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This question isn't for any specific interview or assignment, just a question that showed up on Quora but no one answered. How would you implement a function (any language really) that returns true 75% of the time. Statistics is not my strong point and for me the way I would do it but I have a inkling is wrong is

void retTrue(){
    srand(time(NULL));
    if( (rand() % 4) == 0 ) return true;
    else return false;
} 
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1  
Why is that wrong? Assuming rand() returns a random integer on a uniform distribution, that seems fine. –  kevmo314 Oct 10 '13 at 20:17
6  
could shorten to return (rand()%4 != 0) and the return type should probably be bool, otherwise I don't see a problem with it. –  Kevin DiTraglia Oct 10 '13 at 20:17
5  
I think you mean return (rand()%4 != 0) ? –  Jason Oct 10 '13 at 20:19
6  
Wouldn't you want to switch your return true and return false if your looking for it to return true 75% of the time? –  Trevor Oct 10 '13 at 20:21
3  
You also want to seed the RNG once, not each and every time. Move srand(time(NULL)); somewhere else (main, for example). –  Adam Oct 10 '13 at 20:22

5 Answers 5

up vote 6 down vote accepted

What you have will return true 25% of the time.

How about this?

bool retTrue()
{
    srand(time(NULL));
    if ( (rand() % 4) == 0 ) return false;
    else return true;
}

But this also returns true 75% of the time -- every fourth time, like clockwork:

static int counter = 1;  // global or out-of-scope variable

bool retTrue_anotherOne()
{
    bool returnValue;
    if ((counter % 4) == 0)
        counter = 0;
        returnValue = false;
    else
        returnValue = true;

    counter++;
    return returnValue;
}

Or this also returns true 75% of the time -- 75 trues in a row, then 25 falses:

static int counter = 0;  // global or out-of-scope variable

bool retTrue_anotherOne()
{
    bool returnValue;
    if (counter < 75)
        returnValue = true;
    else
        returnValue = false;

    counter = (counter + 1) % 100;
    return returnValue;
}

It all depends on what kind of distribution of "75% of the time" you want!

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Good point. I like that. –  zubergu Oct 10 '13 at 20:42
    
Thank! what i wrote was just very quickly unformatted C. For some reason I thought mine wasn't really following any proper distributions. –  Jamil Seaidoun Oct 11 '13 at 0:38
1  
And of course it could be return (rand() % 4) != 0;. (We are of course assuming here that rand is well distributed, which it generally is not, I understand.) –  Hot Licks Oct 11 '13 at 0:58

Here is one potential problem with your function. rand() will return a random integer between 0 and RAND_MAX, and although there are no real guarantees, RNGs are designed to generate a uniform distribution over this interval. However, when you use the modulo operator, as in

(rand() % 4) == 0

you are only looking at the bottom two bits of the random number. The problem is, in some random number generators, the randomness of lower order bits can be very weak. A safer way to get a series independent random events that occur 25% of the time is

((double) rand() / (double) RAND_MAX) < 0.25

The randomness of rand() as an element over the whole interval [0,RAND_MAX] is more reliable than the randomness of individual bits.

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To summarize the suggestions from the comments:

Seed your RNG somewhere:

srand(time(NULL));

Then the function is simple:

bool retTrue(){
    return (rand()%4 != 0);
} 
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You forgot to make it != –  mbeckish Oct 10 '13 at 20:26
    
@mbeckish whoops –  Adam Oct 10 '13 at 20:26

You don't want to call srand inside the function. time() has a 1 second resolution. If I called that function 100 times in less than one second I would get the same results every time.

Second rand usually isn't a very good random number generator, you are unlikely to get a perfect 75% ratio out of it.

Third your return type is void that isn't going to return anything except a compiler error.

How about:

bool retTrue(){
static unsigned int n = 0;
n++;
return n % 4 != 0;
}

There was no mention of it needing to be random.

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Why not just generate numbers using Random Number Generator in java. I think this should print True 75% of time given rand()generates numbers with equal probability. Correct me if this is wrong

Pseudo-Code

 int generateNumber()
  {
     Random r = new Random();
     int seed = r.nextInt(100);
     if(seed < 25){
     return false;
     }else
     {
     return true;
     }        
  }
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