0

$Energy = 100
$Stats = 50
It takes 5 energy to train and increase $Stats
100/5=20
If <input> has 20 and <button> is clicked
20 energy is multiplied by a number (corresponding with their level) lets say .291 for level 1
20*.291=5.82
What I would like to do then is add this number to $stats
50+5.82=55.82
In the end it should be
$Energy = 0
$Stats = 55.82

I have the <form> already set up. I just don't know how to update the two numbers at the same time. They are both on the same table in the same database.

I hope this is clear enough

3
  • Any reason 2 update querys can't be done?
    – Mattigins
    Sep 14, 2014 at 8:49
  • And here you'll learn what transactions are.
    – michael
    Sep 14, 2014 at 8:56
  • I'm not sure I quite understand. Are you looking to do the calculations in the database, or do the calculations in PHP and just update with the result? Sep 14, 2014 at 8:57

1 Answer 1

0

Php

$Energy = 100;
$Stats = 50;

$Points = 5;

$EnergyRatio = $Energy/$Points

$Level = 0.291;

$Stats += $EnergyRatio*$Level;

$Energy = 0;

Mysql

UPDATE Table SET energy=$Energy, stats=$Stats WHERE id=$Something
1
  • This is exactly what i was looking for, thank you. I knew it was an UPDATE, but did not not how to put it together. Thank you. Sep 14, 2014 at 9:06

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