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I just want to retrieve any web page's source code from Java. I found lots of solutions so far, but I couldn't find any code that works for all the links below:

The main problem for me is that some codes retrieve web page source code, but with missing ones. For example the code below does not work for the first link.

InputStream is = fURL.openStream(); //fURL can be one of the links above
BufferedReader buffer = null;
buffer = new BufferedReader(new InputStreamReader(is, "iso-8859-9"));

int byteRead;
while ((byteRead = buffer.read()) != -1) {
    builder.append((char) byteRead);
}
buffer.close();
System.out.println(builder.toString());
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1  
Note that you'll only get the source that is initially delivered when opening an url. There might be additional content being loaded via AJAX and you'd not see that content when you just read the initial stream. - As an example, open up demo.vaadin.com/sampler in Firefox and then open the page source code. You won't see the source for all the displayed content there. –  Thomas Dec 23 '11 at 13:51
    
@cerq: Depending on your definition of "web page's source code" you can or you cannot do it. For example it can be argued that the "source code" of, say, a webpage generated by a .jsp is the .jsp file itself and not the generated HTML... What you're after is the HTML, not the "source code". In many case the "source code" is on the server and short of pirating the server you simply cannot access it. –  TacticalCoder Dec 23 '11 at 13:53
    
@Thomas i think my problem is about the things you tell. So is there any way to get all displayed content source? –  bttb Dec 23 '11 at 15:26
    
Well, you'd have to execute the JavaScript. Have a look at ScriptEngineManager. –  Thomas Dec 23 '11 at 19:52
    
I happen to be asking the exact same question, if you happen to found the answer, please post it here. Thanks! –  Anggrian Jun 3 at 18:55

3 Answers 3

This code worked for me (sorry for variable names :))

 private static String getUrlSource(String url) throws IOException {
            URL yahoo = new URL(url);
            URLConnection yc = yahoo.openConnection();
            BufferedReader in = new BufferedReader(new InputStreamReader(
                    yc.getInputStream(), "UTF-8"));
            String inputLine;
            StringBuilder a = new StringBuilder();
            while ((inputLine = in.readLine()) != null)
                a.append(inputLine);
            in.close();

            return a.toString();
        }
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Neither your code nor the code i wrote does work the link cumhuriyet.com.tr?hn=298710 please test your code first. –  bttb Dec 23 '11 at 14:23
    
System.out.println(getUrlSource("cumhuriyet.com.tr/?hn=298710")); it's ok –  narek.gevorgyan Dec 23 '11 at 14:48
URL yahoo = new URL("http://www.yahoo.com/");
BufferedReader in = new BufferedReader(
            new InputStreamReader(
            yahoo.openStream()));

String inputLine;

while ((inputLine = in.readLine()) != null)
    System.out.println(inputLine);

in.close();
share|improve this answer
    
i dont want a code which works for yahoo.com or google.com please check my post twice –  bttb Dec 23 '11 at 14:24

I am sure that you have found a solution somewhere over the past 2 years but the following is a solution that works for your requested site

package javasandbox;

import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.net.HttpURLConnection;
import java.net.MalformedURLException;
import java.net.URL;

/**
*
* @author Ryan.Oglesby
*/
public class JavaSandbox {

private static String sURL;

/**
 * @param args the command line arguments
 */
public static void main(String[] args) throws MalformedURLException, IOException {
    sURL = "http://www.cumhuriyet.com.tr/?hn=298710";
    System.out.println(sURL);
    URL url = new URL(sURL);
    HttpURLConnection httpCon = (HttpURLConnection) url.openConnection();
    //set http request headers
            httpCon.addRequestProperty("Host", "www.cumhuriyet.com.tr");
            httpCon.addRequestProperty("Connection", "keep-alive");
            httpCon.addRequestProperty("Cache-Control", "max-age=0");
            httpCon.addRequestProperty("Accept", "text/html,application/xhtml+xml,application/xml;q=0.9,image/webp,*/*;q=0.8");
            httpCon.addRequestProperty("User-Agent", "Mozilla/5.0 (Windows NT 6.1; WOW64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/30.0.1599.101 Safari/537.36");
            httpCon.addRequestProperty("Accept-Encoding", "gzip,deflate,sdch");
            httpCon.addRequestProperty("Accept-Language", "en-US,en;q=0.8");
            //httpCon.addRequestProperty("Cookie", "JSESSIONID=EC0F373FCC023CD3B8B9C1E2E2F7606C; lang=tr; __utma=169322547.1217782332.1386173665.1386173665.1386173665.1; __utmb=169322547.1.10.1386173665; __utmc=169322547; __utmz=169322547.1386173665.1.1.utmcsr=stackoverflow.com|utmccn=(referral)|utmcmd=referral|utmcct=/questions/8616781/how-to-get-a-web-pages-source-code-from-java; __gads=ID=3ab4e50d8713e391:T=1386173664:S=ALNI_Mb8N_wW0xS_wRa68vhR0gTRl8MwFA; scrElm=body");
            HttpURLConnection.setFollowRedirects(false);
            httpCon.setInstanceFollowRedirects(false);
            httpCon.setDoOutput(true);
            httpCon.setUseCaches(true);

            httpCon.setRequestMethod("GET");

            BufferedReader in = new BufferedReader(new InputStreamReader(httpCon.getInputStream(), "UTF-8"));
            String inputLine;
            StringBuilder a = new StringBuilder();
            while ((inputLine = in.readLine()) != null)
                a.append(inputLine);
            in.close();

            System.out.println(a.toString());

            httpCon.disconnect();
}
}
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a help is never too late. But I tried your code and it doesn't work in many webpages. –  Anggrian Jun 3 at 18:51

protected by Community Jun 25 at 13:52

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