449

In Java, How to compose an HTTP request message and send it to an HTTP web server?

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10 Answers 10

338

You can use java.net.HttpUrlConnection.

Example (from here), with improvements. Included in case of link rot:

public static String executePost(String targetURL, String urlParameters) {
  HttpURLConnection connection = null;

  try {
    //Create connection
    URL url = new URL(targetURL);
    connection = (HttpURLConnection) url.openConnection();
    connection.setRequestMethod("POST");
    connection.setRequestProperty("Content-Type", 
        "application/x-www-form-urlencoded");

    connection.setRequestProperty("Content-Length", 
        Integer.toString(urlParameters.getBytes().length));
    connection.setRequestProperty("Content-Language", "en-US");  

    connection.setUseCaches(false);
    connection.setDoOutput(true);

    //Send request
    DataOutputStream wr = new DataOutputStream (
        connection.getOutputStream());
    wr.writeBytes(urlParameters);
    wr.close();

    //Get Response  
    InputStream is = connection.getInputStream();
    BufferedReader rd = new BufferedReader(new InputStreamReader(is));
    StringBuilder response = new StringBuilder(); // or StringBuffer if Java version 5+
    String line;
    while ((line = rd.readLine()) != null) {
      response.append(line);
      response.append('\r');
    }
    rd.close();
    return response.toString();
  } catch (Exception e) {
    e.printStackTrace();
    return null;
  } finally {
    if (connection != null) {
      connection.disconnect();
    }
  }
}
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  • 25
    Putting some actual code into this answer will help avoid link rot...
    – Cypher
    Commented Sep 25, 2014 at 16:19
  • 3
    Since Java 9, creating HTTP request has become much easier. Commented Jun 28, 2019 at 12:43
  • Yes, a lot has changed in the ten years since this answer was given. Not everyone has moved on from JDK8 to 9 and beyond.
    – duffymo
    Commented Jun 28, 2019 at 12:44
  • How to put some header content in the request with this way of doing, please ?
    – nonozor
    Commented Sep 20, 2022 at 14:00
248

From Oracle's java tutorial

import java.net.*;
import java.io.*;

public class URLConnectionReader {
    public static void main(String[] args) throws Exception {
        URL yahoo = new URL("http://www.yahoo.com/");
        URLConnection yc = yahoo.openConnection();
        BufferedReader in = new BufferedReader(
                                new InputStreamReader(
                                yc.getInputStream()));
        String inputLine;

        while ((inputLine = in.readLine()) != null) 
            System.out.println(inputLine);
        in.close();
    }
}
11
  • 1
    The strange thing is that some servers will reply you back with strange ? characters (which seems like an encoding error related to request headers but not) if you don't open an output stream and flush it first. I have no idea why this happens but will be great if someone can explain why?
    – Gorky
    Commented Jan 18, 2013 at 8:33
  • 1
    @Gorky: Make a new question Commented Jul 14, 2013 at 13:17
  • 103
    This is way too much line noise to send an HTTP request imo. Contrast to Python's requests library: response = requests.get('http://www.yahoo.com/'); something of similar brevity should be possible in Java. Commented Jul 12, 2014 at 19:09
  • 25
    @leo-the-manic that's because Java is supposed to be a lower level language (than python) and allows (forces) the programmer to handle the details underneath rather than assuming "sane" defaults (i.e. buffering, character encoding, etc.). It is possible to get something as succinct, but then you lose lots of the flexibility of the more barebones approach.
    – fortran
    Commented Feb 17, 2015 at 23:54
  • 15
    @fortran Python has equally low-level options to accomplish the same thing as above.
    – User
    Commented Mar 18, 2017 at 4:46
73

I know others will recommend Apache's http-client, but it adds complexity (i.e., more things that can go wrong) that is rarely warranted. For a simple task, java.net.URL will do.

URL url = new URL("http://www.y.com/url");
InputStream is = url.openStream();
try {
  /* Now read the retrieved document from the stream. */
  ...
} finally {
  is.close();
}
2
  • 6
    That doesn't help if you want to monkey with request headers, something that's particularly useful when dealing with sites that will only respond a certain way to popular browsers.
    – Jherico
    Commented Aug 31, 2009 at 22:57
  • 43
    You can monkey with request headers using URLConnection, but the poster doesn't ask for that; judging from the question, a simple answer is important.
    – erickson
    Commented Sep 1, 2009 at 3:26
57

Apache HttpComponents. The examples for the two modules - HttpCore and HttpClient will get you started right away.

