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I've made two tables to store user information, and the photo information they uploaded. Everything goes well, except when I try to insert userID to photos table, mysql just don't take it. The problem might comes from the foreign key things, but I don't know how to fix it.

CREATE TABLE IF NOT EXISTS users (
  userID smallint(7) NOT NULL auto_increment,
  email varchar(60) collate utf8_unicode_ci NOT NULL default '',
  PRIMARY KEY  (userID),
  UNIQUE KEY email (email)
) ENGINE=INNODB  DEFAULT CHARSET=utf8 COLLATE=utf8_unicode_ci;


CREATE TABLE IF NOT EXISTS photos (
 photoID MEDIUMINT(7) NOT NULL AUTO_INCREMENT,
 userID SMALLINT(7),
 title       VARCHAR(150),
 brief    TEXT,
 PRIMARY KEY(photoID),
 INDEX (userID),
 FOREIGN KEY (userID)
 REFERENCES users(userID)
 ) ENGINE=INNODB; 

And the sql command I used to insert information to photos table

$sql = "INSERT INTO photos (userID ,title, brief)".
       "VALUES ('$uid', '$title','$bodytext')";

Even if the $uid is replaced by a static number like '2', which exists in user table(userID), it's still cannot be inserted.

I took some advices to add mysql_error function, however, it doesn't show anything...

$sql = "INSERT INTO photos (userID ,title, brief)".
       "VALUES ('2', '$title','$bodytext')";
$res = mysql_query($sql);

if ($res === FALSE) {
  die(mysql_error());
}

return mysql_query($sql);
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1  
For the start (userID` ,title, brief, )` remove the last comma –  Yoram de Langen Mar 29 '11 at 15:06
1  
PHP != SQL. The MySQL server will never see your PHP code or variables. What error message do you get when you run the query in your favourite MySQL client? –  Álvaro G. Vicario Mar 29 '11 at 15:24
    
When I run it in phpMyAdmin, the information is insert. Don't know why it doesn't work in php code... –  Pei Mar 29 '11 at 15:43
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3 Answers

Have you checked the exact error message? the MySQL functions return 'FALSE' if the query fails:

$sql = "INSERT ...";
$res = mysql_query($sql);
if ($res === FALSE) {
    die(mysql_error());
}

This will output the exact reason the query is failing. Until you do this, we can at most guess at what the problem is.

Most likely the error is due to the extra comma you have in your values field:

$sql = "INSERT INTO photos (`userID` ,title, brief, )".
                                                  ^---here

that causes a syntax error.

share|improve this answer
    
Sorry. I made that error when clean up code for posting here. It doesn't really cause the problem. I tried the mysql_error function as below. However, it didn't show any message. Did I miss something? $sql = "INSERT INTO photos (userID ,title, brief)". "VALUES ( '1', '$title','$bodytext')"; return mysql_query($sql); $res = mysql_query($sql); if ($res === FALSE) { die(mysql_error()); } –  Pei Mar 29 '11 at 15:15
    
@Pei: As you may know, nothing gets executed inside a function after a return call. You should edit your question and paste additional info there. Code in comments in unreadable. –  Álvaro G. Vicario Mar 29 '11 at 15:21
    
Yea, I've edited the question. –  Pei Mar 29 '11 at 15:29
    
If there's no errors returned, then echo out the query and try running it manually by cut&pasting. –  Marc B Mar 29 '11 at 15:44
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Two simple debugging tips:

<1> Inspect the real SQL code you are sending to the server. Add this line to your PHP code:

echo htmlspecialchars($sql);

... find the query in the browser and paste it in your MySQL client (HeidiSQL, PHPMyAdmin or whatever). Pay close attention to the possible error messages.

<2> Check error conditions in all functions:

$con = mysql_connect(...);
if( !$con ){
   die( htmlspecialchars(mysql_error());
}
...
$res = mysql_query(...);
if( !$res ){
   die( htmlspecialchars(mysql_error());
}
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You can't insert value for foreign key like all others. Take example from my code:

  mysql_query("INSERT INTO 'bikemodel' VALUES('1', 'Cougar 125', '2009', 'Scooter CVT 1sp 150cc', 'Scooter', 'Road Bike', '150', foreign key=1)");
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