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How to made bash to execute variable value. For example, we have this code, where variable value was set in single quotes(!).

#!/bin/bash
V_MY_PATH='$HOME'
echo "$V_MY_PATH"
ls $V_MY_PATH

The output is

$HOME
ls: $HOME: No such file or directory

How to made bash to translate shell variable insto its value if there is some.

I want to add some code after V_MY_PATH='$HOME' to make output like echo $HOME.

It's something simple, but i'm stuck. (NB: I know that with V_MY_PATH="$HOME", it works fine.)

EDIT PART: I just wanted to make it simple, but I feel that some details are needed.

I'm getting parameter from a file. This part works good. I don't want to rewite it. The problem is that when my V_MY_PATH contains a predefined variable (like $home) it's not treated like its value.

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1  
Why are you doing this? There is absolutely no reason to store HOME in a variable like this. You're probably asking the wrong question. State what you're actually trying to accomplish so that a proper answer can be given. –  ormaaj Jan 28 '13 at 12:05

3 Answers 3

up vote 2 down vote accepted

use variable indirect reference so:

pete.mccabe@jackfrog$ p='HOME'
pete.mccabe@jackfrog$ echo $p
HOME
pete.mccabe@jackfrog$ ls ${p}
ls: cannot access HOME: No such file or directory
pete.mccabe@jackfrog$ ls ${!p}
bash                        libpng-1.2.44-1.el6      python-hwdata           squid
...
pete.mccabe@jackfrog$ 

The ${!p} means take the value of $p and that value is the name of the variable who's contents I wish to reference

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I need to test it myself, but that sounds like what I need! –  idobr Jan 28 '13 at 12:08
    
I think that this is a good answer for the question, that is formulated above. Probably the question is bad formulated. I'm sorry for that. –  idobr Jan 28 '13 at 12:57
    
For the indirect reference syntax to work you'd need p (or V_MY_PATH in the question) to contain just the name of the variable, p='HOME', not also the $ symbol for evaluating it. –  Smylers Jan 28 '13 at 12:57
1  
In your answer are you in your home directory? ${!p} will evaluate to nothing, so the output will be the same as just calling ls without any arguments. –  Smylers Jan 28 '13 at 12:59
    
@smylers yup you're right, edited question to be correct –  peteches Jan 28 '13 at 13:58

Remove the single quotes

V_MY_PATH='$HOME'

should be

V_MY_PATH=$HOME

you want to use $HOME as a variable

you can't have variables in single quotes.

Complete script:

#!/bin/bash
V_MY_PATH=$HOME
echo "$V_MY_PATH" 
ls "$V_MY_PATH"  #; Add double quotes here in case you get weird filenames

Output:

/home/myuser
0
05430142.pdf
4
aiSearchFramework-7_10_2007-v0.1.rar

etc.

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x=$y is sufficient. There is no globbing or word-splitting in assignments. –  ormaaj Jan 28 '13 at 12:08
    
@ormaaj fixed. you are sure about this right? –  user000001 Jan 28 '13 at 12:09
    
It's not a mistake or anything, just a minor detail. :) The bigger issue is the lack of quoting for the argument to ls. edit: yes sure. You could test with x=* assuming the directory isn't empty. –  ormaaj Jan 28 '13 at 12:11
    
@ormaaj Fixed that to. have I passed SO quality standards? :P –  user000001 Jan 28 '13 at 12:14
    
Looks good, +1 for lack of errors :). (I'm pretty sure the questioner is confused about what they really want anyway. I don't even know how to answer the question. My completely wild guess would be they're looking for how to provide a default value.) –  ormaaj Jan 28 '13 at 12:16

Use eval command:

#!/bin/bash

V_MY_PATH='$HOME'
echo "$V_MY_PATH"
eval ls $V_MY_PATH
share|improve this answer
    
eval is a bad way to do this. V_MY_PATH='curl <url_for_script> -o x.sh;bash x.sh' and so any code I want can be executed with you're permissions. –  peteches Jan 28 '13 at 12:05
    
I don't see how your curl example is relevant. OP uses ls command to and want to list the contents of home directory. –  KingsIndian Jan 28 '13 at 12:11
    
sorry missed the prepending ';' which would end the ls command and start the curl download and execute a script –  peteches Jan 28 '13 at 13:56

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