Not that HttpUrlConnection is a bad choice, HttpComponents will abstract a lot of the tedious coding away. I would recommend this, if you really want to support a lot of HTTP servers/clients with minimum code. By the way, HttpCore could be used for applications (clients or servers) with minimum functionality, whereas HttpClient is to be used for clients that require support for multiple authentication schemes, cookie support etc.

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  • 3
    FWIW, our code started with java.net.HttpURLConnection, but when we had to add SSL and work around some of the weird use cases in our screwy internal networks, it became a real headache. Apache HttpComponents saved the day. Our project currently still uses an ugly hybrid, with a few dodgy adapters to convert java.net.URLs to the URIs HttpComponents uses. I refactor those out regularly. The only time HttpComponents code turned out significantly more complicated was for parsing dates from a header. But the solution for that is still simple. Commented Dec 13, 2012 at 7:52
  • 1
    It would be helpful to add a code snippet here Commented Apr 21, 2019 at 19:36
30

Here's a complete Java 7 program:

class GETHTTPResource {
  public static void main(String[] args) throws Exception {
    try (java.util.Scanner s = new java.util.Scanner(new java.net.URL("http://example.com/").openStream())) {
      System.out.println(s.useDelimiter("\\A").next());
    }
  }
}

The new try-with-resources will auto-close the Scanner, which will auto-close the InputStream.

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  • @Ska There is no unhandled exception. main() throws Exception, which encompasses the MalformedURLException and the IOException.
    – jerzy
    Commented Dec 22, 2017 at 9:33
  • Scanner actually is not very optimized when it comes to performance.
    – WesternGun
    Commented Mar 14, 2019 at 14:44
16

Google java http client has nice API for http requests. You can easily add JSON support etc. Although for simple request it might be overkill.

import com.google.api.client.http.GenericUrl;
import com.google.api.client.http.HttpRequest;
import com.google.api.client.http.HttpResponse;
import com.google.api.client.http.HttpTransport;
import com.google.api.client.http.javanet.NetHttpTransport;
import java.io.IOException;
import java.io.InputStream;

public class Network {

    static final HttpTransport HTTP_TRANSPORT = new NetHttpTransport();

    public void getRequest(String reqUrl) throws IOException {
        GenericUrl url = new GenericUrl(reqUrl);
        HttpRequest request = HTTP_TRANSPORT.createRequestFactory().buildGetRequest(url);
        HttpResponse response = request.execute();
        System.out.println(response.getStatusCode());

        InputStream is = response.getContent();
        int ch;
        while ((ch = is.read()) != -1) {
            System.out.print((char) ch);
        }
        response.disconnect();
    }
}
5
  • What do you mean with 'transport'?
    – Thilo
    Commented Feb 10, 2014 at 15:45
  • Sorry, that should have been HTTP_TRANSPORT, I've edited the answer.
    – Tombart
    Commented Feb 10, 2014 at 15:57
  • why is HttpResponse not AutoClosable? What is the difference from this and to working with Apache's CloseableHttpClient? Commented May 12, 2016 at 23:57
  • The benefit is the API, which makes it personal preference really. Google's library uses Apache's library internally. That said, I like Google's lib. Commented Jun 24, 2016 at 16:53
  • Simple or complex requests doesn't matter, readability is the king.
    – Johan
    Commented Aug 16, 2023 at 2:17
15

This will help you. Don't forget to add the JAR HttpClient.jar to the classpath.

import java.io.FileOutputStream;
import java.io.IOException;

import org.apache.commons.httpclient.HttpClient;
import org.apache.commons.httpclient.HttpStatus;
import org.apache.commons.httpclient.NameValuePair;
import org.apache.commons.httpclient.methods.PostMethod;

public class MainSendRequest {

     static String url =
         "http://localhost:8080/HttpRequestSample/RequestSend.jsp";

    public static void main(String[] args) {

        //Instantiate an HttpClient
        HttpClient client = new HttpClient();

        //Instantiate a GET HTTP method
        PostMethod method = new PostMethod(url);
        method.setRequestHeader("Content-type",
                "text/xml; charset=ISO-8859-1");

        //Define name-value pairs to set into the QueryString
        NameValuePair nvp1= new NameValuePair("firstName","fname");
        NameValuePair nvp2= new NameValuePair("lastName","lname");
        NameValuePair nvp3= new NameValuePair("email","[email protected]");

        method.setQueryString(new NameValuePair[]{nvp1,nvp2,nvp3});

        try{
            int statusCode = client.executeMethod(method);

            System.out.println("Status Code = "+statusCode);
            System.out.println("QueryString>>> "+method.getQueryString());
            System.out.println("Status Text>>>"
                  +HttpStatus.getStatusText(statusCode));

