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I am trying to figure out how to pass multiple parameters in a URL. I want to pass latitude and longitude from my android class to a java servlet. How can I do that?

URL url;
double lat=touchedPoint.getLatitudeE6() / 1E6;
double lon=touchedPoint.getLongitudeE6() / 1E6;
url = new URL("http://10.0.2.2:8080/HelloServlet/PDRS?param1="+lat+lon);

In this case output (written to file) is 28.53438677.472097. This is working but I want to pass latitude and longitude in two separate parameters so that my work at server side is reduced. If it is not possible how can I at least add a space between lat & lon so that I can use tokenizer class to get my latitude and longitude. I tried following line but to no avail.

    url = new URL("http://10.0.2.2:8080/HelloServlet/PDRS?param1="+lat+" "+lon);
output- Nothing is written to file
        url = new URL("http://10.0.2.2:8080/HelloServlet/PDRS?param1="+lat+"&?param2="+lon);
output- 28.534386 (Only Latitude)
        url = new URL("http://10.0.2.2:8080/HelloServlet/PDRS?param1="+lat+"?param2="+lon);
output- 28.532577?param2=77.502996

My servlet code is as follows:

req.setCharacterEncoding("UTF-8");
resp.setCharacterEncoding("UTF-8");
final String par1 =  req.getParameter("param1");
final String par2 = req.getParameter("param2");
FileWriter fstream = new FileWriter("C:\\Users\\Hitchhiker\\Desktop\\out2.txt");
BufferedWriter out = new BufferedWriter(fstream);
out.write(par1);
out.append(par2);
out.close();

Also I wanted to the know is this the most safe and secured way to pass the data from android device to server.

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should be &param2 instead of ?param2 –  xandy Jun 8 '12 at 5:48
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2 Answers 2

up vote 9 down vote accepted

This

url = new URL("http://10.0.2.2:8080/HelloServlet/PDRS?param1="+lat+"&param2="+lon);

must work. For whatever strange reason, you need ? before the first parameter and & before the following ones.

Using a compound parameter like

url = new URL("http://10.0.2.2:8080/HelloServlet/PDRS?param1="+lat+"_"+lon);

would work, too, but is surely not nice. You can't use a space there as it's prohibited in an URL, but you could encode it as %20 (but this is even worse style).

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Thanks, worked like a charm. :) Could you also please answer my last question that is this most secured way to do this? The application I am developing is going to be deployed on market so its necessary that it's secured. –  rishiag Jun 8 '12 at 6:06
    
Concerning security, the answer surely depends on what kind of security you need. If you want to prevent unauthorized use of you app, you might be out of lock. For secure communication, HTTPS is usually the way to go. On the client side you only need to add an "s", on the server side you need a private key and a certificate signed by a CA. Or you might run your own, which is a bit more work. However... this is a different question, post it. –  maaartinus Jun 8 '12 at 6:20
2  
It's not a strange reason. The ? is not part of the query string. It is just the separator character between the request URI and the request query string. The query string parameter pairs in turn needs the & as separator character. The query string parameter name and value pair in turn needs the = as separator character. Spaces in query strings should by the way be encoded as +. The %20 is only applicable on the request URI part. You can use URLEncoder#encode() to encode query string components. See also stackoverflow.com/questions/2793150 –  BalusC Jun 8 '12 at 18:52
    
I see, but something?a=1?b=2 would be easier to write and to parse; there's no logical reason for using & instead of ? as the separator. AFAIK + is just a convenient shortcut for ` ` and URLDecoder accepts %20 as well. –  maaartinus Jun 8 '12 at 19:06
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I do not know much about Java but URL query arguments should be separated by "&", not "?"

http://tools.ietf.org/html/rfc3986 is good place for reference using "sub-delim" as keyword. http://en.wikipedia.org/wiki/Query_string is another good source.

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