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I have this task from school, and I am confuse and lost on how I got to do this. So basically I have to create 2 tables to the database but I have to created from php.

I have created the first table, but not the second one for some reason. And then, I have to populate first and second tables with 10 and 20 sample records respectively, populate, does it mean like adding more fake users? if so is it like the code shown below?

*I got error on the populating second part as well

Thank you so much for the help.

<?php
        $host = "host";
        $user = "me";
        $pswd = "password";
        $dbnm = "db";

        $conn = @mysqli_connect($host, $user, $pswd, $dbnm);
        if (!$conn)
            die ("<p>Couldn't connect to the server!<p>");

        $selectData = @mysqli_select_db ($conn, $dbnm);
        if(!$selectData)
        {
            die ("<p>Database Not Selected</p>");
        }

        //1st table
            $sql =  "CREATE TABLE IF NOT EXISTS  `friends`  
          (  
          `friend_id` INT NOT NULL auto_increment,   
          `friend_email` VARCHAR(20) NOT NULL,  
          `password` VARCHAR(20) NOT NULL,  
          `profile_name` VARCHAR(30) NOT NULL,  
          `date_started` DATE NOT NULL,  
          `num_of_friends` INT unsigned,  
          PRIMARY KEY (`friend_id`)  
          )";

        //2nd table
          $sqlMyfriends = "CREATE TABLE `myfriends`
          (  
          `friend_id1` INT NOT NULL,   
          `friend_id2` INT NOT NULL,
          )";


        $query_result1 = @mysqli_query($conn, $sql);
        $query_result2 = @mysqli_query($conn, $sqlMyfriends);

        //populating 1st table
        $sqlSt3="INSERT INTO friends (friend_id, friend_email, password, profile_name, date_started, num_of_friends) 
                VALUES('NULL','email@email.com','123','abc','2012-10-25', 5)";
        $queryResult3 = @mysqli_query($dbConnect,$sqlSt3)


        //populating 2nd table
        $sqlSt13="INSERT INTO myfriends VALUES(1,2)";
        $queryResult13=@mysqli_query($dbConnect,$sqlSt13);


        mysqli_close($conn);

    ?>
share|improve this question
    
Why are you suppressing errors? Don't do that. How will you know what's going wrong? –  Waleed Khan Oct 29 '12 at 16:39
    
Trailing comma after the friend_id2 declaration. Remove the @ and always check the result with if(!$query_result2){ echo mysql_error(); } –  Michael Berkowski Oct 29 '12 at 16:41
    
Thx Michael, btw Waleed, what do you mean by suppressing errors? –  Tyler Matema Oct 29 '12 at 16:49
    
When you prepend @ to any php expression, it will ignore any error messages - php.net/manual/en/language.operators.errorcontrol.php –  Sean Oct 29 '12 at 17:00

4 Answers 4

up vote 0 down vote accepted

The others have addressed one of your issues, so this is in relation to not being able to add values to your tables (populate). Your connection link is $conn -

$conn = @mysqli_connect($host, $user, $pswd, $dbnm);
ie.
   $query_result1 = @mysqli_query($conn, $sql);

but when you are adding your values to the tables, you changed your connection link to $dbConnect

...
$queryResult3 = @mysqli_query($dbConnect,$sqlSt3)
...
$queryResult13=@mysqli_query($dbConnect,$sqlSt13);

To insert multiple values into your table you could add a comma and additional parentheses ,() -

    //populating 2nd table
    $sqlSt13="INSERT INTO myfriends VALUES(1,2),(2,3),(3,1)";
    $queryResult13=@mysqli_query($conn,$sqlSt13); 

Or you could use mysqli_multi_query, and list each one-

    //populating 2nd table
    $sqlSt13  ="INSERT INTO myfriends VALUES (1,2);";
    $sqlSt13 .="INSERT INTO myfriends VALUES (2,3);";
    $sqlSt13 .="INSERT INTO myfriends VALUES (3,1);";
    $queryResult13=@mysqli_query($conn,$sqlSt13);

see the manual for mysqli_multi_query - php.net/manual/en/mysqli.multi-query.php

share|improve this answer
    
ah ok ok, yeah i kept confuse using dbconnect and conn from other files -_-. Btw Sean, do you know how to add 9 more records for this? and I got like an error for this part $sqlSt13="INSERT INTO myfriends VALUES(1,2)"; –  Tyler Matema Oct 29 '12 at 17:11
    
