Apurv Gupta, BCA ,Final year , Dezyne E'cole College

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Oracle Assessment A WORK REPORT SUBMITTED IN PARTIAL FULLFILLMENT OF THE REQUIREMENT FOR THE DEGREE Bachelor of Computer Application Dezyne E’cole College 106/10, CIVIL LINES AJMER RAJASTHAN - 305001 (INDIA) (JUNE, 2015) www.dezyneecole.com SUBMITTED BY APURV GUPTA CLASS: BCA 3 RD YEAR

Transcript of Apurv Gupta, BCA ,Final year , Dezyne E'cole College

Oracle Assessment

A WORK REPORT SUBMITTED

IN PARTIAL FULLFILLMENT OF THE REQUIREMENT FOR THE DEGREE

Bachelor of Computer Application

Dezyne E’cole College

106/10, CIVIL LINES

AJMER

RAJASTHAN - 305001 (INDIA)

(JUNE, 2015)

www.dezyneecole.com

SUBMITTED BY

APURV GUPTA

CLASS: BCA 3RD YEAR

1

PROJECT ABSTRACT

I am APURV GUPTA Student of 3rd year doing my Bachelor Degree in Computer

Application.

In the following pages I gave compiled my work learnt during my 3rd year at college.

The subject is RDBMS. These assessments are based on Relational Database

Management System that is useful to work with front end (user interface) application.

Take example of an online form if the user filling up an online form (E.g. SBI Form,

Gmail registration Form) on to the internet whenever he/she clicks on the submit

button the field value is transfer to the backend database and stored in Oracle, MS-

Access, My SQL, SQL Server.

The purpose of a database is to store and retrieve related information later on. A

database server is the key to solving the problems for information management.

In these assessment we are using Oracle 10g as the Relation Database Software.

The back-end database is a database that is accessed by user indirectly through an

external application rather than by application programming stored within the

database itself or by low level manipulation of the data (e.g. through SQL commands).

Here in the following assessment we are performing the following operations:

1. Creating tables to store the data into tabular format (schemas of the data base)

2. Fetching the data from the database (Using Select Query)

3. Joining the multiple data tables into one (To reduces the redundancy of the data)

4. Nested Queries (Queries within Queries)

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Contents Select Statement .................................................................................................................................. 7

Grouping Having,ETC. ...................................................................................................................... 19

Functions ............................................................................................................................................. 25

Coverage Joins ................................................................................................................................... 35

Nested And Corelated Subqueries .............................................................................................. 41

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1. Create an Employee Table (Emp) with Following Fields:

FIELDS DATA TYPE SIZE

EMPNO NUMBER 4

ENAME VARCHAR2 20

DEPTNO NUMBER 2

JOB VARCHAR2 20

SAL NUMBER 5

COMM NUMBER 4

MGR NUMBER 4

HIREDATE DATE -

CREATE TABLE EMP

(EMPNO NUMBER (4),

ENAME VARCHAR2 (20),

DEPTNO NUMBER (2),

JOB VARCHAR2(20),

SAL NUMBER (5),

COMM NUMBER (4),

HIREDATE DATE);

How to display structure of emp table

Solution:

Desc emp;

Output:

Insert Atleast 5 records

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insert into emp(empno,ename,deptno,job,sal,comm,mgr,hiredate)

values(:empno,:ename,:deptno,:job,:sal,:comm,:mgr,:hiredate);

Output:

2. Create a Department Table (Dept) with Following Fields:

FIELDS DATA TYPE SIZE

DEPTNO NUMBER 2

DNAME VARCHAR2 20

LOC (location) VARCHAR2 20

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CREATE TABLE DEPT

(DEPTNO NUMBER(2),

DNAME VARCHAR2(20),

LOC VARCHAR2(20));

How to display structure of dept table

Solution:

Desc dept

Output:

Insert At least 5 records.

