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I have been using the clone keyword to duplicate objects like so:

$x = clone $obj;

as per the manual.

This works fine when accessed by browser. phpinfo() reports PHP version 5.2.6.

However when run by cron or from the CLI I get

"Parse error: syntax error, unexpected T_VARIABLE"

from the clone keyword.

php -v reports PHP 4.4.9 (cli)

Is this error from a version conflict?

If I use clone() in my scripts like so:

$_SESSION['user'] = clone($userObject);

I get odd intermittent problems with the $_SESSION['user'] which do not occur when using the clone keyword.

Does this make any sense to anyone?

Any advice?

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2 Answers 2

It seems that the clone $foo keyword is only available on PHP 5 and newer.

Also, if you're still using PHP 4.4.9, that may be a bigger problem.

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Thank you for the reply. When not running CLI the version is 5.2.6. What is the latest CLI version? I was just looking at php.net and I can't tell. –  jerrygarciuh May 31 '09 at 17:50
    
PHP versions are the same for both CGI and CLI - they're just invoked differently, but with the same core. (I think the latest is PHP 5.2.9-2, at least I'm using it right now.) –  grawity May 31 '09 at 18:03
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up vote 1 down vote accepted

Turns out the server has 4 and 5 installed and the CLI reports 4.4.9 simply due to PATH order:

From support:

"Running the "php -v" command in the shell will always return V4. That's because we have two separate installs for PHP on your server. One for V4 and one for V5, and the PHP 4 interpreter shows up in your PATH environment variable first. If you'd like to use V5 through the shell you'll need to be sure to use the full path"

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