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I need help to solve this formula ((n * 2) + 10) / (n + 1) = 3, preferably in PHP.

I'm able to solve this equation on paper quite easily however when I try to implement this in PHP, I'm not sure where to start. I've done several google queries and searches on here and nothing seems to help. I'm missing the proper approach to deal with this problem.

Any tips and pointers would be great, and if you provide the exact code, please explain how you got to this result.

Thanks!

Update #1

The numbers, 2, 10 and 3 should be variables that can be changed.

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Do you need to implement only this one, or all equation of the same kind ? –  pinouchon Aug 31 '11 at 8:00
    
Are you allowed to reformulate the equation? –  Deve Aug 31 '11 at 8:00
2  
There are specialized languages for formula transformation/equation solving. PHP does not lend itself to it, as scientific uses are not its primary domain. You might find something in Python or Perl however (and then invoke those via exec). –  mario Aug 31 '11 at 8:02
    
@pinouchon only this one, however the numbers will be dynamic –  xidew Aug 31 '11 at 8:03
    
@Deve yes I can reformulate the equation –  xidew Aug 31 '11 at 8:03
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5 Answers

up vote 2 down vote accepted
<?php

// ((x * n) + y)/(n + 1) = z)
// => n=(y-z)/(z-x)
function eq ($x=0,$y=0,$z=0)
{
    if ($z!=$x)
    {
        $n=($y-$z)/($z-$x);
    } else
    {
        $n='NAN';
    }
    return $n;
}

?>

(My algebra is old and flakey but I think this is right)

share|improve this answer
    
Your function works! Would you mind explaning what was your thought process when you were writing/thinking about it? –  xidew Aug 31 '11 at 8:20
    
Your function is mathematically incorect. You're missing the case $y == $x && $z == $x. In such a case, the esemble R - { 1 } is solution of the equation. –  pinouchon Aug 31 '11 at 8:49
    
Also, if i call eq(0, 0, 1);, your function yields -1, yet ((x * n) + y)/(n + 1) = z) gives ((0 * -1) + 0)/(-1 + 1) = 1) which is impossible –  pinouchon Aug 31 '11 at 8:58
    
My get out clause is that my algebra is old and flakey and not something I use everyday. The main thing was to check for division by 0 (hence the check for Z<>X). My thinking behind the solution was to get the equation into the form of x*n=c (even if x is a fraction). Once it's in that form, the solution was a simple re-write of the equation into PHP –  DaveyBoy Aug 31 '11 at 9:13
    
@pinouchon - obviously, more checks can be added for special cases. However, I'm a programmer and not a mathematician so my caveat is still valid - my algebra is old and flakey but I think this is right –  DaveyBoy Aug 31 '11 at 9:21
show 5 more comments

You're wanting to solve an equation, not implement it. There's a difference. Implementing the equation would be as simple as typing it in. You'd probably want to make it an equality operator (==) though.

Equation solvers are complicated, complicated things. I wouldn't try to make one when there are such good ones ( http://en.wikipedia.org/wiki/Comparison_of_computer_algebra_systems ) lying around.

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"You're wanting to solve an equation, not implement it." Oh, how I wish I could up-vote this more than once... –  Jack Maney Aug 31 '11 at 8:04
    
Thanks for pointing to the correct term. I will edit the question :) –  xidew Aug 31 '11 at 8:04
    
phpCAS does not mean what you think it means. –  mario Aug 31 '11 at 8:38
    
@mario good point. Sorry about that. –  bdares Aug 31 '11 at 8:58
add comment
<?php
function solveEquation($eq) {
  if ($eq == '((n * 2) + 10) / (n + 1) = 3')
    return 7;
  else {
    return 'unknown equation';
}

Now that 2, 10 and 3 can be dynamic, let me re-implement that: $n is n, $a is 2, $b is 10 and $c is 3:

<?php
function solveEquation($a, $b, $c) {
  if ($b == $a && $c == $a) {
    return 'answers are all numbers exept -1';
  }
  else if ($a - $c != 0 && $a - $b != 0) {
    return ($c - $b) / ($a - $c);
  }
  else {
    return 'no solution';
  }
}

according to wolfram alpha

share|improve this answer
    
I'd +1 for funny but that would be misleading to future searchers... –  bdares Aug 31 '11 at 8:05
4  
xkcd.com/221 –  Jack Maney Aug 31 '11 at 8:05
    
.... seriously? –  Vincent Savard Aug 31 '11 at 8:05
    
Haha! Good one :) –  xidew Aug 31 '11 at 8:05
    
Hahaha! nice solution! –  xdazz Aug 31 '11 at 8:07
show 1 more comment

how about using brute-force??!?! might be slow and not exact:

$step = 0.00001;
$err = 0.1; //error margin
$start = 0;
$response = 3;

for($i = $start;$i <= 3;$i += $step){
   if((($i * 2) + 10) / ($i + 1) >= $response - $err){
       echo "the answer is $i";
   }
}

You could improove this answer.. on every loop you could calculate the distance between the current answer and the desired answer, and adjust the parameters acording to that..

This reminds me my old A.I. class =)

Good Luck

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3  
That's a solution, but I'm looking for the proper way to solve it. Thanks for your answer though! –  xidew Aug 31 '11 at 8:22
add comment

You can use http://pear.php.net/package/PHP_ParserGenerator/redirected to parse the math expressions into a syntax tree, then do the maths.

((n * 2) + 10) / (n + 1) = 3 would look like:

enter image description here

The idea is to bring on the right subtree (here ...) all the numbers, and on the left all the unknownws, just as you'd do on paper.

In the end you'll have:

  +
 / \
n  -7

which is 0. And there you have your solution, for any math expression (with one unknown variable).

I'll leave the algorithm to you.

share|improve this answer
    
Very interesting, I will have a look :) –  xidew Aug 31 '11 at 8:23
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