182

I'm trying to set a regexp which will check the start of a string, and if it contains either http:// or https:// it should match it.

How can I do that? I'm trying the following which isn't working:

^[(http)(https)]://
  • 5
    If you're checking just the start of the string, it's probably faster to just do a straight comparison of the first few characters of the string with the patterns you're looking for. – templatetypedef Jan 10 '11 at 2:03
  • 2
    You are creating a character group with []. It will mach one character that is either (,),h,t,t,p or s. I.e. it would match s:// but not ht:// or x://. – Felix Kling Jan 10 '11 at 2:05
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    @templatetypedef: I think I sense some premature optimization. – cdhowie Jan 10 '11 at 2:20
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    @template explain how? – Click Upvote Jan 10 '11 at 2:24
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    Many modern regular expression libraries are very fast. Unless there is (lots of) back-tracking, regular expressions may compare favorably -- or better -- to "index-of" style approaches (compare /^x/ vs indexOf(x) == 0). "starts with" style approaches may have less overhead, but I suspect it rarely matters -- choose what is the cleanest, which very well may be: x.StartWith("http://") || x.StartsWith("https://") -- but do so out of code clarity, not an attempt to improve performance unless justified with analysis and requirements :-) – user166390 Jan 10 '11 at 2:42
326

Your use of [] is incorrect -- note that [] denotes a character class and will therefore only ever match one character. The expression [(http)(https)] translates to "match a (, an h, a t, a t, a p, a ), or an s." (Duplicate characters are ignored.)

Try this:

^https?://

If you really want to use alternation, use this syntax instead:

^(http|https)://
  • As a PHP input string: $regex = '/^(https?:\/\/)'; – Steve Tauber Jul 28 '14 at 14:09
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    Steve, I think you missed a / at the end: $regex = '/^(https?:\/\/)/'; – Axi May 19 '15 at 15:03
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    Just in case some nut accidentally uppercases the http, $regex = '/^(https?:\/\/)/i'; – jeffkee Jan 8 '16 at 23:19
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    You forgot to escape / using \. So it would be ^https?:\/\/. Am I right? – Shafizadeh Jan 22 '16 at 23:30
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    @Shafizadeh / is not a special character in regular expressions, only in languages where / is used to notate a literal regular expression. For example, it is not necessary to escape / in regular expressions when using C#, because C# regular expressions are expressed (in part) as string literals. Nor do you need them in, say, Perl (when using an alternate delimiter as in m#^https?://#). So to directly address your comment: (a) No, I did not forget to escape anything. (b) You will need to escape whatever characters are treated specially in your language of choice. – cdhowie Jan 23 '16 at 2:05
38

Case insensitive:

var re = new RegExp("^(http|https)://", "i");
var str = "My String";
var match = re.test(str);
25
^https?://

You might have to escape the forward slashes though, depending on context.

18

^https?:\/\/(.*) where (.*) is match everything else after https://

  • Good call on the escapes - JS doesn't like ^https://(.*). – skwidbreth Mar 26 '18 at 15:27
15

This should work

^(http|https)://

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