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function find_highest_prime_factor($n)
{
    for ($i = 2; $i <= $n; $i++) 
    {   
        if (bcmod($n, $i) == 0) //its a factor
        {
            return max($i, find_highest_prime_factor(bcdiv($n,$i)));
        }
    }
    if ($i == $n)
    {
        return $n; //it's prime if it made it through that loop
    }
}

UPDATE: This is the correct answer, my bad!

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Can you give us an example input? –  webbiedave Aug 18 '11 at 23:58
1  
if ($i == $n) is redundant, its always true. –  Bob Vale Aug 19 '11 at 0:33

3 Answers 3

up vote 2 down vote accepted

Get rid of the final if statement otherwise if $i!=sqrt($n) because sqrt($n) is not an integer you have an undefined return value

function find_highest_prime_factor($n){
  for ($i = 2; $i <= sqrt($n); $i++) //sqrt(n) is the upperbound
  {
       if (bcmod($n, $i) == 0) //its a factor
       {
          return max($i, find_highest_prime_factor(bcdiv($n,$i)));
       }
   }
   return $n; //it's prime if it made it through that loop
 }
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Still not getting the highest prime though.. Doesn't seem to make a difference in the answer with the one I was doing –  babonk Aug 19 '11 at 0:16
    
This is even better: if it makes it through that first loop, it has to be prime, no need to test again.... –  Jonah Aug 19 '11 at 0:17
    
Which answer are you trying because this version fixed the error for 14 –  Bob Vale Aug 19 '11 at 0:18
    
babonk what is the example input that's not working? –  Jonah Aug 19 '11 at 0:19
    
Try 600851475143, it still yields only 6857 which is incorrect (not the highest) –  babonk Aug 19 '11 at 0:19

Line 11 should be:

if ($i == ceil(sqrt($n)))
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You sqrt optimization was fine, my initial reply was wrong. Go back to your original code and make the change above, all will be good. Link to OP's original code, with my change: codepad.viper-7.com/1aODAo –  Jonah Aug 19 '11 at 0:11
    
This change doesn't seem to work: codepad.viper-7.com/C84m7z –  babonk Aug 19 '11 at 0:12

Starting at 2 and stepping by 1 is inefficient. At least check 2 separately and then loop from 3 stepping 2 each time. Using a 2-4 wheel would be even faster.

When you recurse your code starts again at trial factor 2. It would be better to pass a second parameter holding the factor you have reached so far. Then the recursion wouldn't have go back over old factors that have already been tested.

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