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Assuming var contains spaces, newlines, and tabs followed by some text,

why does

${var#"${var%%[![:space:]]*}"}  # strip var of everything 
                                # but whitespace
                                # then remove what's left 
                                # (i.e. the whitespace) from var

remove the white space and leave the text but

${var##[:space:]*}  # strip all whitespace from var

doesn't?

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4 Answers 4

up vote 24 down vote accepted

If I set var=" This is a test ", both your suggestions do not work; just the leading stuff is removed. Why not use the replace functionality that removes all occurrences of whitespace and not just the first:

 ${var//[[:space:]]}
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[:space:] is a character class. It's only valid if it is nested inside another set of [ ].

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Thanks - I didn't know that character classes required nested brackets. –  MCS Nov 27 '08 at 16:53
    
@MCS - This is documented in regex(7) ("man 7 regex" to read it). Most modern regex implementations include support for the POSIX named character classes, so you can read about them in perl's perlre man page, for example, as well. –  converter42 Dec 2 '08 at 16:46

flolo's answer is documented in the "Parameter Substitution" section of the bash man page. Another source of documentation is the Parameter Substitution section of the Advanced Bash-Scripting Guide. The ABS guide includes basic documentation with excellent example code.

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What about $(echo $var)

> a="   123 456  " ; a2="$(echo $a)" ; echo "a=\"${a}\" a2=\"${a2}\""
a="   123 456  " a2="123 456"
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