Informatica e-learning by BigClasses Team
Informatica works as a application developed most famous for details warehousing tasks. The value includes various ETL resources that assist the success and the doing of all the application. The appropriate servicing and also the history of details are extremely crucial for an company. This allows in appropriate doing as to the company providing the best outcomes when it comes to the development and achievements of all the corporation. The Informatica application within the today's world has also drawn many applicants who desire to make a profession in informatica. Upon the profession front, Informatica studying has grown to be one of the most common and considerably recommended programs. That's very apparent in the ongoing increasing information of all the achievements of all the on the internet course.
Informatica studying helps the company to perform various features like details incorporation, details migration, details warehousing, relief of the details, synchronization regarding details and further allows in appropriate management of the extensive details too.
ROLES OF INFORMATICA Researching
Informatica consist of various details modelers, DBAs and ETL designers. The elements aid in healthy the raw details gathered from the resources and getting them in to the very best resource. The outcomes is now, modified and lastly packed at its right resource. For better understanding of the elements, let's talk about every part and responsibilities of all the previously known as elements.
Information modelers said above play the part of assessing the outcomes. Details are examined from two significant resources such as history structure 1 and a couple of. The further responsibility regarding modelers would be to style the details designs. Developing the details designs is the significant task conducted by the modelers. The developed details is further created into programs to make necessary platforms and maintain a appropriate history of details.
DBAs start doing should the details modelers are implemented with their group of work. The DBAs style the necessary directories and platforms following the the program created by the modelers. Finally, the ETL designers draw out the necessary details and progressively fill it on the focus on resources once the details is conducted with the required changes.
INFORMATICA Getting knowledge of
Informatica studying can be done on the internet. Various organizations and schools are also an option for applicants prepared to learn Informatica. The Informatica studying is a pain-free process and allows you to fish fish health is determined by the application well with ease. The elements as well as the working of all the Informatica application can be easily recognized and the doing of all the application can be better recognized with the programs the value offers. The studying even allows you to increase your Informatica skills. The ability protected in Informatica studying ETL resources is relatively below any other SQL resources. Informatica consists of huge technology. Upon its evaluation with other ETL resources or application Informatica are presented to be a better one.
Informatica studying helps the company to perform various features like details incorporation, details migration, details warehousing, relief of the details, synchronization regarding details and further allows in appropriate management of the extensive details too.
ROLES OF INFORMATICA Researching
Informatica consist of various details modelers, DBAs and ETL designers. The elements aid in healthy the raw details gathered from the resources and getting them in to the very best resource. The outcomes is now, modified and lastly packed at its right resource. For better understanding of the elements, let's talk about every part and responsibilities of all the previously known as elements.
Information modelers said above play the part of assessing the outcomes. Details are examined from two significant resources such as history structure 1 and a couple of. The further responsibility regarding modelers would be to style the details designs. Developing the details designs is the significant task conducted by the modelers. The developed details is further created into programs to make necessary platforms and maintain a appropriate history of details.
DBAs start doing should the details modelers are implemented with their group of work. The DBAs style the necessary directories and platforms following the the program created by the modelers. Finally, the ETL designers draw out the necessary details and progressively fill it on the focus on resources once the details is conducted with the required changes.
INFORMATICA Getting knowledge of
Informatica studying can be done on the internet. Various organizations and schools are also an option for applicants prepared to learn Informatica. The Informatica studying is a pain-free process and allows you to fish fish health is determined by the application well with ease. The elements as well as the working of all the Informatica application can be easily recognized and the doing of all the application can be better recognized with the programs the value offers. The studying even allows you to increase your Informatica skills. The ability protected in Informatica studying ETL resources is relatively below any other SQL resources. Informatica consists of huge technology. Upon its evaluation with other ETL resources or application Informatica are presented to be a better one.
WHAT IS INFORMATICA?
Informatica is a company that offers the following tools
· Informatica Power Centre
· Informatica Power Exchange
· Informatica Reporting Services
Informatica Power Centre:
Informatica Power Centre is an ETL tool which is responsible to convert source ER modeling data into dimensional modeling data. Informatica has complete End to End solutions in ETL side which satisfies all business needs in less cost.
Informatica Power Exchange:
Informatica Power Exchange is another tool from Informatica company to migrate the data from source database to Target database. Informatica Power Exchange is used for data migrations.
