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I have a sql table : date (Y-m-d) / time (00:00:00) / power (INT)

When I select a date from an inline datepicker, I am trying to post 3 HighCharts graph (one-24 hours, two-31 days of month, three-12 months of year) and I need to get the values out of the table for the chart to be created.

For the day, I need the 24 values for each hour '100,200,300,200,300 etc..'

Here is the PHP for the "day" but it is not working...

<?php
$choice = (isset($_POST['choice'])) 
          ? date("Y-m-d",strtotime($_POST['choice'])) 
          : date("Y-m-d"); 
$con = mysql_connect("localhost","root","xxxxxx");  
if (!$con)  {  
  die('Could not connect: ' . mysql_error());  
}  
mysql_select_db("inverters", $con);  
$sql = "SELECT HOUR(time), COUNT(power) 
FROM feed 
WHERE time = DATE_SUB('".$choice."', INTERVAL 24 HOUR) 
GROUP BY HOUR(time) 
ORDER BY HOUR(time)"; 
$res = mysql_query($sql) or die('sql='.$sql."\n".mysql_error()); 
$row = mysql_fetch_assoc($res); 
echo $row['choice'].'<br />'; 
?>

This has been confirmed by another individual that the code does not work, would anyone have a helpful solution to fix the error ?

Alan

share|improve this question
    
Explain in details what does not work. – zerkms Dec 3 '10 at 7:42
    
I do not get the values I am asking for... The script above is intended to get values of 1 day (1 value for each of the 24 hours in a single day) 23, 23, 21, 12, 15, etc... I need these values for a "day" graph I am planning on my website. I am also planing a graph for a month (values by day, and a graph for the year (values by month). The code does not produce the values, and I am asking for assistance to correct a mistake that must be in the wording. – hkalan2007 Dec 3 '10 at 7:50

At the moment, your SELECT gives you only the results which happened exactly 24 hours before the current moment. What you need is a range. Example for 1 hour (indentation added for clarity):

WHERE `time` BETWEEN 
   DATE_SUB('".$choice."', INTERVAL 24 HOUR) 
   AND DATE_SUB('".$choice."', INTERVAL 23 HOUR) 

This way, you'll get results with time in the 1-hour range of "now - 24 hours" and "now - 23 hours". The BETWEEN operator is equivalent to this:

WHERE `time` >= DATE_SUB('".$choice."', INTERVAL 24 HOUR)
   AND `time` <= DATE_SUB('".$choice."', INTERVAL 23 HOUR) 
share|improve this answer
    
Hello, Thank you very much ! I can understand that... I would use the same method for selecting the days of a month, and months of the year, but I would use "date" and "month" in the place of "time" – hkalan2007 Dec 3 '10 at 9:56
    
As for taesing all my scripts with this, is it best to go directly to it with the url method - www.site.com/folder/dayPower.php?choice=2010-12-03 – hkalan2007 Dec 3 '10 at 10:04
    
From your question, I assumed time is the name of a column storing the relevant date and time. And yes, this works for any interval. – Piskvor Dec 3 '10 at 10:05
    
Time only stores the time... the column Date stores the date. and then the last column is the Power with the Power This is the way the Solar Panel inverter device sends out the data from the data port, so I must follow that format. – hkalan2007 Dec 3 '10 at 10:26
    
I am a bit confused about the INTERVAL for a month, some have 28, 29, 30 or 31 days... – hkalan2007 Dec 3 '10 at 10:27

You need a loop to walk over the rows:

$sql = "
SELECT HOUR(time) as h, power
FROM feed 
WHERE date = '".$choice."' 
ORDER BY HOUR(time)"; 

$res = mysql_query($sql) or die('sql='.$sql."\n".mysql_error()); 

while($row = mysql_fetch_assoc($res)) {
    echo $row['h'].":".$row['power']'<br />'; 
}

This will give you the power per day for a given month:

$sql = "
SELECT DAY(date) as d, SUM(power) as powerday
FROM feed 
WHERE MONTH(date) = '".$month."' 
GROUP BY DAY(date) 
ORDER BY DAY(date)"; 

$res = mysql_query($sql) or die('sql='.$sql."\n".mysql_error()); 

while($row = mysql_fetch_assoc($res)) {
    echo $row['d'].":".$row['powerday']'<br />'; 
}
share|improve this answer
    
That is beautiful ! Thank You ! – hkalan2007 Dec 3 '10 at 15:14
1  
You're welcome. So you could accept the answer. – Toto Dec 3 '10 at 15:16
    
Yes I can... Now I have to do the same for MONTH and YEAR – hkalan2007 Dec 3 '10 at 15:27
    
Just change hour(time) by month(date) or year(date) and also modify the where and order by clauses accordingly. – Toto Dec 3 '10 at 15:33
    
Seem to be having problems with the month and year... – hkalan2007 Dec 3 '10 at 15:58
up vote 0 down vote accepted

Thank you everyone for all your help !

The problem was in the first string, I only had to change the date format in addition to your wonderful examles !

$choice = (isset($_POST['choice'])) ? date("m",strtotime($_POST['choice'])) : date("m"); 

Thank You Very Much !

Alan

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