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I have searched high and low and hope you can help me. I need to find each line in a file which does NOT begin with a double quote (") and append that line to the previous line.

I have been successful doing this using the following command:

cat filname.csv | sed -e :a -e '$!Ns/\n[^"]//;ta -e 'P;D' > newfilename.csv

My issue is the substitution. As you would expect after the line is appended to the previous line the first character is removed. I need it to not be removed. I tried cat filname.csv | sed -e :a -e '$!Ns/\n[^"]/&/;ta -e 'P;D' > newfilename.csv

but it just hangs. I thought the ampersand (&) would copy the matched line.


"line 1
<line 2>

Output with existing or first sed command is: lineline2> ** Note the removal of the <

I need the output to be line1<line2>

Any help you can provide would be GREATLY appreciated!!

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4 Answers 4

I can't seem to get your original command to work. Did you leave out a single-quote somewhere?

Assuming that the original command works and that I remember how sed works, I would just use backreferences, like so:

sed -e :a -e '$!Ns/\n([^"])/\1/;ta -e 'P;D'

(added parentheses and replaced & with \1)

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You're missing the closing single quote so the shell interprets the ampersand as a request to background the operation. Try:

sed -e ':a' -e '$!Ns/\n\([^"]\)/\1/;ta' -e 'P;D' filname.csv > newfilename.csv

You can't use an ampersand anyway, because that would keep the newline.

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You could also do it with awk:

awk '{if (NR>1 && $1 ~ "^\"") print "" ; printf $0 } END {print ""}' filname.csv > newfilename.csv
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$ cat file
"line 1
<line 2>
"line 3
<line 4>

$ awk 'ORS=/^\042/?" ":"\n"' file
"line 1 <line 2>
"line 3 <line 4>

or if you could use Ruby(1.9+)

$ ruby -ne 'print /^"/? $_.chomp: $_' file
"line 1<line 2>
"line 3<line 4>
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