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I need to convert the following java method to scala and am having difficulty because scala doesn't allow you to return values in the middle of methods. Could someone give me a hand or at least a start on how to convert this:

public boolean isAllowed(String method, String path, Map<String,String> apiUrlMap) {

    if (apiUrlMap != null) {
        Set<Entry<String, String>> apiSet = apiUrlMap.entrySet();

        for (Entry<String, String> apiUrl : apiSet) {
            String aUrl = apiUrl.getKey();
            String aMeth = apiUrl.getValue();
            if (aUrl.equals("#")) {
                if (aMeth.contains(method)) {
                    return true;
                }
            }

            if (aUrl.endsWith("#")) {
                String testUrl = aUrl.replaceFirst("/#", "");
                if (path.startsWith(testUrl)) {
                    if (aMeth.contains(method)) {
                        return true;
                    }
                }
            }

            if (aUrl.equals(path) || path.equals(aUrl +"/")) {
                if (aMeth.contains(method)) {
                    return true;
                }
            }

        }
    }

    return false;
}
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"... because scala doesn't allow you to return values in the middle of methods" - Why do you think that? The return keyword also exists in Scala. –  Jesper Mar 26 '12 at 17:14
    
I guess it does, just started learning scala and didn't see any examples with actual return statements. Granted I bet there is a better way to do this besides this very imperative java way? –  chiappone Mar 26 '12 at 17:18
    
If you use IntelliJ, you can just paste the Java code in and it'll convert it to Scala. Unidiomatic Scala, but it should work and you can use it as a basis. –  Luigi Plinge Mar 27 '12 at 2:52

3 Answers 3

up vote 4 down vote accepted

Having a quick go at it (not tested)

def isAllowed(method:String, path:String, apiUrlMap:Map[String,String]) = 
  apiUrlMap exists { case (aUrl, aMeth) => {
        aUrl.equals("#") ||  
        aUrl.endsWith("#") && path.startsWith(aUrl.replaceFirst("/#", "")) || 
        (aUrl.equals(path) || path.equals(aUrl +"/"))
      } && aMeth.contains(method)
    }
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Nice. Is the case used just to get meaningful names on Pair._1 and Pair._2, or does it perform some other function also? –  Ed Staub Mar 27 '12 at 1:01
    
@Ed the case is just used to deconstruct (pattern match) the pair, no other function –  hbatista Mar 27 '12 at 11:25

Scala does let you return, it's just not recommended style.

For example, the following works fine:

def f(x: Int): String = {
  if(x > 5)
    return "greater"
  else
    return "less"
}

One catch is that Scala requires you to have an explicit return type specified if you use the return keyword.

The better style would be to simply have the if-expression be the last expression of the method:

def f(x: Int): String = {
  if(x > 5)
    "greater"
  else
    "less"
}
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Thanks do you have an example of a scala recommended way to do this? –  chiappone Mar 26 '12 at 17:20
2  
@chiappone edited. you should try rewriting your method and just post questions if you have trouble. try to make your questions specific and avoid posting lots of code since that makes it harder to tell exactly where your issue is. –  dhg Mar 26 '12 at 17:25

The idea in scala is to use function call instead of control structure. Here is a (quickly written) example:

def isAllowed(
    method: String,
    path: String,
    apiUrlMap: Option[Map[String, String]]) =

  apiUrlMap flatMap {m =>
    m collectFirst {
      case ("#", aMeth) 
          if aMeth contains `method` =>
        true 
      case (aUrl, aMeth)
          if (aUrl endsWith "#") && 
             (path startsWith aUrl.replaceFirst("/#", "")) &&
             (aMeth contains `method`) =>
        true 
      case (`path`, aMeth)
          if (aMeth contains `method`) =>
        true 
      case (aUrl, aMeth)
          if (path == aUrl + "/") && 
             (aMeth contains `method`) =>
        true 
    }
  } getOrElse false
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