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I have an output file which is a deconstructed csv file.

a
,b
,c
e
,f
,g
,h
i 
,j 
.......

The number of elements is random in each line. And each element is random also. I want to replace '\r\n,' with ','. But i cant find the syntax for to do it.....

a,b,c
e,f,g,h 
i,j 
.......

I cant install third-party utilities on the server but have access to an older version of unixutils

GNU textutils 1.5
GNU sed version 3.02
GNU Awk 3.1.0

Any help greatly appreciated !!

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7 Answers 7

Another sed option:

$ sed -ne '/^,/H;/^[^,]/{;x;s/\r\n//g;/./p;};${;x;s/\r\n//g;p;}' input
a,b,c
e,f,g,h
i,j

Broken out for easier reading, here's how this one works:

  • /^,/H; -- For any line that starts with a comma, append it to sed's "hold".
  • /^[^,]/{ -- For any line that doesn't start with a comma (which means we're at the end of the previous set of input lines):
    • x; -- swap the pattern and hold spaces (so the start of the next line is in the hold),
    • s/\r\n//g; -- remove all newlines in the pattern,
    • /./p;}; -- and if there's actually a pattern here (i.e. not a blank line), print it.
  • ${x;s/\r\n//g;p} -- then do the same at the end of the file.

Note that this should work with non-GNU sed as well as GNU. I tested it in FreeBSD and OSX, though with unix-style line endings, then added the \r to the substitutions for this answer. YMMV.

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The Windows Batch file below does not require any third-party utilities (including GNU's):

@echo off
setlocal EnableDelayedExpansion

set "out="
for /F "delims=" %%a in (file.txt) do (
   set "in=%%a"
   if "!in:~0,1!" neq "," (
      if defined out echo !out!
      set "out=!in!"
   ) else (
      set "out=!out!!in!"
   )
)
echo !out!

This program will fail if the lines contain exclamation marks. This point may be fixed.

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+1. One doesn't see quality batch programming so much anymore. –  ghoti Jun 26 at 14:00

Here is an awk version

awk 'NR>1 {printf "%s"($0~/^,/?"":RS),a} {a=$0} END {print $0}' file
a,b,c
e,f,g,h
i ,j

You have a space after i in your input file, its not removed. If you like to remove it do:

awk 'NR>1 {printf "%s"($0~/^,/?"":RS),a} {sub(/ +$/,"");a=$0} END {print $0}' file
a,b,c
e,f,g,h
i,j
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Your a star with a guitar! Thats perfect! –  DanielA Jun 26 at 10:52
    
@DanielA please read meta.stackoverflow.com/questions/251288/… –  Avinash Raj Jun 26 at 11:14

I got this with awk:

awk '/,/{x=x$0;next} {if(length(x))print x;x=$0}' file

If there is a comma on the line, add this line to variable x. If not, print x if there is anything in it and start a new x using the current line.

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This wont print the last line as print is never called again due to no more lines without a , –  Jidder Jun 26 at 13:21

Just set the input Record Separator and the Output Record Separator appropriately:

awk -v RS='\r\n,' -v ORS=',' '1' file

Or read the whole file in and do a global subsitution:

awk -v RS='^$' '{gsub(/\r\n,/,",")}1' file

Depending on the platform you're running on, you may need to add -v BINMODE=3 to stop the C utils from stripping the \r before awk gets a chance to parse it.

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You can use sed also

sed  ':loop ; N ;s/\n//g ; s/\(\w\)\(\w\)/\1\n\2/g ; t loop ' file_name
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Another awk way

awk '/,/{x=x$0}!/,/{if(x)print x;x=$0}END{print x}' file

And another without whitespace

awk '/,/{x=x$0}!/,/{x?x=x"\n"$0:x=$0}END{gsub(/ /,"",x);print x}' file
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