Informatica Reporting Services:
Informatica Reporting Services is a Reporting tool from Informatica company. Informatica Reporting Services is used for generating business reports from various databases.
In Informatica power centre We have Server software and client software. Server software is responsible for execution. Informatica power centre client software has the following components
Informatica Designer
Informatica Workflow Manager
Informatica Workflow Monitor
Informatica Repository Manager.
As we know that Informatica power centre is an ETL Tool, now we need to know what is ETL stands for ? ETL stands for Extract Transforms and Load. Informatica is used to read data from various sources which includes many Relational databases like Oracle,DB2,,Sybase,MySQL,SQL Server Exadata,Greenplum, vertica,Neoview,PostgreSQL,Netezza ,VSAM, Web Services and Teradata . Informatica Power Centre can also supports to read XML files, flat files. Informatica supports most operating systems and platforms line Windows, Linux, Solaris,HP-UX,AIX,Tru64.
Informatica supports to read data from various relational databases, After reading data from source we will transform that data based on our requirement and then load that data into data warehouse. This process of extracting ,transforming and loading is called data acquisition. Informatica Power Centre is used to maintain current data and historical data but in ordinary databases we can only maintain current data. In Informatica we will do most of the work by simply dragging and dropping with mouse in the Informatica designer. This makes it very easy to understand the users what is going on. Informatica can also be used as a Integration tool.
· Informatica Power Centre
· Informatica Power Exchange
· Informatica Reporting Services
Informatica Power Centre:
Informatica Power Centre is an ETL tool which is responsible to convert source ER modeling data into dimensional modeling data. Informatica has complete End to End solutions in ETL side which satisfies all business needs in less cost.
Informatica Power Exchange:
Informatica Power Exchange is another tool from Informatica company to migrate the data from source database to Target database. Informatica Power Exchange is used for data migrations.
Informatica Reporting Services:
Informatica Reporting Services is a Reporting tool from Informatica company. Informatica Reporting Services is used for generating business reports from various databases.
In Informatica power centre We have Server software and client software. Server software is responsible for execution. Informatica power centre client software has the following components
Informatica Designer
Informatica Workflow Manager
Informatica Workflow Monitor
Informatica Repository Manager.
As we know that Informatica power centre is an ETL Tool, now we need to know what is ETL stands for ? ETL stands for Extract Transforms and Load. Informatica is used to read data from various sources which includes many Relational databases like Oracle,DB2,,Sybase,MySQL,SQL Server Exadata,Greenplum, vertica,Neoview,PostgreSQL,Netezza ,VSAM, Web Services and Teradata . Informatica Power Centre can also supports to read XML files, flat files. Informatica supports most operating systems and platforms line Windows, Linux, Solaris,HP-UX,AIX,Tru64.
Informatica supports to read data from various relational databases, After reading data from source we will transform that data based on our requirement and then load that data into data warehouse. This process of extracting ,transforming and loading is called data acquisition. Informatica Power Centre is used to maintain current data and historical data but in ordinary databases we can only maintain current data. In Informatica we will do most of the work by simply dragging and dropping with mouse in the Informatica designer. This makes it very easy to understand the users what is going on. Informatica can also be used as a Integration tool.
