44

I am using WordPress. I have an image folder like mytheme/images/myimages.

I want to retrieve all the images name from the folder myimages

Please advice me, how can I get images name.

0

11 Answers 11

105

try this

$directory = "mytheme/images/myimages";
$images = glob($directory . "/*.jpg");

foreach($images as $image)
{
  echo $image;
}
4
  • My directory is this: $directory = "images[big]"; and it doesn't work
    – jscripter
    Jun 21 '15 at 19:20
  • @Md. Shariful Islam is there a way to associate the directory to an id from the database?
    – madsongr
    Nov 27 '15 at 5:13
  • 1
    I'd only add to use the last backslash slash / in the directory path May 22 '16 at 17:43
  • 28
    To get several types there is a useful option: $images = glob("$dir/*.{jpg,png,bmp}", GLOB_BRACE);
    – Pavel
    Mar 30 '17 at 11:14
21

you can do it simply with PHP opendir function.

example:

$handle = opendir(dirname(realpath(__FILE__)).'/pictures/');
while($file = readdir($handle)){
  if($file !== '.' && $file !== '..'){
    echo '<img src="pictures/'.$file.'" border="0" />';
  }
}
12

when you want to get all image from folder then use glob() built in function which help to get all image . But when you get all then sometime need to check that all is valid so in this case this code help you. this code will also check that it is image

  $all_files = glob("mytheme/images/myimages/*.*");
  for ($i=0; $i<count($all_files); $i++)
    {
      $image_name = $all_files[$i];
      $supported_format = array('gif','jpg','jpeg','png');
      $ext = strtolower(pathinfo($image_name, PATHINFO_EXTENSION));
      if (in_array($ext, $supported_format))
          {
            echo '<img src="'.$image_name .'" alt="'.$image_name.'" />'."<br /><br />";
          } else {
              continue;
          }
    }

for more information

PHP Manual

2
  • You should change this: $i=1; to $i=0; and it works perfectly! Jun 19 '17 at 12:22
  • @FlamurBeqiraj updated. thanks Sep 24 '21 at 17:22
4
$dir = "mytheme/images/myimages";
$dh  = opendir($dir);
while (false !== ($filename = readdir($dh))) {
    $files[] = $filename;
}
$images=preg_grep ('/\.jpg$/i', $files);

Very fast because you only scan the needed directory.

1
  • But now there is no check if the dir realy excists
    – Coolen
    Jan 3 '15 at 20:26
4

This answer is specific for WordPress:

$base_dir = trailingslashit( get_stylesheet_directory() );
$base_url = trailingslashit( get_stylesheet_directory_uri() );

$media_dir = $base_dir . 'yourfolder/images/';
$media_url = $hase_url . 'yourfolder/images/';

$image_paths = glob( $media_dir . '*.jpg' );
$image_names = array();
$image_urls = array();

foreach ( $image_paths as $image ) {
    $image_names[] = str_replace( $media_dir, '', $image );
    $image_urls[] = str_replace( $media_dir, $media_url, $image );
}

// --- You now have:

// $image_paths ... list of absolute file paths 
// e.g. /path/to/wordpress/wp-content/uploads/yourfolder/images/sample.jpg

// $image_urls ... list of absolute file URLs 
// e.g. http://example.com/wp-content/uploads/yourfolder/images/sample.jpg

// $image_names ... list of filenames only
// e.g. sample.jpg

Here are some other settings that will give you images from other places than the child theme. Just replace the first 2 lines in above code with the version you need:

From Uploads directory:

// e.g. /path/to/wordpress/wp-content/uploads/yourfolder/images/sample.jpg
$upload_path = wp_upload_dir();
$base_dir = trailingslashit( $upload_path['basedir'] );
$base_url = trailingslashit( $upload_path['baseurl'] );

From Parent-Theme

// e.g. /path/to/wordpress/wp-content/themes/parent-theme/yourfolder/images/sample.jpg
$base_dir = trailingslashit( get_template_directory() );
$base_url = trailingslashit( get_template_directory_uri() );

From Child-Theme

// e.g. /path/to/wordpress/wp-content/themes/child-theme/yourfolder/images/sample.jpg
$base_dir = trailingslashit( get_stylesheet_directory() );
$base_url = trailingslashit( get_stylesheet_directory_uri() );
3

