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I am currently using the below function

!/bin/bash

#Colour change functions

fnHotlinkG2R()
{
        sed -i 's/#hotlink {height: 200px;width: 200px;background: green;/#hotlink {height: 200px;width: 200px;background: red;/' /var/www/html/style.css
}

Rather than creating multiple difference functions I would like to enter the #hotlink as different every time I call the function from within the script.

I am fairly new to sh scripts and would like some assistance please.

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3 Answers 3

up vote 2 down vote accepted

First, the first line should be hash bang #! then followed by the path to the program, not just !.

In bash, you don't declare parameter for the function. You just take the argument (and check whether it is valid/not empty) and use it. In this case, you may want to take the first argument from the function by $1 and replace #hotlink with it.

sed -i 's/'"$1"' {height: 200px; ...

In the part where the function is called, you can call it as if it is another command, and you will supply the #hotlink argument to the command.

fnHotlinkG2R '#hotlink'
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1  
I think in addition, he'll need double quotes in order to get $1 expanded inside his search/replace pattern, right? –  eckes Jun 11 '12 at 8:17
    
@eckes: Actually it will expand without quote (I tested before posting the version without quote, not that thoroughly, though). However, it may not expand correctly if the input has spaces. unix.stackexchange.com/questions/4899/… –  nhahtdh Jun 11 '12 at 8:36
    
That worked great. Cheers. –  Rhys Jun 11 '12 at 8:37

You can use it like this:

#!/bin/bash

#Colour change functions

fnHotlinkG2R()
{
    $hotlinkOld = "$1";
    $hotlinkNew = "$2";
    sed -i "s/$hotlinkOld/$hotlinkNew/i" /var/www/html/style.css
}

And call it like this:

fnHotlinkG2R "#hotlink {height: 200px;width: 200px;background: green;"\
   "#hotlink {height: 200px;width: 200px;background: red;"
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1  
you are missing '#' in front of the '!' for a valid hash bang. –  Bernhard Jun 11 '12 at 8:19
    
Yes, thanks just fixed. –  anubhava Jun 11 '12 at 8:21

First, your shebang is wrong. The proper one is

#!/bin/bash

Secondly, in bash you use a "different" kind of parameter passing.

$0 expands to the name of the shell or shell-script
$1 is the first argument
$2 is the second argument and so on
$@ are all arguments

Read more in the bash manual

You might be interested in the quoting-part in the bash-manual as well...

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