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I'm trying to join four separate queries on "PROD_CD" to return the correct output into one query to prevent having to merge the queries together in another language after. With the current one (and I've tried many variations, all with various problems), I'm receiving a lot of duplicate results and different numbers of duplicates for each.

Here's the current query I've been trying (all the date functions are for determining dataset over a span of time - the database is very old and uses Clarion time):

$query_ats = "SELECT 
            plog.prod_cd as prod_id,
            ord_log.ORDER_QTY as total_so,
            ediordlg.ORDER_QTY as total_edi_so,
            inv_data.IN_STOCK as in_stock
        FROM plog 
        INNER JOIN ord_log 
            ON plog.prod_cd = ord_log.prod_cd 
        INNER JOIN ediordlg 
            ON plog.prod_cd = ediordlg.prod_cd AND ord_log.prod_cd = ediordlg.prod_cd
        INNER JOIN inv_data 
            ON plog.prod_cd = inv_data.prod_cd AND ord_log.prod_cd = inv_data.prod_cd AND ediordlg.prod_cd = inv_data.prod_cd
        WHERE 
            inv_data.CLASS_CD = 'ALG7' 
        AND 
            dateadd(day, plog.EST_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        AND 
            dateadd(day, ord_log.SHIP_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        AND 
            dateadd(day, ediordlg.SHIP_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        GROUP BY plog.prod_cd, plog.log_qty, ord_log.ORDER_QTY, ediordlg.ORDER_QTY, inv_data.IN_STOCK
        ORDER BY plog.prod_cd ASC";

And this is a sample of what it outputs:

Array ( [prod_id] => ALG-809
[total_so] => 4 [total_edi_so] => 46 [in_stock] => 0 ) Array ( [prod_id] => ALG-809
[total_so] => 6 [total_edi_so] => 46 [in_stock] => 0 ) Array ( [prod_id] => ALG-809
[total_so] => 7 [total_edi_so] => 46 [in_stock] => 0 )

Here are the four separate queries that return the correct results:

$query_stock = "SELECT 
                prod_cd, 
                inv_data.DESCRIP,
                inv_data.IN_STOCK
            from 
                inv_data 
            where 
                inv_data.CLASS_CD = 'ALG7'
            ORDER BY
                inv_data.prod_cd ASC";

$query_po = "SELECT 
            plog.prod_cd, 
            SUM(plog.log_qty) as total_po
        FROM 
            plog JOIN inv_data ON plog.prod_cd = inv_data.prod_cd 
        WHERE 
            inv_data.CLASS_CD = 'ALG7'
        AND 
            dateadd(day, EST_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        GROUP BY 
            plog.prod_cd
        ORDER BY
            plog.prod_cd ASC";

$query_so = "SELECT 
            ord_log.prod_cd,
            SUM(ord_log.ORDER_QTY) as total_so
        FROM 
            ord_log JOIN inv_data ON ord_log.prod_cd = inv_data.prod_cd 
        WHERE 
            inv_data.CLASS_CD = 'ALG7' 
        AND 
            dateadd(day, SHIP_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate()) 
        GROUP BY 
            ord_log.PROD_CD
        ORDER BY
            ord_log.prod_cd ASC";

$query_edi = "SELECT 
            ediordlg.prod_cd,
            SUM(ediordlg.ORDER_QTY) as total_so_EDI
        FROM
            ediordlg JOIN inv_data ON ediordlg.prod_cd = inv_data.prod_cd 
        WHERE 
            inv_data.CLASS_CD = 'ALG7' 
        AND 
            dateadd(day, SHIP_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate()) 
        GROUP BY 
            ediordlg.PROD_CD
        ORDER BY
            ediordlg.prod_cd ASC";

I'm sure it's the JOIN I'm using but I can't figure it out for the life of me. Any suggestions? Thanks!

share|improve this question
    
Post your table structures. – Kermit Jan 25 '13 at 19:58
    
try setting up a sqlfiddle that demonstrates the problem – Jon Egerton Jan 25 '13 at 20:00
    
Hey njk, do you just need the column info? The tables are rather lengthy, I'll make the information more concise. – Andrew Chen Jan 25 '13 at 20:48
    
Which table stores distinct products? That is, in which table will each prod_cd value definitely appear only once? I imagine it's either plog or inv_data, please clarify. – Sorpigal Jan 25 '13 at 21:31
    
prod_cd distinct in every table actually – Andrew Chen Jan 25 '13 at 22:46
up vote 0 down vote accepted

