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The following is the method signature in a class.

virtual void evaluate(const double *var, double *obj, double *constr) const = 0;

virtual void evaluate(unsigned int numPoints, const double **var, double **obj, double **constr) const {
    //do something
}

Here is the declaration of arguments

unsigned int size;
double **var = new double*[size];
double **obj = new double*[size];
double **constr = new double*[size];

Here is the method call.

evaluator.evaluate(size, var, obj, constr);

I get the following compiler error.

foo.cpp: In member function âvoid foo::evaluatePopulation(std::vector<Individual, std::allocator<Individual> >&, unsigned int, bool)â:
foo.cpp:347: error: no matching function for call to foo::evaluate(unsigned int&, double**&, double**&, double**&) constâ
foo.h:35: note: candidates are: virtual void foo::evaluate(const double*, double*, double*) const
foo.h:43: note:                 virtual void foo::evaluate(unsigned int, const double**, double**, double**) const <near match>

foo are class names. I am using double pointers (two asterisks). How do I resolve this error?

share|improve this question
    
The signature you show for evaluate doesn't match the one in the error message. – simonc Sep 5 '13 at 16:05
    
Well the call you are making takes a ptrptr, which you could get by taking the address of var, obj, ect. However, your declaration of constr makes no sense (the compiler should say you can't cast double* to double** or something like that) – IdeaHat Sep 5 '13 at 16:06
1  
@NikosC. P0W edited the code, reporting "OP has problem with **, SO eats up *" in an answer that has since been deleted. I had rolled back to the original question but reinstated the edits based on this comment. – simonc Sep 5 '13 at 16:10
1  
If this is the actual code, and the actual compiler error message, the error message is extremely misleading. The problem is clearly that he's trying to pass a double** to a double const**, and there's no conversion which will do that. (Perhaps the function should be delcared to take a double const* const*?) – James Kanze Sep 5 '13 at 16:15
2  
@simonc : now everything matches up – Sander De Dycker Sep 5 '13 at 16:22
up vote 3 down vote accepted

In your second signature, the type of the second formal parameter, var, is const double**. The actual argument, constr, is, hovewer of type double** which cannot be implicitly converted to the former type.

Example

#include <stdio.h>

void fn(const int** pp)
{
    printf("%p : %p : %d", pp, *pp, **pp);
}

int main()
{
    int n = 1;
    int *p = &n;
    fn(&p); // ERROR. see below
    return 0;
}

The error reported is accurate:

main.c:17:8: Passing 'int **' to parameter of type 'const int **' discards qualifiers in nested pointer types.

share|improve this answer
    
true, and not immediately obvious (as most T can implicitly become const T). But, with pointers, double** can implicitly become const double * const * const. Yes, it's a lot of const, but it should work. – Tim Sep 5 '13 at 16:23
1  
@Tim: actually double ** can only implicitly become double * const * const. That's because you can only implicitly convert T * to const T * or T & to const T& or initialize a const T with a T. That's it -- no other implicit const stuff happens. – Chris Dodd Sep 5 '13 at 17:01
    
Thanks. The error is resolved after changing the signature to "const double* const *var". I should have been specifying it correctly to prevent "var" from getting modified. – Santosh Tiwari Sep 5 '13 at 19:56
1  
@Chris Dodd: That is actually incorrect. In C++, T ** is implicitly convertible to const T *const * (but, of course, not to const T **). A similar rule works for references: an lvalue of type T * can be used to initialize a reference of type const T *const &, but not of type const T *&. (See also stackoverflow.com/questions/5248571/is-there-const-in-c/…) – AnT Sep 5 '13 at 20:19

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