Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So I have it set up to upload images via Phonegap native apis from devices images/camera with random numbers attached to the image name. I'm trying to figure out how to access the final url of the image location on the server so that I can utilize that url of the image when making a Facebook post since they require external uploaded images.

Code: .php

<?php
$dir = "upload"; 
$randomImg = rand(1, 9999)."image".rand(1, 999999).".jpg";
if ($_FILES) {
    print_r($_FILES);
    mkdir ($dir, 0777, true); 
    move_uploaded_file($_FILES["file"]["tmp_name"],$dir."/".$randomImg);
}
else if (isset($_GET['image'])) {
    $image = $dir."/".$_GET['image'];
    header('Content-type: image/jpeg');
    list($width, $height) = getimagesize($image); 
    $newWidth = 120.0; 
    $size = $newWidth / $width;
    $newHeight = $height * $size; 
    $resizedImage = imagecreatetruecolor($newWidth, $newHeight); 
    $image = imagecreatefromjpeg($image); 
    imagecopyresampled($resizedImage, $image, 0, 0, 0, 0, $newWidth, $newHeight, $width, $height); 
    imagejpeg($resizedImage, null, 80); 
}
else {
    $images = scandir($dir);
    $ignore = Array(".", "..");
    $baseURI = "http://".$_SERVER['SERVER_NAME'].':'.$_SERVER['SERVER_PORT'].$_SERVER['REQUEST_URI'];
    if ($images) {
        foreach($images as $curimg){ 
            if (!in_array($curimg, $ignore)) {
                echo "Image: ".$curimg."<br>";
                echo "<img src='".$baseURI."?image=".$curimg."&rnd=".uniqid()."'><br>"; 
            }
        }
    }
    else {
        echo "We apologize, but there are no images found on our server at this time.";
    }
}
?>

.html

<section>
                            <input value="Upload Photo" id="uploadBtn" type="button" onclick="uploadImg();"  />
                        </section>

.js

function uploadImg() {
    var img = document.getElementById('camImg');
    var imageURI = img.src;
    if (!imageURI || (img.style.display === "none")) {
        $('#status').html("Snap a photo or select one from your gallery by clicking the 'Attach Photo...' button").css('color', 'red');
        return;
    }
    paramount = "http://www.param0unt.com/app/upload.php";
    if (paramount) {
        var opts = new FileUploadOptions();
        opts.fileKey = "file";
        opts.fileName = imageURI.substr(imageURI.lastIndexOf('/') + 1);
        opts.mimeType = "image/jpeg";
        opts.chunkedMode = false;
        var media = new FileTransfer();
        media.upload(imageURI, paramount, function(r) {
            $('#status').html("Photo successfully stored on our server! (<font color='red'>NOTE:</font> This is alpha version, you will be able to utilize these photos via facebook group ad posts in an upcoming beta release!)").css('color', 'green');
        }, function(error) {
             $('#status').html("Photo Upload Failed, please try again later.").css('color', 'red');
            //console.log(error.code);          
        }, opts);
    }

}

share|improve this question

1 Answer 1

After you have uploaded the file with move_uploaded_file, generate the URL and echo it back as a JSON-encoded response:

$url = $baseURI . "?image=" . $randomImg; // http://example.com/app/upload.php?image=1234image5678.jpg
echo json_encode(array("url" => $url));
exit;

Then in your success callback JS function, parse the response:

var data = JSON.parse(r);
console.log(data.url); // http://example.com/app/upload.php?image=1234image5678.jpg
share|improve this answer
    
Hm tried adding that in, didn't seem to do anything. I used alert instead of console log considering I'm using native functions which I can't really view in console log on my iPad which I'm testing it on? –  user2122206 Mar 21 '13 at 19:44

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.