Informatica online training
DATAWAREHOUSING CONCEPTS:
INTRODUCTION TO DATAWAREHOUSING
Data Warehousing Concepts
Dataware housing (what/Why/How)
Data Modelling(Schemas, FACTS and DIMENSIONS)
Slowly Changing Dimensions
Metadata
PowerCenter Components and User Interface
PowerCenter Architecture
PowerCenter Client Tools
Lab – Using the Designer and Workflow Manager
Source Qualifier
Source Qualifier Transformation
Lab Project Overview
Lab A – Load Payment Staging Table
Source qualifier Joins
Lab B – Load Product Staging Table
Source Pipelines
Lab C – Load Dealership and Promotions Staging Table and Real time issues
Expression, Filter, File Lists and Workflow Scheduler
Expression Editor
Filter Transformation
File Lists
Workflow Scheduler
Lab – Load the Customer Staging Table and Real time issues
Joins, Features and Techniques I
Joiner Transformation
Shortcuts
Lab A – Load Sales Transaction Staging Table
Lab B – Features and Techniques I and Real time issues
Lookups and Reusable Transformations
Lookup Transformation
Reusable Transformations
Lab A – Load Employee Staging Table
Lab B – Load Date Staging Table and Real time issues
Debugger
Debugging Mappings
Lab – Using the Debugger
Sequence Generator
Sequence Generator Transformation
Lab – Load Date Dimension Table and Real time issues
Lookup Caching, More Features and Techniques
Lookup Caching
Lab A – Load Promotions Dimension Table
Lab B – Features and Techniques II
Review and more Lab Activities and Real time issues
Router, update Strategy and Overrides
Router Transformation
Update Strategy Transformation
Expression Default Values
Source Qualifier Override
Target Override
Session Task Mapping Overrides
Lab – Load Employee Dimension Table and Real time issues
Dynamic Lookup and Error Logging
Dynamic Lookup
Error Logging
Lab – Load Customer Dimension Table
Unconnected Lookup, Parameters and Variables
Unconnected Lookup Transformation
System Variables
Mapping Parameters and Variables
Lab – Load Sales Fact Table
Sorter, Aggregator and Self-Join
Sorter Transformation
Aggregator Transformation
Active and Passive Transformations
Data Concatenation
Self-Join
Lab – Reload the Employee Staging Table and Real time issues
SCD type1 – LAB
SCD type2 – LAB
SCD type3 – LAB
Mapplets
Lab – Load Product Daily Aggregate Table
Review and more Lab Activities and Real time issues
Workflow Variables and Tasks
Link Conditions
Workflow Variables
Assignment Task
Decision Task
Email Task
Lab – Load Product Weekly Aggregate Table
More Tasks and Reusability
Event Raise Task
Event Wait Task
Command Task
Reusable Tasks
Reusable Session Task
Reusable Session Configuration
Worklets and More Tasks
Worklets
Timer Task
Control Task
Lab – Load Inventory Fact Table
More about Informatica Online Training :
About Informatica Trainer :
Informatica Online Training batch information:
Informatica is a company that offers the following tools
INTRODUCTION TO DATAWAREHOUSING
Data Warehousing Concepts
Dataware housing (what/Why/How)
Data Modelling(Schemas, FACTS and DIMENSIONS)
Slowly Changing Dimensions
Metadata
PowerCenter Components and User Interface
PowerCenter Architecture
PowerCenter Client Tools
Lab – Using the Designer and Workflow Manager
Source Qualifier
Source Qualifier Transformation
Lab Project Overview
Lab A – Load Payment Staging Table
Source qualifier Joins
Lab B – Load Product Staging Table
Source Pipelines
Lab C – Load Dealership and Promotions Staging Table and Real time issues
Expression, Filter, File Lists and Workflow Scheduler
Expression Editor
Filter Transformation
File Lists
Workflow Scheduler
Lab – Load the Customer Staging Table and Real time issues
Joins, Features and Techniques I
Joiner Transformation
Shortcuts
Lab A – Load Sales Transaction Staging Table
Lab B – Features and Techniques I and Real time issues
Lookups and Reusable Transformations
Lookup Transformation
Reusable Transformations
Lab A – Load Employee Staging Table
Lab B – Load Date Staging Table and Real time issues
Debugger
Debugging Mappings
Lab – Using the Debugger
Sequence Generator
Sequence Generator Transformation
Lab – Load Date Dimension Table and Real time issues
Lookup Caching, More Features and Techniques
Lookup Caching
Lab A – Load Promotions Dimension Table
Lab B – Features and Techniques II
Review and more Lab Activities and Real time issues
Router, update Strategy and Overrides
Router Transformation
Update Strategy Transformation
Expression Default Values
Source Qualifier Override
Target Override
Session Task Mapping Overrides
Lab – Load Employee Dimension Table and Real time issues
Dynamic Lookup and Error Logging
Dynamic Lookup
Error Logging
Lab – Load Customer Dimension Table
Unconnected Lookup, Parameters and Variables
Unconnected Lookup Transformation
System Variables
Mapping Parameters and Variables
Lab – Load Sales Fact Table
Sorter, Aggregator and Self-Join
Sorter Transformation
Aggregator Transformation
Active and Passive Transformations
Data Concatenation
Self-Join
Lab – Reload the Employee Staging Table and Real time issues
SCD type1 – LAB
SCD type2 – LAB
SCD type3 – LAB
Mapplets
Lab – Load Product Daily Aggregate Table
Review and more Lab Activities and Real time issues
Workflow Variables and Tasks
Link Conditions
Workflow Variables
Assignment Task
Decision Task
Email Task
Lab – Load Product Weekly Aggregate Table
More Tasks and Reusability
Event Raise Task
Event Wait Task
Command Task
Reusable Tasks
Reusable Session Task
Reusable Session Configuration
Worklets and More Tasks
Worklets
Timer Task
Control Task
Lab – Load Inventory Fact Table
More about Informatica Online Training :
About Informatica Trainer :
Informatica Online Training batch information:
Informatica is a company that offers the following tools
Informatica Power Centre
Informatica Power Exchange
Informatica Reporting Services
Informatica Power Exchange
Informatica Reporting Services
Informatica Power Centre:
Informatica Power Centre is an ETL tool which is responsible to convert source ER
modeling data into dimensional modeling data. Informatica has complete End to End
solutions in ETL side which satisfies all business needs in less cost.
