Batch file to delete first 3 lines of a text file

Question

As the title states I need a batch file to delete the FIRST 3 lines of a text file.

for example:

A    
B    
C    
D    
E   
F    
G

in this example I need A,B and C deleted along with the line

Answer 1

more +3 "file.txt" >"file.txt.new"
move /y "file.txt.new" "file.txt" >nul

The above is fast and works great, with the following limitations:

• TAB characters are converted into a series of spaces.
• The number of lines to be preserved must be less than ~65535. MORE will hang, (wait for a key press), if the line number is exceeded.
• All lines will be terminated by carriage return and linefeed, regardless how they were formatted in the source.

The following solution using FOR /F with FINDSTR is more robust, but is much slower. Unlike a simple FOR /F solution, it preserves empty lines. But like all FOR /F solutions, it is limited to a max line length of a bit less than 8191 bytes. Again, all lines will be terminated by carriage return and linefeed.

@echo off
setlocal disableDelayedExpsnsion
>"file.txt.new" (
  for /f "delims=" %%A in ('findstr /n "^" "file.txt"') do (
    set "ln=%%A"
    setlocal enableDelayedExpansion
    echo(!ln:*::=!
    endlocal
  )
)
move /y "file.txt.new" "file.txt" >nul

If you have my handy-dandy JREPL.BAT regex text processing utility , then you could use the following for a very robust and fast solution. This still will terminate all lines with carriage return and linefeed (\\r\\n), regardless of original format.

jrepl "^" "" /k 0 /exc 1:3 /f "test.txt" /o -

You can write \\n line terminators instead of \\r\\n by adding the /U option.

If you must preserve the original line terminators, then you can use the following variation. This loads the entire source file into a single JScript variable, so the total file size is limited to approximately 1 or 2 gigabytes (I forgot the exact number).

jrepl "(?:.*\n){1,3}([\s\S]*)" "$1" /m /f "test.txt" /o -

Remember that JREPL is a batch file, so you must use CALL JREPL if you use the command within another batch script.

Answer 2

This should do it

for /f "skip=3 delims=*" %%a in (C:\file.txt) do (
echo %%a >>C:\newfile.txt    
)
xcopy C:\newfile.txt C:\file.txt /y
del C:\newfile.txt /f /q

That will re-create the file with the first 3 lines removed.

To keep the user updated you could integrate messages in the batch file in vbscript style or output messages in the command prompt.

@echo off
echo Removing...
for /f "skip=3 delims=*" %%a in (C:\file.txt) do (
echo %%a >>C:\newfile.txt
) >nul
echo Lines removed, rebuilding file...
xcopy C:\newfile.txt C:\file.txt /y >nul
echo File rebuilt, removing temporary files
del C:\newfile.txt /f /q >nul
msg * Done!
exit >nul

Hope this helps.

Answer 3

使用sed仅从第4行开始打印（ 编辑：仅当你使用Un * x :)

$ sed -e '4,$p' in.txt 

Answer 4

I use "more" command for outting file after nth line Command (windows)

More +n orginalfilename.txt > outputfilename.txt

Description: Outputting file of txt after nth line

Answer 5

If you want to skip the first and tail the last lines, you can use my code at http://www.harchut.de/download/ms-dos/skip-tail-flatfile-example.zip

set L_TRIMFILE_CNT=0
set L_TRIMFILE_TMPFILE=work.countrows.find.tmp
find /c /v "" %P_TRIMFILE_INFILE% > %L_TRIMFILE_TMPFILE%
for /f "skip=1 tokens=3* " %%a in (%L_TRIMFILE_TMPFILE%) do (
  if %L_TRIMFILE_CNT% == 0 set L_TRIMFILE_CNT=%%a
)
del %L_TRIMFILE_TMPFILE%
set /a L_TRIMFILE_EOF=%L_TRIMFILE_CNT%-%P_TRIMFILE_TAIL%
findstr /n .* "%P_TRIMFILE_INFILE%" > %L_TRIMFILE_TMPFILE%
if exist %P_TRIMFILE_OUTFILE% del %P_TRIMFILE_OUTFILE%
set V_TRIMFILE_SKIP="skip=%P_TRIMFILE_SKIP% tokens=1* delims=:"
if %P_TRIMFILE_SKIP% equ 0 set V_TRIMFILE_SKIP="tokens=1* delims=:"
for /f %V_TRIMFILE_SKIP% %%a in (%L_TRIMFILE_TMPFILE%) do (
  if %%a leq %L_TRIMFILE_EOF% if exist %P_TRIMFILE_OUTFILE% @echo.%%b>>%P_TRIMFILE_OUTFILE%
  if %%a leq %L_TRIMFILE_EOF% if not exist %P_TRIMFILE_OUTFILE% @echo.%%b>%P_TRIMFILE_OUTFILE%
)
del %L_TRIMFILE_TMPFILE%

You can skip or tail line of a flatfile without any additional utility.