13

I am currently trying to complete a project where the specifications are to use a search form to search through a packaging database. The database has lots of variables ranging from Sizes, names, types and meats. I need to create a search form where users can search using a number of different searches (such as searching for a lid tray that is 50 cm long).

I have spent all day trying to create some PHP code that can search for info within a test database I created. I have had numerous amounts of errors ranging from mysql_fetch_array errors, boolean errors and now currently my latest error is that my table doesn't seem to exist. Although i can enter data into it (html and php pages where I can enter data), I don't know what is causing this and I have started again a few times now.

Can anyone give me some idea or tips of what I am going to have to do currently? Here is just my small tests at the moment before I move onto the actual sites SQL database.

Creation of database:

 <body>
  <?php
     $con = mysql_connect("localhost", "root", "");
      if (!$con)
     {
      die('Could not connect: ' . mysql_error());
     }
      if (mysql_query("CREATE DATABASE db_test", $con))
     {
  echo "Database created";
     }
      else
    {
  echo "Error creating database: " . mysql_error();
    }


  mysql_select_db("db_test", $con);
  $sql = "CREATE TABLE Liam
   ( 
  Code varchar (30),
  Description varchar (30),
  Category varchar (30),
  CutSize varchar (30),
   )";

 mysql_query($sql, $con);
     mysql_close($con);
 ?> 
   </body>

HTML search form page:

<body>

      <form action="form.php" method="post">
        Search: <input type="text" name="term" /><br />
      <input type="submit" name="submit" value="Submit" />
      </form>

</body>

The PHP code I am using to attempt to gather info from the database (I have rewritten this a few times, this code also displays the "table.liam doesn't exist")

  <body>
   <?php
 $con = mysql_connect ("localhost", "root", "");
 mysql_select_db ("db_test", $con);

  if (!$con)
    { 
    die ("Could not connect: " . mysql_error());
    } 
    $sql = mysql_query("SELECT * FROM Liam WHERE Description LIKE '%term%'") or die
        (mysql_error());

       while ($row = mysql_fetch_array($sql)){
    echo 'Primary key: ' .$row['PRIMARYKEY'];
    echo '<br /> Code: ' .$row['Code'];
    echo '<br /> Description: '.$row['Description'];
    echo '<br /> Category: '.$row['Category'];
    echo '<br /> Cut Size: '.$row['CutSize']; 
  }
 
  mysql_close($con)
   ?>
     </body>
5
  • 3
    you are not catching the term in php use $term = $_POST["term"] Oct 5, 2012 at 13:51
  • Thanks, but I am still getting table.liam doesn't exist errors :( Oct 5, 2012 at 13:57
  • 1
    Ouch. I'm sympathetic to your predicament here, but you're going to have a hard time getting good answers on Stack Overflow with this question as it stands. The reason is that it's not really one question; it's a whole bunch of questions. For good, useful help of the kind Stack Overflow is best at providing, you need to break your problem down into discrete pieces (e.g. "Why am I getting table doesn't exist errors?") and ask those questions.
    – pjmorse
    Oct 5, 2012 at 14:05
  • Thanks very much for your advice. Sorry have only ever read or use to answer on stackflow, never actually asked a question. I will bare it in mind for the future. Thanks. Oct 5, 2012 at 14:06
  • Typically, $_POST should be used when you intend to "write" data (INSERT/UPDATE/DELETE) on the server side. When you merely intend to "read" data (SELECT/search) on the server side, you should use $_GET. (of course, I mean that you should adjust the form method to suit this advice too) Aug 17, 2021 at 23:02

2 Answers 2

15

try this out let me know what happens.

Form:

<form action="form.php" method="post"> 
Search: <input type="text" name="term" /><br /> 
<input type="submit" value="Submit" /> 
</form> 

Form.php:

$term = mysql_real_escape_string($_REQUEST['term']);    

$sql = "SELECT * FROM liam WHERE Description LIKE '%".$term."%'";
$r_query = mysql_query($sql);

while ($row = mysql_fetch_array($r_query)){ 
echo 'Primary key: ' .$row['PRIMARYKEY']; 
echo '<br /> Code: ' .$row['Code']; 
echo '<br /> Description: '.$row['Description']; 
echo '<br /> Category: '.$row['Category']; 
echo '<br /> Cut Size: '.$row['CutSize'];  
} 

Edit: Cleaned it up a little more.

Final Cut (my test file):

<?php
$db_hostname = 'localhost';
$db_username = 'demo';
$db_password = 'demo';
$db_database = 'demo';

// Database Connection String
$con = mysql_connect($db_hostname,$db_username,$db_password);
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }

mysql_select_db($db_database, $con);
?>

<!DOCTYPE html>
<html lang="en">
    <head>
        <meta charset="utf-8" />
        <title></title>
    </head>
    <body>
<form action="" method="post">  
Search: <input type="text" name="term" /><br />  
<input type="submit" value="Submit" />  
</form>  
<?php
if (!empty($_REQUEST['term'])) {

$term = mysql_real_escape_string($_REQUEST['term']);     

$sql = "SELECT * FROM liam WHERE Description LIKE '%".$term."%'"; 
$r_query = mysql_query($sql); 

while ($row = mysql_fetch_array($r_query)){  
echo 'Primary key: ' .$row['PRIMARYKEY'];  
echo '<br /> Code: ' .$row['Code'];  
echo '<br /> Description: '.$row['Description'];  
echo '<br /> Category: '.$row['Category'];  
echo '<br /> Cut Size: '.$row['CutSize'];   
}  

}
?>
    </body>
</html>
16
  • Thank you for your help! But I still get this when I submit the search, "Table 'db_test.liam' doesn't exist" :( Oct 5, 2012 at 14:01
  • try my new edit. Remember DB, Tables, And Column names are case sensitive. Oct 5, 2012 at 14:04
  • i am getting this error now "Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in /Applications/XAMPP/xamppfiles/htdocs/form.php on line 24" Oct 5, 2012 at 14:04
  • 1
    This is an example of why this is a bad question: it's so hard to tell what a good answer is. @rackemup420 solved one problem, but that uncovered another one. It's a rat's nest. Break it down.
    – pjmorse
    Oct 5, 2012 at 14:07
  • var_dump($sql); and see if $term is getting any info set. Oct 5, 2012 at 14:07
3

You're getting errors 'table liam does not exist' because the table's name is Liam which is not the same as liam. MySQL table names are case sensitive.

2
  • Thanks, I had realized this when I looked over before but nothing changed. Oct 5, 2012 at 14:05
  • Well then maybe the table really doesn't exists! check phpMyAdmin i see that you are using XAMPP Oct 5, 2012 at 14:08

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