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What's going on here?

printf.sh:

#! /bin/sh
NAME="George W. Bush"
printf "Hello, %s\n" $NAME

Command line session:

$ ./printf.sh
Hello, George
Hello, W.
Hello, Bush

UPDATE: printf "Hello, %s\n" "$NAME" works. For why I'm not using echo, consider

echo.sh:

#! /bin/sh
FILE="C:\tmp"
echo "Filename: $FILE"

Command-line:

$ ./echo.sh
Filename: C:    mp

The POSIX spec for echo says, "New applications are encouraged to use printf instead of echo" (for this and other reasons).

share|improve this question
    
bash builtin echo doesn't do \ replacement by default, but POSIX shell (e.g. dash) echo does, as your link to the spec indicates. Since you're using a shell anyway, you could just printf "Hello, $NAME\n" –  Peter Cordes Nov 28 '13 at 5:05
    
Actually, using %s is probably a good habit, for security and correctness reasons. printf will do \ replacement and other stuff to the format string, so keep variables out of it when possible. –  Peter Cordes Nov 28 '13 at 5:13

4 Answers 4

up vote 6 down vote accepted

Your NAME variable is being substituted like this:

printf "Hello, %s\n" George W. Bush

Use this:

#! /bin/sh
NAME="George W. Bush"
printf "Hello, %s\n" "$NAME"
share|improve this answer

is there a specific reason you are using printf or would echo work for you as well?

NAME="George W. Bush"
echo "Hello, "$NAME

results in

Hello, George W. Bush

edit: The reason it is iterating over "George W. Bush" is because the bourne shell is space delimitted. To keep using printf you have to put $NAME in double quotes

printf "Hello, %s\n" "$NAME"
share|improve this answer

The way I interpret the man page is it considers the string you pass it to be an argument; if your string has spaces it thinks you are passing multiple arguments. I believe ColinYounger is correct by surrounding the variable with quotes, which forces the shell to interpret the string as a single argument.

An alternative might be to let printf expand the variable:

printf "Hello, $NAME."

The links are for bash, but I am pretty sure the same holds for sh.

share|improve this answer
    
No, there's no "it thinks". He DID pass multiple arguments, because he didn't quote the expansion of $NAME in the printf command. The shell expanded it, then word-split it, then passed the 3 arguments to printf. But as you say, ColinYounger has it right. –  Peter Cordes Nov 28 '13 at 5:00

If you want all of those words to be printed out on their own, use print instead of printf

printf takes the formatting specification and applies it to each argument that you pass in. Since you have three arguments {George, W., Bush}, it outputs the string three times using the different arguments.

share|improve this answer
    
print(1) is for printing a file to a printer, after checking its mime-type. It's not a shell built-in in bash. –  Peter Cordes Nov 28 '13 at 4:59

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