Informatica Power Exchange:
Informatica Power Exchange is another tool from Informatica company to migrate the
data from source database to Target database. Informatica Power Exchange is used
for data migrations.
Informatica Reporting Services:
Informatica Reporting Services is a Reporting tool from Informatica company.
Informatica Reporting Services is used for generating business reports from various
databases.
In Informatica power centre We have Server software and client software. Server
software is responsible for execution. Informatica power centre client software has the
following components
Informatica Designer
Informatica Workflow Manager
Informatica Workflow Monitor
Informatica Repository Manager
Informatica Power Centre is an ETL tool which is responsible to convert source ER
modeling data into dimensional modeling data. Informatica has complete End to End
solutions in ETL side which satisfies all business needs in less cost.
Informatica Power Exchange:
Informatica Power Exchange is another tool from Informatica company to migrate the
data from source database to Target database. Informatica Power Exchange is used
for data migrations.
Informatica Reporting Services:
Informatica Reporting Services is a Reporting tool from Informatica company.
Informatica Reporting Services is used for generating business reports from various
databases.
In Informatica power centre We have Server software and client software. Server
software is responsible for execution. Informatica power centre client software has the
following components
Informatica Designer
Informatica Workflow Manager
Informatica Workflow Monitor
Informatica Repository Manager
SQL QUERIES
1) Display the details of all employees
SQL>Select * from emp;
SQL>Select * from emp;
2) Display the depart information from department table
SQL>select * from dept;
SQL>select * from dept;
3) Display the name and job for all the employees
SQL>select ename,job from emp;
SQL>select ename,job from emp;
4) Display the name and salary for all the employees
SQL>select ename,sal from emp;
SQL>select ename,sal from emp;
5) Display the employee no and totalsalary for all the employees
SQL>select empno,ename,sal,comm, sal+nvl(comm,0) as”total salary” from
emp
SQL>select empno,ename,sal,comm, sal+nvl(comm,0) as”total salary” from
emp
6) Display the employee name and annual salary for all employees.
SQL>select ename, 12*(sal+nvl(comm,0)) as “annual Sal” from emp
SQL>select ename, 12*(sal+nvl(comm,0)) as “annual Sal” from emp
7) Display the names of all the employees who are working in depart number 10.
SQL>select emame from emp where deptno=10;
SQL>select emame from emp where deptno=10;
Display the names of all the employees who are working as clerks anddrawing a salary more than 3000.
SQL>select ename from emp where job=’CLERK’ and sal>3000;
9) Display the employee number and name who are earning comm.
SQL>select empno,ename from emp where comm is not null;
SQL>select empno,ename from emp where comm is not null;
10) Display the employee number and name who do not earn any comm.
SQL>select empno,ename from emp where comm is null;
SQL>select empno,ename from emp where comm is null;
11) Display the names of employees who are working as clerks,salesman or
analyst and drawing a salary more than 3000.
SQL>select ename from emp where job=’CLERK’ OR JOB=’SALESMAN’
OR JOB=’ANALYST’ AND SAL>3000;
analyst and drawing a salary more than 3000.
