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I have text file which contains the follwing

Pool        p c Dev   Dev             Total  Enabled     Used     Free   a   b
------------ - - ----- ------------ -------- -------- -------- -------- --- ---
FC100        T F FBA   RAID-3(1+1)   13849.1  13849.1  13119.4   7292.0   0 Ena
SATA500      T S FBA   RAID-3(1+1)   50019.2  50019.2  46974.5   3044.9 Ena   0


I want to display extract FC100 and SATA500 from the file because those two lines contain "Ena". I have very little batch script experience so with my limited knowledge I came up with following script.

@ECHO OFF
setlocal enabledelayedexpansion

FOR /F "tokens=1,* delims= " %%a in (list.txt) DO (
    if "%%b" NEQ "" (

        set string=%%b
        set substring= Ena

        echo !string! |findstr "!substring!" > nul
        if errorlevel 1 (
            rem echo !SubString!
        ) else (
            echo %%a
        )
    )
)

What is happening with the above code is that I am getting the required output but I am also getting Pool because the line contains Ena in Enabled. How do extract lines which only contain Ena and not match with Enabled.

Current Output

Pool
FC100
SATA500

I tried to use some regex magic with findstr but its not working out for me. Note - I can solve this problem in Perl but unfortunately I cannot install Perl on the system so I have to do this in batch.

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4 Answers

up vote 2 down vote accepted

You probably want to match Ena as a whole word. To do that, you can surround your search term with \< and \>, i.e. change the substring assignment like this:

set "substring=\<Ena\>"

And by the way, there's probably no need to assign substring to the same value at every iteration of the loop. You can assign it just once before the loop.

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1  
And certainly the findstr command must NOT need to be executed with every line in the file, but just once in the loop... –  Aacini Dec 26 '12 at 21:17
    
Andriy, your solution worked, I will do some more testing and report back. I was under the impression that findstr would support normal regex patterns like $ or \s. –  Sumedh Dec 26 '12 at 21:37
    
@Sumedh: It does support $ (and ^), but I don't think those would work for you. Not sure what \s is but, according to the build-in help (findstr /?), you are probably right, it is not supported. –  Andriy M Dec 26 '12 at 21:42
    
Thanks @AndriyM. I accepted your solution. –  Sumedh Dec 27 '12 at 18:36
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@echo off
for /F "skip=1" %%a in ('findstr /C:" Ena" list.txt') do (
   echo %%a
)

EDIT: New solution that seek for lines precisely with "Ena" string in any part

@echo off
for /F %%a in ('findstr /R /C:"\<Ena\>" list.txt') do (
   echo %%a
)
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What if there is another line with 'Enabled'? –  tcb Dec 26 '12 at 20:24
    
Wouldn't /C:" Ena" match " Enabled" too? –  Andriy M Dec 26 '12 at 20:50
    
Yes, but "skip=1" omit it. Although the OP said "contain Ena and not match with Enabled", I think he/she really wanted to mean "contain Ena and not match the first header line". I doubt there is any "Enabled" field into the file below the first line... –  Aacini Dec 26 '12 at 20:59
    
Well, we shouldn't rely on our doubts. :) However, what you said does sound plausible and skip=1 is a clever solution indeed (I overlooked it initially). –  Andriy M Dec 26 '12 at 21:15
    
Sometimes the header line is at line no 1, 3 or 5, there is some extra information above the header line which I omitted to keep the question simple. So I am really looking for a solution which does not depend on the line number logic. –  Sumedh Dec 26 '12 at 21:30
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Try this:

set substring="Ena[^a-zA-Z]"

[^a-zA-Z] instructs findstr not to use strings which contain letters after Ena.

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At the same time, your expression instructs findstr to match strings that contain at least one character after Ena. If Ena is at the end of a line, it won't match the search term. –  Andriy M Dec 26 '12 at 20:30
    
Actually, it does match such lines. –  tcb Dec 26 '12 at 20:38
    
It didn't for me. My test was very simple. I created a text file with three lines: Ena1, Ena, Enab. Running findstr "Ena[^a-zA-Z]" on it produced only one line: Ena1. It's Win XP SP3. –  Andriy M Dec 26 '12 at 20:44
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replace

echo !string! |findstr "!substring!" > nul

with

echo !string! |findstr "!substring!" |findstr /v "Enabled" > nul

or even simpler:

echo !string! |findstr "Ena" |findstr /v "Enabled" > nul

first findstr will include all lines with "Ena", second findstr /v will exclude all lines with "Enabled".

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Thanks but I already got the answer –  Sumedh Jul 30 '13 at 19:22
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