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I'm trying to refactor some code in the following pattern:

// from
object1.foo(object2).bar() ;

// to
fooBar(object1, object2) ;

where

  • object1 is a subtype of SuperClass
  • object2 is a String
  • fooBar is in a utilities class which needs to be imported

For context, the change is due to foo() returning null in some cases, which leads to NullPointerExceptions when bar() is called.
fooBar() first checks if null would be returned by foo(), and if so returns a default value, else calls bar() and returns that.

I'm using Eclipse, and I'm wondering if there is a good way to do this, instead of manually changing every occurrence using regex in a File Search or something.

EDIT - more info in response to comments:

I do not have control over the implementation of foo().

Regarding object1 being a subclass of SuperClass:

//in some cases this happens
SuperClass object1 = new SuperClass(/*whatever*/) ;

//in other cases this happens
ChildClass object1 = new ChildClass (/*whatever*/) ;

I though I should mention it, as it might affect how to search for object1.

A [maybe] clearer version of before and after code:

//before
Object result = object1.foo("a string").bar() ;
//NullPointerException if foo() returns null! :(

//after
Object result = fooBar(object1, "a string") ;

Meanwhile, in a separate utility class, there exists:

public static Object fooBar(SuperClass obj, String str) {
    Object result = DEFAULT_RESULT ;

    if (obj != null && str != null && obj.fooAble(str)) {
        result = obj.foo(str).bar() ;
    }

    return result ;
}
share|improve this question
    
You put one foo for every object vs one foobar for all objects? Certainly decreases memory needed. At least 4 bytes per object. –  huseyin tugrul buyukisik Jul 10 '13 at 17:42
    
In some occurrences in the code object1's type is SuperClass; in others, object1's type is explicitly ChildClass, a sub-class of SuperType. –  bosticko Jul 10 '13 at 17:43
    
Do you have control over the implementation of foo? It would be easier to just have it never return null -- instead return a default instance for which bar() just returns the default value. –  Dathan Jul 10 '13 at 17:48
    
I have added more info in response to your comments. Thanks! –  bosticko Jul 10 '13 at 17:58
    
@huseyintugrulbuyukisik I'm not sure what you mean. If you mean changing the implementation of foo(), I cannot. If you mean doing a null check each time, I'm trying to minimize code duplication by using a utility method. –  bosticko Jul 10 '13 at 18:03

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