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I'm asking for input for a dice game. It really matters whether or not the number entered is divisible by ten.

I have \d+0 for the numbers that DO end in zero.

I need one for the number that DO NOT end in zero.

Thanks in advance.

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8 Answers 8

up vote 4 down vote accepted
\d+[1-9]

Should work, I think.

This will match at least one digit followed by a non-zero digit.

However, you very likely need to embed this in some way, either by anchoring it:

^\d+[1-9]$

to verify that the complete string only contains that number (but then you can also convert said string to a number and do a mod 10).

The way you have it currently (and also the expression in your question) it would match a number like 1203 without problems for both expressions, since regexes match substrings unless you anchor them (except in some environments where they are anchored by default like that – I think Java does that).

Also this works for at least two digits only, as does the expression you posted in your question. I assume that to be intentional. If not, then the + should probably be a * in both cases.

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3  
This does not match single digit numbers, I fear. –  Hyperboreus May 23 '11 at 17:58
    
@Joey this way don't match with 1 digit number (ie 5). –  Zote May 23 '11 at 17:59
    
If you're going to do something like this... might as well just make the regex: [1-9]+ –  kafuchau May 23 '11 at 18:00
1  
Hyperboreus, Zote: Neither does the expression he posted in his question. –  Joey May 23 '11 at 18:00
1  
kchau: Nope, that would prevent numbers like 103. –  Joey May 23 '11 at 18:03

Maybe this would do the trick

\d*[1-9]
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1  
Ah, damn. I fiddled about 15 seconds with the minimum post length, I think :-) –  Joey May 23 '11 at 17:58
    
@Joey Haha, me too. –  Hyperboreus May 23 '11 at 18:00
    
Upvoting this fast guy –  sidyll May 23 '11 at 18:00
    
This answer appeals to me more because of how vague the original question is in terms of environment; it specifically mentions regex. Also, this sounds like a simple regex homework problem. –  Robolulz May 23 '11 at 18:12

This is not a good use of regular expressions.

I suggest the modulus or integer division operators.

if (number % 10) {
  // number doesn't end in zero
}
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I think

\d*[1-9]

Works better.

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I think (d%10==0) is a better way to test divisibility by 10.

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Divisibility trick is valid for integers not for decimals.

What if someone tris to verify this:

123.120

It ends with a non significant zero.

So 123.12/X and 123.120/X gives same result Same for 123.12%X and 123.120%X (This last is not valid operation since value is not an integer, so can not get module of a float/number)

Module can only be getted for integer values (integer/integer).

And also someone can be trying to look for:

AnyTextWithNumbersNotEndingOnZero_0  <--- Not valid
AnyTextWithNumbersNotEndingOnZero    <--- Valid

So the best an more clear can be somethng like this:

/[0-9]*0$/

Hope helps.

Ah! and if want letters and numbers but last not be a zero:

/[0-9A-Za-z]*0$/

etc

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You can try this one to exclude 0

\d+[^0]?
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1  
this way don't match with 1 digit number (ie 5). –  Zote May 23 '11 at 18:00
    
I edited it. Thx :) –  George Kastrinis May 23 '11 at 18:01
    
Your expression matches 12, 120, 1000, 12C and 100D for instance. –  Hyperboreus May 23 '11 at 21:39

If you want to do it using regular expression , try this expression

^([1-9]+)$

Otherwise var num =temp;

if(temp % 10 !==0){

//your code

}

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