SQL>select ename from emp where job=’CLERK’ OR JOB=’SALESMAN’
OR JOB=’ANALYST’ AND SAL>3000;
12) Display the names of the employees who are working in the company for
the past 5 years;
the past 5 years;
SQL>select ename from emp where to_char(sysdate,’YYYY’)-to_char(hiredate,’YYYY’)>=5;
13) Display the list of employees who have joined the company before
30-JUN-90 or after 31-DEC-90.
a)select ename from emp where hiredate < ’30-JUN-1990′ or hiredate >
’31-DEC-90′;
30-JUN-90 or after 31-DEC-90.
a)select ename from emp where hiredate < ’30-JUN-1990′ or hiredate >
’31-DEC-90′;
14) Display current Date.
SQL>select sysdate from dual;
SQL>select sysdate from dual;
15) Display the list of all users in your database(use catalog table).
SQL>select username from all_users;
SQL>select username from all_users;
16) Display the names of all tables from current user;
SQL>select tname from tab;
SQL>select tname from tab;
17) Display the name of the current user.
SQL>show user
SQL>show user
18) Display the names of employees working in depart number 10 or 20 or 40
or employees working as
CLERKS,SALESMAN or ANALYST.
SQL>select ename from emp where deptno in(10,20,40) or job
in(‘CLERKS’,'SALESMAN’,'ANALYST’);
or employees working as
CLERKS,SALESMAN or ANALYST.
SQL>select ename from emp where deptno in(10,20,40) or job
in(‘CLERKS’,'SALESMAN’,'ANALYST’);
19) Display the names of employees whose name starts with alaphabet S.
SQL>select ename from emp where ename like ‘S%’;
SQL>select ename from emp where ename like ‘S%’;
20) Display the Employee names for employees whose name ends with alaphabet S.
SQL>select ename from emp where ename like ‘%S’;
SQL>select ename from emp where ename like ‘%S’;
21) Display the names of employees whose names have second alphabet A in
their names.
SQL>select ename from emp where ename like ‘_A%’;
their names.
SQL>select ename from emp where ename like ‘_A%’;
22) select the names of the employee whose names is exactly five characters
in length.
SQL>select ename from emp where length(ename)=5;
in length.
SQL>select ename from emp where length(ename)=5;
23) Display the names of the employee who are not working as MANAGERS.
SQL>select ename from emp where job not in(‘MANAGER’);
SQL>select ename from emp where job not in(‘MANAGER’);
24) Display the names of the employee who are not working as SALESMAN OR
CLERK OR ANALYST.
SQL>select ename from emp where job not
in(‘SALESMAN’,'CLERK’,'ANALYST’);
CLERK OR ANALYST.
SQL>select ename from emp where job not
in(‘SALESMAN’,'CLERK’,'ANALYST’);
25) Display all rows from emp table.The system should wait after every
screen full of informaction.
SQL>set pause on
screen full of informaction.
SQL>set pause on
26) Display the total number of employee working in the company.
SQL>select count(*) from emp;
SQL>select count(*) from emp;
27) Display the total salary beiging paid to all employees.
SQL>select sum(sal) from emp;
SQL>select sum(sal) from emp;
28) Display the maximum salary from emp table.
SQL>select max(sal) from emp;
SQL>select max(sal) from emp;
29) Display the minimum salary from emp table.
SQL>select min(sal) from emp;
SQL>select min(sal) from emp;
30) Display the average salary from emp table.
SQL>select avg(sal) from emp;
SQL>select avg(sal) from emp;
31) Display the maximum salary being paid to CLERK.
SQL>select max(sal) from emp where job=’CLERK’;
SQL>select max(sal) from emp where job=’CLERK’;
32) Display the maximum salary being paid to depart number 20.
SQL>select max(sal) from emp where deptno=20;
SQL>select max(sal) from emp where deptno=20;
33) Display the minimum salary being paid to any SALESMAN.
SQL>select min(sal) from emp where job=’SALESMAN’;
SQL>select min(sal) from emp where job=’SALESMAN’;
34) Display the average salary drawn by MANAGERS.
SQL>select avg(sal) from emp where job=’MANAGER’;
SQL>select avg(sal) from emp where job=’MANAGER’;
35) Display the total salary drawn by ANALYST working in depart number 40.
SQL>select sum(sal) from emp where job=’ANALYST’ and deptno=40;
SQL>select sum(sal) from emp where job=’ANALYST’ and deptno=40;
36) Display the names of the employee in order of salary i.e the name of
the employee earning lowest salary should salary appear first.
