Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to count the sum of the differences between a set of known data. The equivalent in php is (count(array_diff_assoc($array1)). Is this possible with Mysql? I have a set of data to compare with each others field column in the table.

my data to compare is columnA : 3, columnB : 6, columnC : 4

the test table is :

   ID       columnA     columnB    columnC
   1           2           6         1
   2           6           1         3
   3           3           6         4

result expected :

 ID     numbersofdifferences
  3            0
  1            2
  2            3

thanks for any help, Jesisca

share|improve this question
    
wouldn't you need to compare two tables with array_diff_assoc in PHP? And in that case, this wouldn't work with what you're describing as your output because the tables are of vastly different sizes? –  McKay Aug 26 '13 at 18:02
    
more details, i need to addition differents values to this result , do you know how i can make the sum of STYLE + PROF + TotalDiff ?! . i have this : SELECT something, abs( 100-10 ) as STYLE , abs(20-80) as PROF, (case when prof_extend.b = 1 then 0 else 1 end) + (case when prof_extend.c = 1 then 0 else 1 end) + (case when prof_extend.d = 5 then 0 else 1 end) + (case when prof_extend.e = 1 then 0 else 1 end) + (case when prof_extend.v = 3 then 0 else 1 end) + (case when prof_extend.w = 4 then 0 else 1 end) TotalDiff –  jess Aug 26 '13 at 19:12
3  
@jess If you have another question then you should Ask a new one, don't update this one with new requirements. –  bluefeet Aug 26 '13 at 19:14
    
@jess Your "more details" comment make this another question. –  Lamak Aug 26 '13 at 19:19

2 Answers 2

up vote 2 down vote accepted

This is not necessarily the cleanest but you could use an aggregate function with a CASE expression:

select id,
    sum(case when columna = 3 then 0 else 1 end) +
    sum(case when columnb = 6 then 0 else 1 end) +
    sum(case when columnc = 4 then 0 else 1 end) TotalDiff
from yourtable
group by id;

See SQL Fiddle with Demo.

Edit, this could be done without the aggregate function as well:

select id,
    (case when columna = 3 then 0 else 1 end) +
    (case when columnb = 6 then 0 else 1 end) +
    (case when columnc = 4 then 0 else 1 end) TotalDiff
from yourtable;

See Demo

share|improve this answer
    
heh, I did mine exactly the same way. –  McKay Aug 26 '13 at 17:52
    
except, I don't think you need the aggregate functions. –  McKay Aug 26 '13 at 17:57
    
@McKay You're right I added a version without the aggregate. Using the aggregate will allow for values across multiple rows. The OP didn't specify if the id would be unique. –  bluefeet Aug 26 '13 at 18:05
    
yeah, if he needs to aggregate across ids, then the sum would be necessary. It's hard to determine quite what the OP wants because the PHP function doesn't do what he's asking precisely. –  McKay Aug 26 '13 at 18:07
    
Many thanks both for your help, it seems to work fine ! I have 25 fields to compare :) , so i hope this way dosn't consume to much ressource ..?! I have not enought reputation for voting ur answer :( –  jess Aug 26 '13 at 18:56

There isn't a function built in to do something like that, but you could do it manually.

select
    id,
    case columnA when $columnA then 1 else 0 end +
      case columnB when $columnB then 1 else 0 end +
      case columnC when $columnC then 1 else 0 end differences
  from
    myTable

But if you want them in order, you'll want a subselect

select * from 
  (
    select
        id,
        case columnA when $columnA then 1 else 0 end +
          case columnB when $columnB then 1 else 0 end +
          case columnC when $columnC then 1 else 0 end differences
      from
        myTable
  ) sqlRequiresNameHere
  order by differences
share|improve this answer
    
thanks both for your help, it seems to work fine –  jess Aug 26 '13 at 18:55

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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