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I have an array of numbers which are prices of a stock as given below:

double[] xyz=new double{ 10.1, 20.34, 35.46, 78.34, 98.67, 43.73 ........ }

Now, I want to find the average of stock based on time:

1st min = Average(10.1) = 10.1 2nd min = Average(10.1 + 20.34) = 15.22 3rd min = Average(10.1 + 20.34 + 35.46) = 21.96

One way of doing this is to loop minutes times(1,2,3,4...) and find the average. But, as my list is very huge, this can become a performance issue.

Is there any other way of finding average each time?

Thanks a lot.

Mahesh

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4 Answers 4

up vote 6 down vote accepted

Yes, maintain a running sum:

sum = 0;
num = 0;

foreach (element i)
{
    sum += i;
    num ++;
    average = sum / num;
}

Choose a big enough type for sum such that it won't ever overflow.

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You could also create an array of averages and populate that as you iterate over each element. –  Lazarus Jan 20 '11 at 12:47
    
I have to show only the latest average in the UI. After looking at various options below, I used Oli's solution as it is best in terms of memory and performance. –  Mahesh Jan 20 '11 at 13:01
    
@Mahesh if you have to show only last average then you just have to calculate sum and then divide once. –  Andrey Jan 20 '11 at 13:03
    
@Andrey I have to show only one average at a time. So, no need to hold all the averages in the memory. –  Mahesh Jan 20 '11 at 13:19

You can calculate them in O(n) (in single pass) by using following recursive formula:

An means n-th minute average, Vn - n-th minute price.

An = (An-1 * (n - 1) + Vn) / n

So you loop and keep previous An.

PS: If i understood you correctly you want to find average of prices for every minute, not single average.

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Mathematically, this works fine. In practice, this will have cumulative errors, which will cause successive results to drift. –  Oliver Charlesworth Jan 20 '11 at 12:48
    
@Oli Charlesworth true. but it doesn't require big variable for running sum. –  Andrey Jan 20 '11 at 12:55
    
Also true! But An-1 * (n-1) will be just as big as sum... –  Oliver Charlesworth Jan 20 '11 at 12:56
    
@Oli eghm. you are right :) –  Andrey Jan 20 '11 at 13:02

You need some form of persistence.

Perhaps an object ? AverageObj that contains a counter and a sum field.

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double[] xyz=new double{ 10.1, 20.34, 35.46, 78.34, 98.67, 43.73 ........ }

double[] averages = new double[xyz.Length];

averages[0] = xyz[0];
for(int i = 1; i < xyz.Length; i++)
{
  averages[i] = (((averages[i-1] * i) + xyz[i])/i+1);
}
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