Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm pulling my hair out for this, what is wrong with this query:

  SELECT COUNT(id), * 
    FROM location 
   WHERE country = '$country' 
     AND LCASE(namenodiacritics) LIKE LCASE('%$locname%') 
ORDER BY name ASC

Am I allowed to COUNT(id) and * in a single query?

I keep getting this error:

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '* FROM location WHERE country = 'AQ' AND LCASE(namenodiacritics) LIKE LCASE('%%'' at line 1

The weird thing is that it works with "SELECT COUNT(id) FROM..." and also "SELECT * FROM...".

share|improve this question
up vote 5 down vote accepted

Using COUNT() without GROUP BY reduces the result to a single row. You can't get meaningful values in the rest of the columns that way.

You can do it in two queries:

  -- this returns a single row
  SELECT COUNT(id)
    FROM location 
   WHERE country = '$country' 
     AND LCASE(namenodiacritics) LIKE LCASE('%$locname%');

  -- this returns multiple rows, one per matching location    
  SELECT *
    FROM location 
   WHERE country = '$country' 
     AND LCASE(namenodiacritics) LIKE LCASE('%$locname%')
ORDER BY name ASC;
share|improve this answer

Selecting COUNT(id) and * in the same query doesn't make sense. If you really need to get all of the other fields, then just use 'SELECT * FROM ...' and it is easy enough to get the number of rows returned using PHP.

share|improve this answer
    
Performing the count in the database will always be faster than PHP/etc. – OMG Ponies Sep 20 '09 at 23:47
3  
@rexem - in this case probably not. The only way to do what the OP wants is to do two queries. mysql_num_rows() on the resultset from one query will be faster than two queries. – timdev Sep 21 '09 at 0:06
    
On the smallest of result sets, PHP/etc might be on par with what any database can do. But that approach won't scale as data increases. Those that recommend this approach are usually those who know/use SQL the least if at all. – OMG Ponies Sep 21 '09 at 0:37
    
@rexem - completely wrong. mysql_num_rows() will get the size of the resultset (what the OP wants, here) in O(1) time. Are you claiming that doing a subquery is better than O(1)? – timdev Sep 21 '09 at 0:42
1  
@tim: It's your claim, you prove it. – OMG Ponies Sep 21 '09 at 0:45

What are you trying to count?

Hint: You should probably be using grouping by something if you're using an aggregate function like COUNT()

share|improve this answer
    
I'm trying to get all the data from locations table (a location is a particular place in the world) and also get the total count so I can split the results over multiple pages (there's a huge number in US). – Solenoid Sep 20 '09 at 23:48
1  
Then you need two queries, either two distinct, or a subquery. COUNT() is an aggregate function, so it needs to be used with a GROUP BY clause. The COUNT() for each row will represent how many rows are grouped together. – timdev Sep 20 '09 at 23:56
    
(the exception is a "SELECT COUNT(column) FROM table" type query, where the grouping is implicit. – timdev Sep 20 '09 at 23:57
    
@tim: I don't know what you mean by the grouping is implicit. Using COUNT() without GROUP BY treats the whole set of matching rows as a single group, so the output is a single row. – Bill Karwin Sep 20 '09 at 23:58
    
@bill - correct. using count() without GROUP BY does indeed (implicitly) treat the whole set as a single group. – timdev Sep 21 '09 at 0:06

Do you want this?

  SELECT (SELECT COUNT(*) FROM location) as cnt, * 
    FROM location 
   WHERE country = '$country' 
     AND LCASE(namenodiacritics) LIKE LCASE('%$locname%') 
ORDER BY name ASC
share|improve this answer

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.