SQL>select ename from emp order by sal;
the employee earning lowest salary should salary appear first.
SQL>select ename from emp order by sal;
37) Display the names of the employee in descending order of salary.
a)select ename from emp order by sal desc;
a)select ename from emp order by sal desc;
38) Display the names of the employee in order of employee name.
a)select ename from emp order by ename;
a)select ename from emp order by ename;
39) Display empno,ename,deptno,sal sort the output first base on name and
within name by deptno and with in deptno by sal.
SQL>select empno,ename,deptno,sal from emp order by
within name by deptno and with in deptno by sal.
SQL>select empno,ename,deptno,sal from emp order by
40) Display the name of the employee along with their annual salary(sal*12).The name of the employee earning highest annual salary should apper first.
SQL>select ename,sal*12 from emp order by sal desc;
SQL>select ename,sal*12 from emp order by sal desc;
41) Display name,salary,hra,pf,da,total salary for each employee. The
output should be in the order of total salary,hra 15% of salary,da 10% of salary,pf 5%
salary,total salary will be(salary+hra+da)-pf.
SQL>select ename,sal,sal/100*15 as hra,sal/100*5 as pf,sal/100*10 as
da, sal+sal/100*15+sal/100*10-sal/100*5 as total from emp;
output should be in the order of total salary,hra 15% of salary,da 10% of salary,pf 5%
salary,total salary will be(salary+hra+da)-pf.
SQL>select ename,sal,sal/100*15 as hra,sal/100*5 as pf,sal/100*10 as
da, sal+sal/100*15+sal/100*10-sal/100*5 as total from emp;
42) Display depart numbers and total number of employees working in each
department.
SQL>select deptno,count(deptno)from emp group by deptno;
department.
SQL>select deptno,count(deptno)from emp group by deptno;
43) Display the various jobs and total number of employees within each job
group.
SQL>select job,count(job)from emp group by job;
group.
SQL>select job,count(job)from emp group by job;
44) Display the depart numbers and total salary for each department.
SQL>select deptno,sum(sal) from emp group by deptno;
SQL>select deptno,sum(sal) from emp group by deptno;
45) Display the depart numbers and max salary for each department.
SQL>select deptno,max(sal) from emp group by deptno;
SQL>select deptno,max(sal) from emp group by deptno;
46) Display the various jobs and total salary for each job
SQL>select job,sum(sal) from emp group by job;
SQL>select job,sum(sal) from emp group by job;
47) Display the various jobs and total salary for each job
SQL>select job,min(sal) from emp group by job;
SQL>select job,min(sal) from emp group by job;
48) Display the depart numbers with more than three employees in each dept.
SQL>select deptno,count(deptno) from emp group by deptno having
count(*)>3;
SQL>select deptno,count(deptno) from emp group by deptno having
count(*)>3;
49) Display the various jobs along with total salary for each of the jobs
where total salary is greater than 40000.
SQL>select job,sum(sal) from emp group by job having sum(sal)>40000;
where total salary is greater than 40000.
SQL>select job,sum(sal) from emp group by job having sum(sal)>40000;
50) Display the various jobs along with total number of employees in each
job.The output should contain only those jobs with more than three employees.
SQL>select job,count(empno) from emp group by job having count(job)>3
job.The output should contain only those jobs with more than three employees.
SQL>select job,count(empno) from emp group by job having count(job)>3
51) Display the name of the empployee who earns highest salary.
SQL>select ename from emp where sal=(select max(sal) from emp);
SQL>select ename from emp where sal=(select max(sal) from emp);
52) Display the employee number and name for employee working as clerk and
earning highest salary among clerks.
SQL>select empno,ename from emp where where job=’CLERK’
and sal=(select max(sal) from emp where job=’CLERK’);
earning highest salary among clerks.
SQL>select empno,ename from emp where where job=’CLERK’
and sal=(select max(sal) from emp where job=’CLERK’);
53) Display the names of salesman who earns a salary more than the highest
salary of any clerk.
SQL>select ename,sal from emp where job=’SALESMAN’ and sal>(select
max(sal) from emp
where job=’CLERK’);
salary of any clerk.
SQL>select ename,sal from emp where job=’SALESMAN’ and sal>(select
max(sal) from emp
where job=’CLERK’);
54) Display the names of clerks who earn a salary more than the lowest
salary of any salesman.
