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I'm about to generate some statistics based on the values of a MySQL table. I would like to generate some numbers foreach month of the year and foreach day of the month.

I could of course do all this manually but that doesn't seem like a good approach :) So anybody who has some ideas on how i generate these statistics.

OBS. I would like to get all month of the year even if there isn't any MySQL record for a given month.

BONUS: I got a little bonus question. The table which provides the data for the stats will get about 1000 records per week. I my head that seems like a bad approach over time. Anyone who has a suggestion for a better approach is welcomed. I've thought about creating CSV files instead.

In advance thanks a lot. It's appreciated!

EDIT: As asked for

+---------------+------------+------+-----+-------------------+----------------+
| Field         | Type       | Null | Key | Default           | Extra          |
+---------------+------------+------+-----+-------------------+----------------+
| id            | int(11)    | NO   | PRI | NULL              | auto_increment |
| member_id     | int(4)     | NO   |     | 0                 |                |
| status        | tinyint(1) | NO   |     | 0                 |                |
| timestamp     | timestamp  | NO   |     | CURRENT_TIMESTAMP |                |
+---------------+------------+------+-----+-------------------+----------------+
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Can you provide a little more detail about your problem such asa the table definitions? –  Jaydee Sep 23 '10 at 8:07

1 Answer 1

up vote 1 down vote accepted

Something like this?

select count(status) as total, year(timestamp) as yr, month(timestamp) as mnth  from mytable  group by yr,mnth

As to your bonus question, 1000 records a week is not that much. How would switching to a CSV file help? You would still be getting 1000 records per week.

edit

select count(status) as total, year(timestamp) as yr, month(timestamp) as mnth, day(timestamp) as dy  from mytable  group by yr,mnth,dy

Edit 2

select count(status) as total, year(timestamp) as yr, month(timestamp) as mnth, day(timestamp) as dy, to_days(timestamp) daynum  from mytable  group by yr,mnth,dy

I've added a to_days field that would help you spot missing days as you scan through the results, daynum should be sequential.

Edit 3

OK I've had a go at it but it is untested and bear in mind PHP is my 4th or 5th language. I'm pretty sure some of the gurus round here could do it a lot more elegantly.

<?php

$con = mysql_connect("myhost","myusername","mypassword");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }

mysql_select_db("mydatabase", $con);

$result = mysql_query("select count(status) as total, year(timestamp) as yr, month(timestamp) as mnth, day(timestamp) as dy, to_days(timestamp) as daynum  from mytable  group by yr,mnth,dy");

$row = mysql_fetch_array($result);
$counter=$row['daynum']-$row['day']+1; // set up the daynum counter an initiaise to the first day of the month "-$row['day']+1"

//print out any blank rows at the beginning of the month
for ($i = $counter; $i <=$row['daynum'] ; $i++) {
    echo "A blank row";
}

// start to loop through the result set
$finished=false;
do {

if($counter=$row['daynum']){  // if the daynumber of the row matches the counter then  print the row and get the next row 

    echo "an output row from db".$row('dy')."-".$row('mnth')."-".$row('yr')."-----".$row('total');
    $lastday=$row['dy'];
    $lastmonth=$row['mnth'];
    $lastyear=$row['yr'];   

    $row = mysql_fetch_array($result);
    if (!$row) finished=true;

} else { // if the counter if not equal it must be less than $row['daynum'] so print blank rows and increment counter until it matches the current row.

    $mytime = $counter*24*60*60;   //convert days to seconds, because PHP doesn't seem to have a from_days function
    $mydate = strftime("%Y-%m-%d", $mytime); //convert seconds to date
    echo $mydate."a blank row"

    $counter=$counter+1;
    }

} while ( ! finished);


// print out any blank days at the end of the month
$daysinmonth = cal_days_in_month(CAL_GREGORIAN, $lastmnth, $lastyear);

for ($i = ($lastday+1); $i <=$daysinmonth; $i++) {
    echo $i."-".$lastmonth."-".$lastyear." ---  A blank row";
}



mysql_close($con);

?>
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This doesn't address the need for missing months, nor days of the month –  Cez Sep 23 '10 at 9:10
    
As Cez says this doesn't really fix my problem. The solution you suggest is in fact very much like the one I'm using at the moment. –  nickifrandsen Sep 23 '10 at 9:28
    
The bonus question: I just had a brief idea that if I group records by month for example in a CSV file. Overtime I could just call the CSV file I need instead of the whole table? I might be a bad idea. Like I said it's just a thought I'm having. –  nickifrandsen Sep 23 '10 at 9:32
    
With the missing day, a quick cludge is to create a system member_id and add a record each day for that member_id, then subtract 1 from the total returned by the query. You would need to create a record for each day in the past of course, but from then on it is just one additional record per day. To be perfectly honest I'd probably look for the missing day programatically when scanning the query results. –  Jaydee Sep 23 '10 at 9:37
    
I can see that working, though I don't see it as a fairly great approach. It should be possible to let PHP handle the missing dates so I avoid "fake" records in the table. –  nickifrandsen Sep 23 '10 at 9:42

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