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i have a question in regards to php calculations. i am restructuring a text based game. the game has two "native players" right now. they get inserted periodically by a cron file. the insert is :

//player 1 Login id = 54

mysql_query("INSERT INTO {$game}_ships (ship_name,login_name,shipclass,class_name,class_name_abbr,fighters,max_fighters,max_shields,cargo_bays,mine_rate_metal,mine_rate_fuel,config,size,upgrades,move_turn_cost,point_value,location,login_id
    ) values(   'Three 7','A','8','name','WM','4773','4773','8353','2003','5','45','bs:dt:ot','6','99','19','10',FLOOR(RAND() * 298 + 2),'54')");

player two has the same insert, only the player id is different. lets say 44.

they get inserted in random locations FLOOR(RAND() * 298 + 2) which vary from 2 to 300.

i want to create an AI in the game by selecting ships from these two players that are in the same system, comparing the fighter counts and deleting from the database the weakest.

So far i have:

mysql_query("SELECT * FROM `{$game}_ships` WHERE `login_id` = 54 AND 54 AND `location` = 234");

but im having some problems as to the rest.

Any comments or help would be greatly appreciated.

PS: i selected location = 234" arbitrarily.

share|improve this question
    
How are you measuring "weakness"? –  Mark Eirich Jun 30 '12 at 22:42
    
by comparing fighter count. –  user964535 Jun 30 '12 at 22:51

2 Answers 2

up vote 1 down vote accepted

This query will give you a list of locations where both players 54 and 44 have ships:

SELECT distinct p1s.location
FROM `{$game}_ships` p1s JOIN `{$game}_ships` p2s ON p1s.location=p2s.location
WHERE p1s.login_id=54 AND p2s.login_id=44;

And this query will delete the weakest ship of player 54 or 44 in location 234:

DELETE from `{$game}_ships`
WHERE login_id IN (54, 44) AND location=234
ORDER BY fighters LIMIT 1;
share|improve this answer
    
Your script is a lot more simpler. i like this version as well. Thank you fellas. –  user964535 Jun 30 '12 at 23:22
    
Do us a favor and upvote and/or accept our answers, unless you are still waiting for a better one. Thanks! –  Mark Eirich Jun 30 '12 at 23:24
    
i did upvote both for your effort. this is not an easy task. Although the Delete function doesnt seem to work. –  user964535 Jun 30 '12 at 23:42
    
Are you getting an error? Or is it simply deleting nothing? Or is it deleting the wrong one? –  Mark Eirich Jun 30 '12 at 23:52
    
its not deleting anything. the script runs fine without errors. –  user964535 Jul 1 '12 at 0:07

You can iterate through all locations and check each one, to see if it has at least one ship from each player; if it does, then you destroy the weaker. See:

for ($i = 2; $i < 300; $i++) {
  $p1 = mysql_fetch_array(mysql_query("SELECT count(*) AS 'q' FROM `{$game}_ships` WHERE `login_id` = 54 AND `location` = " . $i));
  $p2 = mysql_fetch_array(mysql_query("SELECT count(*) AS 'q' FROM `{$game}_ships` WHERE `login_id` = 44 AND `location` = " . $i));
  if ($p1['q'] > 0 && $p2['q'] > 0) {
    //Get the first ship; if you want, can select a ship randomly
    $p1s = mysql_fetch_array(mysql_query("SELECT * FROM `{$game}_ships` WHERE `login_id` = 54 AND `location` = ".i));
    $p2s = mysql_fetch_array(mysql_query("SELECT * FROM `{$game}_ships` WHERE `login_id` = 44 AND `location` = ".i));
    //Here you compare $p1s and $p2s, and check which one is stronger. I am using the 'fighters' value, but you can change it if I misunderstood you
    if ($p1s['fighters'] > $ps2['fighters'])
      mysql_query ("DELETE FROM `{$game}_ships` WHERE `ship_name` = " + $ps2['ship_name']);
    else //Not checking for ties here, you can add it too
      mysql_query ("DELETE FROM `{$game}_ships` WHERE `ship_name` = " + $ps1['ship_name']);
  }
}

I am not sure if I completely understood you, but I hope this is at least a part of what you want.

share|improve this answer
    
that is most impressive. although it doesnt seem to recognize .i on $p1 and $p2. –  user964535 Jun 30 '12 at 22:58
    
I'm sorry, my mistake... It should be $i. –  Luan Nico Jun 30 '12 at 23:00

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