在 Fortran 95 中读取和写入文件
Reading and writing into a file in fortran95
我正尝试在 Fortran 中执行以下操作:
- 逐行阅读文本文档
- 逐字编码每一行 "exchanging" 每个字母由
一个在字母表中排在它后面的位置,l = 的长度
单词
- 将编码行写入新的输出文档
我的循环似乎 运行 无限期并且没有任何文字被写入输出文档
我的测试输入文档只有两行:
- 一些东西
- 还有一些东西
第一行被正确读取和编码
PROGRAM zeichen
USE PufferMod
IMPLICIT NONE
CHARACTER(LEN=132) :: z
CHARACTER(maxlen):: x
INTEGER:: a,e,i,l
OPEN(UNIT=39,FILE="intext.txt",ACTION="READ", STATUS="OLD")
OPEN(UNIT=40, FILE="outext.txt", ACTION="WRITE")
DO
2 READ(39,"(A)", end=10) z
a=1;
DO WHILE(a<133)
WRITE(*,*) z
WRITE(*,*) a
CALL Suche_Wort(z,a,e)
l=e-a+1
WRITE(*,*) a,e,l
DO i=a,e
IF(z(i:i)/="") THEN
CALL Codiere(z(i:i),l)
END IF
END DO
a=e+1
END DO
WRITE(40,*) z
END DO
10 CLOSE(UNIT=39)
CLOSE(UNIT=40)
END PROGRAM zeichen
MODULE PufferMod
IMPLICIT NONE
PRIVATE
PUBLIC :: maxlen, Codiere, Suche_Wort
INTEGER, PARAMETER :: maxlen = 132
CONTAINS
FUNCTION Kleinbuchstabe(z)
CHARACTER(LEN=1) :: z
LOGICAL :: Kleinbuchstabe
Kleinbuchstabe= "a" <= z .AND. z <= "z"
END FUNCTION Kleinbuchstabe
FUNCTION Grossbuchstabe(z)
CHARACTER(LEN=1) :: z
LOGICAL :: Grossbuchstabe
Grossbuchstabe= "A" <= z .AND. z <= "Z"
END FUNCTION Grossbuchstabe
FUNCTION Buchstabe(z)
CHARACTER(LEN=1) :: z
LOGICAL :: Buchstabe
Buchstabe= (("a" <= z .AND. z <= "z") .OR. ("A" <= z .AND. z <= "Z"))
END FUNCTION Buchstabe
SUBROUTINE Codiere(z, Verschiebung)
CHARACTER(LEN=1) :: z
INTEGER, INTENT(IN) :: Verschiebung
INTEGER :: CodevonA
IF ( Kleinbuchstabe(z) ) THEN
CodevonA= ICHAR("a")
ELSE IF ( Grossbuchstabe(z) ) THEN
CodevonA= ICHAR("A")
END IF
z= CHAR( CodevonA + MOD( ICHAR(z) - CodevonA + Verschiebung, 26 ) )
END SUBROUTINE Codiere
SUBROUTINE Suche_Wort(z,a,e)
CHARACTER(LEN=maxlen), INTENT(in):: z
INTEGER, INTENT(inout):: a
INTEGER, INTENT(out):: e
CHARACTER:: x, temp*1
INTEGER:: i
i=1
temp=z(a:a)
!WRITE(*,*) "a before loop",a, "temp", temp
DO WHILE(temp == " ") !Find start of next word
temp=z(a+i:a+i)
i=i+1
a=a+1
END DO
!WRITE(*,*) "a after loop", a
e=a+1
i=1
temp=z(e:e)
DO WHILE(temp/= "") !find where the word ends by finding a space
temp=z(e+i:e+i)
i=i+1
e=e+1
IF(temp == " ") EXIT
END DO
END SUBROUTINE Suche_Wort
END MODULE PufferMod
您的 Suche_Wort 子例程至少存在三个问题:
它从不检查 z 变量的索引是否在范围内。
它假设结束索引严格大于开始索引,因此不允许 1 个字符的单词。
在它的每个循环中,它都会将 i 和另一个整数变量递增(第一个循环中的 a,第二个循环中的 e循环), 在每次迭代中有效地将 z 的索引递增 2.
我建议对 zeichen 程序进行两项更改,以便通过使用内部函数 trim(删除尾随 space 来摆脱尾随 spaces =]) 和 len_trim(计算修剪变量的长度):
2 READ(39,"(A)", end=10) z
a=1;
DO WHILE(a<=len_trim(z))
WRITE(*,*) z
WRITE(*,*) a
CALL Suche_Wort(trim(z),a,e)
!...
