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I have a Fortran90 function f(a,b). I need to use a 1D root finder that requires a function g(a), with only one variable a, to find the roots of f for various values of b.

In Matlab, I can build a new function g with only one variable a, with parameter b,

g = @(a) f(a, b);

with b being a parameter that can change in the main program and has scope in f also.

How can I do this in Fortran 90 or 95 ?

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3 Answers 3

Simple: use a wrapping function... If this is your original function f:

integer function f(a,b) 
  implicit none
  integer,intent(in) :: a, b

  f = a + b
end function

You could wrap it into a one-argument-function wrapper_fct with constant b1 like this:

integer function wrapper_fct(a)
  implicit none
  integer,intent(in) :: a
  integer,parameter  :: b1 = 10

  wrapper_fct = f(a, b10)
end function

or, even simpler:

integer function wrapper_fct(a)
  implicit none
  integer,intent(in) :: a

  wrapper_fct = f(a, 10)
end function
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Sorry, I meant b is a parameter so I cannot make it into a constant inside the wrapper. I edited my question. –  Echeban Jun 24 at 18:14

A quick and dirty example for a wrapper would be the following:

program omhulsel
implicit none

print *, 'f(1.,2.,3.) = ', f(1.,2.,3.)
print *, 'g(1.) = ', g(1.)
print *, 'g(1.,2.,3.) = ', g(1.,2.,3.)
print *, 'g(1.) = ', g(1.)
print *, 'g(1.,b=0.) = ', g(1.,b=0.)

contains

real function f(x,y,z)
  real :: x, y, z
  f = x**2 + y**2 + z**2
end function

real function g(x,a,b)
  real :: x
  real, optional :: a, b
  real :: par_a = 0, par_b = 0
  if (present(a)) par_a = a
  if (present(b)) par_b = b
  g = f(x,par_a,par_b)
end function

end program

The function g retains its parameters par_a and par_b (they get the SAVE attribute) which can also be modified by passing along optional arguments.

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Don't use save, or even worse implicit saves... Down that road madness lies ;-) –  Alexander Vogt Jun 24 at 22:18
    
Well, I did say "quick and dirty" :) Anyway, I wanted to see if the behaviour of the Matlab construction could be mimicked (which I think is the question), not that I think it should be done this way. –  steabert Jun 25 at 6:36
    
Hey, do I detect some Dutch language here (omhulsel)? Hallo ;) –  sigma Jun 25 at 10:44
    
@sigma: Hallo! Yes, sometimes that language slips into an example. Not from Netherlands though, flemish person living in Sweden ;) –  steabert Jun 25 at 11:16

You can handle this as follows, although it is not fully equivalent to matlab's function handle (functions are not really first-class citizens in Fortran).

module roots
  implicit none

contains

  subroutine root_finder(f,b)
    procedure(func) :: f
    real, intent(in) :: b

    abstract interface
      real function func(a,b)
        real, intent(in) :: a,b
      end function
    end interface

    print*, g(2.)

  contains

    real function g(a)
      real, intent(in) :: a
      g = f(a,b)
    end function    
  end subroutine
end module

As you can see, the function of two variables is passed to the subroutine, along with the parameter b. The subroutine uses an internal function g(a) to evaluate f(a,b). This function is, as it were, the "handle".

An example program, which defines an actual function f(a,b) = a**2 + b:

program example
  use roots
  implicit none    
  call root_finder(f, 10.)
contains
  real function f(a,b)
    real,intent(in) :: a,b
    f = a**2 + b
  end function
end program

Output: 14.0000000

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