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For debugging purposes, I would like to find a way how to automatically keep track of the changes of the variables involved in my design.

The result I would like to obtain is like the printf of the new value every time the variable is assigned, but without manually inserting all the printf.

What is the best way to do this? Thanks

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1  
The debugger can do that. Do you need it to be done in code? – jalf Dec 17 '12 at 20:44
    
Otherwise (if not the debugger method) you'd either need to make sure you used accessors, or wrap all variables so that operator= , copies and other methods of assignment triggered some output. – Caribou Dec 17 '12 at 20:47
    
Please say what IDE are you using? I know a few ways to do it in Visual Studio. – Mikhail Shcherbakov Dec 18 '12 at 8:13

Create a new class for the variables you want to monitor and define an appropriate operator= assignment operator method:

template <class T>
class MonitoredVariable
{
public:
    MonitoredVariable() {}
    MonitoredVariable(const T& value) : m_value(value) {}

    T operator T() const { return m_value; }

    const MonitoredVariable& operator = (const T& value)
    {
        printf("Variable modified\n");
        m_value = value;
        return *this;
    }
private:
    T m_value;
}

Example usage:

MoniredVariable<int> x;
x = 42;  // Will print "Variable modified"

Of course, for this to be useful, you'll have to include relevant information in the operator= implementation, and you'll also have to overload the other arithmetic assignment operators such as +=, -=, etc.

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1  
yuk to the printf :P – Caribou Dec 17 '12 at 20:51

Try to write some proxy class for them and redefine assignment operator. It colud have pointer or value semantic, but I would prefer pointer, because it's simple.

template<class T>
struct proxy
{
//add const version
  T & operator * ()
  {
    std::cout << "access" << std::endl;
    return val_;
  }

  T * operator -> ()
  {
    std::cout << "access" << std::endl;
    return &val_;
  }

  proxy<T> & operator = (T const & other)
  {
    std::cout << "access" << std::endl;
    val = other;
    return (*this);
  }
private:
   T val_;
};
share|improve this answer
    
This has mixed semantics. If you write proxy<int> i; then i = 12 and *i = 12 have the same effect. – Jon Purdy Dec 17 '12 at 21:39
    
yep, but that is the way it should be. *i = x; does assignment behind proxy =) – kassak Dec 18 '12 at 6:20

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