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Started learning PHP and MySQL yesterday and have managed to create two tables, insert rows and then display that data on a web page using various different groupings. Now I need to do a calculation based on data in the two tables and write the result back to one of the tables.

I'm trying to figure out how to perform an equation for a row with a date in table A using a range of values associated with a range of dates in table B. The two dates are in the format YYYY-MM-DD, but the days mostly do not match, so I need match on the month.

Here's the two tables I have:

Table A (user)

+----+----------+------------+-------------+
| id | username | start-date | bench-value |
+----+----------+------------+-------------+
|  1 | tim      | 2010-03-04 |             |
+----+----------+------------+-------------+
|  2 | jim      | 2010-05-30 |             |
+----+----------+------------+-------------+
|  3 | fred     | 2010-06-12 |             |
+----+----------+------------+-------------+
|  4 | sam      | 2010-08-16 |             |
+----+----------+------------+-------------+
|  5 | jane     | 2010-10-21 |             |
+----+----------+------------+-------------+
|  6 | ella     | 2010-10-21 |             |
+----+----------+------------+-------------+
|  7 | bob      | 2011-01-24 |             |
+----+----------+------------+-------------+

Table B (benchmark)

+----+------------+---------+
| id | start-date |  value  |
+----+------------+---------+
|  1 | 2010-01-31 | 1173.19 |
+----+------------+---------+
|  2 | 2010-02-28 | 1199.85 |
+----+------------+---------+
|  3 | 2010-03-31 | 1264.91 |
+----+------------+---------+
|  4 | 2010-04-30 | 1263.43 |
+----+------------+---------+
|  5 | 2010-05-31 | 1211.36 |
+----+------------+---------+
|  6 | 2010-06-30 | 1187.32 |
+----+------------+---------+
|  7 | 2010-07-31 | 1218.30 |
+----+------------+---------+
|  8 | 2010-08-31 | 1207.96 |
+----+------------+---------+
|  9 | 2010-09-30 | 1272.12 |
+----+------------+---------+
| 10 | 2010-10-31 | 1280.27 |
+----+------------+---------+
| 11 | 2010-11-30 | 1275.60 |
+----+------------+---------+
| 12 | 2010-12-31 | 1346.45 |
+----+------------+---------+
| 13 | 2011-01-31 | 1337.07 |
+----+------------+---------+
| 14 | 2011-02-28 | 1338.37 |
+----+------------+---------+
| 15 | 2011-03-31 | 1349.14 |
+----+------------+---------+

And here's an example of what I'm trying to achieve:

tim's current bench value today = the sum of: (first(benchmark.value)/latest(benchmark.value))for every month from the first to the latest month inclusive First date = 2010-03 which is id 3 = 1264.91 Latest date = 2011-03 which is id 15 = 1349.14 (this is always the last row as I am trying to calculate on "today" and nothing in the future)

1/(first/latest)   =1/(1264.91/1349.14) = 1.0666    [this is bench.id=3]
...now iterate...
1/(next/latest)    =1/(1263.43/1349.14) = 1.0678    [bench.id=4]
1/(next/latest)    =1/(1211.36/1349.14) = 1.1137    [bench.id=5]
1/(next/latest)    =1/(1187.32/1349.14) = 1.1363    [bench.id=6]
1/(next/latest)    =1/(1218.30/1349.14) = 1.1074    [bench.id=7]
1/(next/latest)    =1/(1207.96/1349.14) = 1.1169    [bench.id=8]
1/(next/latest)    =1/(1272.12/1349.14) = 1.0605    [bench.id=9]
1/(next/latest)    =1/(1280.27/1349.14) = 1.0538    [bench.id=10]
1/(next/latest)    =1/(1275.60/1349.14) = 1.0577    [bench.id=11]
1/(next/latest)    =1/(1346.45/1349.14) = 1.0020    [bench.id=12]
1/(next/latest)    =1/(1337.07/1349.14) = 1.0090    [bench.id=13]
1/(next/latest)    =1/(1338.37/1349.14) = 1.0080    [bench.id=14]
...and finish up...
1/(current/latest) =1/(1349.14/1349.14) = 1.0000    [bench.id=15]

Total = 13.7997 = 1.0666 + 1.0678 + 1.1137 + 1.1363 + 1.1074 + 1.1169 + 1.0605 + 1.0538 + 1.0577 + 1.002 + 1.009 + 1.008 + 1

So I would then want to write that result back to Table A, giving me:

Table A (user)

+----+----------+------------+-------------+
| id | username | start-date | bench-value |
+----+----------+------------+-------------+
|  1 | tim      | 2010-03-04 |     13.7997 |
+----+----------+------------+-------------+

As this is an iterative process it would be a much shorter calculation for a user like 'bob' who started in 2011-01.

