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I am trying to compile an if statement on a mysqli variable in a function but I am receiving a fatal error stating `Using $this when not in object context in ... on line 117. What am I doing wrong and how can I get the if statement to work in the function?

Code:

    $qandaquery = "SELECT ReplyType
                    FROM Reply";

    $qandaqrystmt=$mysqli->prepare($qandaquery);
    // get result and assign variables (prefix with db)
    $qandaqrystmt->execute(); 
    $qandaqrystmt->bind_result($qandaReplyType);
    $this->shared_result[] = $qandaReplyType; //ERROR HERE

function ExpandOptionType($option) { 


     if('Single' == $this->shared_result){

...

 }else if('Multiple' == $this->shared_result){

...

}
}
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closed as unclear what you're asking by deceze, Jefffrey, mario, George Brighton, brasofilo Mar 7 at 22:50

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What do you want $this to mean here to begin with? –  deceze Feb 13 '13 at 10:57
    
You don't have a class in this area, so $this will not work. Where is the initializiation of the shared_result array? Can you please post this fragment too? –  Shimu Feb 13 '13 at 10:58
    
I guess you are not working in a class, looking at the code above the function –  s.lenders Feb 13 '13 at 11:00
    
+1 for asking a question correctly, extracting meaningful part instead of posting whole homework paper as is. –  Your Common Sense Feb 13 '13 at 11:31

1 Answer 1

up vote 1 down vote accepted

You are trying to use $this inside a generic function (not a method). It should be written into something along the line of:

class A {

    private $shared_result = array();

    public function __construct($mysqli) {

        $qandaquery = "SELECT ReplyType FROM Reply";
        $qandaqrystmt = $mysqli->prepare($qandaquery);
        $qandaqrystmt->execute(); 
        $qandaqrystmt->bind_result($qandaReplyType);
        $this->shared_result[] = $qandaReplyType;

    }

    public function ExpandOptionType($option) { 

        if('Single' == $this->shared_result){
            ...
        } else if('Multiple' == $this->shared_result) {
            ...
        }

    }

}

to make sense. Remember that $this always refers to the instance of the class you are working in. In a non class context it just doesn't make sense.

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Hi, can I ask that do I need to really use $this for trying to access a $mysqli variable in a function to use in an if statement. Can I not just access the $mysqli variable in the if statement just as it is $qandaReplyType? –  user2056342 Feb 13 '13 at 13:10
    
@user2056342, no you can't and it doesn't make sense. You are not making any sense and you probably don't have a clue what $this-> is so I suggest you to take a look at Classes and OOP and Dependency Injection. –  Jefffrey Feb 13 '13 at 13:24

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