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I have a single table named Company. It has five columns (Company_ID, Company_Name, Product_Type, City and State). Using a script I've repurposed for this assignment I can get City and State to display, but not Company_Name or Product_Type. I can't tell if they are invisible or not since I can still sort based on those two missing columns.

Here's the entire script:

<?php # Script 10.5 - #5
//....  
// Define the query:
$q = "SELECT Company_Name AS 'Company Name', Product_Type AS 'Product Type', City, State     FROM Company ORDER BY $order_by LIMIT $start, $display";       
$r = @mysqli_query ($dbc, $q); // Run the query.

// Table header
//....

// Fetch and print all the records....
$bg = '#eeeeee'; 
while ($row = mysqli_fetch_array($r, MYSQLI_ASSOC)) {
    $bg = ($bg=='#eeeeee' ? '#ffffff' : '#eeeeee');
        echo '<tr bgcolor="' . $bg . '">
        <td align="left"><a href="edit_user.php?id=' . $row['Company_Name'] .     '">Edit</a></td>
        <td align="left"><a href="delete_user.php?id=' . $row['Company_Name'] .     '">Delete</a></td>
        <td align="left">' . $row['Company_Name'] . '</td>
        <td align="left">' . $row['Product_Type'] . '</td>
        <td align="left">' . $row['City'] . '</td>
        <td align="left">' . $row['State'] . '</td>
    </tr>
    ';
} // End of WHILE loop.

echo '</table>';
mysqli_free_result ($r);
mysqli_close($dbc);
// ....
?>

I've run the same query from PHPMyAdmin and it's successful in that it shows all 7 records. Displaying the results seems to be the issue.

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dont use @ to subside error remove and see the error that you get and you ran the query tats ok but have you fetch the data? –  Arun Killu May 3 '13 at 12:40

1 Answer 1

up vote 0 down vote accepted

You select your rows like this:

$q = "SELECT Company_Name AS 'Company Name', Product_Type AS 'Product Type', [...] " 

And then you try to access them with this:

<td align="left">' . $row['Company_Name'] . '</td>
<td align="left">' . $row['Product_Type'] . '</td>

But the names you used (Company_Name and Product_Type) don't exist, since you specified a different name in your as statement, try:

$q = "SELECT Company_Name, Product_Type, [...] " 

And it should work.

share|improve this answer
    
Wow. I feel dumb now. Thank you so much for taking the time to answer this. I'll check the box that this is answered in 3 minutes. –  StillLearning May 3 '13 at 12:45

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