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This doesn't compile and gives the following error : Illegal start of expression. Why?

public static AppConfig getInstance() {
        return mConfig != null ? mConfig : (throw new RuntimeException("error"));
    }
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3  
because throw is not an expression –  Jan Dvorak Dec 15 '12 at 11:41
    
"return (throw new RuntimeException("error"));" - you can't return a throw new exception() –  Peter Rasmussen Dec 15 '12 at 11:43
    
The Null Object pattern is worth mentioning here. –  Ajay George Dec 15 '12 at 12:01

3 Answers 3

up vote 2 down vote accepted

This is because a ternary operator in java takes the form expression ? expression : expression, and you are giving a statement as the final part. This doesn't make sense as a statement doesn't give a value, while expressions do. What is Java meant to do when it finds the condition to be false and tries to give the second value? There is no value.

The ternary operator is designed to allow you to quickly make a choice between two variables without using a full if statement - that isn't what you are trying to do, so don't use it, the best solution is simply:

public static AppConfig getInstance() {
    if (mConfig != null) {
        return mConfig;
    } else {
        throw new RuntimeException("error");
    }
}
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You may write an utility method

/** Always throws {@link RuntimeException} with the given message */
public static <T> T throwException(String msg)
{
    throw new RuntimeException(msg);
}

And use it like this:

public static AppConfig getInstance() 
{
    return mConfig != null ? mConfig : Util.<AppConfig> throwException("error"));
}
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You are trying to return a throw new RuntimeException("error"). That is why you are getting error. Because in true case you are returning AppConfig and in false case you are returning exception.

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