136

I would like to copy the contents of a variable (here called var) into a file.

The name of the file is stored in another variable destfile.

I'm having problems doing this. Here's what I've tried:

cp $var $destfile

I've also tried the same thing with the dd command... Obviously the shell thought that $var was referring to a directory and so told me that the directory could not be found.

How do I get around this?

4
  • 2
    Please improve your question by posting some properly formatted code that shows how you're populating your variables, and all relevant error messages exactly as they appear. Jul 23, 2012 at 19:07
  • 2
    What do you mean by "copy the contents of a variable" to a directory? Does $var specify a file name or some text that should be written to a file? If it specifies text, then what is the name of the file to which you'd like to write this content?
    – jahroy
    Jul 23, 2012 at 19:11
  • $var contains the text that I want to be copied and the file to which it should be written is user-defined hence the reason that I am using a variable in the first place. Jul 23, 2012 at 19:17
  • 2
    Perhaps $destdir should be named $destfile so it's not misleading... The name $destdir suggests it specifies a directory rather than a file. This would make your whole question straightforwar and easy to understand.
    – jahroy
    Jul 23, 2012 at 19:27

6 Answers 6

186

Use the echo command:

var="text to append";
destdir=/some/directory/path/filename

if [ -f "$destdir" ]
then 
    echo "$var" > "$destdir"
fi

The if tests that $destdir represents a file.

The > appends the text after truncating the file. If you only want to append the text in $var to the file existing contents, then use >> instead:

echo "$var" >> "$destdir"

The cp command is used for copying files (to files), not for writing text to a file.

9
  • 5
    Needs more quotes -- right now, any runs of whitespace within the variable's value will be converted to a single space, glob expressions will be expanded, etc. Jul 23, 2012 at 19:54
  • 2
    One other thing -- you need a space between the closing quote and the ] in "$destdir"]. Jul 23, 2012 at 23:57
  • 4
    echo also adds a trailing newline to your variable.
    – Ben Dilts
    Jun 11, 2015 at 18:08
  • 7
    This fails if $var is -e text to append, and does't actually write the -e
    – Eric
    Mar 21, 2018 at 23:37
  • 2
    Because echo $var is relying on the shell to expand your variable, it doesn't work very will with things like white space and special characters. You can use perl -e 'print($ENV{var})' instead, and it will output precisely the value of the variable. May 25, 2018 at 21:54
67

echo has the problem that if var contains something like -e, it will be interpreted as a flag. Another option is printf, but printf "$var" > "$destdir" will expand any escaped characters in the variable, so if the variable contains backslashes the file contents won't match. However, because printf only interprets backslashes as escapes in the format string, you can use the %s format specifier to store the exact variable contents to the destination file:

printf "%s" "$var" > "$destdir"

5
  • 4
    printf is also good if you have newlines in the variable string, like from a triple quote or heredoc. echo doesn't handle the newlines well.
    – beeflobill
    Jun 27, 2018 at 22:19
  • 1
    @beeflobill can you explain how "echo doesn't handle the newlines well". The only thing I've seen is that echo adds a newline. Which does make echo "$var" > destfile wrong. Sep 28, 2018 at 19:58
  • 1
    @SensorSmith In my experiments, I see that when the string has "\n" that echo will print a newline character. But, if the string has an actual newline character that echo will not print it. I don't know why.
    – beeflobill
    Oct 4, 2018 at 17:46
  • 3
    Basically a portability (and reliability) issue. unix.stackexchange.com/a/65819 … or for the deadly among us: printf is better, move on. Sep 18, 2019 at 18:16
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    If you, fellow pilgrim, reading this answer and thinking about removing those double quotes around $var — stop it. It won't work without quotes or with a single quotes in some cases. Just accept that you have to use double quotes. This knowledge cost me about a day of debugging a broken GitHub Actions Workflow where I saved a private key (with newlines) from a secret to a file…
    – madhead
    Feb 9, 2021 at 15:43
48

None of the answers above work if your variable:

  • starts with -e
  • starts with -n
  • starts with -E
  • contains a \ followed by an n
  • should not have an extra newline appended after it

and so they cannot be relied upon for arbitrary string contents.

