Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have a Node.js process (setInterval) that runs every 100ms. I have certain actions that I want to take every x period of time. So for example, 2% of the time do X, 10% of the time do Y, etc.

Right now, I'm basically doing it like this:

var rand = Math.floor(Math.random() * (1000 + 1));

if(rand > 900) {  // Do something }

if(rand > 950) {  // Do something }

The problem is it's very inconsistent. You would want if(rand > 900) to be at least close to 10% of the time, but sometimes it may be 10x in a row or not at all.

Would anyone have suggestions to a better solution that would be more accurate if we assume the 100ms interval is fixed.

Thank you!

Edit: Based on Dr. Dredel's comments:

var count = 0;

    if(count++ % 4 == 0) {
       console.log('25% of the time');

}, 100);​
share|improve this question
Is it out of the question to create a setInterval for each individual sub-process you want to perform? – cheeken Jun 22 '12 at 0:17
I'm not sure I understand what you're asking. By random chance you might get a 10% event occurring multiple times in a row or not at all. – templatetypedef Jun 22 '12 at 0:17
Welcome to the world of probability! - (This is a crazy world, where educated people might not understand what a World of Warcraft player will) – Dvir Azulay Jun 22 '12 at 0:19
It seems you want to control the distribution so that if y hasn't occurred for say 8 iterations, increase it's probability and conversely if it's occured twice in 4 iterations reduce it's probability. You may also want to ensure that you never get two y's in a row. I'm sure there's a fairly simple algorithm if that's what you want. It will not be totally random, but may be sufficient. – RobG Jun 22 '12 at 0:28
FYI, you can play with randomness here: As others have said if you want something to be exactly n% of the time in a small number of iterations, then you can't use random as that only gives you expected results with large numbers of iterations. – jfriend00 Jun 22 '12 at 1:23

3 Answers 3

up vote 4 down vote accepted

If your interval is fixed, I would round your stamp to the nearest hundred and then use those segments that relate to your needs... 100 and 200 but not 300- 1000 to represent 2%.

If you CAN use a counter, then that's the more obvious way to do it.

if(myCounter++ % 4 == 0)
    //this happens 25 percent of the time 

As Emil points out, probability is not the correct approach here, and I don't get the sense that you're married to it... It sounds like you're using it because you didn't see a better way to provoke something to happen x% of the time. If we're misunderstanding you, you need to explain in better detail why you're using odds here.

share|improve this answer
Thank you! So I've added an example in my question above. Is that what you mean? What if I wanted to do something 10% of time or 2% of the time? – dzm Jun 22 '12 at 3:36
This is also an interval that runs continuously, so the counter would eventually clime up to a gazillion - does this method still seem appropriate? – dzm Jun 22 '12 at 3:39
sure... you can reset the counter at anytime. If you're dealing with percent, you can reset your counter every time it hits 100. It really depends on the granularity of your needs. If you needs something to happen 1% of the time you need to run your counter to 100. If you need it to happen .1 percent of the time you need to run it to 1000. If however, you need it to run 1/2 the time, your counter never needs to go past 2 :) Just think about it in terms of "how often do I need this?". – Genia S. Jun 22 '12 at 4:14
That's not a random generator though, it will return values in exact ratios, so 1:4 will occur exactly every fourth time, 1:5 exactly every fifth, and so on. – RobG Jun 22 '12 at 5:43
@RobG, I don't see anything in dave's post that suggests that he *wants it to be random. It seems like that's just the solution he came up with to have it happen sporadically. – Genia S. Jun 22 '12 at 6:32

Introduce a counter and BAM! Now you can have it exactly 2% of the time!

Seriously, introducing some sort of state is the only way for you to enforce a "not too many times in a row" policy. Probability/randomness cannot help you with this problem. The belief that random events can't happen many times in a row is a well-known myth. In fact, a 2% probable event can happen millions of times in a row, although it's very unlikely.

You will need to add a constraint such as "I want the event to happen with x% probability, but I always want it to go at least y steps after each event".

share|improve this answer

If you want to guarantee that your operations happen an exact percentage of the time (rather than leave that to chance), but you want them to be selected in a random order, then you can do something like this where you create a data structure with the exact outcomes you want in it for one iteration through all elements. Then, you randomly pick one of those outcomes, remove it from the data structure, randomly pick another outcome and so on...

If you seed the initial data structure with the proper percentage of each outcome, then you will get outcomes according to that rule and for each full iteration through, you will get exactly the desired number of each outcome, but they will be selected in random order and that order will be different each time.

If you want the process to repeat over and over, you can just start it over each time it finishes one complete iteration.

var playProbabilities = [
    {item: "A", chances: 3},
    {item: "B", chances: 2},
    {item: "C", chances: 1},
    {item: "D", chances: 2},
    {item: "E", chances: 1},
    {item: "F", chances: 1}

function startPlay(items) {
    var itemsRemaining = [];
    // cycle through the items list and populate itemsRemaining
    for (var i = 0; i < items.length; i++) {
        var obj = items[i];
        // for each item, start with the right number of chances
        for (var j = 0; j < obj.chances; j++) {

function nextPlay(itemsRemaining) {
    if (!itemsRemaining.length) {
        return null;
    // randomly pick one
    var rand = Math.floor(Math.random() * itemsRemaining.length);
    var result = itemsRemaining[rand];

    // remove the one we picked from the array
    itemsRemaining.splice(rand, 1);

$("#go").click(function() {
    var results = $("#results");
    var items = startPlay(playProbabilities);
    var next;
    while(next = nextPlay(items)) {
        results.append(next + "<br>");

Working demo here:

If you run the demo, you will see that for each run, it produces exactly the desired number of each outcome, but they are selected in random order.

share|improve this answer
This is an interesting approach, I'm not sure if it would work though for this application - could this be used to perform an action X percent of the time? – dzm Jun 22 '12 at 4:01
@dave - Yes, it can be set for probabilities for X percent of the time. The example in my answer has "A": 30%, "B": 20%, "C": 10%, "D": 20%, "E": 10%, "F": 10%. You can just adjust the chances number for each item to change it's probability. A given item's probability is its chance number divided by the total of all chance numbers. – jfriend00 Jun 22 '12 at 4:20
@RobG - I don't see any criterion of no sequential items in anything the OP has written. The point of this code is to guarantee that each item gets its fair share of hits, even when the sample size is small. – jfriend00 Jun 22 '12 at 11:29

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.