18

Can any one solve my problem. I want to send a http request in android to access REST API(PHP)..

Thanks

2
15

http://breaking-catch22.com/?p=12

public class AndroidApp extends Activity {  

    String URL = "http://the/url/here";  
    String result = "";  
    String deviceId = "xxxxx" ;  
    final String tag = "Your Logcat tag: ";  

    /** Called when the activity is first created. */  
    @Override  
    public void onCreate(Bundle savedInstanceState) {  
        super.onCreate(savedInstanceState);  
        setContentView(R.layout.main);  

        final EditText txtSearch = (EditText)findViewById(R.id.txtSearch);  
        txtSearch.setOnClickListener(new EditText.OnClickListener(){  
            public void onClick(View v){txtSearch.setText("");}  
        });  

        final Button btnSearch = (Button)findViewById(R.id.btnSearch);  
        btnSearch.setOnClickListener(new Button.OnClickListener(){  
            public void onClick(View v) {  
                String query = txtSearch.getText().toString();  
                callWebService(query);  

            }  
        });  

    } // end onCreate()  

    public void callWebService(String q){  
        HttpClient httpclient = new DefaultHttpClient();  
        HttpGet request = new HttpGet(URL + q);  
        request.addHeader("deviceId", deviceId);  
        ResponseHandler<string> handler = new BasicResponseHandler();  
        try {  
            result = httpclient.execute(request, handler);  
        } catch (ClientProtocolException e) {  
            e.printStackTrace();  
        } catch (IOException e) {  
            e.printStackTrace();  
        }  
        httpclient.getConnectionManager().shutdown();  
        Log.i(tag, result);  
    } // end callWebService()  
} 
4
  • Log.i(tag, result); what the meaning of this line?
    – sandy
    Apr 24 '11 at 9:04
  • 1
    Log.i is sending an 'information message' to your computer, so you can see the result easily. Apr 24 '11 at 12:20
  • If i have to use HTTPS, what changes does I have to make in above ? Or it will work fine ???
    – uniruddh
    May 21 '14 at 8:40
  • Hai i dont understand this line..new HttpGet(URL + q)..we instantiate new object of HttpGET..but what is "q"?
    – learner
    Oct 12 '16 at 10:20
2

It basically depends on what you need, but assuming a simply POST request with a JSON body it'll look something like this (I'd suggest to use Apache HTTP Library).

HttpPost mRequest = new HttpPost(<your url>);    

DefaultHttpClient client = new DefaultHttpClient();
//In case you need cookies, you can store them with PersistenCookieStorage
client.setCookieStore(Application.cookieStore);

try {
    HttpResponse response = client.execute(mRequest);

    InputStream source = response.getEntity().getContent();
    Reader reader = new InputStreamReader(source);

    //GSON is one of the best alternatives for JSON parsing
    Gson gson = new Gson();

    User user = gson.fromJson(reader, User.class);

    //At this point you can do whatever you need with your parsed object.

} catch (IOException e) {
    mRequest.abort();
}

Lastly, I'd encourage you to run this code in any kind of background thread (executor, thread, asynctask, etc)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.