50

When I send a normal HTTP request via a socket, the server does not respond with an OK response. I copied the HTTP header from Firefox. Here is the code:

Socket s = new Socket(InetAddress.getByName("stackoverflow.com"), 80);
PrintWriter pw = new PrintWriter(s.getOutputStream());
pw.print("GET / HTTP/1.1");
pw.print("Host: stackoverflow.com");
pw.flush();
BufferedReader br = new BufferedReader(new InputStreamReader(s.getInputStream()));
String t;
while((t = br.readLine()) != null) System.out.println(t);
br.close();

However, here is the response I received:

HTTP/1.0 408 Request Time-out
Cache-Control: no-cache
Connection: close
Content-Type: text/html

<html><body><h1>408 Request Time-out</h1>
Your browser didn't send a complete request in time.
</body></html>

I know that I can do this by using URL.openStream(), but why doesn't the server identify the HTTP request when I send it manually?

  • 3
    I think you have to send an additional newline after all your headers; pw.println();, and use println() for the headers as well? – Torious May 20 '12 at 13:12
  • @Torious Yeah, that's the problem. Thanks :) – Eng.Fouad May 20 '12 at 13:15
  • 1
    And the newlines must be of the form \r\n for HTTP. – Marquis of Lorne May 21 '12 at 1:56
  • Well, as I try your code it doesn't print anything. – user6538026 Jul 29 '16 at 3:48
48
0

Two things:

  1. You should use println instead of print to print your entries to separate lines.
  2. HTTP request should end in a blank line (link). So add pw.println("");
| improve this answer | |
  • Perfect. Adding the blank line is important! – asgs Dec 31 '14 at 12:40
  • 3
    This only works on Windows machines. On linux, it will only print LF instead of CRLF which is needed for the HTTP spec. See the other answers. – Xiv Aug 5 '15 at 17:20
  • why does it give and HTTP/1.1 400 Bad Request when I changed the host to pw.println("Host: httpstackoverflow.com/questions/10673684/send-http-request-manually-via-socket"); – beginner Nov 3 '16 at 15:24
22
0

You don't follow the HTTP RFC.

  • Header lines are always ended by a CR LF (i.e. 0x0d plus 0x0a).
  • The header ends after the first double-newline. In your case, you don't include the trailing newline so the server doesn't recognize the end of the request headers.

Generally, you should always try to use existing HTTP libraries. Although HTTP seems to be a simple protocol (and it is compared to others), it has rather strict syntactic and semantic rules. If you try to implement this yourself, you should have read and understand the relevant parts of RFC 2616 (and related).

Sadly, there are already too many crappy HTTP implementations not following the standards out there making the life for everyone miserable. Save yourself the hassle and use the HTTP libraries of your chosen language.

| improve this answer | |
9
0

The correct fix which really works and it is cross platform:

    pw.print("GET / HTTP/1.1\r\n");
    pw.print("Host: stackoverflow.com\r\n\r\n");
| improve this answer | |
  • I used Host : instead of Host: and all getting Bad Request (400) and it took a day to realize that, it really sucks. – user6538026 Jul 29 '16 at 6:08
4
0

The following fix, as mentioned by the previous answers, solves the problem;

pw.print("GET / HTTP/1.1\n\r\n");
pw.print("Host: stackoverflow.com\n\r\n");
| improve this answer | |

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