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I need to decode a URI that contains a query string; expected input/output behavior is something like the following:

abstract class URIParser
{       
    /** example input: 
      * something?alias=pos&FirstName=Foo+A%26B%3DC&LastName=Bar */
    URIParser(String input) { ... }
    /** should return "something" for the example input */
    public String getPath(); 
    /** should return a map 
      * {alias: "pos", FirstName: "Foo+A&B=C", LastName: "Bar"} */
    public Map<String,String> getQuery();
}

I've tried using java.net.URI, but it seems to decode the query string so in the above example I'm left with "alias=pos&FirstName=Foo+A&B=C&LastName=Bar" so there is ambiguity whether a "&" is a query separator or is a character in a query component.

edit: just tried URI.getRawQuery() and it doesn't do the encoding, so I can split the query string with a "&", but then what do I do? Javascript has decodeURIComponent, I can't seem to find the corresponding method in Java.

Any suggestions? I would prefer not to use any new libraries.

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Since you don't want to introduce new libs, may I ask in which environment you receive these URIs? –  stacker Apr 13 '10 at 19:39

2 Answers 2

up vote 6 down vote accepted

See class URLDecoder

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2  
It should be noted that you should identify the query part and split the parameters into key/value pairs prior to using this, but it'll decode percent-encoded values to the given encoding (see UTF-8) according to the HTML application/x-www-form-urlencoded spec. –  McDowell Apr 13 '10 at 22:29

Use

URLDecoder.decode(proxyRequestParam.replace("+", "%2B"), "UTF-8").replace("%2B", "+")

to simulate decodeURIComponent. Java's URLDecoder decodes the plus sign to a space, which is not what you want, therefore you need the replace statements.

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This should be the accepted answer. URIs treat the + symbol as it is, whereas spaces are encoded into %20. URLDecoder is not compatible with URI encoded strings as it will decode both + and %20 into a space. –  Kosta Apr 17 '12 at 9:15
1  
What's the point of the second replace? After the decode there will no longer be any instances of "%2B" in the string since they will have all been replaced with "+", so there will be nothing for the replace to match. –  David Conrad Aug 16 '12 at 19:45
2  
The point is that you don't want encoded characters in a decoded string. Since Java does not decode the +-sign as JavaScript does I first encode the +-sign so that it won't be touched by Java and then decode the %2B into +-sign. To be short: if I wouldn't do this the decoded URL would not contain the original +-signs (since Java would have lost them in the decoding phase). –  janb Aug 21 '12 at 10:05
1  
@janb - I think the second replace is unnecessary, because the decode method will already convert any %2B it finds into +. The first replace is necessary to stop it converting + into spaces. –  Steve Powell Sep 11 '13 at 10:38

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