247

I'm trying to add header for my request using HttpUrlConnection but the method setRequestProperty() doesn't seem working. The server side doesn't receive any request with my header.

HttpURLConnection hc;
    try {
        String authorization = "";
        URL address = new URL(url);
        hc = (HttpURLConnection) address.openConnection();


        hc.setDoOutput(true);
        hc.setDoInput(true);
        hc.setUseCaches(false);

        if (username != null && password != null) {
            authorization = username + ":" + password;
        }

        if (authorization != null) {
            byte[] encodedBytes;
            encodedBytes = Base64.encode(authorization.getBytes(), 0);
            authorization = "Basic " + encodedBytes;
            hc.setRequestProperty("Authorization", authorization);
        }
  • Works for me, how do you tell the header was sent and not received? – Tomasz Nurkiewicz Oct 4 '12 at 17:26
  • 1
    sorry if this sounds dumb, but where are you calling connect() on the URLConnection? – Vikdor Oct 4 '12 at 17:26
  • I'm not sure if this has an effect but you can try adding connection.setRequestMethod("GET"); (or POST or whatever you want)? – noobed Oct 4 '12 at 18:20
  • 1
    You initialise authorization to the empty string. If either username or password is null, then authorization will be the empty string, not null. Therefore, the final if will get executed, but the "Authorization" property will be set to empty, seems to me. – zerzevul Apr 12 '19 at 12:07
414

I have used the following code in the past and it had worked with basic authentication enabled in TomCat:

URL myURL = new URL(serviceURL);
HttpURLConnection myURLConnection = (HttpURLConnection)myURL.openConnection();

String userCredentials = "username:password";
String basicAuth = "Basic " + new String(Base64.getEncoder().encode(userCredentials.getBytes()));

myURLConnection.setRequestProperty ("Authorization", basicAuth);
myURLConnection.setRequestMethod("POST");
myURLConnection.setRequestProperty("Content-Type", "application/x-www-form-urlencoded");
myURLConnection.setRequestProperty("Content-Length", "" + postData.getBytes().length);
myURLConnection.setRequestProperty("Content-Language", "en-US");
myURLConnection.setUseCaches(false);
myURLConnection.setDoInput(true);
myURLConnection.setDoOutput(true);

You can try the above code. The code above is for POST, and you can modify it for GET

|improve this answer|||||
  • 15
    A little addition for android developers (on API >= 8 a.k.a 2.2): android.util.Base64.encode(userCredentials.getBytes(), Base64.DEFAULT); Base64.DEFAULT tells to use RFC2045 for base64 encoding. – Denis Gladkiy Dec 27 '13 at 10:08
  • @Denis, would you please tell me why should one use headers. I have to validate some credentials from android I am using php on xammp. how should i go for it. as i don't know how to write php code with headers – Pankaj Nimgade Feb 17 '15 at 8:00
  • 11
    Where did the variable postData come from in your example? – GlenPeterson Jan 11 '16 at 19:28
  • 20
    Why are they called "RequestProperty" when everyone calls them Headers?? – Philip Rego Jun 21 '17 at 19:58
  • 2
    One addition for Java8 version : Base64 class is a little bit changed. Decoding should be done using: String basicAuth = "Basic " + java.util.Base64.getEncoder().encodeToString(userCredentials.getBytes()); – Mihailo Stupar Jan 18 '18 at 10:53
17

Just cause I don't see this bit of information in the answers above, the reason the code snippet originally posted doesn't work correctly is because the encodedBytes variable is a byte[] and not a String value. If you pass the byte[] to a new String() as below, the code snippet works perfectly.

encodedBytes = Base64.encode(authorization.getBytes(), 0);
authorization = "Basic " + new String(encodedBytes);
|improve this answer|||||
10

If you are using Java 8, use the code below.

URLConnection connection = url.openConnection();
HttpURLConnection httpConn = (HttpURLConnection) connection;

String basicAuth = Base64.getEncoder().encodeToString((username+":"+password).getBytes(StandardCharsets.UTF_8));
httpConn.setRequestProperty ("Authorization", "Basic "+basicAuth);
|improve this answer|||||
6

Finally this worked for me

private String buildBasicAuthorizationString(String username, String password) {

    String credentials = username + ":" + password;
    return "Basic " + new String(Base64.encode(credentials.getBytes(), Base64.DEFAULT));
}
|improve this answer|||||
  • 2
    @d3dave. String was created from byte array and concatenated with "Basic ". The problem in OP code was that he concatenated "Basic " with byte[] and sends it as header. – yurin Nov 16 '15 at 12:39
5

Your code is fine.You can also use the same thing in this way.

public static String getResponseFromJsonURL(String url) {
    String jsonResponse = null;
    if (CommonUtility.isNotEmpty(url)) {
        try {
            /************** For getting response from HTTP URL start ***************/
            URL object = new URL(url);

            HttpURLConnection connection = (HttpURLConnection) object
                    .openConnection();
            // int timeOut = connection.getReadTimeout();
            connection.setReadTimeout(60 * 1000);
            connection.setConnectTimeout(60 * 1000);
            String authorization="xyz:xyz$123";
            String encodedAuth="Basic "+Base64.encode(authorization.getBytes());
            connection.setRequestProperty("Authorization", encodedAuth);
            int responseCode = connection.getResponseCode();
            //String responseMsg = connection.getResponseMessage();

            if (responseCode == 200) {
                InputStream inputStr = connection.getInputStream();
                String encoding = connection.getContentEncoding() == null ? "UTF-8"
                        : connection.getContentEncoding();
                jsonResponse = IOUtils.toString(inputStr, encoding);
                /************** For getting response from HTTP URL end ***************/

            }
        } catch (Exception e) {
            e.printStackTrace();

        }
    }
    return jsonResponse;
}

Its Return response code 200 if authorizationis success

|improve this answer|||||
1

With RestAssurd you can also do the following:

String path = baseApiUrl; //This is the base url of the API tested
    URL url = new URL(path);
    given(). //Rest Assured syntax 
            contentType("application/json"). //API content type
            given().header("headerName", "headerValue"). //Some API contains headers to run with the API 
            when().
            get(url).
            then().
            statusCode(200); //Assert that the response is 200 - OK
|improve this answer|||||
  • 1
    Do you mind formatting the code here a bit more cleanly? Also, what is given() supposed to be? – Nathaniel Ford Feb 23 '17 at 0:51
  • Hi, This is the base usage for rest-Assurd (testing rest Api). I added explains to the code. – Eyal Sooliman Feb 26 '17 at 14:48
-1

Step 1: Get HttpURLConnection object

URL url = new URL(urlToConnect);
HttpURLConnection httpUrlConnection = (HttpURLConnection) url.openConnection();

Step 2: Add headers to the HttpURLConnection using setRequestProperty method.

Map<String, String> headers = new HashMap<>();

headers.put("X-CSRF-Token", "fetch");
headers.put("content-type", "application/json");

for (String headerKey : headers.keySet()) {
    httpUrlConnection.setRequestProperty(headerKey, headers.get(headerKey));
}

Reference link

|improve this answer|||||

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.