SQL>select ename from emp where job=’CLERK’ and sal>(select min(sal)
from emp
where job=’SALESMAN’);
salary of any salesman.
SQL>select ename from emp where job=’CLERK’ and sal>(select min(sal)
from emp
where job=’SALESMAN’);
Display the names of employees who earn a salary more than that of
Jones or that of salary grether than that of scott.
SQL>select ename,sal from emp where sal>
(select sal from emp where ename=’JONES’)and sal> (select sal from emp
where ename=’SCOTT’);
Jones or that of salary grether than that of scott.
SQL>select ename,sal from emp where sal>
(select sal from emp where ename=’JONES’)and sal> (select sal from emp
where ename=’SCOTT’);
55) Display the names of the employees who earn highest salary in their
respective departments.
SQL>select ename,sal,deptno from emp where sal in(select max(sal) from
emp group by deptno);
respective departments.
SQL>select ename,sal,deptno from emp where sal in(select max(sal) from
emp group by deptno);
56) Display the names of the employees who earn highest salaries in their
respective job groups.
SQL>select ename,sal,job from emp where sal in(select max(sal) from emp
group by job)
respective job groups.
SQL>select ename,sal,job from emp where sal in(select max(sal) from emp
group by job)
57) Display the employee names who are working in accounting department.
SQL>select ename from emp where deptno=(select deptno from dept where
dname=’ACCOUNTING’)
SQL>select ename from emp where deptno=(select deptno from dept where
dname=’ACCOUNTING’)
58) Display the employee names who are working in Chicago.
SQL>select ename from emp where deptno=(select deptno from dept where
LOC=’CHICAGO’)
SQL>select ename from emp where deptno=(select deptno from dept where
LOC=’CHICAGO’)
59) Display the Job groups having total salary greater than the maximum
salary for managers.
SQL>SELECT JOB,SUM(SAL) FROM EMP GROUP BY JOB HAVING SUM(SAL)>(SELECT
MAX(SAL) FROM EMP WHERE JOB=’MANAGER’);
salary for managers.
SQL>SELECT JOB,SUM(SAL) FROM EMP GROUP BY JOB HAVING SUM(SAL)>(SELECT
MAX(SAL) FROM EMP WHERE JOB=’MANAGER’);
60) Display the names of employees from department number 10 with salary
grether than that of any employee working in other department.
SQL>select ename from emp where deptno=10 and sal>any(select sal from
emp where deptno not in 10).
grether than that of any employee working in other department.
SQL>select ename from emp where deptno=10 and sal>any(select sal from
emp where deptno not in 10).
61) Display the names of the employees from department number 10 with
salary greater than that of all employee working in other departments.
SQL>select ename from emp where deptno=10 and sal>all(select sal from
emp where deptno not in 10).
salary greater than that of all employee working in other departments.
SQL>select ename from emp where deptno=10 and sal>all(select sal from
emp where deptno not in 10).
62) Display the names of the employees in Uppercase.
SQL>select upper(ename)from emp
SQL>select upper(ename)from emp
63) Display the names of the employees in Lowecase.
SQL>select lower(ename)from emp
SQL>select lower(ename)from emp
64) Display the names of the employees in Propercase.
SQL>select initcap(ename)from emp;
SQL>select initcap(ename)from emp;
65) Display the length of Your name using appropriate function.
SQL>select length(‘name’) from dual
SQL>select length(‘name’) from dual
66) Display the length of all the employee names.
SQL>select length(ename) from emp;
SQL>select length(ename) from emp;
67) select name of the employee concatenate with employee number.
SQL>select ename||empno from emp;
SQL>select ename||empno from emp;
68) User appropriate function and extract 3 characters starting from 2
characters from the following string ‘Oracle’. i.e the out put should be ‘ac’.
SQL>select substr(‘oracle’,3,2) from dual
characters from the following string ‘Oracle’. i.e the out put should be ‘ac’.
SQL>select substr(‘oracle’,3,2) from dual
69) Find the First occurance of character ‘a’ from the following string i.e
‘Computer Maintenance Corporation’.
SQL>SELECT INSTR(‘Computer Maintenance Corporation’,'a’,1) FROM DUAL
‘Computer Maintenance Corporation’.
