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I have a mex file (compiled in VS2010, Matlab 2010b) which accepts a variable, and change it. For example, in the mex file it looks like:

double *fp = (double *)mxGetPr (prhs[0]);
*fp = someDoubleValue;

In order to compare the Matlab implementation and the mex implementation, I make a copy of the variable before calling the mex file:

var_mex = var;
mymex (var_mex);

To my surprise, both var_mex and var change (to the same value of course), as if I created a reference to var and not a copy of it.

Is this a known issue? How can I convince Matlab to copy the variable?

EDIT

Since I suspected that this issue is a result of Matlab optimizing its memory management, I did some "do nothing" calculation on var before calling the mex file, i.e

var=var+1;
var=var-1;

and indeed it solves the problem. I would still be glad to get some information (or other suggestions) on this, if someone encountered it as well.

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2  
It appears to be by design going by this page. Perhaps you could modify the var_mex before passing it in such as multiplying it by 1. Or adding 1 then subtracting 1 in two discrete steps. –  tinman Jan 24 '12 at 10:10
    
yes, that exactly what I tried (and it worked, see my edit). –  Itamar Katz Jan 24 '12 at 10:16
2  
Have you read the Matlab documentation on Matlab's memory management? It explains this behaviour. –  tinman Jan 24 '12 at 10:38

2 Answers 2

up vote 6 down vote accepted

In MATLAB, most variables are passed around as if they are being passed by value. The notable exception to this is that instances of classes that inherit from handle are explicitly passed by reference.

There's a blog entry here which goes into some detail about this.

So, when you execute

var_mex = var;

You end up with var_mex referring to the same data as var.

When you're writing to an mxArray inside a mex function, you have great power to break things because you're given the underlying address of the data. If you modify an element of the prhs array, you might inadvertently end up modifying other variables sharing the same data. So, don't do that. In fact, the mex doc explicitly tells you not to do that.

The reason that the var + 1 trick works is that by modifying the data, you're forcing MATLAB to make a copy of the data.

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1  
"So don't do that. In fact, the mex doc explicitly tells you not to do that" +1 :) –  Jonas Jan 24 '12 at 16:41
    
Is there a specific reason the mex mechanism doesn't prevent you from changing the input variables? –  Itamar Katz Jan 24 '12 at 18:25
    
Well, the mex interface does specify that the prhs pointers are const. The only feasible way that the mex interface could guarantee that you didn't cause visible modifications to prhs would be if they were duplicated on the way in to the mex function - which would be very inefficient. –  Edric Jan 25 '12 at 7:25
    
MATLAB trusts you to wear your big boy C pants while using mex files. –  Jonathan Jan 25 '12 at 14:13
    
I would add a clarification, that Matlab does "lazy" copying. So as long as a variable doesn't get modified, any copies of it are in fact references to the original data. Once a variable is modified, then a copy gets made. Matlab's functions know when to make copies of things before modifying them, but your mex file doesn't. –  Matt Jan 25 '12 at 20:13

All variables in Matlab are passed by value.

Making any changes directly on rhs arguments in a Matlab mexfunction is not officially supported. If you are converting a Matlab function of the form A = func(A), then you are "required" to make a copy of the passed array A inside the mexfunction itself.

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3  
In the MATLAB language itself, variables are passed as if by value using copy-on-write semantics. This explains why adding the addition/subtraction 'fixes' things - the value is modified, and therefore a copy must be made. Once you're in the world of MEX files - you're on your own, and can subvert MATLAB's standard memory management to some extent. –  Edric Jan 24 '12 at 11:57
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@Edric: Why don't you expand the comment into an answer? –  Jonas Jan 24 '12 at 15:23

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