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I am trying to write a Regular Expression that replaces all the digits of a number with *'s after first 4 digits.

For example

var number = 123456789  

it should be replaced with 1234*****

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4 Answers 4

up vote 5 down vote accepted

In Javascript:

var maskedNumber = String(number).substr(0,4) + Array(String(number).length - 3).join('*');

In PHP:

$maskedNumber = str_pad(substr($number, 0, 4), strlen($number), "*");
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In PHP:

function replaceDigit_callback($matches) {
    return $matches[1] . str_repeat('*', strlen($matches[2]));
}
$text = '1234567890';
echo $text, "\n";
$text = preg_replace_callback('#(\d{4})(\d+)#', 'replaceDigit_callback', $text);
echo $text, "\n";

Output:

1234567890
1234******

In JS:

var number = 1234567890;
var output = number.toString().replace(/(\d{4})(\d*)/, function (str, p1, p2) { return p1 + p2.replace(/./g, '*') });
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1  
Isn't this a far too complex solution? See my approach with str_pad –  akirk Apr 29 '11 at 8:37
    
@akirk, depends. If $text contains only number and nothing else, then yes, this is indeed too complex solution. +1 for str_pad() version ;) –  binaryLV Apr 29 '11 at 8:51

You Can set your PHP coding..I provide you logic....

using System;
using System.Text.RegularExpressions;

class RegexSubstitution
{
   public static void Main()
   {
      string testString1 = "1, 2, 3, 4, 5, 6, 7, 8";
      Regex testRegex1 = new Regex( @"\d" );

      Console.WriteLine( "Original string: " + testString1 );
      Console.WriteLine( "Replace first 3 digits by \"digit\": " + testRegex1.Replace( testString1, "digit", 3 ) );
   }
}
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I'm not sure if the logic matches with what he needs... 123456789 should be replaced with 1234***** rather than 1, 2, 3, 4, 5 with *, *, *, 4, 5. –  binaryLV Apr 29 '11 at 8:27
    
This helps you better........php-regex.blogspot.com –  Allov Apr 29 '11 at 8:30

Without regex:

var number = '123456789';
var output = '';

output = number.substr(0,4);
for ( var i = 0; i < number.length - 4; ++i )
{
    output += '*';
}

Input number has to be string !

Conversion

var number = 1234567890;

to string looks just like:

var number = 1234567890 + '';

or

var number = parseString(1234567890);
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If number is already stored in variable, conversion can be done with toString(), i.e., n.toString(). If it's not stored (12345.toString()), it won't work, bug who use hard-coded numbers nowadays? –  binaryLV Apr 29 '11 at 8:56

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