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I have the following prepared statement which returns the rows found for a particular category:

if ($stmt = $mysqli->prepare("SELECT Work,Amount from work_times where Category=?")) {
    $stmt->bind_param("s", $category);
    $stmt->execute();
    $stmt->store_result();
    $stmt->bind_result($work,$amount);

    while ($stmt->fetch()) {
    echo $work.": &pound;".$amount." each<br>";
    }

What I would like to do is to adapt this to group the rows by the 'Work' column and then the 'Amount' column, returning one row for each group with a SUM and Count for each row/group, so that I can output something like this:

5 consultancy sessions @ £50 each: £250

1st February 2013
8th February 2013
15th February 2013
22nd February 2013
1st March 2013

3 therapy sessions @ £40 each: £120

2nd February 2013
9th February 2013
16th February 2013

2 therapy sessions @ £20 each: £40

3rd February 2013
10th February 2013

Where the text in bold in each row corresponds to: Count of rows in group, Amount (for each session), and Sum of the Amount values for each row in the group. I hope this is clear!

I am not sure how to adapt the statement above to achieve this though.

The above would be the result from the following table:

ID | Work | Amount

1 | Therapy Session | £40 | 2013-02-02
2 | Consultancy Session | £50 | 2013-02-01
3 | Therapy Session | £20 | 2013-02-03
4 | Consultancy Session | £50 | 2013-02-08
5 | Consultancy Session | £50 | 2013-02-15
6 | Therapy Session | £40 | 2013-02-09
7 | Consultancy Session | £50 | 2013-02-22
8 | Therapy Session | £40 | 2013-02-16
9 | Therapy Session | £20 | 2013-02-10
10 | Consultancy Session | £50 | 2013-03-01

Ordering the groups by the count of rows, as in the above output would ideally be what I am looking for.

share|improve this question
    
can you give sample records with desired result? – John Woo Feb 21 '13 at 15:46
    
ORDER by Date without selecting Date? – Kermit Feb 21 '13 at 15:49
    
@JW I have now added sample records – Nick Feb 21 '13 at 15:55
    
@njk I have removed ORDER by Date – Nick Feb 21 '13 at 15:55
up vote 1 down vote accepted

This should work:

SELECT `Work`, COUNT(*) AS sessions, SUM(`Amount`) AS Total
FROM work_times
GROUP BY `Work`, `Amount`

Result

|                WORK | SESSIONS | TOTAL |
------------------------------------------
| Consultancy Session |        5 |   250 |
|     Therapy Session |        2 |    40 |
|     Therapy Session |        3 |   120 |

See the demo

share|improve this answer
    
Thanks, that works well – Nick Feb 21 '13 at 21:55
    
Oh, just one more thing. Is there a way of returning each of the rows for a group? - I would like to echo the dates of each of the sessions in each group below each group. So there would be 5 dates below the first group, 2 below the second and 3 below the third. Because I am grouping the sessions in the query I am not sure how to refer to individual rows. – Nick Feb 21 '13 at 22:09
    
Not exactly sure what you want, but sounds like you can use a CROSS JOIN. – Kermit Feb 21 '13 at 22:11
    
I have changed the question above to include the output I am looking for, i.e. the dates for each session below each group. – Nick Feb 21 '13 at 22:34
    
I would suggest that you create a new question as this one has lost its original meaning. To accomplish what you want, you will need an inner loop to find the times of each "session" – Kermit Feb 21 '13 at 22:56

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