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Can someone take a look at this and tell me why it's not working. This is part of a class that I'm working on. The insert query works fine and if I call $char->db->insert_id; from outside the class it works ($char being the class)

function createChar($charName, $charRace, $charClass) {
    //put userId, charName and charRace into database
    $sql="insert into characters (userID, name, race, class) values ('$this->userID', '$charName', '$charRace', '$charClass') ";
    $result=$this->db->query($sql);
    if($this->db->affected_rows == '1')
        {
            return '1';
        }
        else
        {
            return '0';
        }

    //get last insert id     
    $this->charID=$this->db->insert_id;

}
share|improve this question
    
Although unrelated to your problem, I'd highly recommend quoting all variables going into a query using mysqli's real_escape_string. Currently your code looks susceptible to SQL Injection. – lightster Feb 20 '12 at 0:36
    
That step is done outside of this class. :) – Philbert McPleb Feb 20 '12 at 0:41
up vote 2 down vote accepted

Try moving $this->charID = $this->db->insert_id; before the if/else, since both will return before getting to the insert_id line.

function createChar($charName, $charRace, $charClass) {
    //put userId, charName and charRace into database
    $sql = "insert into characters (userID, name, race, class) values ('$this->userID', '$charName', '$charRace', '$charClass') ";
    $result = $this->db->query($sql);

    //get last insert id     
    $this->charID = $this->db->insert_id;

    if($this->db->affected_rows == '1')
    {
        return '1';
    }
    else
    {
        return '0';
    }
}
share|improve this answer
    
Moved the line to just before the "return '1'" working correctly now. thanks for your help – Philbert McPleb Feb 20 '12 at 0:27

It can't reach the assigning of the insert_id because of the return statement try to put it on the part before the return happens.

share|improve this answer

Try below.

quote values properly:

  $sql="insert into characters (userID, name, race, class) values 
    ('".$this->userID."', '".$charName."', '".$charRace."','".$charClass."') ";
  $result=$this->db->query($sql);
  $this->charID=$this->db->insert_id;
share|improve this answer
    
the insert query is working, it's the insert_id I'm having trouble with – Philbert McPleb Feb 20 '12 at 0:06
    
Try $this->charID=$this->db->insert_id(); – user319198 Feb 20 '12 at 0:13
    
I tried this. The query was already working, but this made no difference to the insert_id. – Philbert McPleb Feb 20 '12 at 0:15
    
no luck with insert_id(); either – Philbert McPleb Feb 20 '12 at 0:16
    
check variable scopes in your class – user319198 Feb 20 '12 at 0:17

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