1

I'm trying to display a SQL database using php.

I get an error:

Cannot Select Database (running local on XAMPP).

In XAMPP I went into xampp-security and changed the password of the superuser to "thisthing"

I have a file named: mydb.sql

mydb.sql:

CREATE TABLE `dpuForm` ( 
`ID` INT  NOT NULL  AUTO_INCREMENT ,
`JN` TINYTEXT  NOT NULL ,
`PN` TINYTEXT  NOT NULL ,
`QTY` TINYTEXT  NOT NULL ,
`DESC` TINYTEXT  NOT NULL ,
PRIMARY KEY (`ID`) );

INSERT INTO 'dpuForm' ('JN',...........yadayadayada

And here's my php:

<?php

$host = "localhost";
$username="root";
$password="thisthing";
$database="mydb";

mysqli_connect($host,$username,$password);
@mysqli_select_db($database) or die( "Unable to select database");

$query = "SELECT * FROM dpuForm";
$result = mysqli_query($query);
$num = mysqli_numrows($result);

mysqli_close();

?>
<!DOCTYPE html>
<html>
<head>
</head>
<body>
<table>
    <th>Job Number</th>
<th>Part Number</th>
<th>QTY</th>
<th>Description</th>

<?php
      $i=0;
      while ($i < $num) {
  $f1=mysqli_result($result,$i,"JN");
  $f2=mysqli_result($result,$i,"PN");
  $f3=mysqli_result($result,$i,"QTY");
  $f4=mysqli_result($result,$i,"DESC");
    ?>
  <tr>
    <td><?php echo $f1; ?></td>
    <td><?php echo $f2; ?></td>
    <td><?php echo $f3; ?></td>
    <td><?php echo $f4; ?></td>
  </tr>
    <?php $i++;} ?>
 </table>
</body>
</html>
  • 4
    @mysqli_select_db Don't suppress error warnings on your database connection. And change your die() statement to die('Unable to connect to database. '. mysqli_connect_error()); – Ohgodwhy Oct 2 '13 at 21:15
  • How do you suppose I change that? – bagofmilk Oct 2 '13 at 21:16
  • Remove the "@" from in front of the mysqli_select_db call – Ohgodwhy Oct 2 '13 at 21:16
  • From console, can you log in this way: mysql -u root -p thisthing ?? – Hackerman Oct 2 '13 at 21:17
  • I get the error: mysqli_select_db() expects exactly 2 parameters, 1 given in line 13 – bagofmilk Oct 2 '13 at 21:19
3

you need to use

$link = mysqli_connect($host,$username,$password,$database);
$result = mysqli_query($link,$query);

This is because you are using the procedural style of mysqli and not the object oriented.

Refer: mysql database

  • 1
    This is true, however, you don't need to select the DB in the connection, you can still use : mysqli_select_db($link, 'databse_name');. And you are correct about the Query, as well, you'll have to supply the DB link each time you try to execute a sql statement. – Ohgodwhy Oct 2 '13 at 21:28
  • Now I get this error: Unkown Database "mydb" But this time my headers show (not the data) only the headers. – bagofmilk Oct 2 '13 at 21:34
  • 1
    @Ohgodwhy: yeah, i agree with your point. I guess either ways both of them work and it's just a matter of the programmer's choice to select whichever method he/she finds convenient – aaron Oct 2 '13 at 21:35
  • @bagofmilk: I am assuming by headers you mean the database column headers without any data. Am i correct? . Also, your mydb.sql is your MYSQL script name. Is mydb your DB name as well? – aaron Oct 2 '13 at 21:40
  • @aaron, yes I think you are on to something. I just noticed that .sql files need to be imported into PhpMyAdmin as MySQL files. I'm in the process of trying to figure out how to do this :) – bagofmilk Oct 2 '13 at 21:49
2

In Procedural style , mysqli_select_db expects 2 parameters .

$link = mysqli_connect( $host, $username, $password );

mysqli_select_db( $link, $database );

But first to import your mydb.sql using phpMyAdmin :

  • Go to Databases tab and create a new database
  • Then go to Import tab and import the mydb.sql

If you have already created database using phpMyAdmin and then you find that the .sql file is bigger than allowed size according to your setttings , one way is to import from command line ( Windows command Prompt , etc. ) :

mysql -u mysql-user-name -p database_name < mydb.sql

or ( Change paths appropriately ) :

C:\wamp\bin\mysql\mysql5.5.24\bin\mysql -u mysql-user-name -p database_name < C:\mydb.sql
1

You Can Try to connect to mysql_connect

e.g.

$con = mysql_connect("host","username","password") or die("! server");

$db = mysql_select_db("databasename",$con) or die("! db");
1

Hello if You are using mysqli_connect then you should use following

$con=mysqli_connect("localhost","root","password","mydb");

OR

$con=mysqli_connect("localhost","root","","mydb");

try this......

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