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Is there a way in nginx to deny access to specific sections of the website based on a referral ?

Basically trying to block access to 2 directories from 2 referrer domains.

Here is the code I am using:

if ( ($http_referer ~* (badomain1.com|badomain2.com)) && 
     ($request_uri ~* (directory1/|directory2/))
   ) {
    return 403;
}

But nginx fails with error:

[emerg]: invalid condition "($http_referer" in /usr/local/nginx/conf/nginx.conf:88 configuration file /usr/local/nginx/conf/nginx.conf test failed

Any help would be appreciated.

Thanks.

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2 Answers

Think you need to escape the dot like so: \.

Then return 444, it's nginx internal for don't answer at all.

if ($http_referer ~* (babes|click|diamond|forsale|girl|jewelry|love|nudit|organic|poker|porn|poweroversoftware|sex|teen|video|webcam|zippo) ) {
    return 444;
}
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The Nginx "if" statement is not the same as "if" in a scripting language such as PHP. It is just a rewrite directive.

You cannot have something like

if *expression1* OR *expression2* then
    *code*
end

You need to do

if *expression1* then
    *Rewrite Directive Only*
end
if *expression2* then
    *Rewrite Directive Only*
end

To do

if *expression1* AND *expression2* then
    *code*
end

You need to do

if *expression1* then
    set $myVar X;
end
if *expression2* then
    set $myVar $myVarX;
end
if $myVar = XX then
    *Rewrite Directive Only*
end

It is important to note that "if" in Nginx is simply a rewrite directive and that this means that only other rewrite directives should go into *code*. "Return" and "Set" are valid rewrite directives.

I use a similar setup to filter requests and actually taken it up one level by using Lua to evaluate via the Lua module.

if (*expression1* OR *expression2*) AND (*expression3* OR *expression4*) then
    *Complex Code*
end
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But in this case both expressions would not be met ? it would be like OR ? –  Simon Gelfand Dec 18 '11 at 9:18
    
Expanded the answer accordingly –  Dayo Dec 18 '11 at 11:47
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