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I have Mtx that does some calculations between matrices

Mtx M1(rows1,cols1,1); //instantiate data members and fill the matrix with 1s
Mtx M2(rows2,cols2,2); //instantiate data members and fill the matrix with 2s

Mtx M3(rows3,cols3,0); //instantiate data members and fill the matrix with 0s


M3 += M1; //+= is overloaded - First M3
M3 -= M2; //-= is overloaded - Second M3

The first M3 takes M3 that filled with zeros and adds it to M1 and the answer will be assign to M3. I have no problem here.

The problem is with the second M3! It doesn't subtract M3 that filled with zeros, rather It uses the result from the previous operation and subtracts it from M2.

How can I make M3 static that keeps its values? Is it something related to static object? I hope you got my point!

Your help is appreciated...

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Is it a typo that you don't declare M2? Please show the code of the operator+=() –  steffen Jul 25 '12 at 5:21
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And... please tell us what you expect M1, M2 and M3 to be after the operations. –  steffen Jul 25 '12 at 5:22
    
can you provide some more code? –  sanghavi7 Jul 25 '12 at 5:23
    
@steffen M3 = M3 + M1 ---> to a new value of M3. That new value will be used in M3 = M3 - M1 which I don't that to be. –  Jack in the Box Jul 25 '12 at 5:36
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2 Answers 2

This is because you're using the += operator. You're assigning new values to the object on the left.

When you use += you are changing the value of M3.

What you want is this:

Mtx M4 = M3 + M1;
Mtx M5 = M3 - M2;

Or even better:

const static Mtx ZERO_MTX(rows3,cols3,0);
Mtx M4 = ZERO_MTX + M1;
Mtx M5 = ZERO_MTX - M2;
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@JackintheBox cout doesn't change what happens to M3. –  juanchopanza Jul 25 '12 at 5:39
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There is only one M3. There is no first, or second one. They are the same object so what happens is what would be expected.

How can I make M3 static that keeps its values?

It is difficult to understand what behaviour you actually want, but I doubt static is what you're after. A simple way to make sure you cannot change the values, then declare M3 as const:

const Mtx M3(rows, cols, 0);

Now you will only be able to perform non-mutating operations on M3 (and I suspect @Aesthete has guessed what you want and suggested a solution). Or, if all you want is to cout the result of an operation, then

std::cout << M3 + M1 << "\n";
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If I declare M3 as const, that means I can't do M3 += M1, right? –  Jack in the Box Jul 25 '12 at 5:47
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@JackintheBox right, so you get the compiler to stop you from doing something you don't want to do. Instead, you can do M4 = M3 + M1 and so on, as suggested in the other answer. –  juanchopanza Jul 25 '12 at 5:49
    
@JackintheBox by the way, if you are just interested in a cout, you can just cout the result of the + operation without assigning it to anything. –  juanchopanza Jul 25 '12 at 5:56
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