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I am new in batch. Trying for some days to make something in batch but have a problem I cannot solve. I read a lot of your comments but did not find answer. Maybe you can help me?

The point is:

  1. I input string from keyboard( e.g. 10 characters ). name of it is"allinputstring"
  2. Calculate of length is ok ( by redirect in txt file and expand its bytes ). name "length"
  3. Parse string in 10 pieces (strings) is ok.

So here is a problem, I want to echo these pieces, so I use next code, I use a counter to find out is the counter give me good count as output variable, and echo it to see on screen if it is good. Counter seems good, end echo of pieces strings is good enough. But I want to put in line 5. Variable count instead of "%%m", and cannot find a syntax way how to do it.

setlocal enabledelayedexpansion
for /l %%m in (1,1,!lenght!) do (
  set /a count=0
  set /a count=count+%%m
  echo !count!!allinputstring:~%%m,1!
)
endlocal

please help me.

share|improve this question
    
lenght is mis-spelled –  Mark Schultheiss Apr 3 '13 at 22:35
    
I made an edit and put %count% in :) –  Endoro Apr 3 '13 at 23:00
    
sorry, i am croatish –  Zvonimir Apr 3 '13 at 23:04
    
so, is it a way to change variable %%m with count? –  Zvonimir Apr 3 '13 at 23:05

2 Answers 2

up vote 1 down vote accepted
@ECHO off
setlocal ENABLEDELAYEDEXPANSION
SET allinputstring=abcdefghijk
SET lenght=10
for /l %%m in (1,1,!lenght!) do (
  set /a count=0
  set /a count=count+%%m
  FOR %%z IN (!count!) DO echo !count! !allinputstring:~%%z,1!
)
GOTO :eof

Does this do what you require?


So... to make COUNT show (I've assigned it to KOWNT, but the syntax endlocal&set count=%count% would assign it to COUNT instead)

I've changed the starting value of the FOR/L because character counting starts from character#0 in the string.

@ECHO off
setlocal ENABLEDELAYEDEXPANSION
SET allinputstring=abcdefghij
SET lenght=9
for /l %%m in (0,1,!lenght!) do (
  set /a count=0
  set /a count=count+%%m
  FOR %%z IN (!count!) DO echo !count! !allinputstring:~%%z,1!
)
endlocal&SET KOWNT=%count%
ECHO Now KOWNT=%KOWNT% but count=%count% because we have exited the SETLOCAL
GOTO :eof

When the ENDLOCAL is encountered, the parser substitutes the CURRENT value of the variables in the line and THEN executes the line.

Hence, the line is executed as

endlocal&set KOWNT=9

since the value of count at the time is 9.

When the SETLOCAL is executed, all changes to the environment since the matching SETLOCAL are thrown away. The environment variables are restored to their state when the SETLOCAL was executed and count becomes empty again (as it was before the routine.) THEN the SET instruction is executed, which sets KOWNT to 9.

share|improve this answer
    
i was trying to find a way how to make this, but after finished, variable count must stay with last value in her. endoro makes good with command call, but i dont understand logic of call in that line. and one more thing: count is e.g. 1-10, but last character is not on screen. i know why, but dont find a way how to make him show?? –  Zvonimir Apr 5 '13 at 11:30

Try this:

@echo off &setlocal enabledelayedexpansion
set /a lenght=9
set "allinputstring=ABCDEFGHIJ"
for /l %%m in (0,1,%lenght%) do (
  set /a count=0
  set /a count+=%%m
  echo !count! !allinputstring:~%%m,1!
)
endlocal

Output is:

0 A
1 B
2 C
3 D
4 E
5 F
6 G
7 H
8 I
9 J
share|improve this answer
    
this is ok, but on that way i dont have variable to work with later, because %%m dissapear after for is finished, if iam right? –  Zvonimir Apr 3 '13 at 23:01
    
%%m disappear after the parentheses ) You can work with %count% instead. –  Endoro Apr 3 '13 at 23:04
    
you did just as i am, but that was not what i trying to ask:) –  Zvonimir Apr 3 '13 at 23:08
    
if i put %count% only first string shows –  Zvonimir Apr 3 '13 at 23:09
    
You can't set the value of %%m, this value is set from the for loop. Inside the for loop you must use !count!, outside you can use %count%. –  Endoro Apr 3 '13 at 23:09

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