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i am trying to create a table using PHP and MySQL. the first table will not create on the data base but the second one will. i think its my parameters/constraints. here is my code:

if ($conn==true){
     $tablefriends = "CREATE TABLE IF NOT EXISTS friends (
        friend_id INT NOT NULL AUTO_INCREMENT PRIMARY KEY ,
        friend_email VARCHAR(64) NOT NULL PRIMARY KEY ,
        password VARCHAR(16) NOT NULL ,
        profile_name VARCHAR(32) NOT NULL ,
        date_started DATE NOT NULL ,
        num_of_friends INT UNSIGNED ZEROFILL NULL default '0'
        );";

    $tablemyfriends = "CREATE TABLE IF NOT EXISTS myfirends ( 
        friend_id1 INT NOT NULL , 
        friend_id2 INT NOT NULL 
        );";

    $resulttf = @mysqli_query($conn, $tablefriends);
    if($resulttf==false){
        echo "<p>Failed to create friends table</p>";
        }
    $resulttmf = @mysqli_query($conn, $tablemyfriends);
    if($resulttmf==false){
        echo "<p>Failed to create myfriends table</p>"; 
        }else{

    echo"<p>Tables successfully created</p>";
        }
    mysqli_close($conn);
}

else {
    echo "<p>Failed to connect</p>";
    }

Thanks guys! so quick!!

I don't know why the tutor has said to put in the primary in twice

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closed as too localized by DarkCthulhu, Dor Cohen, BNL, Florent, Aleks G Oct 29 '12 at 16:55

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
Follow the suggestions regarding suppressing errors given to you in stackoverflow.com/questions/13100937/…. –  air4x Oct 29 '12 at 10:20
1  
multiple primary keys are used in first table, running it through a mysql gui tool or phpmyadmin would have helped you to debug yourself. –  GoodSp33d Oct 29 '12 at 10:21
    
Once the primary keys are fixed, the next question will be about performance, as there's no indexes defined for myfriends –  Mark Baker Oct 29 '12 at 10:28
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4 Answers

2 Primary keys. friend_id and friend_email

Always check your query out, before putting it into PHP.

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really? my assignment sheet asks for them to both have primary key > friend_id – the unique numeric identifier, e.g., 1023. Set this field’s properties as ‘integer, ‘not null’, ‘auto_increment’ and ‘primary key’. · friend_email – the unique email identifier used for logging in to the system, e.g., user@gmail.com. Set this field’s properties as ‘varchar, ‘size=50’, ‘not null’, and ‘primary key’. –  Rachel Groube Oct 29 '12 at 10:28
1  
You can't have 2 primary keys. You could have a composite primary key for 2 columns. Or else, unique-key for the second field. –  DarkCthulhu Oct 29 '12 at 10:33
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In Your first query($tablefriends) you had defined two primary keys. Hope below code will work for you.

 if ($conn==true){
         $tablefriends = "CREATE TABLE IF NOT EXISTS friends (
            friend_id INT NOT NULL AUTO_INCREMENT PRIMARY KEY ,
            friend_email VARCHAR(64) NOT NULL ,
            password VARCHAR(16) NOT NULL ,
            profile_name VARCHAR(32) NOT NULL ,
            date_started DATE NOT NULL ,
            num_of_friends INT (64) UNSIGNED ZEROFILL NULL default '0'
            );";

        $tablemyfriends = "CREATE TABLE IF NOT EXISTS myfirends ( 
            friend_id1 INT NOT NULL , 
            friend_id2 INT NOT NULL 
            );";

        $resulttf = @mysqli_query($conn, $tablefriends);
        if($resulttf==false){
            echo "<p>Failed to create friends table</p>";
            }
        $resulttmf = @mysqli_query($conn, $tablemyfriends);
        if($resulttmf==false){
            echo "<p>Failed to create myfriends table</p>"; 
            }else{

        echo"<p>Tables successfully created</p>";
            }
        mysqli_close($conn);
    }

    else {
        echo "<p>Failed to connect</p>";
        }
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What are the GRANTS given to the user running the query? Maybe the user can only create the second table.

Have a look in the MySQL log file and see if there are any error messages that can help you.

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if ($conn==true){
     $tablefriends = "CREATE TABLE IF NOT EXISTS friends (
        friend_id INT NOT NULL AUTO_INCREMENT PRIMARY KEY ,
        friend_email VARCHAR(64) NOT NULL,
        password VARCHAR(16) NOT NULL ,
        profile_name VARCHAR(32) NOT NULL ,
        date_started DATE NOT NULL ,
        num_of_friends INT UNSIGNED ZEROFILL NULL default '0'
        );";

    $tablemyfriends = "CREATE TABLE IF NOT EXISTS myfirends ( 
        friend_id1 INT NOT NULL , 
        friend_id2 INT NOT NULL 
        );";

    $resulttf = @mysqli_query($conn, $tablefriends);
    if($resulttf==false){
        echo "<p>Failed to create friends table</p>";
        }
    $resulttmf = @mysqli_query($conn, $tablemyfriends);
    if($resulttmf==false){
        echo "<p>Failed to create myfriends table</p>"; 
        }else{

    echo"<p>Tables successfully created</p>";
        }
    mysqli_close($conn);
}

else {
    echo "<p>Failed to connect</p>";
    }
share|improve this answer
add comment

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