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I am trying to wrap a C structure in a C++ class to take advantage of memory management and such. I have mad the structure a private member and provided a public function to provide access. The return type is constant, since all functions that take the object as an argument have const in their signature.

#include <gsl/gsl_rng.h>

class GSLRand {
    gsl_rng* r_;    // see links below

public:
    GSLRand() {
        gsl_rng_env_setup();
        r_ = gsl_rng_alloc(gsl_rng_default);
    }

    ~GSLRand() {
        gsl_rng_free(r_);
    }

    const gsl_rng* rng() {
        return r_;
    }   
};

That all compiles nicely. The problem occurs when I get clever and try to add a copy constructor. Introducing it into the class like...

public:
....
    GSLRand(const GSLRand& R) {
        r_ = gsl_rng_alloc(gsl_rng_taus);
        gsl_rng_memcpy(r_, R.rng());
}
....

I get the following compiler error:

GSLRand.h: In copy constructor ‘GSLRand::GSLRand(const GSLRand&)’:
GSLRand.h:35: error: passing ‘const GSLRand’ as ‘this’ argument of ‘gsl_rng* GSLRand::rng()’ discards qualifiers

I'm using g++ on a Mac. I have tried the different variants and still can't figure out how I'm confusing the compiler (or myself!). Interestingly, I get the identical error when I remove the const specifier from rng().

Any ideas?

For documentation of the functions that are used: random number generation, the sections on "environment variables" and "copying generators."

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3 Answers 3

up vote 5 down vote accepted

Make rng() const function: const gsl_rng* rng() const {.

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wilx is right. const gsl_rng* rng(){} only says that the returned pointer is const but you have to state that the function doesn't modify the object, too. This is the second const before the {} –  fschmitt Sep 29 '10 at 20:52
    
There's more to it than this. –  John Dibling Sep 29 '10 at 20:58
    
you guys are great! –  Jerry Gagelman Sep 29 '10 at 21:08

Change this function to:

const gsl_rng* rng() const {
    return r_;
}   
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Two problems. First, you are calling a non-const member function through a const object reference. Can't do that. You can make GSLRand::rnd() a const member function:

const gsl_rng* rng() const {

...but then you have a second problem: gsl_rng() returns a const gsl_rng*, but you're trying to assign this to a non-const member variable. Can't do that, either.

Fork in the road. Either you always call const member functions on through the r_ pointer, or you sometimes call non-const member functions through it.

If you always call const member functions, then make the member variable point to a const gsl_rng:

const class gsl_rng* r_;    // see links below

Otherwise, make your rng() function return a non-const pointer, while keeping the method itself const:

gsl_rng* rng() const {
        return r_;
    }   
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Thanks for the detailed answer. I've always wondered what those <code>const</code> between the declaration and definition means. This is really helpful. –  Jerry Gagelman Sep 29 '10 at 21:07
    
@Jerry: You're welcome. Just by way of brief explanation, when you declare a member function const, you are telling the compiler to interpret the this pointer as const, so you won't be able to call any non-const member functions or change any non-mutable member variables. –  John Dibling Sep 29 '10 at 21:50

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