Output:

3. Create a SalGrade Table with Following Fields:

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FIELDS DATA TYPE SIZE

GRADE NUMBER 1

LOSAL NUMBER 5

HISAL NUMBER 5

CREATE TABLE SALGRADE

(GRADE NUMBER(1),

LOSAL VARCHAR2(5),

HISAL VARCHAR2(5));

How to display structure of salgrade table

Solution:

Desc salgrade:

Output:

Insert Atleast 5 records.

Output:

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SELECT STATEMENT

1. List all the information about all Employees.

Solution:

Select * from emp;

Output:

2. Display the Name of all Employees along with their Salary.

Solution:

Select ename,sal from emp;

Output:

3. List all the Employee Names who is working with Department Number is 20.

Solution:

Select ename from emp

Where deptno=20;

Output:

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4. List the Name of all ‘MANAGER’ and ‘SALESMAN’.

Solution:

Select ename from emp

Where job=’manager’ and job=’salesman’;

Output:

5. Display the details of those Employees who have joined before the end of Sept.

1981.

Solution:

Select * from emp

where hiredate<'1-sep-1981';

Output:

6. List the Employee Name and Employee Number, who is ‘MANAGER’.

Solution:

Select ename,empno from emp

Where job=’manager’;

Output:

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7. List the Name and Job of all Employees who are not ‘CLERK’.

Solution:

Select ename,job from emp where job!='clerk';

Output:

8. List the Name of Employees, whose Employee Number is 7369,7521,7839,7934

or 7788.

Solution:

Select ename from emp

where empno=7369 or empno=7521 or empno=7839 or empno=7934 or

empno=7788;

Output:

9. List the Employee detail who does not belongs to Department Number 10 and

30.

Solution:

10

Select * from emp

where deptno!=10 and deptno!=30;

Output:

10. List the Employee Name and Salary, whose Salary is vary from 10000 to 20000.

Solution:

select ename,sal from emp

where sal between 10000 and 20000;

Output:

11. List the Employee Names, who have joined before 30-Jun-1981 and after Dec-

1981.

Solution:

Select ename from emp

where hiredate<'30-jun-1981' or hiredate>'31-dec-1981';

Output:

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12. List the Commission and Name of Employees, who are availing the

Commission.

Solution:

Select ename,comm from emp

where comm is not null;

Output:

13. List the Name and Designation (job) of the Employees who does not report to

anybody.

Solution:

Select ename,job from emp

where mgr!=0;

Output:

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14. List the detail of the Employees, whose Salary is greater than 2000 and

Commission is NULL.

Solution:

Select * from emp

where sal>2000 and comm is null;

Output:

15. List the Employee details whose Name start with ‘S’.

Solution:

Select * from emp

where ename like 's%';

Output:

16. List the Employee Names and Date of Joining in Descending Order of Date of

Joining. The column title should be “Date Of Joining”.

Solution:

Select ename,hiredate as "date of joining" from emp

order by "date of joining" desc;

Output:

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17. List the Employee Name, Salary, Job and Department Number and display it in

Descending Order of Department Number, Ascending Order of Name and

Descending Order of Salary.

Solution:

Select ename,sal,job,deptno from emp

order by deptno desc,ename asc ,sal desc;

Output:

18. List the Employee Name, Salary, PF, HRA, DA and Gross Salary; Order the result

in Ascending Order of Gross Salary. HRA is 50% of Salary, DA is 30% and PF is

10%.

Solution:

Select ename,sal+(sal*50)/100+(sal*30)/100-(sal*10)/100 as "gross salary" from emp;

order by "gross salary" asc;

Output:

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19. List Salesman from dept No 20.

Solution:

Select * from emp

where job='salesman' and deptno=20;

Output:

20. List Clerks from 20 and salesman from 30. In the list the lowest earning

employee must at top.

