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I need a regular expression for 6 digit number with optional 2 decimal digit Allowed values:

    .1  .11  0.11  10. 10.1   10.12  00.00  0.0  00.00

   123456 12345 1234 123 12 1 0 0. 123. 123.55 123456.  
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Is it 6 digits maximum? Is 123456.78 allowed? –  MikeM Jan 28 '13 at 17:48

4 Answers 4

Regex should be: ^\d{0,6}(\.\d{0,2})?$(It passed all of your samples)

Update:

To avoid empty string and single dot, regex is ^(?!\.?$)\d{0,6}(\.\d{0,2})?$. The expression adds a negative lookahead ?!\.?$, which excludes 0 or 1 dot.

I added a unit test on Fiddle.

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2  
Matches the empty string and .. Also matches 123456.78 - should it? –  MikeM Jan 28 '13 at 17:46
    
I updated my answer to exclude empty string and single dot. But 123456.78 seems ok for "6 digit number with optional ..." means 6 digits are maximal BEFORE the decimal. –  Hui Zheng Jan 29 '13 at 1:30
    
+1 for unit test. Nice work. –  Patrick McElhaney Jan 29 '13 at 3:00

This r.e. is matching all your examples, and does not accept more than 6 digits or 2 decimals.

^\d{0,5}(\d\.\d?|\.\d)?\d?$
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this allows "." also but i don't want only dot as i need value –  Swapnil Jan 28 '13 at 14:46
    
changed to reflect your point –  Teudimundo Jan 28 '13 at 14:52
    
thank you very much –  Swapnil Jan 28 '13 at 15:07
2  
Matches the empty string and 123456.78 - should it? –  MikeM Jan 28 '13 at 17:47

Let's break it into four regexes. At least one of these four must match.

# decimal, 1-2 digits
\.\d{1,2}

# 1-4 digits, optional decimal, 0-2 digits
\d{1,4}\.?\d{0,2}

# 5 digits, optional decimal, optional digit
\d{5}\.?\d?

# 6 digits, optional decimal
\d{6}\.?

Which can then be combined into a single regex like so.

(\.\d{1,2}|\d{1,4}\.?\d{0,2}|\d{5}\.?\d?|\d{6}\.?)

Then add a caret (^) and stick ($) to match the beginning and end of the string.

^(\.\d{1,2}|\d{1,4}\.?\d{0,2}|\d{5}\.?\d?|\d{6}\.?)$

This doesn't scale very well (e.g. if you wanted to match 100 digits with up to 20 after the decimal point) but it works and it's relatively easy to understand.

If you don't have to user a regex, there are easier ways to solve this problem. :)

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This allows empty string and a single dot. –  Hui Zheng Jan 29 '13 at 2:46
    
@Hui Thanks, fixed. Now each case requires at least one digit. –  Patrick McElhaney Jan 29 '13 at 2:56
1  
now your solution passed my unit test:) –  Hui Zheng Jan 29 '13 at 3:06

Quick java example for validating string with max length as 10 i.e. 9 digits with max 3 decimal NOTE: why 9 digits instead of 10 digits? because the decimal point also count as a character

package com.baji.regex;

import java.util.regex.Matcher;
import java.util.regex.Pattern;

import org.junit.Test;

import static org.junit.Assert.assertTrue;

/*
 * @author: Baji Shaik
 * Quick java example for validating string with max length as 10
 * i.e. 9 digits with max 3 decimal
 * NOTE: why 9 digits instead of 10 digits? because the decimal point also count as a character
*/
public class CheckNumber {


  @Test
  public void testSimpleTrue() {
    String s= "12345678.1";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));
    s= "1234567.12";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));
    s = "123456.123";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));
    s = "123456789";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));

    s = "1234567891";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));
    s = ".123";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));

    s = "000000.123";
    assertTrue(Validate10DigitsWithMax3DecimalsNumber(s));

  }


  public static boolean Validate10DigitsWithMax3DecimalsNumber(String value){
    Pattern pattern = Pattern.compile("^(\\.\\d{1,3}|\\d{1,6}\\.\\d{1,3}|\\d{1,7}\\.\\d{1,2}|\\d{1,8}\\.\\d{1}|\\d{1,10})$");
    Matcher matcher = pattern.matcher(value);
    if (matcher.find()){
      return true; 
    } 
    return false; 
  }

} 
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