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In java, I have two Objects that addition (+) is supported on them, for example two ints or two Strings. How I can write a function to really add them without specifying the types?

note: I don't want something like C++ function templates, as two operands are just Objects, i.e. I want to implement a function add:

Object add(Object a, Object b){
    // ?
}

and then be able to do something like this:

Object a = 1, b = 2;
Object c = add(a, b);
share|improve this question
1  
You write add for supported types. –  Dave Newton Jan 25 '13 at 16:12
    
Object a = 1, b = 2; without calling constructors? –  Nikolay Kuznetsov Jan 25 '13 at 16:12
1  
what do you want the resulting object to be? What is the result of adding a string to a number? –  ryanm Jan 25 '13 at 16:13
    
@ryanm same behavior as java, e.g. "s"+2 must be "s2", however, add polymorphically returns it as Object. –  Amir Ali Akbari Jan 25 '13 at 16:15
    
Not doable without dirty custom hacks...but why would you want to do this? Why not just keep track of the actual types of the object, and use the actual + operator? –  Louis Wasserman Jan 25 '13 at 16:56

2 Answers 2

up vote 2 down vote accepted

I too require something similar so I slapped together something which hopefully returns the same type as the built-in addition operator would return (except upcasted to Object). I used the java spec to figure out the rules of type conversion, particular section 5.6.2 Binary Numeric Promotion. I haven't tested this yet:

public Object add(Object op1, Object op2){

    if( op1 instanceof String || op2 instanceof String){
        return String.valueOf(op1) + String.valueOf(op2);
    }

    if( !(op1 instanceof Number) || !(op2 instanceof Number) ){
        throw new Exception(“invalid operands for mathematical operator [+]”);
    }

    if(op1 instanceof Double || op2 instanceof Double){
        return ((Number)op1).doubleValue() + ((Number)op2).doubleValue();
    }

    if(op1 instanceof Float || op2 instanceof Float){
        return ((Number)op1).floatValue() + ((Number)op2).floatValue();
    }

    if(op1 instanceof Long || op2 instanceof Long){
        return ((Number)op1).longValue() + ((Number)op2).longValue();
    }

    return ((Number)op1).intValue() + ((Number)op2).intValue();
}

And in theory you can call this method with numerical reference types, numerical primitive types, and even Strings.

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if you just care that the parameters are "Object" types but can specify the types INSIDE the add() method you can use "instanceof"

private Object add(Object a, Object b) {
    // check if both are numbers
    if (a instanceof Number && b instanceof Number) {
        return ((Number) a).doubleValue() + ((Number) b).doubleValue();
    }

    // treat as a string ... no other java types support "+" anyway
    return a.toString() + b.toString();
}

public void testAdd()
{
    Object a = 1;
    Object b = 3;
    Object strC = "4";
    Object numResult = add(a, b);
    Object strResult = add(strC, a);
}
share|improve this answer
    
if a and b are ints, this implementation will return a double instead of a int. –  Amir Ali Akbari Jan 25 '13 at 16:39
    
yes but from your question, that is still valid since you only care that you return a working Object type. There are many number types in java. If you need it to be specific to int, you can change the checks/casts to type:Integer accordingly. –  fduso Jan 25 '13 at 17:06

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