In bash, you can use "here strings" as:

cat <<< "$var" > "$destdir"

As noted in the comment by Ash below, @Trebawa's answer (formulated in the same room as mine!) using printf is a better approach than cat.

2
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    From what I can tell, cat will always insert a newline at the end of the file, regardless of there not being a newline at the end of the variable (although arguably this is a good thing in most cases). The answer using printf seems to avoid inserting a trailing newline.
    – ash
    Jul 3, 2018 at 14:28
  • @Ash another advantage of printf over cat is that the former is a shell builtin which will always execute faster than an external binary. Feb 6, 2020 at 22:50
12

All of the above work, but also have to work around a problem (escapes and special characters) that doesn't need to occur in the first place: Special characters when the variable is expanded by the shell. Just don't do that (variable expansion) in the first place. Use the variable directly, without expansion.

Also, if your variable contains a secret and you want to copy that secret into a file, you might want to not have expansion in the command line as tracing/command echo of the shell commands might reveal the secret. Means, all answers which use $var in the command line may have a potential security risk by exposing the variable contents to tracing and logging of the shell.

For variables that are already exported, use this:

printenv var >file

That means, in case of the OP question:

printenv var >"$destfile"

Note: variable names are case sensitive.

Warning: It is not a good idea to export a variable just for the sake of printing it with printenv. If you have a non-exported script variable that contains a secret, exporting it will expose it to all future child processes (unless unexported, for example using export -n).

5
  • 1
    This should be the accepted answer. It correctly answers OP's question without potentially dangerous side-effects. Its only drawback is the fact that it isn't a shell built-in even though you'll find it on just about every linux box. I just want to point out that it is case-sensitive. printenv user prints nothing while printenv USER prints the current username (at least on my computer). Dec 24, 2020 at 14:33
  • Yes, the environment on Unix (POSIX/Linux) is case sensitive, just like (almost?) everything else. Added a note. Thanks. Dec 27, 2020 at 17:00
  • 1
    This should be the accepted answer. It also works within "too smart for their own good" escaping routines like the one in Jenkins.
    – Sergio
    Jul 6, 2021 at 13:38
  • 2
    This would only work for environment variables, not for local script's variables. You'd have to export those variables, and if your values contains any secrets that would mean that any processes running as the same users would be able to read those values from the process table and all child processes would also inherit those values, potentially leaking info to other processes that you weren't expecting. Not an ideal situation. Using printf "$var" or foo <<< "$var" should work in all cases.
    – Lie Ryan
    Feb 8 at 5:29
  • Thanks @LieRyan that's a good point, I've updated the answer accordingly. Note that your suggestions potentially leak the variable value to the log when command echo or tracing are enabled. Feb 11 at 6:34
8

If I understood you right, you want to copy $var in a file (if it's a string).

echo $var > $destdir
3
  • This is how it's done. Using the cp command will make the shell interpret the first argument as the name of a file or directory.
    – jahroy
    Jul 23, 2012 at 19:41
  • 7
    If you not enclose $var into quotes, content of the file is not 100% equal with the $var's content in some cases. For example when "echoing" vars that contains RSA keys, you get invalid key in the file.
    – srigi
    Aug 10, 2017 at 10:02
  • 8
    Fails if $var contains spaces or -e
    – Eric
    Mar 21, 2018 at 23:55
0

When you say "copy the contents of a variable", does that variable contain a file name, or does it contain a name of a file?

I'm assuming by your question that $var contains the contents you want to copy into the file:

$ echo "$var" > "$destdir"

This will echo the value of $var into a file called $destdir. Note the quotes. Very important to have "$var" enclosed in quotes. Also for "$destdir" if there's a space in the name. To append it:

$ echo "$var" >> "$destdir"
2
  • 3
    Fails if var contains -e
    – Eric
    Mar 21, 2018 at 23:43
  • 4
    Passing a double hyphen as first argument to echo terminates its option list, thus solves the issue raised by @Eric: echo -- "$var" >> "$destfile" Feb 6, 2020 at 22:56

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