10. Solution: Subquery Mania

Below is a video showcasing the workflow for solving the first problem. Each of the problem solutions is shown in text below as well.

Subquery Solution Video

Solution: Subquery Mania

  1. Provide the name of the sales_rep in each region with the largest amount of total_amt_usd sales.


    First, I wanted to find the total_amt_usd totals associated with each sales rep, and I also wanted the region in which they were located. The query below provided this information.
SELECT s.name rep_name, r.name region_name, SUM(o.total_amt_usd) total_amt
FROM sales_reps s
JOIN accounts a
ON a.sales_rep_id = s.id
JOIN orders o
ON o.account_id = a.id
JOIN region r
ON r.id = s.region_id
GROUP BY 1,2
ORDER BY 3 DESC;

Next, I pulled the max for each region, and then we can use this to pull those rows in our final result.

SELECT region_name, MAX(total_amt) total_amt
        FROM(SELECT s.name rep_name, r.name region_name, SUM(o.total_amt_usd) total_amt
                FROM sales_reps s
                JOIN accounts a
                ON a.sales_rep_id = s.id
                JOIN orders o
                ON o.account_id = a.id
                JOIN region r
                ON r.id = s.region_id
                GROUP BY 1, 2) t1
        GROUP BY 1;

Essentially, this is a JOIN of these two tables, where the region and amount match.

SELECT t3.rep_name, t3.region_name, t3.total_amt
FROM(SELECT region_name, MAX(total_amt) total_amt
        FROM(SELECT s.name rep_name, r.name region_name, SUM(o.total_amt_usd) total_amt
                FROM sales_reps s
                JOIN accounts a
                ON a.sales_rep_id = s.id
                JOIN orders o
                ON o.account_id = a.id
                JOIN region r
                ON r.id = s.region_id
                GROUP BY 1, 2) t1
        GROUP BY 1) t2
JOIN (SELECT s.name rep_name, r.name region_name, SUM(o.total_amt_usd) total_amt
        FROM sales_reps s
        JOIN accounts a
        ON a.sales_rep_id = s.id
        JOIN orders o
        ON o.account_id = a.id
        JOIN region r
        ON r.id = s.region_id
        GROUP BY 1,2
        ORDER BY 3 DESC) t3
ON t3.region_name = t2.region_name AND t3.total_amt = t2.total_amt;
  1. For the region with the largest sales total_amt_usd, how many total orders were placed?


    The first query I wrote was to pull the total_amt_usd for each region.
SELECT r.name region_name, SUM(o.total_amt_usd) total_amt
FROM sales_reps s
JOIN accounts a
ON a.sales_rep_id = s.id
JOIN orders o
ON o.account_id = a.id
JOIN region r
ON r.id = s.region_id
GROUP BY r.name;

Then we just want the region with the max amount from this table. There are two ways I considered getting this amount. One was to pull the max using a subquery. Another way is to order descending and just pull the top value.

SELECT MAX(total_amt)
FROM (SELECT r.name region_name, SUM(o.total_amt_usd) total_amt
                FROM sales_reps s
                JOIN accounts a
                ON a.sales_rep_id = s.id
                JOIN orders o
                ON o.account_id = a.id
                JOIN region r
                ON r.id = s.region_id
                GROUP BY r.name) sub;

Finally, we want to pull the total orders for the region with this amount:

SELECT r.name, COUNT(o.total) total_orders
FROM sales_reps s
JOIN accounts a
ON a.sales_rep_id = s.id
JOIN orders o
ON o.account_id = a.id
JOIN region r
ON r.id = s.region_id
GROUP BY r.name
HAVING SUM(o.total_amt_usd) = (
         SELECT MAX(total_amt)
         FROM (SELECT r.name region_name, SUM(o.total_amt_usd) total_amt
                 FROM sales_reps s
                 JOIN accounts a
                 ON a.sales_rep_id = s.id
                 JOIN orders o
                 ON o.account_id = a.id
                 JOIN region r
                 ON r.id = s.region_id
                 GROUP BY r.name) sub);

This provides the Northeast with 2357 orders.

  1. How many accounts had more total purchases than the account name which has bought the most standard_qty paper throughout their lifetime as a customer?


