Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have 2 different tables, heres the structure of the tables that are used in the query:

leads:

- id
- date_added
- website

assignments:

- id
- id_lead
- date_assigned
- website

What I want to do is count how many rows are in the leads and the assignments table for each website based on a date range. For example, I want a count for today which will give me the total number of rows for today per website.

The date range I am looking for is this:

Today
Yesterday
2 Days Ago
3 Days Ago
4 Days Ago
5 Days Ago
6 Days Ago
7 Days Ago
This Week
This Month
Last Month
This Year

So I want to show a sum or a count of all rows per website.

Here is the query I have already, but it does not count properly, and there is no join in it:

select `website`, 
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now(), '%Y-%m-%d') then 1 else 0 end) AS c_day,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 1 day, '%Y-%m-%d') then 1 else 0 end) AS c_yesterday,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 2 day, '%Y-%m-%d') then 1 else 0 end) AS c_2_days,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 3 day, '%Y-%m-%d') then 1 else 0 end) AS c_3_days,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 4 day, '%Y-%m-%d') then 1 else 0 end) AS c_4_days,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 5 day, '%Y-%m-%d') then 1 else 0 end) AS c_5_days,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 6 day, '%Y-%m-%d') then 1 else 0 end) AS c_6_days,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m-%d') = date_format(now() - interval 7 day, '%Y-%m-%d') then 1 else 0 end) AS c_7_days,
sum(case when YEARWEEK(FROM_UNIXTIME(`date_assigned`)) = YEARWEEK(CURDATE()) then 1 else 0 end) AS c_week, 
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m')= date_format(now(), '%Y-%m') then 1 else 0 end) AS c_month,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y-%m')= date_format(now() - interval 1 month, '%Y-%m') then 1 else 0 end) AS c_last_month,
sum(case when date_format(from_unixtime(`date_assigned`), '%Y')= date_format(now(), '%Y') then 1 else 0 end) AS c_year
from `assignments`
where `id_dealership`!='65' and `id_dealership`!='77' and `id_dealership`!='89'
group by `website`
order by `website` asc

Heres the PHP for the query which spits it out into the table format I want:

echo '<table cellpadding="10" cellspacing="1" border="0" width="100%">';
echo '<tr>';
echo '<th class="l">Website</th>';
echo '<th>Today</th>';
echo '<th>Yesterday</th>';
echo '<th>2 Days Ago</th>';
echo '<th>3 Days Ago</th>';
echo '<th>4 Days Ago</th>';
echo '<th>5 Days Ago</th>';
echo '<th>6 Days Ago</th>';
echo '<th>7 Days Ago</th>';
echo '<th>This Week</th>';
echo '<th>This Month</th>';
echo '<th>Last Month</th>';
echo '<th>This Year</th>';
echo '</tr>';

$count = 1;
$c_day_total = 0;
$c_yesterday_total = 0;
$c_2_days_total = 0;
$c_3_days_total = 0;
$c_4_days_total = 0;
$c_5_days_total = 0;
$c_6_days_total = 0;
$c_7_days_total = 0;
$c_week_total = 0;
$c_month_total = 0;
$c_last_month_total = 0;
$c_year_total = 0;

while ($row = mysql_fetch_assoc($sql))
{
    foreach ($row as $k => $v)
        $$k = htmlspecialchars($v, ENT_QUOTES);

    if (!empty($website))
    {
        $website = '<a href="website.php?url='.$website.'">'.$website.'</a>';
        //$website = '<a href="http://'.$website.'">'.$website.'</a>';

        echo '<tr class="'.(($count % 2) ? 'row1' : 'row2' ).'">';
        echo '<td>'.$website.'</td>';
        echo '<td>'.$c_day.'</td>';
        echo '<td>'.$c_yesterday.'</td>';
        echo '<td>'.$c_2_days.'</td>';
        echo '<td>'.$c_3_days.'</td>';
        echo '<td>'.$c_4_days.'</td>';
        echo '<td>'.$c_5_days.'</td>';
        echo '<td>'.$c_6_days.'</td>';
        echo '<td>'.$c_7_days.'</td>';
        echo '<td>'.$c_week.'</td>';
        echo '<td>'.$c_month.'</td>';
        echo '<td>'.$c_last_month.'</td>';
        echo '<td>'.$c_year.'</td>';
        echo '</tr>';

        $c_day_total = $c_day_total + $c_day;
        $c_yesterday_total = $c_yesterday_total + $c_yesterday;
        $c_2_days_total = $c_2_days_total + $c_2_days;
        $c_3_days_total = $c_3_days_total + $c_3_days;
        $c_4_days_total = $c_4_days_total + $c_4_days;
        $c_5_days_total = $c_5_days_total + $c_5_days;
        $c_6_days_total = $c_6_days_total + $c_6_days;
        $c_7_days_total = $c_7_days_total + $c_7_days;
        $c_week_total = $c_week_total + $c_week;
        $c_month_total = $c_month_total + $c_month;
        $c_last_month_total = $c_last_month_total + $c_last_month;
        $c_year_total = $c_year_total + $c_year;
        $count++;
    }
}

echo '<tr class="'.(($count % 2) ? 'row1' : 'row2' ).'">';
echo '<td>Totals</td>';
echo '<td>'.$c_day_total.'</td>';
echo '<td>'.$c_yesterday_total.'</td>';
echo '<td>'.$c_2_days_total.'</td>';
echo '<td>'.$c_3_days_total.'</td>';
echo '<td>'.$c_4_days_total.'</td>';
echo '<td>'.$c_5_days_total.'</td>';
echo '<td>'.$c_6_days_total.'</td>';
echo '<td>'.$c_7_days_total.'</td>';
echo '<td>'.$c_week_total.'</td>';
echo '<td>'.$c_month_total.'</td>';
echo '<td>'.$c_last_month_total.'</td>';
echo '<td>'.$c_year_total.'</td>';
echo '</tr>';

echo '</table>';

Any help would be greatly appreciated.

share|improve this question
1  
What is datatype of date_assigned column. And also add full create script of both table –  Saharsh Shah Nov 28 '12 at 6:24

1 Answer 1

I can give you a tip about this part of your SQL query:

where `id_dealership`!='65' and `id_dealership`!='77' and `id_dealership`!='89'

You can use this code instead:

where `id_dealership` NOT IN (65,77,89)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.