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In Fortran 90 (using gfortran on Mac OS X) if I assign a value to a double-precision variable without explicitly tacking on a kind, the precision doesn't "take." What I mean is, if I run the following program:

program sample_dp

implicit none

integer, parameter :: sp = kind(1.0)
integer, parameter :: dp = kind(1.0d0)

real(sp) :: a = 0.
real(dp) :: b = 0., c = 0., d = 0.0_dp, e = 0_dp

! assign values
a = 0.12345678901234567890
b = 0.12345678901234567890
c = DBLE(0.12345678901234567890)
d = 0.12345678901234567890_dp

write(*,101) a, b, c, d
101 format(1x, 'Single precision: ',  T27, F17.15, / &
           1x, 'Double precisison: ', T27, F17.15, / &
           1x, 'Double precision (DBLE): ', T27, F17.15, / &
           1x, 'Double precision (_dp): ',  T27, F17.15)

end program

I get the result:

Single precision:        0.123456791043282
Double precision:        0.123456791043282
Double precision (DBLE): 0.123456791043282
Double precision (_dp):  0.123456789012346

The single precision result starts rounding off at the 8th decimal as expected, but only the double precision variable I assigned explicitly with _dp keeps all 16 digits of precision. This seems odd, as I would expect (I'm relatively new to Fortran) that a double precision variable would automatically be double-precision. Is there a better way to assign double precision variables, or do I have to explicitly type them as above?

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Note that the intitialization of the variable e is done with an integer constant; 0_dp is of type integer with kind number dp. It's an unfortunate reality that on many compilers the kind numbers for reals and integers overlap, so you won't get a compile time error for a mistake for this (I assume it was unintended). –  eriktous May 26 '11 at 23:52
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2 Answers 2

up vote 7 down vote accepted

A real which isn't marked as double precision will be assumed to be single precision. Just because sometime later you assign it to a double precision variable, or convert it to double precision, that doesn't mean that the value will 'magically' be double precision. It doesn't look ahead to see how the value will be used.

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So you mean the fact that I'm assigning the value to a double precision "container" doesn't matter unless I explicitly say it's a double precision value? –  tomshafer May 26 '11 at 23:11
2  
Correct. As I said, it doesn't look ahead to see how the value will be used later on. It sees a real literal, it's not marked as double precision, therefore it assumes it's single precision. –  MRAB May 26 '11 at 23:45
4  
@tomshafer: it's important to get a clear mental picture of the way an assignment statement is evaluated. First, the RHS is evaluated fully, according to the rules of precedence; at each step, if it's a mixed-mode expression, the required implicit type conversion is performed. Only after the RHS is evaluated fully, the result is assigned to the LHS, again with implicit type conversion, if required. –  eriktous May 27 '11 at 0:01
    
Thanks guys, that makes much more sense. –  tomshafer May 27 '11 at 0:03
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There is a previous very closely related question with additional answers: Getting double precision in fortran 90 using intel 11.1 compiler

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