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I am currently learning Object oriented Javascript but it seems that the alert is not working. what is the problem here?

<

html>
 <head>
  <script>

   function professor(name, myLecture){
        this.name = name;
        this.myLecture = myLecture;
   }

   professor.prototype.display = function(){
        return this.name + " is teaching " + this.myLecture;
   };

   function subjectList(subject){
        this.subject = subject;
   }

   subjectList.prototype.showAll= function(){
            var str = " " ;
            for(var i = 0 ; i<subject.length; i++ )
            str+= this.subject[i].display();
            return str;
   };

   var ListOfSubs = new subjectList([
        new professor("Muy","Obprog")
   ]);

   alert(ListOfSubs.showAll());

  </script>
   <body>
   </body>
 </head>
</html>
share|improve this question
    
Have you opened up the JavaScript debugger in the browser you are using and seeing if there are any errors there? –  Justin Niessner Mar 20 '12 at 13:41
    
Make sure your javascript has no errors first (ReferenceError: subject is not defined - line 17) –  Ignacio Mar 20 '12 at 13:41
    
Use a debugger ... error i get is 'subject is not defined' –  alexfreiria Mar 20 '12 at 13:41
    
for(var i = 0 ; i<subject.length; i++ ) to for(var i = 0 ; i<this.subject.length; i++ ) –  user1150525 Mar 20 '12 at 13:42
1  
@user962206 You can be browsing any site... The console just executes your code. There should be more info here: stackoverflow.com/questions/45965/… –  Ignacio Mar 20 '12 at 13:55

5 Answers 5

up vote 2 down vote accepted

Should be this.subject.length instead of subject.length.

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why use this.subject.length? rather the later? –  user962206 Mar 20 '12 at 13:46
1  
'subject' is not 'visible' within 'showAll' method. So you need to use 'this' –  Engineer Mar 20 '12 at 13:50

You need this.

   subjectList.prototype.showAll= function(){
            var str = " " ;
            for(var i = 0 ; i< this.subject.length; i++ ) // notice this.subject
            str+= this.subject[i].display();
            return str;
   };
share|improve this answer
    
why use "this"? –  user962206 Mar 20 '12 at 13:54

The line:

 for(var i = 0 ; i<subject.length; i++ )

The error was that "Subject is not defined". Changing it from subject.length = this.subject.length should fix your problem.

It should output:

Muy is teaching Obprog
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how did you see that error? –  user962206 Mar 20 '12 at 13:59

Other have informed you about the reason what is wrong with your js-code.

One more note from me.

Usually an programmed alert will not come up when an exception happens before.

And by the way, your body-tag should be after the closing head-tag

share|improve this answer

This code will work inside your script tag:

 function professor(name, myLecture){
        this.name = name;
        this.myLecture = myLecture;
   }

   professor.prototype.display = function(){
        return this.name + " is teaching " + this.myLecture;
   };

   function subjectList(subject){
        this.subject = subject;
   }

   subjectList.prototype.showAll= function(){
            var str = " " ;
            for(var i = 0 ; i<subject.length; i++ )
            str+= this.subject[i].display();
            return str;
   };

   var ListOfSubs = new subjectList([
        new professor("Muy","Obprog")
   ]);

   alert(ListOfSubs.showAll());

Cause: in your showAll function you have used subject, which is not existent, but the object of your prototype has a member called subject. So instead of i<subject.length, i<this.subject.length is fixing your problem.

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