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3

You can use helper columns tmp filled 1 in both DataFrames and merge on this column. Last you can drop it: DF1['tmp'] = 1 DF2['tmp'] = 1 print DF1 id quantity tmp 0 1 20 1 1 2 23 1 print DF2 name part tmp 0 'A' 3 1 1 'B' 4 1 2 'C' 5 1 DF = pd.merge(DF1, DF2, on=['tmp']) print DF id quantity ...


2

Change it from an inner join to a left outer join. SELECT "Wishlist".*, COUNT("WishlistItem".*) AS "wishlistItemCount" FROM "Wishlist" LEFT OUTER JOIN "WishlistItem" ON ("WishlistItem"."wishlistId" = "Wishlist"."wishlistId") WHERE ((("Wishlist"."wishlistId" = $1) OR ("Wishlist"."userId" = $2)) AND 1=1) GROUP BY ...


2

select a.ID, a.Name, c.Status from table1 a left outer join (select max(b.seq) AS SEQ, b.table1id from table2 b group by b.table1id) t2 on a.id = t2.table1id left outer join table2 t2b on t2.seq = t2b.seq and t2.table1id = t2b.table1id left outer join table3 c on t2b.table3seq = c.seq There are probably more efficient ways to do it, but this will give you ...


1

This is because of the reason, that when m.first_name and m.last_name will be null for the manager, then m.first_name || ' ' || m.last_name will not result in null, but with ' '. So, it will print space instead of 'No One'. You can achieve your desired results by using nvl2 something like SELECT NVL2( m.first_name ||m.last_name , m.first_name || ' ' || ...


1

I believe the accepted answer can be simplified by recognizing that when an employee be unsupervised, there will be no matching record for his manager. As a result, both the manager's first and last name will either be NULL or not NULL together. SELECT NVL(m.first_name, 'No One', m.first_name || ' ' || m.last_name) || ' supervises ' || w.first_name || ...


1

I don't see the need of use LEFT OUTER JOIN. If relations are properly configured, especially in project entity you can make a simple JOIN and get not nulls. $query = $em->createQuery('SELECT p, pn, pd,pb, pa ' . 'FROM AppBundle:Project p ' . 'JOIN p.notifications pn ' . 'JOIN p.details pd ' . 'JOIN p.benefits pb ' ...


1

Based on your comment this should answer your question: SELECT Table_1.column_a, Table_1.column_b FROM Table_1 WHERE Table_1.column_a = 123 AND Table_1.column_c = 1 UNION SELECT Table_2.column_a, Table_2.column_b /* I'm assuming these columns exist in Table_2. Make sure these columns are same as selected columns from Table_1 */ FROM Table_2 WHERE ...


1

The basic idea is a LEFT JOIN (because you want to keep all the rows in the first table). SELECT o.ORDER_NUMBER, Description, Price, Quantity, o.ORDER_NUMBER + '-' + COALESCE(dd.Shippment, '') AS [Ship_Set] FROM vw_OrderData o LEFT JOIN DetailData dd ON o.ORDER_NUMBER = dd.ORDER_NUMBER; Notice the COALESCE(). Without the COALESCE(), ...


1

If it gives you multiple rows, but only need the first one, you could use the SELECT TOP(1) option such as : SELECT TOP(1) x.ORDER_NUMBER, Description, Price, Quantity, x.ORDER_NUMBER+'-'+y.Shippment AS [Ship_Set] FROM vw_OrderData AS x join DetailData AS y ON(x.ORDER_NUMBER = y.ORDER_NUMBER) Therefore your query works exactly as depicted. You should ...


1

This is more complicated than it sounds. According to the result, you do not want a cartesian product when there are multiple matches in a table. So, you need to take seqnum into account. select v.Vendor, v.name, coalesce(m.seq, w.seq, d.seq) as Seq, m.MonthFrom, m.MonthTo, w.Week, d.Day from Vendors v left join SMonthRangeSelected m on ...


1

To join it on Vendor and Seq, we first need to have all possible combinations. Then we can filter the tables based on these combinations. I've ran the following in SQL server: Setup declare @Vendors table(id int, name varchar(20)); declare @MonthRangeSelected table (vendor int, seq int null, monthFrom int null, monthTo int null); declare @WeekSelected ...


1

Having criticized the much-loved red-shaded Venn diagram, I thought it only fair to post my own attempt. Although @Martin Smith's answer is the best of this bunch by a long way, his only shows the key column from each table, whereas I think ideally non-key columns should also be shown. The best I could do in the half hour allowed, I still don't think it ...



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