Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Im trying to load a private key generated by the openssl cli tool with PHP. I used the following command and PHP code:

openssl genrsa -des3 4096 -out private.key

if (!($key = openssl_pkey_get_private("file://private.key", "password")));
{
      return false;
}

I'm sure the password is correct and the file is also PEM formatted, but it keeps returning false. What am I doing wrong?

Thanks in advance, Jori.

share|improve this question
2  
Use the openssl_error_string() function to find out what the error message is: php.net/manual/en/function.openssl-error-string.php – Jeroen May 27 '12 at 12:57
    
Aha, will try that! If I don't succeed I will post here again. Thanks alot. – Jori May 27 '12 at 13:05
    
Very strange... I got it working right now by omitting the error check. Seems like openssl_pkey_get_private() does not return false on all errors. Is this a known bug, or am I mistaking? – Jori May 27 '12 at 13:10

It is a lot easier to just put the key in a var:

$public = "-----BEGIN PUBLIC KEY-----
MIGfMA0GCSqGSIb3DQEBAQUAA4GNADCBiQKBgQDfmlc2EgrdhvakQApmLCDOgP0n
NERInBheMh7J/r5aU8PUAIpGXET/8+kOGI1dSYjoux80AuHvkWp1EeHfMwC/SZ9t
6rF4sYqV5Lj9t32ELbh2VNbE/7QEVZnXRi5GdhozBZtS1gJHM2/Q+iToyh5dfTaA
U8bTnLEPMNC1h3qcUQIDAQAB
-----END PUBLIC KEY-----";

$private = "-----BEGIN RSA PRIVATE KEY-----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-----END RSA PRIVATE KEY-----";

if (!$privateKey = openssl_pkey_get_private($private)) die('Loading Private Key failed');
if (!$publicKey = openssl_pkey_get_public($public)) die('Loading Public Key failed');

I'll also include a small encode / decode example:

$encrypted = '';
$decrypted = '';

$plaintext = 'This is just some text to encrypt';

echo '<p>$plaintext = ' . $plaintext . '<p>';

if (!openssl_public_encrypt($plaintext, $encrypted, $publicKey))    die('Failed to encrypt data');

echo '<p>$encrypted = ' . $encrypted . '<p>';

if (!openssl_private_decrypt($encrypted, $decrypted, $privateKey))  die('Failed to decrypt data');

echo '<p>$decrypted = ' . $decrypted . '<p>';

Or just in case you could generate a key with php:

$NEW_KEY = openssl_pkey_new(array(
    'private_key_bits' => 1024,
    'private_key_type' => OPENSSL_KEYTYPE_RSA,
        ));

openssl_pkey_export_to_file($NEW_KEY, 'private.key');

$NEW_KEY_DETAILS = openssl_pkey_get_details($NEW_KEY);
file_put_contents('public.key', $NEW_KEY_DETAILS['key']);

openssl_free_key($NEW_KEY);
share|improve this answer
1  
Ah ha, I passed the file path into openssl_pkey_get_private() after file_get_contents and passing the result in, I no longer got the error. Thanks for your amazingly thorough example. – Dustin Graham Mar 28 at 18:35

Please note that file://path/to/file.pem in documentation means file protocol + file path. In UNIX like OS, that is something like file:///rsa_private_key.pem. There is THREE slashes in the path string, not TWO. And file:// cannot be omitted.

share|improve this answer
    
This should be the accepted answer; I was putting in a path and didn't realise the function needed a protocol. – M1ke Nov 12 '15 at 14:58

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.