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In my project i want to search an employee id (integer) within set of Data. If user enter 234 as partial data then i want to fetch all employee id staring from 234. Currently i am converting int to String and then use String`s contains method. I want to know is there any better approach for this..

code

   String.valueof(employee.getEmployeeId()).contains(EnterNumber) ; 

P.S. I find writting regular expression is very difficult,good reference to regEx would be great. Thanks in Advance

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regexone.com – RKC Mar 28 '14 at 7:15
    
Where/how do you fetch employee data from? is it possible to give this criteria while fetching the data? – mesutozer Mar 28 '14 at 7:15
    
When you say "staring [sic] from 234", do you mean an integer value >= 234, or strings starting with the digits 234? If it's a matter of the former, I'd suggest using Integer.parseInt() and then >= 234. No need for regex. – Biffen Mar 28 '14 at 9:27
    
why would any regex be better than doing a contains (or better yet, startsWith()) using string? If numbers 23456, 234, 234500054 all need to match it sounds like string comparison to me. Regex doesn't bring in any benefit. – eis Mar 28 '14 at 19:10

As you said starts with, this would work:

'^(234).*'

or

'^'+input+'.*'

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it will search only at start of string not in complete string. – Deepak Tiwari Mar 28 '14 at 7:15
    
@Deepak2221, I updated my answer accordingly – sshashank124 Mar 28 '14 at 7:18

If Id is a number (say 234789920252), you can use regex like

  ^234\d*$

or

  String pattern = "^" + EnterNumber + "\\d*$";

If your task is to find out IDs that start with "234" you'd rather use startWith, not contains:

   String.valueof(employee.getEmployeeId()).startsWith(EnterNumber);
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You can implement a numeric solution following this formula:

trunc(n / 10^(trunc(log(n, 10)) - trunc(log(m, 10)))) == m

where n is the number you are testing, and m is the target numeric prefix to match. In your example, m = 234.

  • trunc(log(n, 10)) is the number of digits - 1 in n
  • trunc(log(m, 10)) is the number of digits - 1 in m
  • if you divide n by 10^(trunc(log(n, 10)) - trunc(log(m, 10))) and truncate it, the result is equal to m if n starts with m

An implementation in R for a proof of concept:

starts <- function(n, m) {
    trunc(n / 10^(trunc(log(n, 10)) - trunc(log(m, 10)))) == m
}
> starts(234, 234)
[1] TRUE
> starts(2345, 234)
[1] TRUE
> starts(23, 234)
[1] FALSE
> starts(123, 234)
[1] FALSE
> starts(1, 234)
[1] FALSE
> starts(9898, 234)
[1] FALSE

But is this better than converting to String and using regex to match? That, I don't know...

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Database ID could be very long (up to int128 which corresponds to BCD Number(38)); that's why it's better to work with string representation of IDs – Dmitry Bychenko Mar 28 '14 at 9:20

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