            //Get data as a String
            System.out.println(method.getResponseBodyAsString());

            //OR as a byte array
            byte [] res  = method.getResponseBody();

            //write to file
            FileOutputStream fos= new FileOutputStream("donepage.html");
            fos.write(res);

            //release connection
            method.releaseConnection();
        }
        catch(IOException e) {
            e.printStackTrace();
        }
    }
}
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  • 1
    Seriously, I really like Java, but what's the matter with that stupid NameValuePair list or array. Why not a simple Map<String, String>? So much boilerplate code for such simple use cases...
    – Joffrey
    Commented Sep 3, 2014 at 11:59
  • 6
    @Joffrey Maps by definition have 1 key per value, means: A map cannot contain duplicate keys ! But HTTP Parameters can have duplicate keys.
    – Ben
    Commented Dec 26, 2016 at 20:47
14

You may use Socket for this like

String host = "www.yourhost.com";
Socket socket = new Socket(host, 80);
String request = "GET / HTTP/1.0\r\n\r\n";
OutputStream os = socket.getOutputStream();
os.write(request.getBytes());
os.flush();

InputStream is = socket.getInputStream();
int ch;
while( (ch=is.read())!= -1)
    System.out.print((char)ch);
socket.close();    
3
  • @laksys why it should be \r\n instead of \n? Commented Sep 16, 2016 at 6:44
  • @CuriousGuy look at this link programmers.stackexchange.com/questions/29075/…
    – laksys
    Commented Sep 18, 2016 at 1:16
  • 3
    It seems to be even easier and more straight forward than the other solutions. Java makes things more complicated than it should be.
    – SwiftMango
    Commented Jun 18, 2018 at 14:11
11

If you are using Java 11 or newer (except on Android), instead of the legacy HttpUrlConnection class, you can use Java 11 new HTTP Client API.

An example GET request:

var uri = URI.create("https://httpbin.org/get?age=26&isHappy=true");
var client = HttpClient.newHttpClient();
var request = HttpRequest
        .newBuilder()
        .uri(uri)
        .header("accept", "application/json")
        .GET()
        .build();
var response = client.send(request, HttpResponse.BodyHandlers.ofString());
System.out.println(response.statusCode());
System.out.println(response.body());

The same request executed asynchronously:

var responseAsync = client
        .sendAsync(request, HttpResponse.BodyHandlers.ofString())
        .thenApply(HttpResponse::body)
        .thenAccept(System.out::println);
// responseAsync.join(); // Wait for completion

An example POST request:

var request = HttpRequest
        .newBuilder()
        .uri(uri)
        .version(HttpClient.Version.HTTP_2)
        .timeout(Duration.ofMinutes(1))
        .header("Content-Type", "application/json")
        .header("Authorization", "Bearer fake")
        .POST(BodyPublishers.ofString("{ title: 'This is cool' }"))
        .build();
var response = client.send(request, HttpResponse.BodyHandlers.ofString());

For sending form data as multipart (multipart/form-data) or url-encoded (application/x-www-form-urlencoded) format, see this solution.

See this article for examples and more information about HTTP Client API.

For Java standard library HTTP server, see this post.

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7

There's a great link about sending a POST request here by Example Depot::

try {
    // Construct data
    String data = URLEncoder.encode("key1", "UTF-8") + "=" + URLEncoder.encode("value1", "UTF-8");
    data += "&" + URLEncoder.encode("key2", "UTF-8") + "=" + URLEncoder.encode("value2", "UTF-8");

    // Send data
    URL url = new URL("http://hostname:80/cgi");
    URLConnection conn = url.openConnection();
    conn.setDoOutput(true);
    OutputStreamWriter wr = new OutputStreamWriter(conn.getOutputStream());
    wr.write(data);
    wr.flush();

    // Get the response
    BufferedReader rd = new BufferedReader(new InputStreamReader(conn.getInputStream()));
    String line;
    while ((line = rd.readLine()) != null) {
        // Process line...
    }
    wr.close();
    rd.close();
} catch (Exception e) {
}

If you want to send a GET request you can modify the code slightly to suit your needs. Specifically you have to add the parameters inside the constructor of the URL. Then, also comment out this wr.write(data);

One thing that's not written and you should beware of, is the timeouts. Especially if you want to use it in WebServices you have to set timeouts, otherwise the above code will wait indefinitely or for a very long time at least and it's something presumably you don't want.

Timeouts are set like this conn.setReadTimeout(2000); the input parameter is in milliseconds

0

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