Encoding an URL sent to a server (not in query) - java

I need to be testing my server for several URLs daily since these URLs are updated by my users - and this will be dine in Java. However, these URLs contains strange characters (like the german umlaut). Basicly what I am doing is:
for every URL in the list to check
URL u = new URL(the_url);
u.openConnection(..);
// read the content and handle it
Now, what Ive found is that org.apache.commons.codec.net.URLCodec is fine for encoding string to paste into the QueryString, it is not as suitable to encode strange URLs into their hex counterparts. Here are some examples of URLs:
http:// www.example com/u/überraum-03/
http:// www.example com/u/são-paulo-dude/
http:// www.example com/u/håkon-hellström/
The desired result for the first would be;
http:// www.example com/u/%c3%9berraum-03/
Are there any library in the Apache Commons or java itself, to convert special character in the ACTUAL url (not querystring - and therefore not replace the same kind of characters) ?
Thank you for your time.
Edited
Firefox translates "yr.no/place/Norway/Nordland/Moskenes/Å/data.html"; into "yr.no/place/Norway/Nordland/Moskenes/%C3%85/data.html" (try this by entering the first URL, press enter, then copy the url into a document). It is this effect that I am looking for - since this is the actual translation. What is most likely happening is either FF knows Å is a bad thing, it tries multiple versions or it accepts the servers "Location" header; either way - there is a tranformation from "Å" to "%C3%85" on only a subset of the URL. This is the function we need.
Edited
I just verified that the code given by commentor does not work sadly. As an example, try this:
try{
String urlStr = "http://www.yr.no/place/Norway/Nordland/Moskenes/Å/data.html";
URL u=new URL(urlStr);
URI uri = new URI(u.getProtocol(),
u.getUserInfo(), u.getHost(), u.getPort(),
u.getPath(), u.getQuery(),
null); // removing ref
URL urlObj = uri.toURL();
HttpURLConnection connection = (HttpURLConnection) urlObj.openConnection();
connection.setInstanceFollowRedirects(false);
connection.connect();
for (int i=0;i<connection.getHeaderFields().size();i++)
System.out.println(connection.getHeaderFieldKey(i)+": "+connection.getHeaderField(i));
System.exit(0);
}catch(Exception e){e.printStackTrace();};
Will yield a 404 error - strangely enough the encoded part does also not work.

If you need a URL that is a valid URI (RFC 2396 compliant) you can create one like this in Java
String urlString = "http://www.example.com/u/håkon-hellström/";
URL url = new URL(urlString);
URI uri = new URI(url.getProtocol(),url.getAuthority(), url.getPath(), url.getQuery(), url.getRef());
url = new URL(uri.toASCIIString());
That being said all three sample strings you provided are RFC 2396 compliant and do not need to be encoded. I am assuming the spaces in the authority part of the URLs you provided are typos.
EDIT:
I updated the code block above. By using URI.toASCIIString() you can limit the resulting URI to only US-ASCII characters (other characters are encoded). The resulting string can then be used to create a new, valid URL.
http://www.example.com/u/håkon-hellström/
changes to
http://www.example.com/u/h%C3%A5kon-hellstr%C3%B6m/

Related

How to use a Url having special characters in HttpGet(URL) in java

I am using HttpClient, its working fine for any url having no special characters.
But when i send the url having special characters it gets failed.
I tried URL Api but it is deprecated.
Tried with utf-8 but also did not work.
Can you suggest me a simple way of making the HttpGet call for below url
http://example.com/?status!~^(notdeleted|presesnt)$&env~check_test
String link = "http://example.com/?"
+ URLEncoder.encode("status!~^(notdeleted|presesnt)$&env~check_test", "UTF-8");
Maybe in two parts around & if that is meant as the next URL parameter.

Need to replace spaces inside string with percentual symbol Java

I need to replace the spaces inside a string with the % symbol but I'm having some issues, what I tried is:
imageUrl = imageUrl.replace(' ', "%20");
But It gives me an error in the replace function.
Then:
imageUrl = imageUrl.replace(' ', "%%20");
But It still gives me an error in the replace function.
The I tried with the unicode symbol:
imageUrl = imageUrl.replace(' ', (char) U+0025 + "20");
But it still gives error.
Is there an easy way to do it?
String.replace(String, String) is the method you want.
replace
imageUrl.replace(' ', "%");
with
imageUrl.replace(" ", "%");
System.out.println("This is working".replace(" ", "%"));
I suggest you to use a URL Encoder for Encoding Strings in java.
String searchQuery = "list of banks in the world";
String url = "http://mypage.com/pages?q=" + URLEncoder.encode(searchQuery, "UTF-8");
I've ran into issues like this in the past with certain frameworks. I don't have enough of your code to know for sure, but what might be happening is whatever http framework you are using, in my case it was spring, is encoding the URL again. I spent a few days trying to solve a similar problem where I thought that string replace and the URI.builder() was broken. What ended up being the problem was that my http framework had taken my encoded url, and encoded it again. that means that any place it saw a "%20", it would see the '%' charictor and switch it out for '%' http code, "%25", resulting in. "%2520". The request would then fail because %2520 didn't translate into the space my server was expecting. While the issue apeared to be one of my encoding not working, it was really an issue of encoding too many times. I have an example from some working code in one of my projects below
//the Url of the server
String fullUrl = "http://myapiserver.com/path/";
//The parameter to append. contains a space that will need to be encoded
String param 1 = "parameter 1"
//Use Uri.Builder to append parameter
Uri.Builder uriBuilder = Uri.parse(fullUrl).buildUpon();
uriBuilder.appendQueryParameter("parameter1",param1);
/* Below is where it is important to understand how your
http framework handles unencoded url. In my case, which is Spring
framework, the urls are encoded when performing requests.
The result is that a url that is already encoded will be
encoded twice. For instance, if you're url is
"http://myapiserver.com/path?parameter1=param 1"
and it needs to be read by the server as
"http://myapiserver.com/path?parameter1=param%201"
it makes sense to encode the url using URI.builder().append, or any valid
solutions listed in other posts. However, If the framework is already
encoding your url, then it is likely to run into the issue where you
accidently encode the url twice: Once when you are preparing the URL to be
sent, and once again when you are sending the message through the framework.
this results in sending a url that looks like
"http://myapiserver.com/path?parameter1=param%25201"
where the '%' in "%20" was replaced with "%25", http's representation of '%'
when what you wanted was
"http://myapiserver.com/path?parameter1=param%201"
this can be a difficult bug to squash because you can copy the url in the
debugger prior to it being sent and paste it into a tool like fiddler and
have the fiddler request work but the program request fail.
since my http framework was already encoding the urls, I had to unencode the
urls after appending the parameters so they would only be encoded once.
I'm not saying it's the most gracefull solution, but the code works.
*/
String finalUrl = uriBuilder.build().toString().replace("%2F","/")
.replace("%3A", ":").replace("%20", " ");
//Call the server and ask for the menu. the Menu is saved to a string
//rest.GET() uses spring framework. The url is encoded again as
part of the framework.
menuStringFromIoms = rest.GET(finalUrl);
There is likely a more graceful way to keep a url from encoding twice. I hope this example helps point you on the right direction or eliminate a possability. Good luck.
Try this:
imageUrl = imageUrl.replaceAll(" ", "%20");
Replace spaces is not enought, try this
url = java.net.URLEncoder.encode(url, "UTF-8");

