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I am using the code below to search a directory using PHP for around 11 JPG image files

        $dbImage=$row["pref"];
        $imageName=$dbImage;
        $str2 = substr($imageName, -4);
        $extension=".jpg";
        $fileName=$str2.$extension;
        echo "<img src='Images/proppics/$filename'>";             

However this does not seem to work and an empty box is displayed.

The files are named as follows,

AT-1410f1654.jpg
AT-1410_1655.jpg
AT-1410_1656.jpg
AT-1410_1657.jpg
AT-1410_1658.jpg
AT-1410_1659.jpg

As you can notice the first image has 7 characters followed by the letter f. The remaining images are separated by _. What I need to perform is display ALL the images (first 7 characters only) in a slideshow. And the image which is separated with f should be displayed on the top of the page. Any ideas how to perform this task, and also the reason for the previous coding error

Full Code

// rows to return
$limit=10; 
$con=mysql_connect("localhost","root","");
mysql_select_db("movedb") or die("Unable to select database");
$query="select * FROM properties where `name`='Beata Grande 1' & `catergory`='Villas'& `price`=202800 & `area`='Arenas'& `bedrooms`=2 & `region`='Axarquia'";
$numresults=mysql_query($query,$con);
$numrows=mysql_num_rows($numresults);
$result = mysql_query($query) or die("Couldn't execute query");
echo "<center>";
echo "<p>You searched for: &quot;" . $properties . "&quot;</p>";
echo "<form name=payment action='properties_details.php'>";
echo "Results <br>";
  while ($row= mysql_fetch_array($result)) {
    $id=$row['id'];
    $pid=$row['pref'];
    // Retrieve the balance database fields

      echo "<p>Property ID &nbsp".$pid;
      echo "<br> <p> Name &nbsp";
      echo $row["name"];
      echo "<br>  Properties &nbsp";
      echo $row["catergory"];
      echo "<br> Description &nbsp";
    // Print results
 echo "<br>";
 echo "<input type=submit name=btnbuy value=MoreDetails> "; 
share|improve this question
    
Please post the code where you are retrieving the files. –  fatman Jul 15 '12 at 8:05
    
Please check the code attached –  Yoosuf Jul 15 '12 at 8:45
    
After the database values were read, the previous code to read the image files comes –  Yoosuf Jul 15 '12 at 8:46
    
Can you provide more debug information. Do var_dump($row) and var_dump($fileName) just to see if they really have values inside them –  Aziz Jul 15 '12 at 12:37

1 Answer 1

Variable names are case-sensitive in PHP.

Your variable is called $fileName, but you are using it in the echo statement as $filename.

Replace

echo "<img src='Images/proppics/$filename'>";

with

echo "<img src='Images/proppics/$fileName'>"; // Capital 'N'
share|improve this answer
    
No it does not work –  Yoosuf Jul 15 '12 at 8:45

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