    First, we want to find the account that had the most standard_qty paper. The query here pulls that account, as well as the total amount:
SELECT a.name account_name, SUM(o.standard_qty) total_std, SUM(o.total) total
FROM accounts a
JOIN orders o
ON o.account_id = a.id
GROUP BY 1
ORDER BY 2 DESC
LIMIT 1;

Now, I want to use this to pull all the accounts with more total sales:

SELECT a.name
FROM orders o
JOIN accounts a
ON a.id = o.account_id
GROUP BY 1
HAVING SUM(o.total) > (SELECT total 
                      FROM (SELECT a.name act_name, SUM(o.standard_qty) tot_std, SUM(o.total) total
                            FROM accounts a
                            JOIN orders o
                            ON o.account_id = a.id
                            GROUP BY 1
                            ORDER BY 2 DESC
                            LIMIT 1) sub);

This is now a list of all the accounts with more total orders. We can get the count with just another simple subquery.

SELECT COUNT(*)
FROM (SELECT a.name
          FROM orders o
          JOIN accounts a
          ON a.id = o.account_id
          GROUP BY 1
          HAVING SUM(o.total) > (SELECT total 
                      FROM (SELECT a.name act_name, SUM(o.standard_qty) tot_std, SUM(o.total) total
                            FROM accounts a
                            JOIN orders o
                            ON o.account_id = a.id
                            GROUP BY 1
                            ORDER BY 2 DESC
                            LIMIT 1) inner_tab)
                ) counter_tab;
  1. For the customer that spent the most (in total over their lifetime as a customer) total_amt_usd, how many web_events did they have for each channel?


    Here, we first want to pull the customer with the most spent in lifetime value.
SELECT a.id, a.name, SUM(o.total_amt_usd) tot_spent
FROM orders o
JOIN accounts a
ON a.id = o.account_id
GROUP BY a.id, a.name
ORDER BY 3 DESC
LIMIT 1;

Now, we want to look at the number of events on each channel this company had, which we can match with just the id.

SELECT a.name, w.channel, COUNT(*)
FROM accounts a
JOIN web_events w
ON a.id = w.account_id AND a.id =  (SELECT id
                        FROM (SELECT a.id, a.name, SUM(o.total_amt_usd) tot_spent
                              FROM orders o
                              JOIN accounts a
                              ON a.id = o.account_id
                              GROUP BY a.id, a.name
                              ORDER BY 3 DESC
                              LIMIT 1) inner_table)
GROUP BY 1, 2
ORDER BY 3 DESC;

I added an ORDER BY for no real reason, and the account name to assure I was only pulling from one account.

  1. What is the lifetime average amount spent in terms of total_amt_usd for the top 10 total spending accounts?


    First, we just want to find the top 10 accounts in terms of highest total_amt_usd.
SELECT a.id, a.name, SUM(o.total_amt_usd) tot_spent
FROM orders o
JOIN accounts a
ON a.id = o.account_id
GROUP BY a.id, a.name
ORDER BY 3 DESC
LIMIT 10;

Now, we just want the average of these 10 amounts.

SELECT AVG(tot_spent)
FROM (SELECT a.id, a.name, SUM(o.total_amt_usd) tot_spent
         FROM orders o
         JOIN accounts a
         ON a.id = o.account_id
         GROUP BY a.id, a.name
         ORDER BY 3 DESC
          LIMIT 10) temp;


  1. What is the lifetime average amount spent in terms of total_amt_usd, including only the companies that spent more per order, on average, than the average of all orders.


    First, we want to pull the average of all accounts in terms of total_amt_usd:
SELECT AVG(o.total_amt_usd) avg_all
FROM orders o

Then, we want to only pull the accounts with more than this average amount.

SELECT o.account_id, AVG(o.total_amt_usd)
FROM orders o
GROUP BY 1
HAVING AVG(o.total_amt_usd) > (SELECT AVG(o.total_amt_usd) avg_all
                                  FROM orders o);

Finally, we just want the average of these values.

SELECT AVG(avg_amt)
FROM (SELECT o.account_id, AVG(o.total_amt_usd) avg_amt
       FROM orders o
       GROUP BY 1
       HAVING AVG(o.total_amt_usd) > (SELECT AVG(o.total_amt_usd) avg_all
                                      FROM orders o)) temp_table;

Wow! That was intense. Nice job if you got these!

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