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Func2 is called when I click on button . Why i don't get any popup? Should I see both alert alert ("override1") and alert ("override2") after the first one?

// JavaScript Document
function person(name, surname) {
    this.name = "";
    this.surname = "";
    this.age = "11";
    this.setName(name);
    this.setSurname(surname);
    //alert('Person instantiated'); 
}
person.prototype.setName = function(name) {
    this.name = "Sir1" + name;
}
person.prototype.setSurname = function(surname) {
    this.surname = "-" + surname;
}
person.prototype.setAge = function(newAge) {
    this.age = newAge;
}
person.prototype.show = function() {
    alert("override1");
}
function employee(name, surname, company) {
    //if (arguments[0] === inheriting) return;
    person.call(this, name, surname); // -> override del costruttore
    //this.name = "Sir2"+name;
    this.company = company;
};
employee.prototype.show = function() {
    person.prototype.show;
    alert("override2");
}
function test2() {
    employee.prototype = new person();
    // correct the constructor pointer because it points to Person  
    employee.prototype.constructor = employee;
    // Crea un oggetto impiegato da persona
    impiegato = new employee("Antonio", "Di Maio", "Consuldimo");
    //impiegato.show();
    impiegato.show();
}​

Thanks

share|improve this question
    
I think you should review the markdown editing help page. A well-written question will get you well-written answers. –  zzzzBov Jul 30 '12 at 15:03
    
What is Func2? –  Rocket Hazmat Jul 30 '12 at 15:04
    
What button? You have not posted the code that calls "test2()" –  Pointy Jul 30 '12 at 15:04
    
<button onclick="test2()"> <p>Test 1</p> </button> –  user1343454 Jul 30 '12 at 19:53

2 Answers 2

up vote 1 down vote accepted

In test2() you're replacing the entire employee.prototype with an instance of person, thus overwriting the employee.prototype.show function you've defined previously with the one inherited from person. Also, as stated in the answer by codebox, in employee.prototype.show() you're not calling person.prototype.show(), but merely evaluating it in void context, which has no effect at all.

You'll have to set employee's parent before you define any additional methods on its prototype:

employee.prototype = new person();
employee.prototype.constructor = employee;
employee.prototype.show = function() { ... }

Also, when you call your parent's method, you need to supply the correct context yourself:

person.prototype.show.call(this);
share|improve this answer
    
Can you help me to solve it? –  user1343454 Jul 30 '12 at 21:49
    
@user1343454: Code ordering is important. What you're doing to employee.prototype is like: array=[1]; array.push(2); array=[]; array.push(3);. –  Jay Jul 31 '12 at 1:54
    
Thanks. Lanzz suggestion helped. –  user1343454 Jul 31 '12 at 11:19

In employee.prototype.show you are not calling the person.prototype.show method - change it to this:

employee.prototype.show = function() {
     person.prototype.show();  
     alert ("override2");
 }
share|improve this answer
2  
The method will get person.prototype as this which is really unexpected. –  Esailija Jul 30 '12 at 15:06
    
Your funtion seems to be the same I have written in my code :( –  user1343454 Jul 30 '12 at 21:23
    
Done but I still see only overide1 alert message :( –  user1343454 Jul 30 '12 at 21:40
    
employee.prototype.show = function() { alert ("override2"); person.prototype.show(); }; –  user1343454 Jul 30 '12 at 21:43

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