Regexp lookbehind and lineanchors

조회 수: 13 (최근 30일)
alelap
alelap 2019년 9월 12일
편집: alelap 2019년 9월 16일
Could someone help me to understand why
st = ' a b c';
pattern = '(?<=^\s*)c';
regexp(st,pattern,'lineanchors')
ans =
[]
i.e., does not match (as I expected), while
st2 = [newline,st];
regexp(st2,pattern,'lineanchors')
ans =
7
i.e., finds a match?
My intent is to match 'c' that is preceded by the beginning of a line and zero or more white character. How should I do?
  댓글 수: 2
Stephen23
Stephen23 2019년 9월 12일
편집: Stephen23 2019년 9월 13일
Getting an output of 7 seems like a bug to me. Strangely the bug occurs even if the "zero or more matches" character does not even exist in the input string (R2012b):
>> regexp([char(10),st],'(?<=^_*)c','lineanchors') % Underscore is not in st.
ans =
7
>> regexp([char(10),st],'(?<=^)c','lineanchors') % expected
ans =
[]
>> regexp(st,'(?<=^_*)c','lineanchors') % expected
ans =
[]
What MATLAB version are you using?
You should report this as a bug, giving a link to this thread.
https://www.mathworks.com/support/bug_reports/faq.html
alelap
alelap 2019년 9월 12일
편집: alelap 2019년 9월 16일
R2019a. Reported to Technical Support.
Edit: bug confirmed. Excerpt from Matlab Support's answer:
Indeed the behavior that you observed is indeed a bug in "regexp", which the developers are now aware of, and which might be addressed in some future release.
However, a workaround does exists, which consists in giving up on using the 'lineanchors' option (which makes the "^" and "$" metacharacters match embedded newlines too), and rely on grouping the (absolute) beginning of line "^" and the embedded newline "\n" as two alternatives.

댓글을 달려면 로그인하십시오.

이 질문에 답변하려면 로그인하십시오.

채택된 답변

per isakson
per isakson 2019년 9월 13일
편집: per isakson 2019년 9월 16일
"My intent is to match 'c' that is preceded by the beginning of a line and zero or more white character."
In the character array, ' a b c', the character, 'c', is (after the beginning of the line) preceded not only by whitespace but also by the characters 'a' and 'b'. Thus, [] is the expected result. Try
%%
chr = ' a b c';
xpr = '(?<=^[ ab]*)c';
regexp( chr, xpr, 'match', 'lineanchors' )
that returns
ans =
1×1 cell array
{'c'}
I fail to understand the behavior of your second example. I expect [], not 7. It's looks like a bug to me.
/R2018b
ADDENDUM
I learned something about the option,'once', the other day. It affects the type of the output. In this case the output is a character row instead of a cell array containing the character row. Thus,
>> regexp( chr, xpr, 'match', 'lineanchors', 'once' )
ans =
'c'
  댓글 수: 2
alelap
alelap 2019년 9월 13일
Thank you. It works. Unfortunately, my example is a simplification of my real scenario where a b c are more complicated expressions and I cannot use this method.
per isakson
per isakson 2019년 9월 13일
"Could someone help me to understand why" I think I did that.
I cannot help regarding the "real scenario" because of lack of information.

댓글을 달려면 로그인하십시오.

추가 답변 (0개)

카테고리

Help CenterFile Exchange에서 Desktop에 대해 자세히 알아보기

태그

제품


릴리스

R2019a

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by