Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am having trouble understanding Fortran 90's kind parameter. As far as I can tell it does not determine the precision (i.e., float or double) of a variable, nor does it determine the type of a variable. So what does it determine and what exactly is it for?

share|improve this question
    
are you referring to Kind notation? –  TStamper May 8 '09 at 5:46

3 Answers 3

The KIND of a variable is an integer label which tells the compiler which of its supported kinds it should use.

Beware that although it is common for the KIND parameter to be the same as the number of bytes stored in a variable of that KIND, it is not required by the Fortran standard.

That is, on a lot of systems,

REAl(KIND=4) :: xs   ! 4 byte ieee float
REAl(KIND=8) :: xd   ! 8 byte ieee float
REAl(KIND=16) :: xq   ! 16 byte ieee float

but there may be compilers for example with:

REAL(KIND=1) :: XS   ! 4 BYTE FLOAT
REAL(KIND=2) :: XD   ! 8 BYTE FLOAT
REAL(KIND=3) :: XQ   ! 16 BYTE FLOAT

Similarly for integer and logical types.

(If I went digging, I could probably find examples. Search the usenet group comp.lang.fortran for kind to find examples. The most informed discussion of fortran occurs there, with some highly experienced people contributing.)

So, if you can't count on a particular kind value giving you the same data representation on different platforms, what do you do? That's what the intrinsic functions SELECTED_REAL_KIND and SELECTED_INT_KIND are for. Basically, you tell the function what sort of numbers you need to be able to represent, and it will return the kind you need to use.

I usually use these kinds, as they usually give me 4 byte and 8 byte reals:

!--! specific precisions, usually same as real and double precision
integer, parameter :: r6 = selected_real_kind(6) 
integer, parameter :: r15 = selected_real_kind(15) 

So I might subsequently declare a variable as:

real(kind=r15) :: xd

Note that this may cause problems where you use mixed language programs, and you need to absolutely specify the number of bytes that variables occupy. If you need to make sure, there are enquiry intrinsics that will tell you about each kind, from which you can deduce the memory footprint of a variable, its precision, exponent range and so on. Or, you can revert to the non-standard but commonplace real*4, real*8 etc declaration style.

When you start with a new compiler, it's worth looking at the compiler specific kind values so you know what you're dealing with. Search the net for kindfinder.f90 for a handy program that will tell you about the kinds available for a compiler.

share|improve this answer
3  
Thanks for pointing out that KIND is not KIND=<number of bytes I want> - have you seen a modern compiler where this is the case? That kindfinder.f90 program is very cool. –  Tim Whitcomb May 13 '09 at 16:01
3  
A search of usenet turns up: salford f95 compiler uses kinds 1,2, and 3 to stand for 2- 4- and 8-byte variables; I saw a claim that g77 did the same before g95 and gfortran came along; and a report that the NAG fortran compiler had a compiler switch that allowed the selection between the (1,2,3,4) scheme and the (1,2,4,8) scheme. No doubt there are others. Yes, kindfinder is handy. You can use it to set up a site-specific module file that contains named parameters for the different kinds, so that your real programs aren't littered with nonportable magic numbers. –  mataap May 14 '09 at 4:12
4  
If you really want to specify types by their bytes of storage, Fortran 2003 has the ISO_C_Binding, which provides kind values corresponding to C types, some of which specify storage size. Fortran 2008 provides types in the ISO_FORTRAN_ENV module, such as the real32 kind value for 32 bits, real64 for 64 bits, etc. These have the advantage of being portable, at least as long as you have a Fortran 2003 or 2008 compiler. See the gfortran manual for the list of kinds in these two modules. –  M. S. B. Jul 25 '13 at 19:42

From the Portland Group Fortran Reference, the KIND parameter "specifies a precision for intrinsic data types." Thus, in the declaration

real(kind=4) :: float32
real(kind=8) :: float64

the variable float64 declared as an 8-byte real (the old Fortran DOUBLE PRECISION) and the variable float32 is declared as a 4-byte real (the old Fortran REAL).

This is nice because it allows you to fix the precision for your variables independent of the compiler and machine you are running on. If you are running a computation that requires more precision that the traditional IEEE-single-precision real (which, if you're taking a numerical analysis class, is very probable), but declare your variable as real :: myVar, you'll be fine if the compiler is set to default all real values to double-precision, but changing the compiler options or moving your code to a different machine with different default sizes for real and integer variables will lead to some possibly nasty surprises (e.g. your iterative matrix solver blows up).

Fortran also includes some functions that will help pick a KIND parameter to be what you need - SELECTED_INT_KIND and SELECTED_REAL_KIND - but if you are just learning I wouldn't worry about those at this point.

Since you mentioned that you're learning Fortran as part of a class, you should also see this question on Fortran resources and maybe look at the reference manuals from the compiler suite that you are using (e.g. Portland Group or Intel) - these are usually freely available.

share|improve this answer

I suggest using the Fortran 2008 and later; INT8, INT16, INT32, INT64, REAL32, REAL64, REAL128. This is done by calling ISO_FORTRAN_ENV in Fortran 2003 and later. Kind parameters provides inconsistent way to ensure you always get the appropriate number of bit representation

share|improve this answer
    
int8 does (if an appropriate kind is available) specify a kind parameter. I suspect you mean that one should prefer this to an explicit number like, say int(kind=1)? [This latter would be bad practice regardless.] Perhaps you could clarify? –  francescalus Jun 15 at 21:22
    
I concur with your comment @francescalus –  Zeus Jun 15 at 21:26

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.