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Is it possible to do substitution (a la %VARIABLE:old=new%) with a FOR loop variable? I cannot find documentation for such a thing, and I have been unsuccessful in guessing the syntax.

For example, if I wanted to accomplish this:

@ECHO OFF
SETLOCAL ENABLEDELAYEDEXPANSION

FOR /F "delims=, tokens=3" %%c IN ("field1,field2,field3,field4") DO (
    SET "_C=%%c"
    @ECHO !_C:3=_three!
)

(selects 3rd field, replaces 3 with _three, and prints the substituted value, field_three)

Can I do it without the intermediate assignment to a regular variable? How?

(EDIT: updated title to make it something other than a yes/no question.)

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have you tried it ? –  Endoro Jun 27 '13 at 16:31
    
Of course, @Endoro. I tried %%c:3=_three with the expected (wrong) results of field3:3=_three. The syntax that works for regular variables has a "closing" variable marker (%) that doesn't exist for FOR loop variables. I don't know what to use to express this desire to CMD. I'd be delighted if there were some documentation that told me how to do it or confirmed my suspicions that it is as unsupported as Pluto's planethood. –  mojo Jun 27 '13 at 16:39
    
I have never been able to directly replace using the %%var. I have always had to assign the %%var to an intermediate variable like you have done. I believe you have found the only viable solution. –  James L. Jun 27 '13 at 16:57
    
This doesn't work. Have you tried set "%%c=whatever ? But you can use for loop variables on the right side of the colon. –  Endoro Jun 27 '13 at 17:15

1 Answer 1

up vote 1 down vote accepted

You can't use substitution on loop variables without assinging them to "normal" variables first.

share|improve this answer
    
Do you have a reference? –  mojo Jun 28 '13 at 1:13
1  
No. Just a fundamental lack of evidence how one could possibly apply the syntax !v:foo:bar! to a loop variable %v. –  Ansgar Wiechers Jun 28 '13 at 9:52
    
I was hoping for better, but this was my surmise as well. –  mojo Jun 28 '13 at 11:13

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