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I know the concepts of Pass-by-value, Pass-by-reference, etc... So, I understand why explicitly defined functions throw a warning when the parameter is not defined.

But, if empty() and isset() are functions, then why doesn't it throw a warning when an undefined variable is passed? Is there some exceptional magic going on here? How do I replicate it?

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empty() and isset() are not actually functions.

They're keywords built into the language, and executed by the compiler, which is how the behavior in question is possible - the compiler (unlike the runtime engine, where regular functions execute) already knows if a variable exists or not.

As a side effect, that's why in PHP 5 you couldn't define class methods named empty(), isset(), list(), etc. And you still can't declare classes, or constants via const using the same names.

Some other languages provide this as a feature called fexpr.

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  • Ok. I get it. Is there a way to replicate this in a function I make, without adding to the language itself? – BlackPanther Oct 2 '17 at 8:06
  • Thanks @Narf. I was really confused about how the control & data flow worked in their cases. Now, I think I get the idea. Just one more question. They can process $_POST, $_GET and $_REQUEST too. Aren't they bound at runtime? or are they done by the time compilation of the page is over? – BlackPanther Oct 2 '17 at 8:17
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    Yeah, talking about the "compiler" here is somewhere between confusing and incorrect I'd say. Simply regard these language constructs as something like operators. -> (as in $foo->bar) also works "at runtime" and does something you can't replicate using PHP code; or, say, instanceof… same for isset and empty. – deceze Oct 2 '17 at 8:19
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    @BlackPanther Super-globals are a bit special, yes - they're available before any of your code executes. But that doesn't really matter for empty() and isset(). – Narf Oct 2 '17 at 8:24
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    @Black Virtually all operators also return values, that's not a criterion. The syntax looks an awful lot like a function call, but that's really irrelevant. There's nothing that dictates what an operator must look like syntactically. – deceze Oct 2 '17 at 8:30

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