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I am new to PHP and I am trying to read the output of an XML file that resides on a folder on my local box. In the PHP.net/simplexml_load_file tutorial the following LIKE code should show the SimpleXMLElement Object when I do a print_r($xml). But when I run the script on my local terminal I get the file path:

/Users/msavoy/XMLSourceDir/sfly-6x8.000020513524-7001536_28935-tb.33.xml

I need to be able to get the $xml object so that I can display all the elements within the object.

Here is my code:

// Get the correct count of the values in the $sourceXmlDir after the unset function completes
$sourceXmlArray = array_values($sourceXmlDir);
$count_xml_files = count($sourceXmlArray);

// Check to ensure that there are xml files in the directory before processing parsing the file
// If no files exist create an Exception and log the error.
if ($count_xml_files > 0) {

    // Cycle through the XML files in the $sourceXmlArray
    for ($i = 0; $i < $count_xml_files; $i++) {

        $xml = ($sourceDir . '/' . $sourceXmlArray[$i]);

        print_r($xml);
    }
} else {
    $error_output = date('Y-m-d H:i:s') . 'There are no XML files in the source directory: ' . $sourceDir;
    error_log(date('Y-m-d H:i:s') . 'There are no XML files in the source directory: ' . $sourceDir);
    throw new Exception($error_output);
}

What am I missing? Any help/direction would be appreciated. Regards.

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1 Answer 1

up vote 0 down vote accepted
$xml = ($sourceDir . '/' . $sourceXmlArray[$i]);

print_r($xml);

You didn't actually call simplexml_load_file, so why would $xml be a SimpleXMLElement object?

Try this:

$xml = simplexml_load_file($sourceDir . '/' . $sourceXmlArray[$i]);

print_r($xml);
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1  
Duh!! Sorry. Obviously looking at this too long!! Thank you. –  Melinda Sep 28 '12 at 20:53

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