Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Hello everybody I have the following query that executed from phpmyadmin gives me no problem but while using mysqli extension is a nightmare, but only inside a function with variables.

$reference_field = 'attribute';
$value = $attribute; // it actual worths 'Size,S Small ,M Medium ,L Large ,XXL 2Xl XX-Large ,XXXL 3Xl XXX-Large ';
$original_value = md5($value);

 $SQL = " UPDATE jos_jf_content As j  SET j.value = '%s' ,  
j.original_value = '%s' WHERE j.reference_id  =%d  
AND j.reference_field  ='%s'  ";
echo $a=sprintf($SQL,$value,$original_value, $prodId,'attribute');
$Myconnector->real_query( $a   );

it's giving me

mysqli_sql_exception: 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 3  

Doing a print of the query seems all ok and executing it alone in a single php file to debug works fine, gives me this trouble only when inside a function

UPDATE jos_jf_content As j 
SET j.value = 'Size,S Small ,M Medium ,L Large ,XXL 2Xl XX-Large ' , 
j.original_value = 'f8508eb38ed3e26e6f3814a253b12c9a' , j.modified = 1331632841 
WHERE j.reference_id =1787 AND j.reference_field ='attribute'
share|improve this question
I don't see any double quote in the result query. There is a chance you output another query – zerkms Mar 13 '12 at 10:05
Inside what function? What does the function do to the query? Can you show us? – George Cummins Mar 13 '12 at 10:06
I can't believe the PHP code you show generates that query. 1331632841 is not an octal number and 1787 is not a binary number. Additionally, why use mysqli and avoid prepared statements? – Álvaro González Mar 13 '12 at 10:12
Hi edited and corrected removing additional fields – giuseppe Mar 13 '12 at 10:41

1 Answer 1

My educated guess is that you have something like this:

$bar = 'Hello, World!';
$sql = sprintf("SELECT * FROM foo WHERE bar='%s'", $bar);

... and transformed it into:

function get_sql(){
    return sprintf("SELECT * FROM foo WHERE bar='%s'", $bar);
$bar = 'Hello, World!';
$sql = get_sql();

Fundamental problems:

  1. You haven't configured PHP to display notices.
  2. You are ignoring variable scope.

Quick fix:

ini_set('display_errors', TRUE);
error_reporting(E_ALL | E_STRICT);

function get_sql($bar){
    return sprintf("SELECT * FROM foo WHERE bar='%s'", $bar);
$bar = 'Hello, World!';
$sql = get_sql($bar);
share|improve this answer

Your Answer


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.