6

I have a question about file test expressions in bash. Here is a simple script to illustrate my question:

set -x
read -p "Enter a filename: " var1
if [ - e $var1 ]
then
    echo file exists
else
    echo file not found
fi

There are three scenarios:

  1. At the prompt, I enter foo , which is a file that exists in the directory from which I'm running the script. As expected, the output is file exists .
  2. At the prompt, I enter bar . No such file exists in the directory from which I'm running the script. As expected, the output is file not found .
  3. At the prompt, I hit <enter> without typing anything. Surprisingly, the output is file exists .

If I use if [[ -e $var1 ]] , i.e., double brackets instead of single, the behavior is correct: even in the third case, I get file not found.

I stuck a set -x at the top of the file to see what was going on. With single brackets, the variable is evaluated as: '[' -e ']' . With double, it is evaluated as [[ -e '' ]] . This is interesting. Why is the expression being evaluated differently in the two cases?

I would be grateful for an explanation. Sorry if I'm missing the obvious. Thanks!

3

Because that's how they work. [[ is smarter than test, and should be used except where strict compatibility with sh is required.

  • 3
    Thanks Ignacio. Based on your reply I did some more searching and found this link: link that explained a lot. – verbose Apr 28 '12 at 6:11
  • 1
    greycat's site is awesome. Required reading for the serious bash script writer. – Ignacio Vazquez-Abrams Apr 28 '12 at 6:13
  • 4
    I strongly disagree with the claim that [[ should be used in favor of test, and would re-phrase it as: '[[ should only be used when you are absolutely certain that your script will never need to be run under a minimal shell.' – William Pursell Apr 28 '12 at 11:23
6

change to if [ -e "$var1" ]

You can find more details of [] and [[ ]] Here

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