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I can't get path from variable in bash. How do it correct? For example:

my@PC:~$ a="~/.bashrc"
my@PC:~$ cat $a
cat: ~/.bashrc: No such file or directory

didn't work, but

cat .bashrc

and

cat ".bashrc"

Works well.


Here is right answer from fedorqui

cat $(eval echo $a)
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marked as duplicate by dogbane, fedorqui, jm666, chepner, devnull Jul 26 '13 at 5:37

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2  
You can try cat $(eval echo $a) –  fedorqui Jul 25 '13 at 15:35
2  
eval is not recommended. –  chepner Jul 25 '13 at 16:11

1 Answer 1

up vote 3 down vote accepted

The reason for the issue is that the tilde is expanded to the home directory by the shell. When you store it in a variable, the tilde is not expanded and cat looks for a file .bashrc in the folder ~ (rather than your home directory)

There are two ways around the issue: the proposed eval, and using $HOME:

a="$HOME/.bashrc"
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3  
You could also use a=~/".bashrc" or even a=~/.bashrc -- as long as the ~ is outside the quotes it'll be expanded (unlike $variable, which is expanded even inside double-quotes). –  Gordon Davisson Jul 25 '13 at 16:13

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