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5

The problem was caused by misconception. The values of imagettfbbox also define where do you have to start drawing - and often those coordinates are even negative. I always assumed you can start at [0, 0] coordinates. This function, also mentioned in comments and originating from PHP.net user contributions calculates the start coordinates, as well as the ...


4

You need to use below syntax to pass variable: Here you need to use a use() method. $img->text($string, $item['x'], $top, function() use($font){ $font->file('assets/fonts/Roboto-Medium.ttf'); $font->size($fontsize); $font->color($color); $font->align('left'); $font->valign('top'); }); EDIT Here $font must be a Class ...


2

I know this is a little bit old, but I was looking for a solution to figure this out on a BLOB from mysql and this is the way that worked for me. I hope it helps someone else as well. I don't know which way is best for performance, but it is worth testing. $finfo = new finfo(FILEINFO_MIME); $mimeType = $finfo->buffer($myBlobHere);


2

imagecreatefromjpeg() function creates image variable from file, but not backwards. While you have image source in base64 you can use simple file_put_contents() function to save file. Eg.: $data = 'data:image/jpeg;base64,BASE64_HERE'; list($type, $data) = explode(';', $data); list(, $data) = explode(',', $data); $data = base64_decode($data); ...


2

I mentioned in the comments exif_read_data. Now that I'm at my desk I can elaborate a bit more. I created a function a while back to do exactly this: // get geo-data from image function get_image_location($file) { if (is_file($file)) { $info = exif_read_data($file); if ($info !== false) { $direction = array('N', 'S', 'E', ...


1

You can't directly output an image that way. You can either: Save the image to disk and enter the URL in the image tag. Buffer the raw data, base64 encode it, and output it as a data URI (I wouldn't recommend this if you're working with large images.). Approach 1: <?php $img = resize_image('../images/avatar/demo.jpg', 120, 120); imagejpeg($img, ...


1

The main issue is that you risk to have errors or warnings during execution, which will be output as part of the image, and that will make your image invalid. So while developing, you should remove the header statement, to make sure you spot all error messages. And indeed, when I do that with your code, I get: E_DEPRECATED : type 8192 -- Function ...


1

For PHP7 use: sudo apt-get install php7.0-gd and than restart your webserver.


1

Change the 4th line from the end to: $new_img = imagecreatetruecolor(...); and it all works.



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