110

Suppose you have a Javascript object like {'cat':'meow','dog':'woof' ...} Is there a more concise way to pick a random property from the object than this long winded way I came up with:

function pickRandomProperty(obj) {
    var prop, len = 0, randomPos, pos = 0;
    for (prop in obj) {
        if (obj.hasOwnProperty(prop)) {
            len += 1;
        }
    }
    randomPos = Math.floor(Math.random() * len);
    for (prop in obj) {
        if (obj.hasOwnProperty(prop)) {
            if (pos === randomPos) {
                return prop;
            }
            pos += 1;
        }
    }       
}
1
  • 1
    Note that the question and answers actually look for returning the value of a random object property, not a random property as the question title would suggest.
    – kontur
    Oct 19, 2020 at 11:20

9 Answers 9

219

The chosen answer will work well. However, this answer will run faster:

var randomProperty = function (obj) {
    var keys = Object.keys(obj);
    return obj[keys[ keys.length * Math.random() << 0]];
};
14
  • 3
    this is better as it doesn't use a loop
    – Dominic
    Mar 28, 2014 at 11:02
  • 15
    I did some testing, and it appears that the chosen answer works just fine and that the choice of property is unbiased (contrary to speculations among the responses); however, I tested on an object with 170,000 keys and the solution here was around twice as fast as the chosen solution.
    – Dragonfly
    May 4, 2014 at 18:33
  • 11
    Is << 0 (bitshift to the left by 0) a shorthand method of writing Math.round()? Aug 29, 2014 at 14:55
  • 4
    This jsperf jsperf.com/random-object-property-selection benchmarks this answer and the chosen answer. This answer performs better by 3x for smaller objects (100 properties). Larger objects (100k properties) the difference drops to 2x better. Mar 13, 2015 at 6:43
  • 2
    @MuhammadUmer - No. Math.random() returns a number in the range [0,1).
    – Yay295
    Dec 12, 2015 at 2:15
74

Picking a random element from a stream

function pickRandomProperty(obj) {
    var result;
    var count = 0;
    for (var prop in obj)
        if (Math.random() < 1/++count)
           result = prop;
    return result;
}
10
  • 2
    Does the ECMAScript standard say anything about the properties always being traversed in the same order? Objects in most implementations have stable ordering, but the behavior is undefined in the spec: stackoverflow.com/questions/280713/… Sep 20, 2010 at 18:46
  • 4
    This seems to have a skew towards the first element in the object. I haven't figured out why yet! Jan 11, 2014 at 8:14
  • 7
    This will never select the first property (Math.random is always < 1) and after that each number will have a 0.5 chance of being selected. So 0.5 for the second property, 0.25 for the 3rd, 0.125 for the 4th etc. Aug 29, 2014 at 14:41
  • 4
    Some corrections: This function can select the first property. On the first iteration, the prefix increment on count makes the right hand side of the equation evaluate to 1/1 == 1. Since Math.random is always in the range [0,1) (zero to one, excluding one), the expression evaluates to true and the first property is selected. As far as the distribution of the random selection goes, it is uniform. With one property there is a 100% chance it will be selected. With two there is a 50% chance either will be selected. With three a 33.3%. And so on. This solution has a minimal memory footprint. Mar 13, 2015 at 6:51
  • 3
    @davidhadas Consider a sequence of three elements. The first one is picked with a probability of 1. However, it might be replaced (notice that we don't return immediately!) by the second element with a probability of 1/2. The second element might in turn be replaced by the third element, with a probability of 1/3. So we get P(first) = P(first picked) * P(second not picked) * P(third not picked) = 1 * 1/2 * 2/3 = 1/3; P(second) = P(second picked) * P(third not picked) = 1/2 * 1/3 = 1/3; P(third) = P(third picked) = 1/3. Aug 1, 2016 at 8:42
25

I didn't think any of the examples were confusing enough, so here's a really hard to read example doing the same thing.

