Regular expression pipe confusion
The first pattern without the parenthesis is equivalent to /(^a)|(b$)/
.
The reason is, that the pipe operator ("alternation operator") has the lowest precedence of all regex operators: http://www.regular-expressions.info/alternation.html (Third paragraph below the first heading)
/^a|b$/
matches a string which begins with an a
OR ends with a b
. So it matches afoo
, barb
, a
, b
.
/^(a|b)$/
: Matches a string which begins and ends with an a
or b
. So it matches either an a
or b
and nothing else.
This happens because alteration |
has very low precedence among regex operators.
Related discussion
In ^a|b$
you are matching for an a
at the beginning or a b
at the end.
In ^(a|b)$
you are matching for an a
or a b
being the only character (at beginning and end).
The first means begin by an a
or end with a b
.
The second means 1 character, an a
or a b
.