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I am in dilemma about how could I search and replace a particular character in a variable of a shell script.

e.g. I have a condition where I need to pass '~' to the java program but I should pass it as '/~' to avoid it being intercepted as $HOME. I have a shell variable e.g. $1 = '.-~' and I am passing it directly to the Java program as an argument. So how could I modify this variable in such a way that it searches for '~' and if it finds then changes $1 = '.-/~' so as to avoid the error in Java program.

I tried $(1//~//~) but it gives me an error.

Also this gave me an error.

sed 's#~#/#g' <<< $x;
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do you mean \~ –  Maxim Shoustin Sep 15 '13 at 13:05
    
escaping the '~' with '/' to avoid it being intersepted as $HOME by bash. –  Big Show Sep 15 '13 at 13:07
    
possible duplicate of Pass a special variable (~ tilde) to Java program –  dannysauer Sep 15 '13 at 17:48

2 Answers 2

To replace a string in a shell variable, you can use var modifiers like this:

${YOURVAR/The string you want to search/The string you want to replace to}

By example:

${HOME/~/world} -> "hello ~" become "hello world"
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it does not work for special chars : e.g. ${1/~/'/~'} does not work –  Big Show Sep 15 '13 at 13:14

For both your attempts you have two options:

"${1//\~//~}"  ## ~ in pattern needs to be backslash quoted.

And

sed 's#~#/~#g' <<< "$x"  ## $x should be placed in double quotes to prevent other word splitting or expansions. And you probably forgot ~.

Other versions to replace with \ instead:

"${1//\~/\\~}"
sed 's#~#\\~#g' <<< "$x"
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