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.

Anyone see why the query below would yield the error

"#1064 - 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 '%s)"?

SELECT SQL_CALC_FOUND_ROWS id
FROM (
     SELECT taba.id
FROM (

SELECT alum.id
FROM cvm_education AS edu
JOIN cvm_alumni AS alum ON alum.id = edu.alumni_id
WHERE cvm_alumni.profile_status =1
AND highest_edu
IN (

SELECT name
FROM cvm_filter_educationlevels
JOIN cvm_educationlevel AS edulevels ON educationlevel_id = edulevels.id
WHERE filter_id = % s
)
) AS taba  

Cheers!

share|improve this question
1  
You are missing a closing bracket - you have three opens and only two closes –  bhttoan Jan 23 '13 at 16:26
    
Noticed that, but not sure where to add last bracket –  nv39 Jan 23 '13 at 16:31
1  
@nv39 something like this ) AS taba ) xxx –  John Woo Jan 23 '13 at 16:32
    
thanks - I had tried that before but kept getting errors so assumed it was wrong :P. Tried again and get "every derived table must have its own alias" error! argggh –  nv39 Jan 23 '13 at 16:44
1  
JOIN cvm_educationlevel AS edulevels ON educationlevel_id = edulevels.id - I think you also need to specify the table name for the first part of the argument so change it to (I assume) cvm_filter_educationlevels.educationlevel_id=edulevels.id –  bhttoan Jan 23 '13 at 16:50

3 Answers 3

up vote 1 down vote accepted

Try this:

 SELECT count(taba.id)
FROM (

SELECT alum.id
FROM cvm_education AS edu
JOIN cvm_alumni AS alum ON alum.id = edu.alumni_id
WHERE alum.profile_status =1
AND highest_edu
IN (

SELECT name
FROM cvm_filter_educationlevels
JOIN cvm_educationlevel AS edulevels ON educationlevel_id = edulevels.id
WHERE filter_id = 1
)
) AS taba ; 

http://www.sqlfiddle.com/#!2/f8adc/15

Two important points:

  1. I don't understand the use of SQL_CALC_FOUND_ROWS() if have chanced it in count(). I think this provides the same desired result.
  2. You haven't provided sample data so I wasn't able to try %s. I have substituted it with a binary (1,0). Furthermore, I don't know your exact code so I made some assumptions based on your query.

Sample data:

CREATE TABLE cvm_education(
  ID int auto_increment primary key,
  alumni_id int
  );

CREATE TABLE cvm_alumni(
  ID int auto_increment primary key,
  profile_status int,
  highest_edu varchar(30)
  );

CREATE TABLE cvm_filter_educationlevels (
  ID int auto_increment primary key,
  educationlevel_id int,
  name varchar(30)
  );

CREATE TABLE cvm_educationlevel(
  ID int auto_increment primary key,
  filter_id int
  );

INSERT INTO cvm_education (alumni_id)
VALUES (10), (1), (2), (3),(5), (6),(7),(8),(9);

INSERT INTO cvm_alumni (profile_status, highest_edu)
VALUES (1, "master"), 
(0,"bachelor"), 
(1,"bachelor"), 
(0, "master"),
(1, "master"),
(0, "master"),
(1, "master"),
(1, "master"), 
(1, "master"),
(1, "master");

INSERT INTO cvm_filter_educationlevels(educationlevel_id,name)
VALUES (1, "master"), (0,"bachelor");

INSERT INTO cvm_educationlevel(filter_ID)
VALUES (1), (0), (1), (0), (0), (1),(1),(1),(1);
share|improve this answer

The "% s" is invalid syntax. If that's a literal, then it needs to be enclosed in quotes:

WHERE filter_id = '% s'

(But that fix doesn't appear to be right. It almost looks as if the MySQL statement is being generated with a sprintf, and there was intended to be a '%s' placeholder that was supposed to be replaced with an value.)

Also, there's a closing parenthesis and alias missing from the end of the statement:

) foo 

And this:

WHERE cvm_alumni.profile_status = 1

should be changed to this:

WHERE alum.profile_status = 1

(The table is assigned an alias, the column reference should be qualified with the alias, not the table_name)

It's also a good idea to qualify the references all column references, including educationlevel_id, highest_edu and name. (That's not necessarily a problem with the statement, unless MySQL is throwing an "ambiguous column" error, but I prefer to insulate my statements from any "ambiguous column" error that will crop up when new columns are added.)


SELECT SQL_CALC_FOUND_ROWS id
  FROM (SELECT taba.id
          FROM (
                SELECT alum.id
                  FROM cvm_education edu
                  JOIN cvm_alumni alum
                    ON alum.id = edu.alumni_id
                 WHERE alum.profile_status = 1
                   AND `highest_edu` IN
                       (
                        SELECT `name`
                          FROM cvm_filter_educationlevels
                          JOIN cvm_educationlevel edulevels
                            ON `educationlevel_id` = edulevels.id
                         WHERE `filter_id` = '% s'
                       )
               ) taba
       ) foo

share|improve this answer
    
hi - thanks. I added quotes, a bracket before AS taba and make the change you said. I get this error: #1248 - Every derived table must have its own alias –  nv39 Jan 23 '13 at 16:33
    
also tried putting bracket after AS taba and same error –  nv39 Jan 23 '13 at 16:34

you need to quote the string value and use LIKE for pattern matching

WHERE filter_id LIKE '% s'

but if you really want to find % s literally, use =

WHERE filter_id = '% s'
share|improve this answer
    
hi JW - thanks for the quick reply. When I add single quotes, I get almost the same error: #1064 - 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 '' at line 4 –  nv39 Jan 23 '13 at 16:08
    
@nv39 can you execute this query only? SELECT taba.id FROM ( SELECT alum.id FROM cvm_education AS edu INNER JOIN cvm_alumni AS alum ON alum.id = edu.alumni_id WHERE cvm_alumni.profile_status = 1 AND highest_edu IN ( SELECT NAME FROM cvm_filter_educationlevels INNER JOIN cvm_educationlevel AS edulevels ON educationlevel_id = edulevels.id WHERE filter_id = '% s' ) ) AS taba ? –  John Woo Jan 23 '13 at 16:11
    
nope, same error –  nv39 Jan 23 '13 at 16:15
    
can you provide sample records with desired result? –  John Woo Jan 23 '13 at 16:16
    
no, sorry - weird situation: I didn't write it, I was only asked to figure out what's wrong with it –  nv39 Jan 23 '13 at 16:18

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.