27

I want to put each line within quotation marks, such as:

abcdefg
hijklmn
opqrst

convert to:

"abcdefg"
"hijklmn"
"opqrst"

How to do this in Bash shell script?

  • 1
    Welcome to Stack Overflow. Please read the FAQ soon. Your question isn't bad but it is ambiguous, or maybe just a bit incomplete. Where are the lines coming from -- from a file, or an array of variables, or lines in a single variable (or somewhere else)? Where does the output need to go? Into a variable, an array, a file, somewhere else? The answers so far show a variety of possiblilities (and don't cover all the scenarios I mention). – Jonathan Leffler Jun 7 '13 at 21:20
  • Also, an awful lot of people seem to want to do this for the wrong reasons. If you have a program which requires its arguments to be in quotes, like ./tool "example sentence one" "example sentence two", the quotes are consumed by the shell, and not part of the data itself. If you have those values in variables, the variables should not contain the quotes, but you need to quote the interpolation; ./tool "$sentence1" "$sentence2" – tripleee Jun 20 '16 at 4:30
35

Using awk

awk '{ print "\""$0"\""}' inputfile

Using pure bash

while read FOO; do
   echo -e "\"$FOO\""
done < inputfile

where inputfile would be a file containing the lines without quotes.

If your file has empty lines, awk is definitely the way to go:

awk 'NF { print "\""$0"\""}' inputfile

NF tells awk to only execute the print command when the Number of Fields is more than zero (line is not empty).

| improve this answer | |
  • 1
    for the read solution, you need IFS= read -r FOO. Otherwise you'll lose whitespace at the beginning of lines and backslash-escapes my be lost – glenn jackman Jun 7 '13 at 19:24
  • Or lose the FOO and use the implicit $REPLY name. Just do while read; do printf '"%s"\n' "$REPLY"; done < inputfile – kojiro Jun 7 '13 at 19:28
  • all more reasons to go with awk as I see it :D – blue Jun 7 '13 at 19:29
  • @glennjackman sure, if you actually want to retain backslash escapes. – kojiro Jun 7 '13 at 19:38
  • s/line is not empty/line is not blank/. Note that the -e is not needed and will actually alter the content if it contains backslashes. – Stephane Chazelas Jun 7 '13 at 21:49
12

I use the following command:

xargs -I{lin} echo \"{lin}\" < your_filename

The xargs take standard input (redirected from your file) and pass one line a time to {lin} placeholder, and then execute the command at next, in this case a echo with escaped double quotes.

You can use the -i option of xargs to omit the name of the placeholder, like this:

xargs -i echo \"{}\" < your_filename

In both cases, your IFS must be at default value or with '\n' at least.

| improve this answer | |
  • Consider also, that one might not really need to echo the thing, but one might have needed quote-marks to do other operations in the script. For me, I can run a command: script-that-lists-files-per-line.py | xargs -I{lin} sudo chmod a+r {lin} – macetw Jun 16 '17 at 13:42
  • You're right Mr. macetw, my mistake not put clear that's just an command example. – 0zkr PM Feb 21 '18 at 23:58
  • Using mingw xargs 4.4.2 on windows 10 from command prompt found >xargs -I{lin} echo "'"lin"'" worked for single quotes. – Bob Nov 8 '18 at 17:19
5

Use sed:

sed -e 's/^\|$/"/g' file

More effort needed if the file contains empty lines.

| improve this answer | |
  • 1
    I tried this and discovered that, for some reason, on blank lines it only output one quote. – glenn jackman Jun 7 '13 at 19:23
  • 8
    Could do sed 's/.*/"&"/' – glenn jackman Jun 7 '13 at 19:25
  • 1
    @glennjackman: Yes. If the line is empty, there is only one position when the substitution can be tried. – choroba Jun 7 '13 at 19:27
  • sed 's/^/"/; s/$/"/' file, assuming no line is already quoted. – michael Jun 7 '13 at 19:29
5

This sed should work for ignoring empty lines as well:

sed -i.bak 's/^..*$/"&"/' inFile

or

sed 's/^.\{1,\}$/"&"/' inFile
| improve this answer | |
2

I think the sed and awk are the best solution but if you want to use just shell here is small script for you.

#!/bin/bash

chr="\""
file="file.txt"
cp $file $file."_backup"
while read -r line
do
 echo "${chr}$line${chr}"
done <$file > newfile
mv newfile $file
| improve this answer | |
  • it would be nice to at least provide some explanation as why you feel this is incorrect. – grepit Jun 7 '13 at 19:40
  • Other than showing how to output a literal double quotation mark, it does not address the topic of adding quotation marks to preexisting text at all. – chepner Jun 7 '13 at 19:43
  • @ chepner I have modified my comment and thanks for giving me a feedback so I can contribute more effectively. – grepit Jun 7 '13 at 19:55
1
paste -d\" /dev/null your-file /dev/null

(not the nicest looking, but probably the fastest)

Now, if the input may contain quotes, you may need to escape them with backslashes (and then escape backslashes as well) like:

sed 's/["\]/\\&/g; s/.*/"&"/' your-file
| improve this answer | |
-1

I used sed with two expressions to replace start and end of line, since in my particular use case I wanted to place HTML tags around only lines that contained particular words.

So I searched for the lines containing words contained in the bla variable within the text file inputfile and replaced the beginnign with <P> and the end with </P> (well actually I did some longer HTML tagging in the real thing, but this will serve fine as example)

Similar to:

$ bla=foo
$ sed -e "/${bla}/s#^#<P>#" -e "/${bla}/s#\$#</P>#" inputfile
<P>foo</P>
bar
$
| improve this answer | |

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