Trying to learn a little more about using Regex (Regular expressions). Using Microsoft's version of Regex in C# (VS 2010), how could I take a simple string like:
"Hello"
and change it to
"H e l l o"
This could be a string of any letter or symbol, capitals, lowercase, etc., and there are no other letters or symbols following or leading this word. (The string consists of only the one word).
(I have read the other posts, but I can't seem to grasp Regex. Please be kind :) ).
Thanks for any help with this. (an explanation would be most useful).
You could do this through regex only, no need for inbuilt c# functions. Use the below regexes and then replace the matched boundaries with space.
(?<=.)(?!$)
string result = Regex.Replace(yourString, @"(?<=.)(?!$)", " ");
Explanation:
(?<=.)
Positive lookbehind asserts that the match must be preceded by a character. (?!$)
Negative lookahead which asserts that the match won't be followed by an end of the line anchor. So the boundaries next to all the characters would be matched but not the one which was next to the last character.OR
You could also use word boundaries.
(?<!^)(\B|b)(?!$)
string result = Regex.Replace(yourString, @"(?<!^)(\B|b)(?!$)", " ");
Explanation:
(?<!^)
Negative lookbehind which asserts that the match won't be at the start. (\\B|\\b)
Matches the boundary which exists between two word characters and two non-word characters ( \\B
) or match the boundary which exists between a word character and a non-word character ( \\b
). (?!$)
Negative lookahead asserts that the match won't be followed by an end of the line anchor. Regex.Replace("Hello", "(.)", "$1 ").TrimEnd();
Explanation
$n
notation.$1
represents the first captured group in the input, therefore our replacement string will replace each character by that character plus one space.For the enthusiast, the same effect can be achieve through LINQ using this one-liner:
String.Join(" ", YourString.AsEnumerable())
or if you don't want to use the extension method:
String.Join(" ", YourString.ToCharArray())
It's very simple. To match any character use .
dot and then replace with that character along with one extra space
Here parenthesis (...)
are used for grouping that can be accessed by $index
Find what : "(.)"
Replace with "$1 "
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