Here is my some code

$dir          = '/Images';
$ImagesA = Get_ImagesToFolder($dir);
print_r($ImagesA);

function Get_ImagesToFolder($dir){
    $ImagesArray = [];
    $file_display = [ 'jpg', 'jpeg', 'png', 'gif' ];

    if (file_exists($dir) == false) {
        return ["Directory \'', $dir, '\' not found!"];
    } 
    else {
        $dir_contents = scandir($dir);
        foreach ($dir_contents as $file) {
            $file_type = pathinfo($file, PATHINFO_EXTENSION);
            if (in_array($file_type, $file_display) == true) {
                $ImagesArray[] = $file;
            }
        }
        return $ImagesArray;
    }
}
3
//path to the directory to search/scan
        $directory = "";
         //echo "$directory"
        //get all files in a directory. If any specific extension needed just have to put the .extension
        //$local = glob($directory . "*"); 
        $local = glob("" . $directory . "{*.jpg,*.gif,*.png}", GLOB_BRACE);
        //print each file name
        echo "<ul>";

        foreach($local as $item)
        {
        echo '<li><a href="'.$item.'">'.$item.'</a></li>';
        }

        echo "</ul>";
0
2

Check if exist, put all files in array, preg grep all JPG files, echo new array For all images could try this:

$images=preg_grep('/\.(jpg|jpeg|png|gif)(?:[\?\#].*)?$/i', $files);


if ($handle = opendir('/path/to/folder')) {

    while (false !== ($entry = readdir($handle))) {
        $files[] = $entry;
    }
    $images=preg_grep('/\.jpg$/i', $files);

    foreach($images as $image)
    {
    echo $image;
    }
    closedir($handle);
}
5
  • 1
    Could you elaborate a little bit on your answer?
    – brodoll
    Nov 3 '15 at 18:05
  • check if exist, put all files in array, preg grep all JPG files, echo new array For all images could try this: '$images=preg_grep('/\.(jpg|jpeg|png|gif)(?:[\?\#].*)?$/i', $files);'
    – Nikita TSB
    Nov 3 '15 at 18:08
  • please remove the starting quote.
    – Gogol
    Jun 22 '16 at 21:01
  • What does the while (false !== ( part mean? I've seen it in a couple of answers, but it doesn't make sense to me, why are we looping through a false statement?
    – Studocwho
    Jan 3 '18 at 14:19
  • @Studocwho readdir function warning from php.net: This function may return Boolean FALSE, but may also return a non-Boolean value which evaluates to FALSE. Please read the section on Booleans for more information. Use the === operator for testing the return value of this function.
    – Nikita TSB
    Jan 24 '19 at 9:31
1
    <?php
   $galleryDir = 'gallery/';
   foreach(glob("$galleryDir{*.jpg,*.gif,*.png,*.tif,*.jpeg}", GLOB_BRACE) as $photo)
   {echo "<a  href=\"$photo\">\n" ;echo "<img style=\"padding:7px\" class=\"uk-card uk-card-default uk-card-hover uk-card-body\" src=\"$photo\">"; echo "</a>";}?>

UIkit php folder gallery https://webshelf.eu/en/php-folder-gallery/

1
  • As it’s currently written, your answer is unclear. Please edit to add additional details that will help others understand how this addresses the question asked. You can find more information on how to write good answers in the help center.
    – bitski
    Nov 10 '21 at 20:50
0
get all the images from a folder in php without database


$url='https://demo.com/Images/sliderimages/';
       $dir = "Images/sliderimages/";
        $file_display = array(
            'jpg',
            'jpeg',
            'png',
            'gif'
        );
        
        $data=array();
        
        if (file_exists($dir) == false) {
            $rss[]=array('imagePathName' =>"Directory  '$dir'  not found!");
            $msg=array('error'=>1,'images'=>$rss);
             echo json_encode($msg);
        } else {
            $dir_contents = scandir($dir);
        
            foreach ($dir_contents as $file) {
                @$file_type = strtolower(end(explode('.', $file)));
                // $file_type1 = pathinfo($file);
                // $file_type= $file_type1['extension'];
                
                if ($file !== '.' && $file !== '..' && in_array($file_type, $file_display) == true) {
                   $data[]=array('imageName'=>$url.$file);
               
                   
                }
            }
            if(!empty($data)){
                $msg=array('error'=>0,'images'=>$data);
                echo json_encode($msg);
            }else{
                $rees[]=array('imagePathName' => 'No Image Found!');
                $msg=array('error'=>2,'images'=>$rees);
                echo json_encode($msg);
            }
        }
-3

You can simply show your actual image directory(less secure). By just 2 line of code.

 $dir = base_url()."photos/";

echo"<a href=".$dir.">Photo Directory</a>";

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