removing parentheses around digits using regular expressions
8 vues (au cours des 30 derniers jours)
Afficher commentaires plus anciens
Dear all, I am slowly making progress on my learning of regular expressions. At the moment, I am trying to solve the following problem: replace all occurrences of (n) with n, where n is a number, provided that no alphabetical letter occurs before the first parenthesis. As an example,
str='(2)+p_5*(3)-(0.3)'
would become
2+p_5*3-0.3
I wrote the following
regexprep(str,'(\W)(\()([.012345789]+)(\))','$1$3')
but it does not solves the problem if one of the expressions to change occurs at the beginning as in the example above. More concretely, the answer I get from running this is
(2)+p_5*3-0.3
which is not the expected result.
Thanks in advance for any help
Pat.
0 commentaires
Réponse acceptée
Matt Fig
le 5 Oct 2012
Modifié(e) : Matt Fig
le 5 Oct 2012
regexprep(str,'(\()([\d*\.]+)(\))','$2')
10 commentaires
Walter Roberson
le 5 Oct 2012
For example, 1+()*2 the empty string inside the () would match because all parts of \d*\.?\d* are optional, so the expression would be converted to 1+*2
Also, I note that the problem description does not disallow numeric characters before the (), so 1+Henkel2(7)*5 would be converted to 1+Henkel27*5
per isakson
le 5 Oct 2012
Modifié(e) : per isakson
le 6 Oct 2012
Yes.
Assuming the requirement is to match numbers only. The second expression below seems to be closer to a working one. However, what expression is taught in the book?
>> regexprep( '(12),(.12),(12.),(1.2),(.),()' ...
, '\((\d*\.?\d*)\)', '#$1' )
ans =
#12,#.12,#12.,#1.2,#.,#
>> regexprep( '(12),(.12),(12.),(1.2),(.),()' ...
, '\(((\d+\.?\d*)|(\d*\.\d+))\)', '#$1' )
ans =
#12,#.12,#12.,#1.2,(.),()
.
\w takes care of the case with Henkel2 - by intent or not. However, are there any cases, in which "(" should be replaced when preceded by a digit?
Plus de réponses (2)
per isakson
le 5 Oct 2012
Modifié(e) : per isakson
le 5 Oct 2012
>> regexprep( str, '\(([\d.]+)\)', '$1' )
ans =
2+p_5*3-0.3
str =
(2)+p_5*(3)-(0.3)+exp(3)
>> regexprep( str, '\(([\d.]+)\)', '$1' )
ans =
2+p_5*3-0.3+exp3
- *\(* represents "("
- \) represents ")"
- [\d.]+ represents one or more digits and periods, e.g. "....0" and "2"
- (expr) "Group regular expressions and capture tokens." The token may be refered to in the replacement string by $1 - "1" because it is the first
Every substring in the string that matches this expression is replaced, i.e. a number enclosed by parentheses is replaced by the number.
.
--- in response to a comment ---
>> regexprep( str, '(?<!\w)\(([\d.]+)\)', '$1' )
ans =
2+p_5*3-0.3+exp(3)
better
>> regexprep( str, '(?<![a-zA-Z])\(([\d.]+)\)', '$1' )
because \w includes digits.
- (?<![a-zA-Z]) "Look behind from current position and test if expr is not found." Where expr evaluates to a letter. Thus, if preceded by a letter there is no match.
Voir également
Catégories
En savoir plus sur Characters and Strings dans Help Center et File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!