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I need a regular expression for JavaScript that will match any string that does not start with the + character. With one exception, strings starting with +1 are okay. The empty string should also match.

For example:

"" = true
"abc" = true
"+1" = true
"+1abc" = true
"+2" = false
"+abc" = false

So far I have found that ^(\+1|[^+]?)$ takes care of the +1 part but I cannot seem to get it to allow more characters after without invalidating the first part. I thought that ^(\+1|[^+]?).*?$ would work but it seems to match everything.

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5 Answers 5

up vote 8 down vote accepted

First, the second part of your matching group isn't optional, so you should remove the ?.

Second, since you only care about what shows up at the beginning, there's no need to test the whole string until the $.

Lastly, to make the empty string return true you need to test for /^$/ as well.

Which turns out to:

/^(\+1|[^+]|$)/

For example:

/^(\+1|[^+]|$)/.test("");      // true
/^(\+1|[^+]|$)/.test("abc");   // true
/^(\+1|[^+]|$)/.test("+1");    // true
/^(\+1|[^+]|$)/.test("+1abc"); // true
/^(\+1|[^+]|$)/.test("+2");    // false
/^(\+1|[^+]|$)/.test("+abc");  // false

See demo

(console should be open)

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Nice and simple! I like it. –  zaq Nov 19 '11 at 0:36
    
+1 Nice usage of empty | metacharacter. –  FailedDev Nov 19 '11 at 0:38
    
+1. Make it a non-capturing group (/^(?:\+1|[^+]|$)/) and it's great. :) –  Shef Nov 19 '11 at 0:42
    
@FailedDev: That's not empty alternative, it's an alternative that matches emptiness. ;) –  Alan Moore Nov 19 '11 at 4:21

Some options:

^($|\+1|[^+])        <-- cleanest
^(\+1.*|[^+].*)?$    <-- clearest
^(?!\+(?!1))         <-- coolest :-)
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1  
+1 for the coolest. –  Alan Moore Nov 19 '11 at 4:21

Try this regex:

regex = /^([^+]|\+1|$)/
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This should work: ^(\+1.*|[^+].*)?$

It is straightforward, too.

\+1.* - Either match +1 (and optionally some other stuff)
[^+].* - Or one character that is not a plus (and optionally some other stuff)
^()?$ - Or if neither of those two match, then it should be an empty string.

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You are matching empty string twice aren't you not? –  FailedDev Nov 19 '11 at 0:32
    
Entirely possible, but I can't manage to see how. Could you point it out? –  Nick Knowlson Nov 19 '11 at 0:33
    
Well before your edit you regex was : ^(|\+1.*|[^+].*)?$. Do you see it now? –  FailedDev Nov 19 '11 at 0:35
    
Oh sorry, yes. Before my edit I had left in an extra | character (as well as not matching +1abc) –  Nick Knowlson Nov 19 '11 at 0:37

If you only care about the start of the string, don't bother with a regular expression that searches to the end:

/^($|\+1|[^+])/

Or you can do it without using a regular expression:

myString.substr(0,1) != "+" || myString.substr(0,2) == "+1";
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