Solution:

Select * from emp

where job='clerk' and deptno=15 or job='salesman'and deptno=30

order by sal asc;

Output:

21. List different departments from Employee table.

Solution:

Select distinct deptno from emp;

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Output:

22. List employees having “G” at the end of their Name.

Solution:

Select * from emp

where ename like'%g';

Output:

23. List employee who are not managed by anyone.

Solution:

Select * from emp

where mgr is null;

Output:

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24. List employees who are having “TT” or “LL” in their names.

Solution:

Select * from emp

where ename like'%tt%' or ename like'%ll%';

Output:

25. List employees earning salaries below 1500 and more than 3000.

Solution:

Select * from emp

where sal<1500 or sal>3000;

Output:

26. List employees who are drawing some commission. Display their total salary as

well.

Solution:

Select ename,(sal+comm) from emp

where comm is not null;

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Output:

27. List employees who are drawing more commission than their salary. Only those

records should be displayed where commission is given (also sort the output

in the descending order of commission).

Solution:

Select * from emp

where comm is not null and comm>sal

order by comm desc;

Output:

28. List the employees who joined the company in the month of “JAN”.

Solution:

Select * from emp

where hiredate between'1-jan-1985' and '31-jan-1985';

Output:

29. List employees who are working as salesman and having names of four

characters.

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Solution:

Select * from emp

where job='salesman' and ename like'____';

Output:

30. List employee who are managed by 7839.

Solution:

Select * from emp

where mgr=7839;

Output:

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GROUPING, HAVING ETC.

1. List the Department number and total number of employees in each department.

Solution:

Select deptno,count(empno) from emp

group by deptno;

Output:

2. List the different Job names (Designation) available in the EMP table.

Solution:

Select distinct job from emp;

Output:

3. List the Average Salary and number of Employees working in Department

number 20.

Solution:

Select avg(sal),count(empno) from emp

where deptno=20;

Output:

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4. List the Department Number and Total Salary payable at each Department.

Solution:

Select deptno,sum(sal+comm) from emp

group by deptno;

Output:

5. List the jobs and number of Employees in each Job. The result should be in

Descending Order of the number of Employees.

Solution:

Select job,count(empno) from emp

group by job

order by count(empno) desc;

Output:

6. List the Total salary, Maximum Salary, Minimum Salary and Average Salary of

Employees job wise, for Department number 10 only.

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Solution:

Select job,sum(sal+comm),max(sal),min(sal),avg(sal) from emp

where deptno=10

group by job;

Output:

7. List the Average Salary of each Job, excluding ‘MANAGERS’.

Solution:

Select job,avg(sal) from emp

where job!='manager'

group by job;

Output:

8. List the Average Monthly Salary for each Job within each department.

Solution:

Select avg(sal),deptno from emp

group by job,deptno;

Output:

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9. List the Average Salary of all departments, in which more than one people are

working.

Solution:

Select avg(sal),count(empno) from emp

group by job,deptno

having count(empno)>1;

Output:

10. List the jobs of all Employees where Maximum Salary is greater than or equal

to 5000.

Solution:

Select job,max(sal) from emp

group by job

having max(sal)>=5000;

Output:

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11. List the total salary and average salary of the Employees job wise, for

department number 20 and

display only those rows having average salary greater than 1000.

Solution:

Select sum(sal+comm),avg(sal) from emp

where deptno=20

group by job

having max(sal)>1000;

Output:

12. List the total salaries of only those departments in which at least 3 employees

are working.

Solution:

Select sum(sal+comm),count(empno),deptno from emp

group by deptno

having count(empno)>=3;

Output:

13. List the Number of Employees Managed by Each Manager

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Solution:

Select count(empno) from emp

group by mgr;

Output:

14. List Average Commission Drawn by all Salesman

Solution:

Select avg(comm),job from emp

where job='salesman'

group by job;

Output:

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FUNCTIONS

1. Calculate the remainder for two given numbers. (213,9)

Solution:

Select mod(213,9) from dual;

Output:

2. Calculate the power of two numbers entered by the users at run time of the

query.

