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how do do loops work exactly?

lets say you have a loop:

do i=1,10
...code...
end do

write(*,*)I

why is the printed I=11, and not 10? But wehn the loop stops due to an

if(something) exit

the I is as expected (for example i=7, exit because some other value reached it's limit).

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Sorry, but didn't found that question. Mine is a duplicate. Thanks for the hint. –  Alex Aug 9 '13 at 12:37
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See also sections 8.1.6.6.2 ans 8.1.6.6.4 of the Fortran 2008 standard. The latter states: "When a DO construct becomes inactive, the DO variable, if any, of the DO construct retains its last defined value.", while the former gives details on loop iteration. –  Jean-Claude Arbaut Aug 9 '13 at 13:48
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2 Answers

up vote 6 down vote accepted

The value of i goes to 11 before the do loop determines that it must terminate. The value of 11 is the first value of i which causes the end condition of 1..10 to fail. So when the loop is done, the value of i is 11.

Put into pseudo-code form:

1) i <- 1
2) if i > 10 goto 6
3) ...code...
4) i <- i + 1
5) goto 2
6) print i

When it gets to step 6, the value of i is 11. When you put in your if statement, it becomes:

1) i <- 1
2) if i > 10 goto 7
3) ...code...
4) if i = 7 goto 7
5) i <- i + 1
6) goto 2
7) print i

So clearly i will be 7 in this case.

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Thanks for the good explanation. I always had trouble with the loop variable, hence i reuse it later as a loop bound. –  Alex Aug 9 '13 at 12:45
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I want to emphasize that it is an iteration count that controls the number of times the range of the loop is executed. Please refer to Page 98-99 "Fortran 90 ISO/IEC 1539 : 1991 (E)" for more details.

The following steps are performed in sequence:

  1. Loop initiation:

    1.1 if loop-control is

        [ , ] do-variable = scalar-numeric-expr1 , scalar-numeric-expr2 [ , scalar-numeric-expr3 ]
    

    1.1.1 The initial parameter m1, the terminal parameter m2, and the incrementation parameter m3 are established by evaluating scalar-numeric-expr1, scalar-numeric-expr2, and scalar-numeric-expr3, respectively,

    1.1.2 The do-variable becomes defined with the value of the initial parameter m1.

    1.1.3 The iteration count is established and is the value of the expression

        MAX(INT((m2 –m1+m3)/m3),0)
    

    1.2 If loop-control is omitted, no iteration count is calculated.

    1.3 At the completion of the execution of the DO statement, the execution cycle begins.

2.The execution cycle. The execution cycle of a DO construct consists of the following steps performed in sequence repeatedly until termination:

2.1 The iteration count, if any, is tested. If the iteration count is zero, the loop terminates

2.2 If the iteration count is nonzero, the range of the loop is executed.

2.3 The iteration count, if any, is decremented by one. The DO variable, if any, is incremented by the value of the incrementation parameter m3.

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