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This question already has an answer here:

line 19 is $Image_path = $row->Image_path;

Hey guys i have NO idea why im getting this error... since it's the first time I'm calling this variable and also the $row->Image_path is an actual feild in the table. Any ideas? beats me

here's the code

<?php

error_reporting(E_ALL);
ini_set('display_errors', '1');
$search_output = "";
if(isset($_POST['searchquery']) && $_POST['searchquery'] != ""){
    $searchquery = preg_replace('#[^a-z 0-9?!]#i', '', $_POST['searchquery']);
    if($_POST['filter1'] == "Companies"){
        $sqlCommand = "SELECT Company_ID, Company_Name, Image_path AS company FROM Company WHERE Company_Name LIKE '%$searchquery%'";
    }
    include_once("database_connect.php");
        $query = mysqli_query($connection, $sqlCommand) or die(mysql_error());
    $count = mysqli_num_rows($query);
    if($count >= 1){
        $search_output .= "<hr />$count results for <strong>$searchquery</strong><hr />$sqlCommand<hr />";
        while($row = mysqli_fetch_array($query)){
                $id = $row->Company_ID;
            $Company_name = $row->Company_Name;
             $Image_path = $row->Image_path;
            $search_output .= "Item ID: $ $Image_path.$Company_name<br />";
                } // close while
    } else {
        $search_output = "<hr />0 results for <strong>$searchquery</strong><hr />$sqlCommand";
    }
}
?>
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marked as duplicate by PeeHaa, M Khalid Junaid, tereško, Felix Yan, Kuba Ober Mar 6 '14 at 14:48

This question was marked as an exact duplicate of an existing question.

    
It seems like you're trying to query before you're making a DB connection, which is one of the factors at play; after seeing include_once("database_connect.php"); after your first query $sqlCommand = "SELECT... – Fred -ii- Dec 1 '13 at 0:28
up vote 0 down vote accepted

You need to change mysqli_fetch_array to mysqli_fetch_object.

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Why do i keep doing that?? haha this was it thanks a lot man! lolz – user2993497 Dec 1 '13 at 1:29