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I'm trying to get a pick from my DB that would last for a day (daily pick). I use the following code:

$query = 'SELECT * FROM table ORDER BY rand() LIMIT 1

But as you can see it only gives me a random pick from the table, and every time I refresh the page it gets me a new random pick. How can I make the pick to last for a whole day?

Thanks in advance <3


I'm trying this:

$query = "SELECT * FROM table ORDER BY rand(" . date("Ymd") . ") LIMIT 1";

But I get the following error: mysql_fetch_assoc(): supplied argument is not a valid MySQL result resource. This is the part that gets broken:

$results = mysql_query($query); 

while($line = mysql_fetch_assoc($results)) 

So... it should look like this, right? (I mean, choosing the daily random pick?)

$dailyPick = 'SELECT * FROM table ORDER BY rand() LIMIT 1'; 

$cacheKey = 'dailyPick'. date('dmY'); 
if($cache->has($cacheKey)) { 
    $dailyPick = $cache->get($cacheKey); 
} else { 
    // hit database 
    $dailyPick = $cache->save($cacheKey); 
} 

I'm trying this now:

$dailyPick = 'SELECT * FROM table ORDER BY rand() LIMIT 1';  

$cacheKey = 'dailyPick'. date('dmY');  
if($cache->has($cacheKey)) {  
    $dailyPick = $cache->get($cacheKey);  
} else {  
    // hit database  
    $dailyPick = $cache->save($cacheKey);  
}  

However, it gets me a mistake that I'm using the 'has' function on a non-object.

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4 Answers 4

If you set the SEED for the rand to an integer value that changes daily, that would solve your problem

$query = "SELECT * FROM table ORDER BY rand(" . date("Ymd") . ") LIMIT 1";

Would do the trick.

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+1 Dude, I had no idea RAND() accepted arguments, this is a brilliant idea! –  Alix Axel Jan 27 '10 at 12:44
1  
@Izumi: Try $query = "SELECT * FROM table ORDER BY rand(" . date('Ymd') . ") LIMIT 1;"; –  Alix Axel Jan 27 '10 at 12:52
3  
Keep in mind that the ORDER BY RAND() is very expensive. –  Jacco Jan 27 '10 at 12:56
    
What do you mean by 'expensive' ? –  Izumi Jan 27 '10 at 13:01
1  
@Gnutt: BTW, welcome to StackOverflow! Keep it up. =) –  Alix Axel Jan 27 '10 at 13:08

A sane means of doing this would be to automatically generate the pick of the day content via a cron job that was setup to run once a day.

As such, the cron job would execute the SQL you provided and store the appropriate content in a flat file/database table, etc. (or perhaps even just store the choosen id in another table for future lookup purposes).

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This is the best approach. The random selection is done only once. after this, showing your daily pick is a fast and simple select query. –  Jacco Jan 27 '10 at 13:58

You can try something like this:

$total = 'SELECT COUNT(*) FROM table;';
$query = 'SELECT * FROM table ORDER BY id ASC LIMIT 1 OFFSET ' . (date('Ymd') % $total) . ';';
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Gnutt's solution is much more elegant! –  Alix Axel Jan 27 '10 at 12:45
    
But it's not working... or I'm doing something wrong... –  Izumi Jan 28 '10 at 15:03

I think you'll need to update the random picked record with "today" field = 1..

Something like this:

// ------------
// Run this 3 commands once a day

// Reset all records
mysql_query("UPDATE `table` SET `today` = 0");

// Pick one
$sql = mysql_query("SELECT `id` FROM `table` ORDER BY RAND() LIMIT 1");
$id = mysql_result($sql, 0, 'id');

// Update the record
mysql_query("UPDATE `table` SET `today` = 1 WHERE `id` = {$id}");

// ------------

// Now you can find again your "random found record":
$query = mysql_query("SELECT * FROM `table` WHERE `today` = 1");
share|improve this answer
    
Too complicated... eh? –  TiuTalk Jan 28 '10 at 13:17
    
I just don't understand what do you mean by 'running them once a day'... and won't this delete my table? or it creates a new table called 'today'? I'm sorry... I just don't understand... sighs and looks down –  Izumi Jan 28 '10 at 14:35

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