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Some application, not written by me, and not in PHP, creates a cookie for the domain "www.domain.com".

I am trying to replace that cookie. So in php I did:

setcookie('mycookie','mydata',time() + 2*7*24*60*60,'/','www.domain.com', false);

However the resulting cookie is created for domain: ".www.domain.com", note the dot "." ahead of the domain.

So it doesn't replace it, it creates another cookie. What can I do?

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3 Answers 3

up vote 14 down vote accepted

The issue is also adressed here: http://php.net/manual/en/function.setcookie.php

See comment by "jah": If you want to restrict the cookie to a single host, supply the domain parameter as an empty string

You could also try ".domain.com" as the domain. The trailing dot will allow a cookie for all subdomains for "domain.com" and could overwrite the "www."-cookie, but I'll go with the above solution first.

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3  
+1 Not specifying the domain is the key. –  Gumbo Feb 18 '10 at 10:27
    
I was looking for the answer to this as well, and sure enough, leaving the domain blank worked. Thanks. –  Andrew Mar 25 '10 at 5:26
    
Be warned, if you use and empty string for the domain you may find some browsers get confused. If you can, use getenv('HTTP_HOST') –  tomwrong Sep 8 '11 at 12:47

If you specify a domain, you should follow RFC 2109 and prefix the domain with a dot; otherwise the client will do that. But if you don’t specify a domain at all, the client will take the domain of the request.

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Try to create several other cookie with same name, but a different domain. Example:

setcookie('mycookie','mydata1',time() + 2*7*24*60*60,'/','www.domain.com', false);
setcookie('mycookie','mydata2',time() + 2*7*24*60*60,'/','www.domain.com', false);
setcookie('mycookie_top','mydata1',time() + 2*7*24*60*60,'/','domain.com', false);
setcookie('mycookie_top','mydata2',time() + 2*7*24*60*60,'/','domain.com', false);

Then inspect the cookie created by these command in the Firebug. If you kept getting a double cookie, then this might be a bug in the PHP. Also, try to set the cookie in the javascript code, see if you still got the same problems.

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