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In JavaScript we have a few ways of getting the properties of an object, depending on what we want to get.

1) Object.keys(), which returns all own, enumerable properties of an object, an ECMA5 method.

2) a for...in loop, which returns all the enumerable properties of an object, regardless of whether they are own properties, or inherited from the prototype chain.

3) Object.getOwnPropertyNames(obj) which returns all own properties of an object, enumerable or not.

We also have such methods as hasOwnProperty(prop) lets us check if a property is inherited or actually belongs to that object, and propertyIsEnumerable(prop) which, as the name suggests, lets us check if a property is enumerable.

With all these options, there is no way to get a non-enumerable, non-own property of an object, which is what I want to do. Is there any way to do this? In other words, can I somehow get a list of the inherited non-enumerable properties?

Thank you.

share|improve this question
1  
Your question answered the question I was going to ask: How to inspect non-enumerable properties (just to explore what is available in predefined objects). Finally I found getOwnPropertyNames! :-) – marcus Dec 16 '11 at 19:30
    
@marcus :-) That's what SO is all about! – dkugappi Dec 21 '11 at 16:14
up vote 58 down vote accepted

Since getOwnPropertyNames can get you non-enumerable properties, you can use that and combine it with walking up the prototype chain.

function getAllProperties(obj){
    var allProps = []
      , curr = obj
    do{
        var props = Object.getOwnPropertyNames(curr)
        props.forEach(function(prop){
            if (allProps.indexOf(prop) === -1)
                allProps.push(prop)
        })
    }while(curr = Object.getPrototypeOf(curr))
    return allProps
}

I tested that on Safari 5.1 and got

> getAllProperties([1,2,3])
["0", "1", "2", "length", "constructor", "push", "slice", "indexOf", "sort", "splice", "concat", "pop", "unshift", "shift", "join", "toString", "forEach", "reduceRight", "toLocaleString", "some", "map", "lastIndexOf", "reduce", "filter", "reverse", "every", "hasOwnProperty", "isPrototypeOf", "valueOf", "__defineGetter__", "__defineSetter__", "__lookupGetter__", "propertyIsEnumerable", "__lookupSetter__"]

Update: Refactored the code a bit (added spaces, and curly braces, and improved the function name):

function getAllPropertyNames( obj ) {
    var props = [];

    do {
        Object.getOwnPropertyNames( obj ).forEach(function ( prop ) {
            if ( props.indexOf( prop ) === -1 ) {
                props.push( prop );
            }
        });
    } while ( obj = Object.getPrototypeOf( obj ) );

    return props;
}

And to simply get everything..(enum/nonenum, self/inherited.. Please confirm..

function getAllPropertyNames( obj ) {
    var props = [];

    do {
        props= props.concat(Object.getOwnPropertyNames( obj ));
    } while ( obj = Object.getPrototypeOf( obj ) );

    return props;
}
share|improve this answer
    
Thanks toby, one thing I don't understand is the line: while(curr = Object.getPrototypeOf(cure)), as the conditional statement uses an assignment operator instead of a comparison operator, wouldn't this always return true? Or is this line essentially checking whether "curr" has a prototype? – dkugappi Nov 6 '11 at 1:05
    
@AlexNabokov it will return false if the result is falsy, which will occur when Object.getPrototypeOf(cure) returns null at the top of the prototype chain. I guess this assumes no circular prototype chains! – Domenic Nov 6 '11 at 3:07
2  
@Alex Function.prototype can never be the "root" prototype, since it's prototype link points to Object.prototype. The function Object.getPrototypeOf( obj ) returns the topmost object in the prototype chain of obj. It enables you to follow the prototype chain of obj until you reach its end (the null value). I'm not sure what your issue with this is... – Šime Vidas Nov 7 '11 at 14:01
2  
@Alex No, it's not undefined. Object.getPrototypeOf(John) returns the Boy.prototype object (as it should) - see here: jsfiddle.net/aeGLA/1. Note that the constructor Boy is not in the prototype chain of John. The prototype chain of John is as follows: Boy.prototype -> Object.prototype -> null. – Šime Vidas Nov 7 '11 at 14:13
2  
"I thought Object.getPrototypeOf(obj) will return the obj's constructor's prototype" - Yes. In the case of John, his constructor is Boy, and the prototype property of Boy is Boy.prototype. So Object.getPrototypeOf(John) returns Boy.prototype. – Šime Vidas Nov 7 '11 at 14:18

Here is the solution that I came up with while studying the subject. To get all non-enumerable non-own properties of the obj object do getProperties(obj, "nonown", "nonenum");

function getProperties(obj, type, enumerability) {
/**
 * Return array of object properties
 * @param {String} type - Property type. Can be "own", "nonown" or "both"
 * @param {String} enumerability - Property enumerability. Can be "enum", 
 * "nonenum" or "both"
 * @returns {String|Array} Array of properties
 */
    var props = Object.create(null);  // Dictionary

    var firstIteration = true;

    do {
        var allProps = Object.getOwnPropertyNames(obj);
        var enumProps = Object.keys(obj);
        var nonenumProps = allProps.filter(x => !(new Set(enumProps)).has(x));

        enumProps.forEach(function(prop) {
            if (!(prop in props)) {
                props[prop] = { own: firstIteration, enum_: true };
            }           
        });

        nonenumProps.forEach(function(prop) {
            if (!(prop in props)) {
                props[prop] = { own: firstIteration, enum_: false };
            }           
        });

        firstIteration = false;
    } while (obj = Object.getPrototypeOf(obj));

    for (prop in props) {
        if (type == "own" && props[prop]["own"] == false) {
            delete props[prop];
            continue;
        }
        if (type == "nonown" && props[prop]["own"] == true) {
            delete props[prop];
            continue;
        }

        if (enumerability == "enum" && props[prop]["enum_"] == false) {
            delete props[prop];
            continue;
        }
        if (enumerability == "nonenum" && props[prop]["enum_"] == true) {
            delete props[prop];
        }
    }

    return Object.keys(props);
}
share|improve this answer

To get all inherited properties or methods for some instance you could use something like this

var BaseType = function () {
    this.baseAttribute = "base attribute";
    this.baseMethod = function() {
        return "base method";
    };
};

var SomeType = function() {
    BaseType();
    this.someAttribute = "some attribute";
    this.someMethod = function (){
        return "some method";
    };
};

SomeType.prototype = new BaseType();
SomeType.prototype.constructor = SomeType;

var instance = new SomeType();

Object.prototype.getInherited = function(){
    var props = []
    for (var name in this) {  
        if (!this.hasOwnProperty(name) && !(name == 'constructor' || name == 'getInherited')) {  
            props.push(name);
        }  
    }
    return props;
};

alert(instance.getInherited().join(","));
share|improve this answer
1  
Better to use Object.getInherited rather than Object.prototype.getInherited. Doing that also removes the need for the ugly !(name == 'getInherited') check. Also, in your implementation, the props array can contain duplicate properties. Lastly, what's the purpose of ignoring the constructor property? – Pauan Jul 17 '13 at 12:35
    
I agree with you. – Milan Jaric Jul 18 '13 at 13:35
    
When will object.getInherited will become true? Please check below question as I am stuck with inheritance: stackoverflow.com/questions/31718345/… – Ravindra babu Jul 31 '15 at 8:26

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