Rule 1 of SQL in cases like this: Select initially from the thing that you want rows out of, join to the things you want more information about. In your case what you want seems to be the product ID and this seems to be uniquely stored in the inv_data table, so we'll start with that.

select
        i.prod_cd as product,
        i.descrip as description,
        i.in_stock
    from
        inv_data as i
    where
        i.class_cd = 'ALG7'
    order by
        i.prod_cd asc
;

You'll get one of each because only one of each is stored. The rest is just details. Let's add some joins

select
        i.prod_cd as product,
        i.descrip as description,
        i.in_stock,
        sum(l.order_qty) as l_total_so,
        sum(e.order_qty) as e_total_so
    from
        inv_data as i
        inner join plog as p
            on i.prod_cd = p.prod_cd
        inner join ord_log as l
            on i.prod_cd = l.prod_cd
        inner join ediordlg as e
            on i.prod_cd = e.prod_cd
    where
        i.class_cd = 'ALG7'
    order by
        i.prod_cd asc
    group by
        i.prod_cd,
        i.descrip,
        i.in_stock
;

You don't need to list so many columns in your on clauses because they're all the same anyway (by definition, because the earlier inner join succeeded).

If it turns out that plog and not inv_data is your master table simply reverse them in the query. If you want both total values together, use sum(l.order_qty + e.order_qty) as total_so instead of creating two columns.

The thing to understand is that joins can multiply the results. Understanding which tables have more and doing something in each case to limit the "extra" results each time they would be extra will result in a clean resultset. In this case probably just summing and grouping is enough, but in a complex case you would need to join to a sub-query that selects back a sufficiently distinct set.

And, on a related note, distinct is poison for your query! It has a very specific purpose which is not to fix "too many duplicate rows after joining." If you're using it for that you probably have a bug that could have unknown other side effects. Try to fix it with group by and smarter on statements first, then nested queries.

Not related to your question, but important: It appears that you are expanding a variable $x inside your query. This is probably not safe (or efficient); try to use a parametrized query instead.

share|improve this answer
    
thanks a lot! that actually explains a lot... I was always a bit unclear about how it worked. I'll try this out and play around with it. And I'll change the $x, thanks for catching that! Didn't even realize :) – Andrew Chen Jan 25 '13 at 23:17

why not use a DISTINCT?

$query_ats = "SELECT DISTINCT
            plog.prod_cd as prod_id,
            ord_log.ORDER_QTY as total_so,
            ediordlg.ORDER_QTY as total_edi_so,
            inv_data.IN_STOCK as in_stock
        FROM plog 
        INNER JOIN ord_log 
            ON plog.prod_cd = ord_log.prod_cd 
        INNER JOIN ediordlg 
            ON plog.prod_cd = ediordlg.prod_cd AND ord_log.prod_cd = ediordlg.prod_cd
        INNER JOIN inv_data 
            ON plog.prod_cd = inv_data.prod_cd AND ord_log.prod_cd = inv_data.prod_cd AND ediordlg.prod_cd = inv_data.prod_cd
        WHERE 
            inv_data.CLASS_CD = 'ALG7' 
        AND 
            dateadd(day, plog.EST_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        AND 
            dateadd(day, ord_log.SHIP_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        AND 
            dateadd(day, ediordlg.SHIP_DT, '18001228') BETWEEN getdate() and dateadd(day, $x, getdate())
        GROUP BY plog.prod_cd, plog.log_qty, ord_log.ORDER_QTY, ediordlg.ORDER_QTY, inv_data.IN_STOCK
        ORDER BY plog.prod_cd ASC";
share|improve this answer
1  
As a rule, only use distinct when you you've understood exactly why it is the you're getting duplicate rows in the first place, otherwise its likely that you're just masking problems till later. – Jon Egerton Jan 25 '13 at 20:02
    
I agree, @JonEgerton, but I've faced something similar, and one of my question + answer suggested using distinct when there were multiple duplicates. This usually happens if there are multiple mapping on different tables, even if they're not duplicates.. – Aniket Jan 25 '13 at 20:04
    
Hm I tried but am getting the same results. I just noticed too that the results don't always come back in the same order. All the PROD_CD will be grouped together but the arrays will come back in different orders – Andrew Chen Jan 25 '13 at 20:16

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