然后,可以将检查和更正添加到 Suche_Wort 子例程中(比我们不得不担心 z(a:) 中剩余的所有字符都是 space 的可能性更容易小号):
SUBROUTINE Suche_Wort(z,a,e)
CHARACTER(LEN=*), INTENT(in):: z ! Dummy argument has length of actual argument
INTEGER, INTENT(inout):: a
INTEGER, INTENT(out):: e
CHARACTER(len=1):: temp
temp=z(a:a)
DO WHILE((temp == " ").and.(a<len(z))) !Find start of next word
temp=z(a+1:a+1)
a=a+1
END DO
e=a ! Allows 1-character words
DO WHILE((temp/= " ").and.(e<len(z))) !find where the word ends by finding a space
temp=z(e+1:e+1)
e=e+1
END DO
END SUBROUTINE Suche_Wort
为什么你需要考虑单词?
只需转换 A:Z 或 a:z.
PROGRAM zeichen
CHARACTER(LEN=132) :: z
INTEGER :: iostat, Verschiebung = 1
OPEN (UNIT=39, FILE="ziechen.f90", ACTION="READ", STATUS="OLD")
OPEN (UNIT=40, FILE="outext.txt", STATUS="UNKNOWN")
DO
READ (39,fmt="(A)", iostat=iostat) z
if ( iostat /= 0 ) exit
call convert_line ( z, Verschiebung )
WRITE (40,fmt="(A)") trim (z)
WRITE ( *,fmt="(A)") trim (z)
END DO
END PROGRAM zeichen
Subroutine convert_line ( z, inc )
character*(*) z
integer inc, i
do i = 1, len_trim (z)
call convert_character ( z(i:i), inc )
end do
end Subroutine convert_line
Subroutine convert_character ( z, inc )
character z
integer inc, ia, ic
!
if ( z >= 'A' .and. z <= 'Z' ) then
ia = ichar ('A')
else if ( z >= 'a' .and. z <= 'z' ) then
ia = ichar ('a')
else
return
end if
ic = mod ( ichar (z) - ia + inc + 26, 26 )
z = char (ia + ic )
!
end Subroutine convert_character
我正尝试在 Fortran 中执行以下操作:
- 逐行阅读文本文档
- 逐字编码每一行 "exchanging" 每个字母由 一个在字母表中排在它后面的位置,l = 的长度 单词
- 将编码行写入新的输出文档
我的循环似乎 运行 无限期并且没有任何文字被写入输出文档
我的测试输入文档只有两行:
- 一些东西
- 还有一些东西
第一行被正确读取和编码
PROGRAM zeichen
USE PufferMod
IMPLICIT NONE
CHARACTER(LEN=132) :: z
CHARACTER(maxlen):: x
INTEGER:: a,e,i,l
OPEN(UNIT=39,FILE="intext.txt",ACTION="READ", STATUS="OLD")
OPEN(UNIT=40, FILE="outext.txt", ACTION="WRITE")
DO
2 READ(39,"(A)", end=10) z
a=1;
DO WHILE(a<133)
WRITE(*,*) z
WRITE(*,*) a
CALL Suche_Wort(z,a,e)
l=e-a+1
WRITE(*,*) a,e,l
DO i=a,e
IF(z(i:i)/="") THEN
CALL Codiere(z(i:i),l)
END IF
END DO
a=e+1
END DO
WRITE(40,*) z
END DO
10 CLOSE(UNIT=39)
CLOSE(UNIT=40)
END PROGRAM zeichen
MODULE PufferMod
IMPLICIT NONE
PRIVATE
PUBLIC :: maxlen, Codiere, Suche_Wort
INTEGER, PARAMETER :: maxlen = 132
CONTAINS
FUNCTION Kleinbuchstabe(z)
CHARACTER(LEN=1) :: z
LOGICAL :: Kleinbuchstabe
Kleinbuchstabe= "a" <= z .AND. z <= "z"
END FUNCTION Kleinbuchstabe
FUNCTION Grossbuchstabe(z)
CHARACTER(LEN=1) :: z
LOGICAL :: Grossbuchstabe
Grossbuchstabe= "A" <= z .AND. z <= "Z"
END FUNCTION Grossbuchstabe
FUNCTION Buchstabe(z)
CHARACTER(LEN=1) :: z
LOGICAL :: Buchstabe
Buchstabe= (("a" <= z .AND. z <= "z") .OR. ("A" <= z .AND. z <= "Z"))
