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I need to check if the variable has value of string which starts with specified substring.

In Python it would be something like this:

foo = 'abcdef'
if foo.startswith('abc'):
    print 'Success'

What is the most explicit way to check in Ksh whether strig $foo starts with substring bar?

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3 Answers 3

up vote 15 down vote accepted

It's very simple but looks a bit odd:

if [[ "$foo" == abc* ]]; then ...

One would assume that ksh would expand the pattern with the files in the current directory but instead, it does pattern matching. You need the [[, though. Single [ won't work. The quotes are not strictly necessary if there are no blanks in foo.

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Inside double brackets, you don't need the quotes even if $foo is null or unset. –  Dennis Williamson Nov 2 '10 at 18:32
    
The solution looks exactly like what I was looking for. But unfortunately it doesn't work in my ksh. It looks like ksh88, I guess too old for such tricks. –  z4y4ts Nov 3 '10 at 9:30
    
What if $foo has "=" in it? –  user443854 Jan 18 '13 at 16:40
1  
@user443854: BASH expansion works in such a way that the if command gets the contents of foo as a single parameter, so it doesn't matter. And the if command only looks for a parameter which is exactly =, it doesn't try to split parameters further. –  Aaron Digulla Jan 20 '13 at 13:12
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Also:

foo='abcdef'
pattern='abc*'

case "$foo" in
    $pattern) echo startswith ;;
    *) echo otherwise ;;
esac
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+1 for portable solution –  Roman Cheplyaka Nov 3 '10 at 6:56
1  
You certainly don't need the interim variable. case $foo in 'abc'* ) echo yes ;; esac –  tripleee Aug 8 '13 at 7:59
    
portable back to solaris 9 /bin/sh and @tripleee's simplification above works –  lamont Oct 15 '13 at 23:48
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You can also do regex matching:

if [[ $foo =~ ^abc ]]

For more complex patterns, I recommend using a variable instead of putting the pattern directly in the test:

bar='^begin (abc|def|ghi)[^ ]* end$'
if [[ $foo =~ $bar ]]
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