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I test a this moment. It's to take a picture on ip camera.

public static void main(String[] args) throws Exception {

    URL url = new URL("http://192.168.1.210:5500/snapshot.cgi?user=admin&pwd=123456");
    InputStream is = url.openStream();
    BufferedImage image = null;
    image = ImageIO.read(is);
    is.close();

}

My problem is this line: "InputStream is = url.openStream();" i know that my address is wrong but it stay block and i don't have error or something else. Someone have an idea to fix my problem ? thanks in advance.

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1 Answer 1

The Java API doc for URL.openStream() says

Opens a connection to this URL and returns an InputStream for reading from that connection. This method is a shorthand for:

openConnection().getInputStream()

So, you could try to first open a connection via openConnection(), then set at timeout at that object, and then call getInputStream(), maybe that will work.

    URLConnection urlcon = url.openConnection();
    urlcon.setReadTimeout(10000);
    InputStream is = urlcon.getInputStream();

Or at least give you a bit more information on what the problem could be.

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Yes i know but with this i don't know change inputStream() to BufferedImage –  blackcat18 Jan 18 '13 at 13:51
    
I don't understand what you mean. Can't you just continue like in your example above? BufferedImage image = ImageIO.read(is) –  Sentry Jan 18 '13 at 19:03
    
No because i cannot know if the address from camera is OK or not –  blackcat18 Feb 1 '13 at 6:56
    
@blackcat18: And the problem with that is what? –  Sentry Feb 1 '13 at 9:42

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