Why is the 1st one returning null, while the 2nd one is returning mail.yahoo.com?

Isn't this weird? If not, what's the logic behind this behavior?

Is the underscore the culprit? Why?

public static void main(String[] args) throws Exception {
    java.net.URI uri = new java.net.URI("http://broken_arrow.huntingtonhelps.com");
    String host = uri.getHost();
    System.out.println("Host = [" + host + "].");

    uri = new java.net.URI("http://mail.yahoo.com");
    host = uri.getHost();
    System.out.println("Host = [" + host + "].");
}
  • 5
  • @hsz I just tried it on Linux too with JDK 1.6.0_15. I can reproduce it there too. – peter.petrov Sep 23 '14 at 11:06
  • @hsz And I can reproduce this on my local Windows which had JDK 1.6.0_45. – peter.petrov Sep 23 '14 at 11:07
  • So... is this fixed in Java 7 or in Java 8? – peter.petrov Sep 23 '14 at 11:07
  • Host = [stackoverflow.com]. Host = [mail.yahoo.com]. i got this output when i execute your code and changing first url to stackoverflow.com... – GvSharma Sep 23 '14 at 11:15
up vote 6 down vote accepted

As mentioned in comments by @hsz it is known bug.

But, let's debug and look inside sources of URI class. The problem is inside method:

private int parseHostname(int start, int n):

parsing first URI fails at lines if ((p < n) && !at(p, n, ':')) fail("Illegal character in hostname", p);

this is because _ symbol isn't foreseed inside scan block, it allows only alphas, digits and -symbol (L_ALPHANUM, H_ALPHANUM, L_DASH and H_DASH).

And yes, this is not fixed yet in Java 7.

  • 5
    In Java 8 this is still unresolved – Dmitry Ginzburg Sep 23 '14 at 11:14

It's because of underscore in base uri. Just Remove underscore to check that out.It's working.

Like given below :

public static void main(String[] args) throws Exception {
java.net.URI uri = new java.net.URI("http://brokenarrow.huntingtonhelps.com");
String host = uri.getHost();
System.out.println("Host = [" + host + "].");

uri = new java.net.URI("http://mail.yahoo.com");
host = uri.getHost();
System.out.println("Host = [" + host + "].");

}

  • I noticed this. The question was if this is expected or not. Turned out to be a bug in the Java API code. – peter.petrov Sep 23 '14 at 11:27

I don't think it's a bug in Java, I think Java is parsing hostnames correctly according to the spec, there are good explanations of the spec here: http://en.wikipedia.org/wiki/Hostname#Restrictions_on_valid_host_names and here: http://www.netregister.biz/faqit.htm#1

Specifically hostnames MUST NOT contain underscores.

As mentioned, it is a known JVM bug. Although, if you want to do an HTTP request to such a host, you still can try to use a workaround. The main idea is to construct request basing on the IP, not on the 'wrong' hostname. But in that case you also need to add "Host" header to the request, with the correct (original) hostname.

1: Cut hostname from the URL (it's a rough example, you can use some more smart way):

int n = url.indexOf("://");  
if (n > 0) { n += 3; } else { n = 0; }  
int m = url.indexOf(":", n);
int k = url.indexOf("/", n);  
if (-1 == m) { m = k; }  
String hostHeader;  
if (k > -1) {  
  hostHeader = url.substring(n, k);  
} else {  
  hostHeader = url.substring(n);  
}
String hostname;  
if (m > -1) {  
  hostname = url.substring(n, m);  
} else {  
  hostname = url.substring(n);  
}  

2: Get hostname's IP:

String IP = InetAddress.getByName(hostname).getHostAddress();

3: Construct new URL basing on the IP:

String newURL = url.substring(0, n) + IP + url.substring(m);

4: Now use an HTTP library for preparing request on the new URL (pseudocode):

HttpRequest req = ApacheHTTP.get(newUrl);

5: And now you should add "Host" header with the correct (original) hostname:

req.addHeader("Host", hostHeader);

6: Now you can do the request (pseudocode):

String resp = req.getResponse().asString();

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