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I am creating a wordpress plugin that will query a db based off of user entered parameters and display the results in a linked html file. I can get it to display the html page, but the results variable is not passing through.

Here is how I am displaying the linked HTML file:

    //This is set in another location but
        $template = 'results';
    //Execute SQL
        global $wpdb;           
        $result = $wpdb->get_results($sql);

    //Load template
        $content = file_get_contents( plugins_url( 'template-files/'.$template.'.php',__FILE__ ) );
        foreach ( $result as $r ){
            $contentCopy = $content;
            echo jww_display_php_file($contentCopy, $r);
        }

function jww_display_php_file( $content, $r ){
    $arr = (array)$r;
    ob_start() && extract($arr, EXTR_SKIP);
    eval('?>'.$content);
    $content = ob_get_clean();
    ob_flush();
    $content .= "<hr>";
    return $content;
}

Here is what I have in the HTML File:

<table width="100%" border="1" cellspacing="0" cellpadding="0">
  <tr>
    <td>Name</td>
    <td><?php echo $Name; ?></td>
  </tr>
</table>

Thanks in advance for any help

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2 Answers

First of all, your results.html should be results.php, you just can't use php variables or functions inside an HTML file, so rename your file to results.php and then try this

$result = $wpdb->get_results($sql);
$content = file_get_contents( plugins_url( 'template-files/results.php',__FILE__ ) );
foreach ( $result as $r ){
    $contentCopy = $content;
    echo jww_display_file($contentCopy, $r);
}

function jww_display_file( $content, $r ){
    $arr = (array)$r;
    ob_start() && extract($arr, EXTR_SKIP);
    eval('?>'.$content);
    $content = ob_get_clean();
    ob_flush();
    $content .= "<hr>";
    return $content;
}

Finally, inside your results.php file, change following

<td><?php echo $r->Name; ?></td>
<td><?php echo $r->Age; ?></td>
<td><?php echo $r->DOB; ?></td>

to

<td><?php echo $Name; ?></td>
<td><?php echo $Age; ?></td>
<td><?php echo $DOB; ?></td>

Note : eval is evil but it's not a problem when you are using an internal file from your server and you know the code is secure, this way, framework like Laravel loads a view file and mix variables from controller in their MVC framework.

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1  
Sheikh. Thank you for your answer; I have tried to implement it, but am getting an error "extract() expects parameter 1 to be array." Is there some sort of conversion I need to do to change a row of the results ($r) to an array?... I will have to look more closely at Laravel. It looks very interesting at first glance. Thank you for suggesting. –  user2300933 May 20 '13 at 13:47
    
@user2300933, check the updated answer. –  WereWolf - The Alpha May 20 '13 at 16:36
    
After I implemented those changes I no longer get the error, but it still does not display the anything for the $Name variable. It just displays a blank cell where it should go. –  user2300933 May 20 '13 at 17:06
    
Try to debug the code, after $arr = (array)$r; add print_r($arr); exit; and see what you get. –  WereWolf - The Alpha May 20 '13 at 17:12
    
Array ( [Name] => Aabbe [Gender] => [Origin] => Hebrew [Meaning] => Joy of the father [Age] => [DOB] => 82) –  user2300933 May 20 '13 at 17:40
show 26 more comments

I renamed my results.php to results.html, changed the $content = file_get_contents( plugins_url( 'template-files/'.$template.'.html',FILE ) ); and it works perfectly!

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