Thank you so much if you could help out –  Tyler Matema Oct 29 '12 at 17:17
    
I have updated with ways to do multiple VALUES. Your error could be caused by the issue the others addressed, which is that if you have that extra comma, your table myfriends will not be created, so your query to add values will result in an error, as there is no table to insert into. –  Sean Oct 29 '12 at 17:32
    
Thank you Sean, you are a big help, I don't know what how I could reward you man -_- haha, btw, yeah I did created the second table but the error for that $sqlSt13="INSERT INTO myfriends VALUES(1,2)"; still happens. The error said syntax error, unexpected T_VARIABLE, sorry, I am still new with this task –  Tyler Matema Oct 29 '12 at 17:59
    
Unless this is a copy/paste mistake, you are missing a ; at the line above the $sqlSt13=..., so it is not executing properly - $queryResult3 = @mysqli_query($dbConnect,$sqlSt3) . –  Sean Oct 29 '12 at 18:12

You have an extra comma here that might cause an error:

friend_id2 INT NOT NULL,

share|improve this answer

should be:

  $sqlMyfriends = "CREATE TABLE `myfriends` (  
  `friend_id1` INT NOT NULL,   
  `friend_id2` INT NOT NULL
  )";

I wish I could be at school now :)

share|improve this answer
    
Yeah, school :) kinda hard, but keen to develop my php skills. Thank you so much for the help btw ;). Btw, do you know why I can't populate my table, especially the second one? –  Tyler Matema Oct 29 '12 at 16:48
    
Will give you a chance to use your imagination :) Go ahead :) –  Reflective Oct 29 '12 at 17:57

You have the following errors in code: 1) $queryResult3 = @mysqli_query($dbConnect,$sqlSt3) Is correct: $queryResult3 = @mysqli_query($dbConnect,$sqlSt3); 2) $sqlMyfriends = "CREATE TABLE myfriends (
friend_id1 INT NOT NULL,
friend_id2 INT NOT NULL, )"; Is correct: $sqlMyfriends = "CREATE TABLE myfriends (
friend_id1 INT NOT NULL,
friend_id2 INT NOT NULL)"; 3) $queryResult3 = @mysqli_query($conn,$sqlSt3); Is correct: $queryResult3 = mysqli_query($conn,$sqlSt3);

Code correct is:

Couldn't connect to the server!

"); $selectData = @mysqli_select_db ($conn, $dbnm); if(!$selectData) { die ("

Database Not Selected

"); } //1st table $sql = "CREATE TABLE IF NOT EXISTS `friends` ( `friend_id` INT NOT NULL auto_increment, `friend_email` VARCHAR(20) NOT NULL, `password` VARCHAR(20) NOT NULL, `profile_name` VARCHAR(30) NOT NULL, `date_started` DATE NOT NULL, `num_of_friends` INT unsigned, PRIMARY KEY (`friend_id`) )"; //2nd table $sqlMyfriends = "CREATE TABLE `myfriends` ( `friend_id1` INT NOT NULL, `friend_id2` INT NOT NULL )"; $query_result1 = @mysqli_query($conn, $sql); $query_result2 = @mysqli_query($conn, $sqlMyfriends); //populating 1st table $sqlSt3="INSERT INTO friends (friend_id, friend_email, password, profile_name, date_started, num_of_friends) VALUES('NULL','email@email.com','123','abc','2012-10-25', 5)"; $queryResult3 = mysqli_query($conn,$sqlSt3); //populating 2nd table $sqlSt13="INSERT INTO myfriends VALUES(1,2)"; $queryResult13=@mysqli_query($dbConnect,$sqlSt13); mysqli_close($conn); ?>

I hope to help !

share|improve this answer

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