Edit: You probably shouldn't do this unless you want your coworkers to hate you.

var animals = {
    'cat': 'meow',
    'dog': 'woof',
    'cow': 'moo',
    'sheep': 'baaah',
    'bird': 'tweet'
};

// Random Key
console.log(Object.keys(animals)[Math.floor(Math.random()*Object.keys(animals).length)]);

// Random Value
console.log(animals[Object.keys(animals)[Math.floor(Math.random()*Object.keys(animals).length)]]);

Explanation:

// gets an array of keys in the animals object.
Object.keys(animals) 

// This is a number between 0 and the length of the number of keys in the animals object
Math.floor(Math.random()*Object.keys(animals).length)

// Thus this will return a random key
// Object.keys(animals)[0], Object.keys(animals)[1], etc
Object.keys(animals)[Math.floor(Math.random()*Object.keys(animals).length)]

// Then of course you can use the random key to get a random value
// animals['cat'], animals['dog'], animals['cow'], etc
animals[Object.keys(animals)[Math.floor(Math.random()*Object.keys(animals).length)]]

Long hand, less confusing:

var animalArray  = Object.keys(animals);
var randomNumber = Math.random();
var animalIndex  = Math.floor(randomNumber * animalArray.length);

var randomKey    = animalArray[animalIndex];
// This will course this will return the value of the randomKey
// instead of a fresh random value
var randomValue  = animals[randomKey]; 
1
  • 2
    I like this the most, with explanations and everything and also includes an actual example POJO. Great Answers, deserves more upvotes! Just makes everything so much easier to understand!
    – Tigerrrrr
    Nov 12, 2019 at 18:39
17

If you are capable of using libraries, you may find that Lo-Dash JS library has lots of very useful methods for such cases. In this case, go ahead and check _.sample().

(Note Lo-Dash convention is naming the library object _. Don't forget to check installation in the same page to set it up for your project.)

_.sample([1, 2, 3, 4]);
// → 2

In your case, go ahead and use:

_.sample({
    cat: 'meow',
    dog: 'woof',
    mouse: 'squeak'
});
// → "woof"
15

You can just build an array of keys while walking through the object.

var keys = [];
for (var prop in obj) {
    if (obj.hasOwnProperty(prop)) {
        keys.push(prop);
    }
}

Then, randomly pick an element from the keys:

return keys[keys.length * Math.random() << 0];
3
  • 14
    Object.keys is useful here var keys = Object.keys(obj)
    – whadar
    Jan 6, 2013 at 15:11
  • 1
    Dang << is so much more graceful than using Math.floor(), probably less expensive too. I've really gotta get down and learn how to use those bitwise operators.
    – Paul J
    Nov 21, 2016 at 18:20
  • 5
    In this case the usage of the bitwise operator is more likely a hack, because it needs an integer as an input, it converts the number. Applying << 0 to an integer will do nothing. parseInt() will do the same job. So nothing to learn here except of writing less understandable code.
    – landunder
    Feb 8, 2017 at 14:13
5

If you're using underscore.js you can do:

_.sample(Object.keys(animals));

Extra:

If you need multiple random properties add a number:

_.sample(Object.keys(animals), 3);

If you need a new object with only those random properties:

const props = _.sample(Object.keys(animals), 3);
const newObject = _.pick(animals, (val, key) => props.indexOf(key) > -1);
1

You can use the following code to pick a random property from a JavaScript object:

function randomobj(obj) {
var objkeys = Object.keys(obj)
return objkeys[Math.floor(Math.random() * objkeys.length)]
}
var example = {foo:"bar",hi:"hello"}
var randomval = example[randomobj(example)] // will return to value
// do something
1
  • While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value.
    – Nic3500
    Sep 5, 2018 at 0:33
0

Another simple way to do this would be defining a function that applies Math.random() function.

This function returns a random integer that ranges from the 'min'

function getRandomArbitrary(min, max) {
  return Math.floor(Math.random() * (max - min) + min);
}

Then, extract either a 'key' or a 'value' or 'both' from your Javascript object each time you supply the above function as a parameter.

var randNum = getRandomArbitrary(0, 7);
var index = randNum;
return Object.key(index); // Returns a random key
return Object.values(index); //Returns the corresponding value.
2
  • Do you mean Object.values(someObject)[index]?
    – Bemmu
    Jan 2, 2018 at 8:06
  • The index variable that I've used to store the generated random number is just a container, nothing special. Had I not stored the generated number into another variable then each instance of the function getRandomArbitrary would generate a new random number each time it's called. Jan 2, 2018 at 10:52
0

A lot of great answers here, so let me just try to spread the awareness of the bitwise NOT (~) operator in its double-trouble variant (which I'm pretty sure I learned about on StackOverflow, anways).

Typically, you'd pick a random number from one to ten like this:

Math.floor(Math.random()*10) + 1

But bitwise operation means rounding gets done faster, so the following implementation has the potential to be noticeably more performant, assuming you're doing enough truckloads of these operations:

~~(Math.random()*10) + 1
1
  • 1
    closes laptop and slowly backs away
    – Bemmu
    Mar 13 at 15:22

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