URL encoding + sign

I have an application with + sign in its name (eg. DB+JSP.jws).
I get an error when trying to create connection as java encodes url + with spaces and hence cannot add the connection to DB JSP/../META-INF/connection.xml (File not found exception).
Any way to circumvent this only by using URLEncoder.encode() and URLDecoder.decode() methods?
You need to encode the URL correctly since '+' is a reserved character in a URL and can only be used in the correct context otherwise needs to be encoded with %2B.
Your URL string would encoded as "DB%2BJSP.jws".
So if you defined the following:
String url = URLEncoder.encode("DB+JSP.jws");
System.out.println(url);
The output would be the same:
DB%2BJSP.jws
You can prepend "http://localhost/" to the encoded URL as you need to.

Encode URL query parameters

How can I encode URL query parameter values? I need to replace spaces with %20, accents, non-ASCII characters etc.
I tried to use URLEncoder but it also encodes / character and if I give a string encoded with URLEncoder to the URL constructor I get a MalformedURLException (no protocol).
URLEncoder has a very misleading name. It is according to the Javadocs used encode form parameters using MIME type application/x-www-form-urlencoded.
With this said it can be used to encode e.g., query parameters. For instance if a parameter looks like &/?# its encoded equivalent can be used as:
String url = "http://host.com/?key=" + URLEncoder.encode("&/?#");
Unless you have those special needs the URL javadocs suggests using new URI(..).toURL which performs URI encoding according to RFC2396.
The recommended way to manage the encoding and decoding of URLs is to use URI
The following sample
new URI("http", "host.com", "/path/", "key=| ?/#ä", "fragment").toURL();
produces the result http://host.com/path/?key=%7C%20?/%23ä#fragment. Note how characters such as ?&/ are not encoded.
For further information, see the posts HTTP URL Address Encoding in Java or how to encode URL to avoid special characters in java.
EDIT
Since your input is a string URL, using one of the parameterized constructor of URI will not help you. Neither can you use new URI(strUrl) directly since it doesn't quote URL parameters.
So at this stage we must use a trick to get what you want:
public URL parseUrl(String s) throws Exception {
URL u = new URL(s);
return new URI(
u.getProtocol(),
u.getAuthority(),
u.getPath(),
u.getQuery(),
u.getRef()).
toURL();
}
Before you can use this routine you have to sanitize your string to ensure it represents an absolute URL. I see two approaches to this:
Guessing. Prepend http:// to the string unless it's already present.
Construct the URI from a context using new URL(URL context, String spec)
So what you're saying is that you want to encode part of your URL but not the whole thing. Sounds to me like you'll have to break it up into parts, pass the ones that you want encoded through the encoder, and re-assemble it to get your whole URL.

Invalid URI with Chinese characters (Java)

Having trouble setting up a URL connection with Chinese characters in the URL. It works with Latin characters:
String xstr = "维也纳恩斯特哈佩尔球场" ;
URI uri = new URI("http","ajax.googleapis.com","/ajax/services/language/detect","v=1.0&q="+xstr,null);
URL url = uri.toURL();
URLConnection connection = url.openConnection();
InputStream is = connection.getInputStream() ;
The getInputStream() call results in:
java.lang.IllegalArgumentException: Invalid uri 'http://ajax.googleapis.com/ajax/services/language/detect?v=1.0&q=???????????': Invalid query
The problem is caused by the fact that URI.toURL() doesn't percent-encode non-ASCII characters. Use the following instead:
URL url = new URL(uri.toASCIIString());
axtavt's answer above saved me from insanity, thanks! Just one comment (I could not figure out how to comment below the answer:)
If you start with a URL, you need to encode quotes before you build the URI:
String s = "your_url?with=\"quotes\"";
URI su = new URI (s.replaceAll("\"", "%22");
URL ur = new URL( su.toASCIIString());
I think it is related to the "UTF-8" charset. Have a look at this topic to learn more and also this chinese in java
Per the URI RFC (see section 2.4), non-US-ASCII characters aren't valid in a URI. You must encode them.

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