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I'm trying to insert specific values(knife, and blanket) into a Database, but's not inserting into the DB/table at all. Also, I want to display the inserted values in a table below, and that is not working as well. It is dependant on the insert for it to show on the table. I am sure, because I inserted a value through phpmyAdmin, and it displayed on the table. Please, I need to fix the insert aspect.

The Insert Code/Error Handler

if (isset($_POST['Collect'])) {
if(($_POST['Object'])!= "knife" && ($_POST['Object'])!= "blanket")
  echo "This isn't among the room objects.";
}else {
// this makes sure that all the uses that sign up have their own names
$sql = "SELECT id FROM objects WHERE object='".mysql_real_escape_string($_POST['Object'])."'";
$query = mysql_query($sql) or die(mysql_error());
$m_count = mysql_num_rows($query);

 if($m_count >= "1"){
    echo 'This object has already been taken.!';
    } else{
   $sql="INSERT INTO objects (object)

echo "".$_POST['object']." ADDED";



<form method="post">
Pick Object: <input name="Object" type="text" />  
<input class="auto-style1" name="Collect" type="submit" value="Collect" />

<table width="50%" border="2" cellspacing="1" cellpadding="0">
      <tr align="center">
        <td colspan="3">Player&#39;s Object</td>
      <tr align="center">
$result = mysql_query("SELECT * FROM objects") or die(mysql_error());
// keeps getting the next row until there are no more to get
    while($row = mysql_fetch_array( $result )) {
// Print out the contents of each row into a table?>
       <td><label for="<?php echo $row['id']; ?>"><?php
    echo "$name2"; ?>
        <td><? echo $row['object'] ?></td>
        <?php }// while loop ?>

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4 Answers 4

if(($_POST['Object'])!= knife || ($_POST['Object'])!= blanket)

THese value knife and blanket are string. So you may need to use quotes around them to define them as string, or php won't understand ;)

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Thank you so much – Kelvin Mar 4 '11 at 15:58

If the primary key of Objects is id and it is set to auto-increment

$sql = "INSERT INTO objects SET id = '', object = '".$_POST['Object']."'";


$sql= "INSERT INTO objects(object) VALUES ('".$_POST['Object'].")';

and you should probably put an escape in there too

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You insert query is nor correct.

$sql = "INSERT INTO objects (id, object) values('','".$_POST['Object']."') ";

and this code

if(($_POST['Object'])!= "knife" || ($_POST['Object'])!= "blanket")
  echo "This isn't among the room objects.";

will always be executed value of object is knife or blanket, because a variable can have one value. You must use

if(($_POST['Object'])!= "knife" && ($_POST['Object'])!= "blanket")
      echo "This isn't among the room objects.";
share|improve this answer
It still doesn't work – Kelvin Mar 4 '11 at 16:03
@Kelvin : updated. – Gaurav Mar 4 '11 at 16:12

Your SQL syntax is wrong. You should change the:

INSERT INTO objects SET id = '', object = '".$_POST['Object']."'


INSERT INTO objects ( id, object ) VALUES ('', '".$_POST['Object']."'

If you want your inserts to also replace any value that might be there use REPLACE as opposed to INSERT.

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the "SET field = value" statement is working pretty well, actually... – Tsadiq Mar 4 '11 at 15:51
Thank You. I have fixed that bit, but it still doesn't work. Please check the error handling if the problem comes from there – Kelvin Mar 4 '11 at 15:56

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