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I am looking to generate a number sequence where each number is between 70 and 100 there will be x numbers in the sequence and it will give and average of y. What would this algorithm look like?

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does the average of the numbers have to be exactly y or just when run many times come out to y on average? –  hackartist Jun 22 '12 at 1:28
    
Owe, perhaps I miss understood the question :-) –  8bitwide Jun 22 '12 at 1:30
    
You won't get a good answer until you tell us the distribution. That is the hard part. –  John Watts Jun 22 '12 at 1:36
    
do you need integers? –  Thilo Jun 22 '12 at 1:46

3 Answers 3

up vote 2 down vote accepted

I think it is impossible for them to be uniformly distributed between 70 and 100 and have a given average at the same time.

What you can do is generate random numbers that have a given average and then scale them to fit into [70, 100] (but they will not be uniformly distributed there).

  1. generate random numbers [0..1(

  2. calculate their average

  3. multiply all of them to match the required average

  4. if any of them does not fit into [70, 100], scale all of them again by reducing their distance from y by the same factor (this does not change the average). x[i] = y + (x[i] - y)*scale

You will end up with numbers that are all in the range [70, 100(, but they will be uniformly distributed across a different (but overlapping) interval that is centered on y. Also, this approach only works with real/floating-point numbers. If you want integers, you got a combinational problem on your hands.

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right, they can't be uniformly distributed. If y was 72 for example then the numbers between 70 and 72 must appear much more often than the numbers in 72 to 100 for them to still average to 72. –  hackartist Jun 22 '12 at 1:42
    
which is still possible to happen in a uniform distribution, but extremely unlikely. Uniform distribution implies that there are no restrictions on how the numbers are chosen. –  Thilo Jun 22 '12 at 1:43
    
by the way: do we want integers? Because if we do, this becomes a combinatory problem. My solution applies only for real numbers. –  Thilo Jun 22 '12 at 1:45

Python example

import random
import time

x     = 10
total = 0
avg   = 0


random.seed(time.time())
for x in range(10):
    total += random.randint(70,100)

avg = total /x

print "total: ", total
print "avg: ", avg
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but here you want the "avg" to come out to a fixed number specified upfront. –  Thilo Jun 22 '12 at 1:31
        Random r = new Random();
        List<int> l = new List<int>();
        Console.Write("Please enter amount of randoms ");
        int num = (int)Console.Read();
        for (int i = 0; i < num; i++)
        {
            l.Add(r.Next(0, 30) + 70);
        }

        //calculate avg
        int sum = 0;
        foreach (int i in l)
        {
            sum += i;
        }

        Console.Write("The average of " + num + " random numbers is " + (sum / num));

        //to stop the program from closing automatically
        Console.ReadKey();
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1  
no, part of the question was that the average must be specified before hand not found afterwards. –  hackartist Jun 22 '12 at 1:40
    
Dang, misread the question. Disregard. –  Eric Robinson Jun 22 '12 at 1:41

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