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HackerRank-SQL-Solutions

Description

The solutions of all the SQL challenges for all easy, medium and hard challenges on HackerRank executed on MySQL environment compiled.

Solutions

Revising the Select Query I

SELECT * FROM CITY WHERE population > 100000 AND Countrycode ="USA";

Revising the Select Query II

Select name from city where population > 120000 and Countrycode = "USA";

Select All

Select * from city;

Select by ID

select * from city where ID=1661;

Japanese Cities' Attributes

select * from city where countrycode="JPN";

Japanese Cities' Names

select name from city where CountryCode="JPN";

Weather Observation Station 1

select city,State from station;

Weather Observation Station 3

Select distinct city from station where ID%2=0;

Weather Observation Station 4

select count(city) - count(distinct city) from station;

Weather Observation Station 5

select city,length(city) from station order By length(city) asc, city asc limit 1;
select distinct(City),length(city) from station order by length(city) desc, city asc limit 1;

Weather Observation Station 6

select distinct city from station where left(city,1) in('a','e','i','o','u');

Weather Observation Station 7

select distinct city from station where right(city,1) in('a','e','i','o','u');

Weather Observation Station 8

select distinct city from station where left(city,1) in('a','e','i','o','u') and right(city,1) in('a','e','i','o','u') ;

Weather Observation Station 9

select distinct city from station where left(city,1) not in('a','e','i','o','u') ;

Weather Observation Station 10

select distinct city from station where  right(city,1) not in('a','i','e','o','u') ;

Weather Observation Station 11

select distinct city from station where left(city,1) not in('a','i','e','o','u') or right(city,1) not in('a','i','e','o','u');

Weather Observation Station 12

select distinct city from station where left(city,1) not in('a','i','e','o','u') and right(city,1) not in('a','i','e','o','u') ;

Higher than 75 marks

select name from students where marks > 75 order by right(name,3),id asc;

Employee Names

select name from employee order by name;

Employee Salaries

select name from employee where salary > 2000 and months <10 order By employee_id;

Type of Triangle

Select case 
    when  (A+B<=C or A+C<=B or B+C<=A ) then 'Not A Triangle'
    when (A=B) and(B=C) then 'Equilateral' 
    when (A=B or B=C or A=C)  then 'Isosceles'
    else 'Scalene'
    End as "triangle_type"
    from triangles;

The PADS

select CONCAT_WS('',name,'(',left(occupation,1),')')  
    from occupations 
    order by name;

select CONCAT_WS("","There are a total of ",count(occupation)," ",LOWER(occupation),"s.") 
    from occupations 
    group by occupation
    order by count(occupation), occupation; 

Occupations

set @d=0, @p=0, @s=0, @a=0; -- initial counters 

select  min(Doctor), min(Professor), min(Singer), min(Actor)
    from(
        SELECT case
                when Occupation='Doctor' then (@d:=@d+1)
                when Occupation='Professor' then (@p:=@p+1)
                when Occupation='Singer' then (@s:=@s+1)
                when Occupation='Actor' then (@a:=@a+1) end as counter,

            case when Occupation='Doctor' then Name end as Doctor,
            case when Occupation='Professor' then Name end as Professor,
            case when Occupation='Singer' then Name end as Singer,
            case when Occupation='Actor' then Name end as Actor
        FROM OCCUPATIONS order by name )temp
      group by  counter;

Binary Tree Nodes

select N,case  
    when P is NULL then 'Root'
    WHEN EXISTS (SELECT B.P FROM BST B WHERE B.P = BT.N) THEN 'Inner'        
    else 'Leaf' end as node_type
    from BST  as BT order by N;

New Companies

  • With left join.
        SELECT
        c.company_code,c.founder,
        count(distinct lm.lead_manager_code),
        count(distinct sm.senior_manager_code),
        count(distinct m.manager_code), 
        count(distinct e.employee_code)
    FROM 
        Company c
        left join Lead_Manager lm on c.company_code=lm.company_code
        left join Senior_Manager sm on sm.lead_manager_code=lm.lead_manager_code
        left join Manager m on m.senior_Manager_code=sm.senior_Manager_code
        left join Employee e on e.manager_code=m.manager_code
    GROUP BY
        c.company_code,c.founder
    ORDER BY 
        c.company_code ASC
  • Without left join
    SELECT 
        c.company_code,c.founder,
        count(distinct lm.lead_manager_code),
        count(distinct sm.senior_manager_code),
        count(distinct m.manager_code), 
        count(distinct e.employee_code)
    FROM 
        Company c, Lead_Manager lm, Senior_Manager sm, Manager m, Employee e
    WHERE
        c.company_code=lm.company_code AND
        lm.lead_manager_code=sm.lead_manager_code AND
        sm.senior_manager_code=m.senior_manager_code AND
        m.manager_code=e.manager_code
    GROUP BY 
        c.company_code,c.founder
    ORDER BY 
        c.company_code ASC;

Revising Aggregations - The Sum Function

select 
    sum(population) 
from
    city 
where
    district="California";

Revising Aggregations - Averages

select 
    avg(population) 
from
    city 
where
    district="California";

Revising Aggregations - The Count Function

select 
    count(*)
from
    city
where
    population>100000;

Average Population

select
    floor(avg(population))
from 
    city;

Japan Population

select
    sum(population)
from 
    city
where
    countrycode='JPN';

Population Density Difference

select 
    max(population)-min(population)
from 
    city;

The Blunder

select 
    ceil(avg(salary)-avg(replace(salary,0,'')))
from 
    employees;

Top Earners

select 
    salary*months, COUNT(*)
from 
    employee
where 
    (salary*months) = (select max(salary*months) from employee) 
group by salary*months;

Weather Observation Station 2

select 
    round(sum(lat_n),2),round(sum(long_w),2)
from 
    station;

Weather Observation Station 13

select 
    truncate(sum(lat_n),4)
from 
    station
where
    lat_n>38.7880 and lat_n<137.2345 ;

Weather Observation Station 14

select 
    truncate(max(lat_n),4)
from 
    station
where
    lat_n<137.2345 ;

Weather Oservation Station 15

select 
    round(long_w,4) 
from 
    station
where 
    lat_n =(select max(lat_n) from station where lat_n <137.2345);

Weather Oservation Station 16

select 
    round(min(lat_n),4)
from 
    station
where 
     lat_n>38.7780;

Weather Oservation Station 17

select 
    round(long_w,4)
from 
    station
where 
     lat_n=(select min(lat_n) from station where lat_n>38.7780);

Weather Oservation Station 18

select 
    round(abs(max(lat_n)-min(lat_n))+abs(max(long_w)-min(long_w)),4)
from 
    station;

Weather Oservation Station 19

select 
    round(power((power(max(lat_n)-min(lat_n),2)+power(max(long_w)-min(long_w),2)),0.5),4)
from 
    station;

Weather Oservation Station 20

set 
    @rownum=0;

SELECT 
    ROUND(t.lat_n, 4)
FROM(
    SELECT 
        s.LAT_N,
        @rownum := @rownum + 1 as `row_number`,
        @total_rows := @rownum
    FROM 
        STATION s
    ORDER BY 
        s.LAT_N
  ) as t
WHERE 
    t.row_number IN (FLOOR((@total_rows + 1) / 2), FLOOR((@total_rows + 2) / 2));

Population Census

select 
    sum(city.population)
from 
    country left join city on city.countrycode=country.code
where 
    country.continent="Asia";

African Cities

select 
    city.name
from 
    country inner join city on city.countrycode=country.code
where 
    country.continent="Africa";

Average Population of Each Continent

select
    country.continent, floor(avg(city.population))
from
    country inner join city on city.countrycode=country.code
group by
    country.continent

The Report

select 
    case when g.grade<8 then NULL
    else s.name end as names,
    g.grade,s.marks
from 
    students s join grades g on s.marks between g.min_mark and g.max_mark
order by   
    g.grade Desc,
    s.name,
    s.marks;

Top Competitors

select
  h.hacker_id,h.name
from 
    submissions s join hackers h on s.hacker_id=h.hacker_id
    join challenges c on c.challenge_id=s.challenge_id
    join difficulty d on c.difficulty_level=d.difficulty_level and s.score=d.Score
group by 
    h.hacker_id,h.name
having count(h.hacker_id) > 1 
order by 
    count(h.hacker_id) desc,
    h.hacker_id ;

Ollivander's Inventory

select
    w.id,wp.age,w.coins_needed,w.power
from 
    wands w join wands_property wp on w.code=wp.code
where 
    wp.is_evil=0 and 
    w.coins_needed=(select 
                        min(w2.coins_needed)
                    from 
                        wands w2 join wands_property wp2 on w2.code=wp2.code
                    where 
                        w2.power=w.power and wp2.age=wp.age)
order by
    w.power desc,
    wp.age desc;

Challenges

select 
    h.hacker_id,h.name,count(h.hacker_id) as challenges_created
from 
    hackers h join challenges c on h.hacker_id=c.hacker_id
group by
    h.hacker_id,
    h.name
having 

    challenges_created=(
    select 
        count(challenge_id) as max_challenges 
    from
        challenges 
    group by 
        hacker_id
    order by 
        max_challenges desc 
    limit 1 ) 
    or
    challenges_created in(
    select 
        temp.max_challenges 
    from 
        (select  count(challenge_id) AS max_challenges
    FROM 
         challenges
    group by 
         hacker_id order by max_challenges) temp 
    group by 
        temp.max_challenges
    having 
        count(temp.max_challenges)=1)

order by 
    challenges_created desc,
    h.hacker_id
  

Contest Leaderboard

select 
    h.hacker_id,h.name,sum(ss.max_score) as total_score
from 
    hackers h join (select 
                        s.hacker_id,s.challenge_id,max(score) as max_score
                    from 
                        submissions s
                    group by 
                        s.hacker_id,s.challenge_id) ss
                    on h.hacker_id=ss.hacker_id
group by 
    h.hacker_id,h.name
having
    total_score>0
order by
    total_score desc,
    h.hacker_id

SQL Project Planning

select
    s.start_date,min(e.end_date)
from 
(select
    end_date
 from 
    projects
 where 
    end_date not in (select start_date from projects)) e,
    (select 
    start_date
from 
    projects
where 
    start_date not in (select end_date from projects)) s
    
where 
    s.start_date<e.end_date
group by 
    s.start_date
order by
    datediff(min(e.end_date), s.start_date) asc,
    s.start_date ;

Placements

select 
    s.name
from 
    students s join friends f on s.id=f.id
    join packages p on p.id=s.id
    join packages pf on pf.id=f.friend_id
where
    pf.salary>p.salary
order by
    pf.salary ;

Symmetric Pairs

select 
    f1.x,f1.y
from
    functions f1 ,functions f2
where
    f1.x<=f1.y
    and f1.x=f2.y
    and f1.y=f2.x
group by
    f1.x,f1.y
having 
    count(case when f1.x=f1.y then f1.x END)>2
    or count(case when f1.x<f1.y then f1.x end)=1
order by
    f1.x,f1.y;

Interviews

select
    c.contest_id,c.hacker_id,c.name,sum(s.ts) as tst,
    sum(s.tas)  as tast,sum(vs.tv) as tvt , sum(vs.tuv) as tuvt
from 
    contests c join colleges co on c.contest_id=co.contest_id
    join challenges ch on ch.college_id=co.college_id 
    left join (select 
                challenge_id, sum(total_submissions) as ts, sum(total_accepted_submissions) as tas
         from 
            submission_stats
          group by 
            challenge_id
         ) s on s.challenge_id=ch.challenge_id
         
    left join (select 
          challenge_id,sum(total_views) as tv,sum(total_unique_views) tuv
          from 
            view_stats
          group by 
            challenge_id
         ) vs on vs.challenge_id=ch.challenge_id

group by 
    c.contest_id,c.hacker_id,c.name
having 
    sum(s.ts)+ sum(s.tas)+sum(vs.tv)+ sum(vs.tuv) >0
order by
    c.contest_id

15 Days of Learning SQL

Draw The Triangle 1

set 
    @n_lines =21;

select 
    repeat('* ',@n_lines:=@n_lines-1)
from 
    INFORMATION_SCHEMA.TABLES
limit 20;

Draw The Triangle 2

set 
    @n_lines =0;

select 
    repeat('* ',@n_lines:=@n_lines+1)
from 
    INFORMATION_SCHEMA.TABLES
limit 20;

Print Prime Numbers

with recursive tblnums
as (
    select 2 as nums
    union all
    select nums+1 
    from tblnums
    where nums<1000)
    
select group_concat(tt.nums order by tt.nums separator '&')  as nums
from tblnums tt
where not exists 
    ( select 1 from tblnums t2 
    where t2.nums <= tt.nums/2 and mod(tt.nums,t2.nums)=0) ;