SQLZOO: Self join

stops(id, name)
route(num, company, pos, stop)
 
stops
id
name
route
num
company
pos
stop

 
1.How many stops are in the database.
SELECT COUNT(DISTINCT(stop))
FROM route
2.Find the id value for the stop 'Craiglockhart'
SELECT id 
FROM stops 
WHERE name= 'Craiglockhart'
3.Give the id and the name for the stops on the '4' 'LRT' service.
SELECT id,name
FROM stops JOIN route ON id=stop
WHERE num='4' AND company='LRT'
4.The query shown gives the number of routes that visit either London Road (149) or Craiglockhart (53). Run the query and notice the two services that link these stops have a count of 2. Add a HAVING clause to restrict the output to these two routes.
SELECT company, num, COUNT(*)
FROM route WHERE stop=149 OR stop=53
GROUP BY company, num
HAVING COUNT(*)=2
5.

Execute the self join shown and observe that b.stop gives all the places you can get to from Craiglockhart, without changing routes. Change the query so that it shows the services from Craiglockhart to London Road.

SELECT a.company, a.num, a.stop, b.stop
FROM route a JOIN route b ON
  (a.company=b.company AND a.num=b.num)
WHERE a.stop=53 AND b.stop=149
6.The query shown is similar to the previous one, however by joining two copies of the stops table we can refer to stops by name rather than by number. Change the query so that the services between 'Craiglockhart' and 'London Road' are shown. If you are tired of these places try 'Fairmilehead' against 'Tollcross'
SELECT a.company, a.num, stopa.name, stopb.name
FROM route a JOIN route b ON
  (a.company=b.company AND a.num=b.num)
  JOIN stops stopa ON (a.stop=stopa.id)
  JOIN stops stopb ON (b.stop=stopb.id)
WHERE stopa.name='Craiglockhart' AND stopb.name= 'London Road'
7.Give a list of all the services which connect stops 115 and 137 ('Haymarket' and 'Leith')
SELECT DISTINCT a.company,a.num 
FROM route a JOIN route b ON (a.company=b.company AND a.num=b.num)
WHERE a.stop=115 AND b.stop=137
8.Give a list of the services which connect the stops 'Craiglockhart' and 'Tollcross'
SELECT a.company, a.num
FROM route a JOIN route b ON
  (a.company=b.company AND a.num=b.num)
  JOIN stops stopa ON (a.stop=stopa.id)
  JOIN stops stopb ON (b.stop=stopb.id)
WHERE stopa.name='Craiglockhart' AND stopb.name= 'Tollcross'
9.Give a distinct list of the stops which may be reached from 'Craiglockhart' by taking one bus, including 'Craiglockhart' itself, offered by the LRT company. Include the company and bus no. of the relevant services.
SELECT DISTINCT name, company, num 
FROM route JOIN stops ON stop=id 
WHERE num IN (
   SELECT num 
   FROM route JOIN stops ON stop=id 
   WHERE name='Craiglockhart') 
AND company='LRT'
10.

Find the routes involving two buses that can go from Craiglockhart to Lochend.
Show the bus no. and company for the first bus, the name of the stop for the transfer,
and the bus no. and company for the second bus.

Hint
Self-join twice to find buses that visit Craiglockhart and Lochend, then join those on matching stops.
select distinct x.num,x.company,name,y.num,y.company
from(select a.num,a.company,b.stop
from route a
join route b
on a.num = b.num and a.company = b.company
and a.stop != b.stop
where a.stop = (select id from stops where name ='Craiglockhart')) as x
join (select c.num,c.company,c.stop
from route c
join route d 
on c.num = d.num and c.company = d.company
and c.stop != d.stop
where d.stop =(select id from stops where name = 'Lochend'))as y
on x.stop = y.stop
join stops on x.stop = stops.id
order by x.num,stops.name,y.num
原文地址:https://www.cnblogs.com/gegemu/p/13650412.html