I would also like to be able to do this every 4 months to produce termly stats so that someone like user tim would be calculated like this (the initial search to find the first date would need to take into account over a 4 month period):

1/(first/latest)   = 2010-03 = 1/(1264.91/1349.14) = 1.0666
1/(next/latest)    = 2010-07 = 1/(1218.30/1349.14) = 1.1074
1/(next/latest)    = 2010-11 = 1/(1275.60/1349.14) = 1.0577
1/(current/latest) = 2011-03 = 1/(1349.14/1349.14) = 1.0000

Total = 1.0666 + 1.1074 + 1.0577 + 1 = 4.2317

That major issues I'm having are two fold: 1. how to use the user.start-date value for each user to pick the first(benchmark.value) based ont he year and the month (day is unimportant). 2. how to iteratively calculate the formula up to and including the latest value in the bench table - at the end of april, a new row with id=16 would be added and if this were run then the April value would become the last value used in the calculation.

As I'm learning SQL And PHP right now I'm not sure which parts of this process should be done in SQL and which in PHP.

Any and all help would be greatly appreciated as I'm determined to figure this out.

That major issues I'm having are two fold:

  1. how to use the user.start-date value for each user to pick the first(benchmark.value) based on the year and the month (day is unimportant).
  2. how to iteratively calculate the formula up to and including the latest value in the bench table - at the end of april, a new row with id=16 would be added and if this were run then the April value would become the last value used in the calculation.

As I'm learning SQL And PHP right now I'm not sure which parts of this process should be done in SQL and which in PHP.

Any and all help would be greatly appreciated as I'm determined to figure this out.

Just for reference, I've been reading:

There's almost too much info out there, so some guided advice would be realy appreciated. Thanks again.

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2 Answers

I wouldn't include the column bench-value in table A. This value will be constantly changing, so it would be better to create a View that would calculate the latest User bench-value or create a stored procedure that takes a User as a parameter and then returns the bench-value

There also needs to be a link/key between the two tables, right now there is no way to tell which user is related to which benchmark

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The link between the two tables is the date. These benchmark values are calculated on each user each time this is run (every month). I like the idea of creating a new table that gets updated with the bench-value and an id that matches the user - that's a really good idea, thanks. –  lukescammell Apr 6 '11 at 14:12
    
@lukescammell in your example for Tim you only show 4 records associated with him. Shouldn't it be id 3 to id 15? –  Aducci Apr 6 '11 at 14:15
    
in my example for Tim I wrote "I would also like to be able to do this every 4 months to produce termly stats" so the benchmark value only gets calculated every 4 month, ie. you don't do it monthly, you do it once every 4 months, or 3 times a year if you prefer. Thanks. –  lukescammell Apr 6 '11 at 14:19
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Wow, what a well asked question. Sadly my reply maybe a lot shorter.

What I think you're looking for is:

bob's current bench value today = the sum of: first(benchmark.value)/latest(benchmark.value) First date = 2011-01 which is id 13 = 1337.07 Latest date = 2011-03 which is id 15 = 1349.14

select username, start_date, tmp.value/tmp2.value as new_mark from tablea
 join (select id,value from tableb having id=min(id) group by id) as tmp
 on tablea.id=tmp.id 
join  (select id,value from tableb having id=max(id) group by id) as tmp2 
on tablea.id=tmp2.id 

That seems ugly but should work.

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Wow, what a complex answer! well, for a 30 hour SQL newbie :D I shall now try and figure that out and apply it directly... thanks! –  lukescammell Apr 6 '11 at 14:42
    
In short it creates tmp which is a list of values for the first date by person, tmp2 which is the values for the last date, and then works the calculation and spits out. –  BugFinder Apr 6 '11 at 14:44
    
Thanks for the explanation, does that include intermediary dates as well? –  lukescammell Apr 6 '11 at 14:46
    
No, thats not what you asked for. your question was first and latest. If you just wanted an average for a time period, it would actually be a lot simpler. –  BugFinder Apr 6 '11 at 14:50
    
Oh and as someone else pointed out, you have 2 ID fields, but it also doesnt show that ID in the "tableb" doesnt repeat, ergo its just a unique number so how do you tell which is whos data? –  BugFinder Apr 6 '11 at 14:51
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