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I'm trying to upload a picture on my amazon S3 via their PHP SDK. So I made a little script to do so. However, my script doesn't work and my exception doesn't send me back any error message.

I'm new with AWS thank you for your help.

Here is the code :

Config.php

<?php 

return array(
'includes' => array('_aws'),
'services' => array(
  'default_settings' => array(
      'params' => array(
          'key'    => 'PUBLICKEY',
          'secret' => 'PRIVATEKEY',
          'region' => 'eu-west-1'
      )
    )
  )
);

?>

Index.php

 <?php


//Installing AWS SDK via phar
require 'aws.phar';

use Aws\S3\S3Client;
use Aws\S3\Exception\S3Exception;

$bucket = 'infact';
$keyname = 'myImage';

// $filepath should be absolute path to a file on disk                      
$filepath = 'image.jpg';

// Instantiate the client.
$s3 = S3Client::factory('config.php');

// Upload a file.
try {

$result = $s3->putObject(array(
    'Bucket'       => $bucket,
    'Key'          => $keyname,
    'SourceFile'   => $filePath,
    'ContentType'  => 'text/plain',
    'ACL'          => 'public-read',
    'StorageClass' => 'REDUCED_REDUNDANCY'
));

 // Print the URL to the object.
    echo $result['ObjectURL'] . "\n";
} catch (S3Exception $e) {
    echo $e->getMessage() . "\n";
}

?>

EDIT : I'm now using this code but its still not working. I don't even have error or exception message.

    <?php

require 'aws.phar';

use Aws\S3\S3Client;
use Aws\S3\Exception\S3Exception;

$bucket = 'infactr';
$keyname = 'sample';
// $filepath should be absolute path to a file on disk                      
$filepath = 'image.jpg';

// Instantiate the client.
$s3 = S3Client::factory(array(
    'key'    => 'key',
    'secret' => 'privatekey',
    'region' => 'eu-west-1'

    ));

try {
    // Upload data.
    $result = $s3->putObject(array(
        'Bucket' => $bucket,
        'Key'    => $keyname,
        'SourceFile'   => $filePath,
        'ACL'    => 'public-read',
        'ContentType' => 'image/jpeg'
    ));

    // Print the URL to the object.
    echo $result['ObjectURL'] . "\n";
} catch (S3Exception $e) {
    echo $e->getMessage() . "\n";
}

?>
share|improve this question
1  
Are you running this from the Web or the command line ? –  Rico Mar 17 at 5:08
    
From the web, why? –  casusbelli Mar 17 at 10:50
1  
Try it from the command line to see the errors. –  Rico Mar 17 at 15:15
1  
Yes s3cmd. You don't need s3cmd to try your script. You can just run: php <yourscript>.php –  Rico Mar 17 at 16:37
1  
from the Linux command line –  Rico Mar 18 at 22:37
show 6 more comments

2 Answers 2

$s3 = S3Client::factory('config.php');

should be

$s3 = S3Client::factory(include 'config.php');
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Try something like this (from the AWS docs):

<?php

require 'aws.phar';

use Aws\S3\S3Client;
use Aws\S3\Exception\S3Exception;

$bucket = '<your bucket name>';
$keyname = 'sample';
// $filepath should be absolute path to a file on disk                      
$filepath = '/path/to/image.jpg';

// Instantiate the client.
$s3 = S3Client::factory(array(
    'key'    => 'your AWS access key',
    'secret' => 'your AWS secret access key'
));

try {
    // Upload data.
    $result = $s3->putObject(array(
        'Bucket' => $bucket,
        'Key'    => $keyname,
        'SourceFile'   => $filepath,
        'ACL'    => 'public-read'
    ));



    // Print the URL to the object.
    echo $result['ObjectURL'] . "\n";
} catch (S3Exception $e) {
    echo $e->getMessage() . "\n";
}

?>

Name your file sample.php and run it from the command line:

php sample.php

It works fine for me as long as you have the right credentials. Keep in mind that the key name is the name of your file in S3 so if you want to have your key have the same name of your file you have to do something like: $keyname = 'image.jpg'; . Also, a jpg is generally not a plain/text file type, you can ommit that Content-type field or you can just simply specify: image/jpeg

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