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I am trying to open URL in webview of my application, but I am getting "Page not found" error. The same URL is not opening in my device(Android Tablet) browser also.

If I try to open this URL in my desktop browser, Its opening.

Please let me know how to solve this issue. Below is my code.

public class LinkCompanyPageWebView extends Activity{

private String url;

protected void onCreate(Bundle savedInstanceState) {
    // TODO Auto-generated method stub
    super.onCreate(savedInstanceState);
    setContentView(R.layout.my_webview);

    WebView wvbrowser;
    wvbrowser=(WebView)findViewById(R.id.wvbrowser);

    wvbrowser.getSettings().setJavaScriptEnabled(true);
    wvbrowser.getSettings().setPluginState(WebSettings.PluginState.ON);


    url = getIntent().getStringExtra("URL");
    wvbrowser.loadUrl(url);

    wvbrowser.setWebViewClient(new WebViewClient() {
        @Override
        public void onReceivedError(WebView view, int errorCode, String description, String failingUrl) {
                Log.i("WEB_VIEW_TEST", "error code:" + errorCode);
                super.onReceivedError(view, errorCode, description, failingUrl);
        }
     });

}

}

"onReceivedError" not displaying any error.

p.s: Added Internet permissions to my app.

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1 Answer 1

this can all be found on http://developer.android.com/reference/android/webkit/WebView.html

wvBrowser = (WebView) findViewById(R.id.Browser);
 wvBrowser.setWebViewClient(new WebViewClient() {
    @Override
    public void onReceivedError(WebView view, int errorCode, String description, String failingUrl) {
            Log.i("WEB_VIEW_TEST", "error code:" + errorCode);
            super.onReceivedError(view, errorCode, description, failingUrl);
    }
 });
share|improve this answer
    
what exactly can be found there ? and please tell us, how your code is different from code in question? –  Selvin May 13 '13 at 11:36

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