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Hello Guys i Have This Query

(select 1 
  from (
    select count(*),
      concat(
       (select 
         (select distinct(
           concat(table_name)
         ))
         from information_schema.columns 
         where table_schema=database() 
         limit 1,1
       ), floor(rand(0)*2)
      )x
    from information_schema.columns 
    group by x
  )a
)

i want to add this order

ON DUPLICATE KEY UPDATE users set password = '1'

in the best place to execute

(select 1 
  from(
    select count(*),
      concat(
        (select
          (select distinct( concat(table_name) ) )
           from information_schema.columns 
           where table_schema=database() 
           limit 1,1
        ),floor(rand(0)*2)
      )x 
    from information_schema.columns
    group by x
  )a
 ) ON DUPLICATE KEY UPDATE users set password = '1'

now it get me error

to your MySQL server version for the right syntax to use near 'ON DUPLICATE KEY UPDATE users set pass

share|improve this question
    
can you give sample records with desired result? –  John Woo Jan 25 '13 at 12:23
    
What is it you are trying to do? That SQL looks hideous with lots of subselects which seem to serve no useful purpose, along with using concat when not concatenating strings. –  Kickstart Jan 25 '13 at 12:27
    
I tried to format a little the queries to get something human readable. Next time try to do it. At least you should do it for you, are you a LISP guy or what? –  regilero Jan 25 '13 at 12:55
    
Please don't tag your question "fix" if you're not talking about the Financial Information eXchange protocol. Tag removed. –  Grant Birchmeier Jan 25 '13 at 15:23

1 Answer 1

ON DUPLICATE KEY is used for INSERTs, not SELECTs, provided that was not changed in more recent MySQL versions (and I don't know why it should ;)).

share|improve this answer
    
TRY TO Execute this in ur MY SQL It will generate Error Duplicate (select 1 from(select count(*),concat((select (select distinct(concat(table_name)))from information_schema.columns where table_schema=database() limit 1,1),floor(rand(0)*2))x from information_schema.columns group by x)a) –  Mohamed Essam Jan 25 '13 at 12:07

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