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Time to test your math skills...

I'm using php to find the average of $num1, $num2, $num3 and so on; upto an unset amount of numbers. It then saves that average to a database.

Next time the php script is called a new number is added to the mix.

Is there a math (most likely algebra) equation that I can use to find the average of the original numbers with the new number included. Or do I need to save the original numbers in the database so I can query them and re-calculate the entire bunch of numbers together?

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10 Answers 10

up vote 6 down vote accepted

If what you mean by average is mean and you don't want to store all numbers then store the amount of numbers:

$last_average = 100;
$total_numbers = 10;
$new_number = 54;

$new_average = (($last_average * $total_numbers) + $new_number) / ($total_number + 1);
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$total_numbers may not be available. –  Alix Axel Jan 10 '10 at 2:20
3  
$total_numbers is a required implementation detail for the specified problem. Either implement it or the problem is unsolvable. –  slebetman Jan 10 '10 at 2:46
6  
This will lead to an ever-increasing loss of accuracy. Use $last_total instead of $last_average. See Mike's answer. –  GZipp Jan 10 '10 at 2:52
    
Ah, true, didn't think about that. It's best to keep the $last_sum as well then. –  slebetman Jan 10 '10 at 3:52
array_sum($values) / count($values)
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Why didn't I think of this haha –  Adam F Feb 7 '12 at 17:23
Average = Sum / Number of values

Just store all 3 values, there's no need for anything complicated.

If you store the Average and Sum then calculate Number of values you'll lose a little accuracy due to truncation of Average.

If you store the Average and Number of values then calculate Sum you'll lose even more accuracy. You have more margin for error in calculating a correct value for Number of values than Sum thanks to it being an integer.

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You don't need to store the average, you can compute it without any loss of precision. –  starblue Jan 10 '10 at 16:48
<?php
function avrg()
{
 $count = func_num_args();
 $args = func_get_args();
 return (array_sum($args) / $count);
}
?>

http://php.net/manual/en/function.array-sum.php#101727

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If you know the amount of numbers you can calculate the old sum, add the new one and divide by the old amount plus one.

$oldsum = $average * $amount;
$newaverage = ($oldsum + $newnum) / ($amount + 1);
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@slebetman - But that's the same as the answer you've accepted. –  GZipp Jan 10 '10 at 3:18
    
Ah.. sorry, I misread the code. I retract my previous comment. –  slebetman Jan 10 '10 at 3:34

Thought that I should share my function

function avg($sum=0,$count=0){
    return ($count)? $sum / $count: NAN;
}
var_dump( avg(array_sum($values),count($values)) );

Will return the average and also take into account 0, for example dividing by zero always returns NaN (Not a number)

1/0 = NaN
0/0 = NaN

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Typically what you might do is save two pieces of information:

  • the sum of all the numbers
  • the count of numbers

Whenever you want to get the average, divide the sum by the count (taking care for the case of count == 0, of course). Whenever you want to include a new number, add the new number to the sum and increment the count by 1.

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This is called a 'running average' or 'moving average'.

If the database stores the average and the number of values averaged, it will be possible to calculate a new running average for each new value.

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function avgvals($avg_vals,$avg_delimiter=',') { 
 if ( (is_string($avg_vals) && strlen($avg_vals) > 2) && (is_string($avg_delimiter) && !empty($avg_delimiter)) ) { 
    $average_vals = explode($avg_delimiter, $avg_vals); 
        $return_vals = ( array_sum($average_vals) / count($average_vals) ); 
 } elseif ( (is_string($avg_vals) && strlen($avg_vals) <= 2) && (is_string($avg_delimiter) && !empty($avg_delimiter)) ) { 
        $return_vals = $avg_vals; 
 } else { 
        $return_vals = FALSE; 
 } 
   return $return_vals; 
}
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You need to save all the original numbers in the database.

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