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I want to modify my existing Regular Expression which accepts decimals from 0 to 99.99

\d{0,2}(\.\d{1,2})?$ 

i want this to be accept

100
100.0
100.00

and should not accept

100.1
100.02
101

Can anyone help me modify the above RE

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\d{0,3}(\.\d{1,2})?$ –  Burhan Khalid Jul 7 '12 at 10:29
4  
Why are you using a regular expression for this? Can't you just use a numeric comparison? –  Ben Jul 7 '12 at 10:29
    
@BurhanKhalid, that would allow 999.99 –  Ben Jul 7 '12 at 10:30
    
@Ben that comment was before the edit :) –  Burhan Khalid Jul 7 '12 at 10:36

4 Answers 4

up vote 1 down vote accepted

I guess it's best to add the test for 100 as a special case using |:

^(\d{0,2}(\.\d{1,2})?|100(\.00?)?)$ 
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That won't match 100.000 though. Not sure if he wants to match more than 2 decimal places, but if so: ^(\d{0,2}(\.\d+)?|100(\.0+)?)$ –  C0deH4cker Jul 8 '12 at 2:27

Use Floating-Point Comparisons Instead

You already have answers for doing this with a regular expression, but it's usually more efficient to handle this as a floating-point comparison with boundary conditions. For example, using Ruby:

number = 99
number.to_f >= 0 and number.to_f <= 100
=> true

number = 100.01
number.to_f >= 0 and number.to_f <= 100
=> false

In these examples, the variable is cast as a float so that strings and integers are compared properly, and then the float is compared to the boundary conditions of zero and 100. It's quick, easy to write, and (most importantly) easy to read.

Your mileage may vary.

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100(\.0{1,2})?$|\d{0,2}(\.\d{1,2})?$ 
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the above accepts 100.01 and so on –  Ishan Jul 7 '12 at 10:36
    
Forgot the trailing $; fixed now. Why don't you use a starting anchor as well, though? –  tripleee Jul 7 '12 at 10:37
(100(\.[0]{1,2})?|[0-9]{1,2}(\.[0-9]{1,2})?)
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