 at 5:10

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