Solution:

Select power(:first,:second) from dual;

Output:

3. Enter a number and check whether it is negative or positive.

Solution:

Select sign(:a) from dual;

Output:

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4. Calculate the square root for the given number. (i.e. 10000).

Solution:

Select sqrt(10000) from dual;

Output:

5. Enter a float number and truncate it up to 1 and -2 places of decimal.

Solution:

Select trunc(:a,1),trunc(:b,-2) from dual;

Output:

6. Find the rounding value of 563.456, up to 2, 0 and -2 places of decimal.

Solution:

Select round(563.456,2) as "upto2" ,round(563.456,0) as "upto0" ,round(563.456,-2)

as "upto-2" from dual;

Output:

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7. Accept two numbers and display its corresponding character with the

appropriate title.

Solution:

Select chr(:num) from dual;

Output:

8. Input two names and concatenate it separated by two spaces.

Solution:

Select :n || ' ' || :n1 from dual;

Output:

9. Display all the Employee names-with first character in upper case from EMP

table.

Solution:

Select initcap(:a) from dual;

Output:

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10. Display all the department names in upper and lower cases.

Solution:

Select upper(dname),lower(dname) from dept;

Output:

11. Extract the character S and A from the left and R and N from the right of the

Employee name from EMP table.

Solution:

Select ename,ltrim(ename,'sa'),rtrim(ename,'rn') from emp;

Output:

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12. Change all the occurrences of C with P in job domain.

Solution:

Select translate(job,'c','p') from emp;

Output:

13. Display the information of those Employees whose name has the second

character A.

Solution:

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Select * from emp

where instr(ename,'a')=2;

Output:

14. Display the ASCII code of the character entered by the user.

Solution:

Select ascii(:n) from dual;

Output:

15. Display the Employee names along with the location of the character A in the

Employees name from EMP table where the job is CLERK.

Solution:

Select ename,instr(ename,'a')from emp

where job='clerk';

Output:

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16. Find the Employee names with maximum number of characters in it.

Solution:

Select max(length(ename)) from emp;

Output:

17. Display the salary of those Employees who are getting salary in three figures.

Solution:

Select sal from emp

where length(sal)=4;

Output:

18. Display only the first three characters of the Employees name and their H RA

(salary * .20), truncated to decimal places.

Solution:

Select substr(ename,1,3),trunc(sal*.20) from emp;

Output:

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19. List all the Employee names, who have more than 20 years of experience in the

company.

Solution:

Select ename from emp

where round(months_between(sysdate,hiredate)/12)>20;

Output:

20. Display the name and job for every Employee, while displaying jobs, 'CLERK'

should be displayed as 'LDC' and 'MANAGER' should be displayed as 'MNGR'.

The other job title should be as they are.

Solution:

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Select ename,job,decode(job,'clerk','LDC','manager','MNGR')promotion from emp;

Output:

21. Display Date in the Following Format Tuesday 31 December 2002.

Solution:

Select to_char(sysdate,'day') || to_char(sysdate,'dd-month-yyyy') from dual;

Output:

22. Display the Sunday coming After 3 Months from Today’s Date.

Solution:

Select next_day(add_months(sysdate,3),1) from dual;

Output:

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Coverage Joins

1. List Employee Name, Job, Salary, Grade & the Location where they are working

Solution:

Select e.ename,e.job,e.sal,s.grade,d.loc from emp e join dept d on e.deptno=d.deptno

join salgrade s on e.sal between losal and hisal;

Output:

2. Count the Employees For Each Salary Grade for Each Location

Solution:

Select count(e.empno),s.grade,d.loc from emp e join salgrade s on e.sal between

losal and hisal join dept d on e.deptno=d.deptno group by s.grade,d.loc;

Output:

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3. List the Average Salary for Those Employees who are drawing salaries of grade

is 3

Solution:

Select avg(e.sal),s.grade from emp e join salgrade s on e.sal between losal and hisal

where s.grade=3 group by s.grade;

Output:

4. List Employee Name, Job, Salary Of those employees who are working in

Accounting or Finance department but drawing salaries of grade 3

Solution:

Select e.ename,e.job,e.sal,d.dname,s.grade from emp e join dept d on

e.deptno=d.deptno join salgrade s on e.sal between losal and hisal where

(d.dname=’accounting’ or d.dname=’finance’)and s.grade=3;

Output:

5. List employee Names, Manager Names & also Display the Employees who are

not managed by anyone

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Solution:

Select e.ename,m.ename from emp e left outer join emp m on e.empno=m.mgr;

Output:

6. List Employees who are drawing salary more than the salary of SCOTT

Solution:

Select e.* from emp e join emp f on e.sal>f.sal where f.ename='scott';

Output:

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7. List Employees who have joined the company after their managers

Solution:

Select e.* from emp e join emp m on e.empno=m.mgr where e.hiredate>m.hiredate

Output:

8. List Employee Name, Job, Salary, Department No, Department name and

Location Of all employees Working at NEW YORK

Solution:

Select ename,job,sal,deptno,dname,loc from emp join dept using(deptno) where

loc=’new york’;

Output:

9. List Employee Name, Job, Salary, Hire Date and Location Of all employees

reporting in Accounting or Sales Department

Solution:

Select ename,job,sal,hiredate,loc from emp join dept using(deptno) where

dname=’accounting’ or dname=’sales’;

Output:

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10. List Employee Name, Job, Salary, Department Name, Location for Employees

drawing salary more than 2000 and working at New York or Dallas

Solution:

Select ename,job,sal,dname,loc from emp join dept using(deptno) where sal>2000

and loc=’newyork’ or loc=’udaipur’;

Output:

11. List Employee Name, Job, Salary, Department Name, Location Of all

employees, also list the Department Details in which no employee is working

Solution:

Select e.ename,e.sal,d.dname,d.loc from emp e right outer join dept d on

e.deptno=d.deptno;

Output:

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Nested and Correlated sub queries

1. List Employees who are working in the Sales Department (Use Nested)

Solution:

Select * from emp where deptno=(Select deptno from dept where dname=’sales’);

Output:

2. List Departments in which at least one employee is working (Use Nested)

Solution:

Select dname from dept where deptno in(Select deptno from emp);

Output:

3. Find the Names of employees who do not work in the same department of Scott.

Solution:

Select ename from emp where deptno<>(Select deptno from emp where

ename=’scott’);

Output:

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4. List departments (dept details) in which no employee is working (use nested)

Solution:

Select dname from dept where deptno<>all(Select deptno from emp);

output:

5. List Employees who are drawing the Salary more than the Average salary of

DEPTNO 30. Also ensure that the result should not contain the records of

DEPTNO 30

Solution:

Select * from emp where sal>(Select avg(sal)from emp where deptno=30)and

deptno!=30;

Output:

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6. List Employee names drawing Second Maximum Salary

Solution:

Select ename from emp where sal=(Select (max(sal)) from emp where sal<(Select

(max(sal)) from emp));

Output:

7. List the Employee Names, Job & Salary for those employees who are drawing

minmum salaries for their department (Use Correlated)

Solution:

Select ename,job,sal from emp e

where sal=(Select min(sal)from emp i where e.deptno=i.deptno);

Output:

8. List the highest paid employee for each department using correlated sub query.

Solution:

Select * from emp e where e.sal=(Select max(sal) from emp i where

i.deptno=e.deptno);

Output:

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9. List Employees working for the same job type as of KING and drawing more

than him (use Self Join)

Solution:

Select e.* from emp e join emp f on e.job=f.job where e.sal>f.sal and e.ename='king';

Output: