You are passing by reference $a to $b with the & symbol. That means if you change the value of $b you are changing $a too.
In other words $b has the memory address of $a
solved please explain following out put [closed]
You are passing by reference $a to $b with the & symbol. That means if you change the value of $b you are changing $a too.
In other words $b has the memory address of $a
solved please explain following out put [closed]