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I want to count the number of posts for each day to create a graph. My problem is that since SQL doesn't find results for some days (Count is 0), I'm missing rows I need for the chart (since I do want to show days with no posts).

SELECT DATE(Date) AS Day, COUNT(*) AS COUNT 
FROM `Posts` 
GROUP By `Day`
ORDER BY Date DESC

while($row = mysql_fetch_array($result)) {
    echo $row['Date'] . ": " . $row['Count'];
    }

Since the loop doesn't display days with 0 results, if on wednesday there are no posts I get: monday-17-3: 5, tuesday-18-3: 2, thursday-20-3: 3. Instead I want to fill out the blanks so I get something like: wednesday-19-3: 0.

How can I echo the days with no results in the loop?

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try to execute query in phpmyadmin for example. Does your query result have wednesday? –  s.webbandit Apr 24 '12 at 4:43
    
the loop works fine. It's just that I need to add days with no results to the array. I added some more info to the description. –  lisovaccaro Apr 24 '12 at 4:47

2 Answers 2

up vote 2 down vote accepted

You can work around this by a table of dates, performing an OUTER JOIN, and then performing the grouping. This will provide you with the dates in between (Disclaimer: I'm assuming your dates are in the format YYYY-MM-DD, otherwise you may need to tweak the JOIN statement slightly.).

SELECT A.Date AS Day, COUNT(Posts.Date) AS COUNT 
FROM 
   (
    select curdate() - INTERVAL (a.a + (10 * b.a) + (100 * c.a)) DAY as Date
    from (select 0 as a union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) as a
    cross join (select 0 as a union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) as b
    cross join (select 0 as a union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) as c
) A
LEFT OUTER JOIN `Posts` ON A.Date = `Posts`.`Date`
WHERE A.Date >= DATE_ADD(CURDATE(), INTERVAL -15 DAY)
GROUP BY A.Date

For the date table, I'm using the method from the following post: generate days from date range

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It's almost perfect but on days with no results I get 1 result and on days with 1 result I also get 1 result. I'm trying to figure out how to fix it –  lisovaccaro Apr 24 '12 at 5:14
    
Oops, changed COUNT() to Posts.Date or Posts.. Also the reason that you're getting 1 for everything is likely because of the join and having no matches for A.Date=Post.Date. How is your Date field formatted in your posts table? –  David Z. Apr 24 '12 at 5:25
    
thanks, changing COUNT() to Posts.Date fixed the problem. –  lisovaccaro Apr 24 '12 at 5:47

Use a loop to go through successive dates, using a function like:

$date = strtotime(date("Y-m-d", strtotime($date)) . " +1 day");

For each cycle, apply your query result. Then you'll have all the dates.

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