END FUNCTION Buchstabe
SUBROUTINE Codiere(z, Verschiebung)
CHARACTER(LEN=1) :: z
INTEGER, INTENT(IN) :: Verschiebung
INTEGER :: CodevonA
IF ( Kleinbuchstabe(z) ) THEN
CodevonA= ICHAR("a")
ELSE IF ( Grossbuchstabe(z) ) THEN
CodevonA= ICHAR("A")
END IF
z= CHAR( CodevonA + MOD( ICHAR(z) - CodevonA + Verschiebung, 26 ) )
END SUBROUTINE Codiere
SUBROUTINE Suche_Wort(z,a,e)
CHARACTER(LEN=maxlen), INTENT(in):: z
INTEGER, INTENT(inout):: a
INTEGER, INTENT(out):: e
CHARACTER:: x, temp*1
INTEGER:: i
i=1
temp=z(a:a)
!WRITE(*,*) "a before loop",a, "temp", temp
DO WHILE(temp == " ") !Find start of next word
temp=z(a+i:a+i)
i=i+1
a=a+1
END DO
!WRITE(*,*) "a after loop", a
e=a+1
i=1
temp=z(e:e)
DO WHILE(temp/= "") !find where the word ends by finding a space
temp=z(e+i:e+i)
i=i+1
e=e+1
IF(temp == " ") EXIT
END DO
END SUBROUTINE Suche_Wort
END MODULE PufferMod
您的 Suche_Wort 子例程至少存在三个问题:
它从不检查
z变量的索引是否在范围内。它假设结束索引严格大于开始索引,因此不允许 1 个字符的单词。
在它的每个循环中,它都会将
i和另一个整数变量递增(第一个循环中的a,第二个循环中的e循环), 在每次迭代中有效地将 z 的索引递增 2.
我建议对 zeichen 程序进行两项更改,以便通过使用内部函数 trim(删除尾随 space 来摆脱尾随 spaces =]) 和 len_trim(计算修剪变量的长度):
2 READ(39,"(A)", end=10) z
a=1;
DO WHILE(a<=len_trim(z))
WRITE(*,*) z
WRITE(*,*) a
CALL Suche_Wort(trim(z),a,e)
!...
然后,可以将检查和更正添加到 Suche_Wort 子例程中(比我们不得不担心 z(a:) 中剩余的所有字符都是 space 的可能性更容易小号):
SUBROUTINE Suche_Wort(z,a,e)
CHARACTER(LEN=*), INTENT(in):: z ! Dummy argument has length of actual argument
INTEGER, INTENT(inout):: a
INTEGER, INTENT(out):: e
CHARACTER(len=1):: temp
temp=z(a:a)
DO WHILE((temp == " ").and.(a<len(z))) !Find start of next word
temp=z(a+1:a+1)
a=a+1
END DO
e=a ! Allows 1-character words
DO WHILE((temp/= " ").and.(e<len(z))) !find where the word ends by finding a space
temp=z(e+1:e+1)
e=e+1
END DO
END SUBROUTINE Suche_Wort
为什么你需要考虑单词? 只需转换 A:Z 或 a:z.
PROGRAM zeichen
CHARACTER(LEN=132) :: z
INTEGER :: iostat, Verschiebung = 1
OPEN (UNIT=39, FILE="ziechen.f90", ACTION="READ", STATUS="OLD")
OPEN (UNIT=40, FILE="outext.txt", STATUS="UNKNOWN")
DO
READ (39,fmt="(A)", iostat=iostat) z
if ( iostat /= 0 ) exit
call convert_line ( z, Verschiebung )
WRITE (40,fmt="(A)") trim (z)
WRITE ( *,fmt="(A)") trim (z)
END DO
END PROGRAM zeichen
Subroutine convert_line ( z, inc )
character*(*) z
integer inc, i
do i = 1, len_trim (z)
call convert_character ( z(i:i), inc )
end do
end Subroutine convert_line
Subroutine convert_character ( z, inc )
character z
integer inc, ia, ic
!
if ( z >= 'A' .and. z <= 'Z' ) then
ia = ichar ('A')
else if ( z >= 'a' .and. z <= 'z' ) then
ia = ichar ('a')
else
return
end if
ic = mod ( ichar (z) - ia + inc + 26, 26 )
z = char (ia + ic )
!
end Subroutine convert_character