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Requirement:

I am trying to restrict the input field to key in only numbers or numbers upto two decimal numbers only. If the user enters more than two decimal places, the input field must display only number upto two decimal places and removing all other. I am using regular expression.

Problem:

When more than two decimal places are entered in input field, all the decimal places are removed and showed. Problem is with regular expression.

Kindly please help me with forming a correct regex.

Code:

http://jsfiddle.net/h6kYh/

$(document).ready(function() {

  $("#AmountField").bind("keyup change", function() {

    var value = $(this).val();

      var numericReg = /^d+(?:\.\d{0,2})?$/ ;
      if( !numericReg.test(value) )
      {
          value = value.replace(/(?=\d*\.?)(\d{3})/g,"");
          $(this).val(value);
      }
  });
});
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2 Answers 2

It should be

  var invalidNumericReg = /^\d+(\.\d{3,})$/;
  var validNumericReg = /^d+\(.\d{1,2})?$/;

  if( invalidNumericReg.test(value) )//has more than 3 decimal numbers!
  {
      value = value.replace(/^(\d+\.\d{2})\d+$/g,"$1");
      $(this).val(value);
  }
  else if( ! validNumericReg.test(value) )
  {
        //invalid input
  }
share|improve this answer
    
Replacement string should be $1 not \1. –  MikeM Apr 22 '13 at 17:57
    
Thanks Anirudh. But i want to retain and display the numbers upto two decimal numbers, in case entered and remove only the decimals from third position. Can u plz suggest regex for it? –  user2229399 Apr 22 '13 at 17:57
    
Thanks MikeM, that works. :) Thanks Anirudh :) –  user2229399 Apr 22 '13 at 18:00
    
The input field accepts .655.5555, .65582722, .aahs.djdhdd, jj.d93.dijs.766 etc which is not expected. –  user2229399 Apr 22 '13 at 18:05
    
@user2229399 check out the edit..you just have to check for invalid input –  Anirudha Apr 22 '13 at 18:19

Try

var numericReg = /^\d+\.?\d?\d?$/ ;
if( !numericReg.test(value) ) {
    value = value.replace(/^(\d+\.?\d?\d?)?.*/,'$1');
    $(this).val(value);
}
share|improve this answer
    
Nope, that seems not to accept any input itself!! –  user2229399 Apr 22 '13 at 18:22
    
@user2229399. Fixed. I hadn't realised you were testing on every keyup. –  MikeM Apr 22 '13 at 18:34
    
11.aa would become 11. –  Anirudha Apr 22 '13 at 18:37
    
@Anirudh. Yes, if the OP is testing on every keyup, then a . without a digit after it must be allowed. –  MikeM Apr 22 '13 at 18:39
    
var numericReg = /^d+(?:\.\d{0,2})?$/ ; if( !numericReg.test(value) ) { value = value.replace(/^(\d+\.?\d?\d?)?.*/g,'$1'); $(this).val(value); } Ok finally i arrived at this code. It accepts '12.' . But i want to change it to '12'. That is if a decimal dot is used without giving any decimal values, i want it to make it a whole number. –  user2229399 Apr 22 '13 at 19:31

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