0

Database:

+------------+
|   Number   |
+------------+
| 0050000235 |
+------------+
| 5532003644 |
+------------+
| 1122330505 |
+------------+
| 1103220311 |
+------------+
| 1103000011 |
+------------+
| 1103020012 |
+------------+

To select numbers having pair of "0" 3 times I tried:

SELECT * FROM numbers
WHERE Number LIKE "%00%00%00%"
    OR Number LIKE "%00%0000%"
    OR Number LIKE "%0000%00%"
    OR Number LIKE "0000%00%"
    OR Number LIKE "%00%0000"   
    OR Number LIKE "00%0000%"
    OR Number LIKE "%0000%00"
    OR Number LIKE "%0000%00"
    OR Number LIKE "%000000%" 
    OR Number LIKE "000000%"
    OR Number LIKE "%000000" 

This results me:

0050000235

But the way I am using, I think it's not a clean method.

Question How to fetch numbers having 3 pairs in it with clean SQL query?

The result will be:

0050000235, 5532003644, 1122330505, 1103220311 & 1103000011

| |
  • The number 1103000011 has 4 pairs. Is this ok? – forpas Jul 6 '19 at 11:33
  • @forpas yes, that will do as it is having minimum 3 pairs – paran Jul 6 '19 at 11:34
1
where Number rlike '((00|11|22|33|44|55|66|77|88|99).*){3}'
| |
1

Create a series of numbers from 0 to 9 with UNION ALL and cross join to the table.
Each of these numbers will be doubled and replaced in the column of the table with an empty string. The difference in length of each replacement will be summed and if it is greater than 6 this means that there exist at least 3 pairs:

select 
  n.number
from (
  select 0 d union all select 1 d union all select 2  union all 
  select 3 union all select 4 union all select 5 union all 
  select 6 union all select 7 union all select 8 union all select 9
) s cross join numbers n
group by n.number                     
having sum(
  length(n.number) - length(replace(n.number, repeat(d, 2), '')) 
) >= 6 

See the demo.
Results:

| number     |
| ---------- |
| 0050000235 |
| 1103000011 |
| 1103220311 |
| 1122330505 |
| 5532003644 |
| |
0

How about using regular expressions?

where number regexp '00.*00.*00'

Or slightly shorter:

where number regexp '(00.*){3}'

You can readily generalize this to any two numbers:

where number regexp '([0-9]{2}.*){3}'

If you want to ensure exactly six '0' (as opposed to more):

where number regexp '^[^0]*00[^0]*00[^0]*00[^0]*$'
| |
  • That's clean for 3 pair of 0, +1 for it. How to fetch numbers having 3 pairs? (irrespective of numbers [see the last result]) – paran Jul 6 '19 at 11:10
  • By using LEFT(Number, 4) we get first 4 numbers, what will the query for getting 4 numbers after leaving first 2 digits...? – paran Jul 6 '19 at 12:34
  • @paran . . . New questions should be asked as questions, instead of in comment. In this case, though, you should review the string functions in MySQL. The one you are referring to is substr()/substring(): dev.mysql.com/doc/refman/8.0/en/…. – Gordon Linoff Jul 6 '19 at 12:58

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.