3

I have this code:

string first = "2-18;1-4; 5-212; 4-99" ;
Char delimiter = '-';

String pattern = @"\s?(\d+)([-])(\d+)";

And I would like to know if there is any way to put the delimiter in the pattern instead of the ([-]) ?

3 Answers 3

8

You could use string interpolation:

string first = "2-18;1-4; 5-212; 4-99" ;
Char delimiter = '-';

String pattern = $@"\s?(\d+)([{delimiter}])(\d+)";

The $ sign (which has to be in front of the @) makes it possible to put a variable (string) in a string by using { }

Note: In older versions of C# however this will not work

In this case you can use string.Format:

string.Format(@"\s?(\d+)([{0}])(\d+)", delimiter);

This works the same way but uses number placeholders for the parameters after the ,


Regex.Escape: (Credits to NtFreX)

Additionally if you are using regex you should escape your character (because they can mean something else in regex).

$@"\s?(\d+)([{Regex.Escape( delimiter.ToString() )}])(\d+)";
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  • Nice. Although a reference to "string interpolation" would make this even better.
    – Bathsheba
    Jul 5, 2017 at 7:12
  • @Bathsheba just posted still improving post :) nice touch :)
    – EpicKip
    Jul 5, 2017 at 7:13
  • Very interesting
    – lkdhruw
    Jul 5, 2017 at 7:13
  • Have made an edit - this is the way the cool cats like to present links. But rollback if you don't like it.
    – Bathsheba
    Jul 5, 2017 at 7:15
  • @EpicKip Please add @NtFrex Regex.Escape. This will make your example more flexible. Jul 5, 2017 at 7:35
2

This is simplest string concatenation. You have several options:

string concatenation:

Char delimiter = '-';

String pattern = @"\s?(\d+)([" + delimiter + "])(\d+)";

string.Format():

Char delimiter = '-';

String pattern = string.Format(@"\s?(\d+)([{0}])(\d+)", delimiter);

new style Format (only works with newer C# versions):

Char delimiter = '-';

String pattern = $@"\s?(\d+)([{delimiter}])(\d+)";
2

Additionaly I would use Regex.Escape to escape the delimiter.

$@"\s?(\d+)([{Regex.Escape(delimiter)}])(\d+)";

For example if the delimiter is . it needs to be changed into \. because . is a special regex character which matches any character. The same goas for other characters.

4
  • Used this in my answer, thanks :), hope you don't mind (gave credit of course)
    – EpicKip
    Jul 5, 2017 at 7:41
  • @EpicKip No problem. This site is for good answers so perfect.
    – NtFreX
    Jul 5, 2017 at 7:43
  • Inside of character classes, the dot . doesn't need escaping. Hyphen - doesn't need escaping so long as it's the first, last (or only) character in the class. They'll still be parsed fine if you unnecessarily escape them so in this case it's a good thing since the pattern is coming from user input. But keep that in mind for a "nornal" regex because escaping too much can lead to readability issues. Jul 5, 2017 at 8:01
  • @pinkfloydx33 ah I didn't know that. Thanks for the info
    – NtFreX
    Jul 5, 2017 at 8:04

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