SQL>SELECT INSTR(‘Computer Maintenance Corporation’,'a’,1) FROM DUAL
70) Replace every occurance of alphabhet A with B in the string Allens(use
translate function)
SQL>select translate(‘Allens’,'A’,'B’) from dual
translate function)
SQL>select translate(‘Allens’,'A’,'B’) from dual
71) Display the informaction from emp table.Where job manager is found it
should be displayed as boos(Use replace function).
SQL>select replace(JOB,’MANAGER’,'BOSS’) FROM EMP;
should be displayed as boos(Use replace function).
SQL>select replace(JOB,’MANAGER’,'BOSS’) FROM EMP;
72) Display empno,ename,deptno from emp table.Instead of display department
numbers display the related department name(Use decode function).
SQL>select empno,ename,decode(deptno,10,’ACCOUNTING’,20,’RESEARCH’,30,’SALES’,40,’OPRATIONS’) from emp;
numbers display the related department name(Use decode function).
SQL>select empno,ename,decode(deptno,10,’ACCOUNTING’,20,’RESEARCH’,30,’SALES’,40,’OPRATIONS’) from emp;
73) Display your age in days.
SQL>select to_date(sysdate)-to_date(’10-sep-77′)from dual
SQL>select to_date(sysdate)-to_date(’10-sep-77′)from dual
74) Display your age in months.
SQL>select months_between(sysdate,’10-sep-77′) from dual
SQL>select months_between(sysdate,’10-sep-77′) from dual
75) Display the current date as 15th Augest Friday Nineteen Ninety Saven.
SQL>select to_char(sysdate,’ddth Month day year’) from dual
SQL>select to_char(sysdate,’ddth Month day year’) from dual
76) Display the following output for each row from emp table.
scott has joined the company on wednesday 13th August ninten nintey.
SQL>select ENAME||’ HAS JOINED THE COMPANY ON ‘||to_char(HIREDATE,’day
ddth Month year’) from EMP;
scott has joined the company on wednesday 13th August ninten nintey.
SQL>select ENAME||’ HAS JOINED THE COMPANY ON ‘||to_char(HIREDATE,’day
ddth Month year’) from EMP;
77) Find the date for nearest saturday after current date.
SQL>SELECT NEXT_DAY(SYSDATE,’SATURDAY’)FROM DUAL;
SQL>SELECT NEXT_DAY(SYSDATE,’SATURDAY’)FROM DUAL;
78) Display current time.
SQL>select to_char(sysdate,’hh:MM:ss’) from dual.
SQL>select to_char(sysdate,’hh:MM:ss’) from dual.
79) Display the date three months Before the current date.
SQL>select add_months(sysdate,3) from dual;
SQL>select add_months(sysdate,3) from dual;
80) Display the common jobs from department number 10 and 20.
SQL>select job from emp where deptno=10 and job in(select job from emp
where deptno=20);
SQL>select job from emp where deptno=10 and job in(select job from emp
where deptno=20);
81) Display the jobs found in department 10 and 20 Eliminate duplicate jobs.
SQL>select distinct(job) from emp where deptno=10 or deptno=20
(or)
SQL>select distinct(job) from emp where deptno in(10,20);
SQL>select distinct(job) from emp where deptno=10 or deptno=20
(or)
SQL>select distinct(job) from emp where deptno in(10,20);
82) Display the jobs which are unique to department 10.
SQL>select distinct(job) from emp where deptno=10
SQL>select distinct(job) from emp where deptno=10
83) Display the details of those who do not have any person working under them.
SQL>select e.ename from emp,emp e where emp.mgr=e.empno group by
e.ename having count(*)=1;
SQL>select e.ename from emp,emp e where emp.mgr=e.empno group by
e.ename having count(*)=1;
84) Display the details of those employees who are in sales department and
grade is 3.
grade is 3.
SQL>select * from emp where deptno=(select deptno from dept where
dname=’SALES’)and sal between(select losal from salgrade where grade=3)and
(select hisal from salgrade where grade=3);
dname=’SALES’)and sal between(select losal from salgrade where grade=3)and
(select hisal from salgrade where grade=3);
85) Display those who are not managers and who are managers any one.
i)display the managers names
SQL>select distinct(m.ename) from emp e,emp m where m.empno=e.mgr;
i)display the managers names
SQL>select distinct(m.ename) from emp e,emp m where m.empno=e.mgr;
ii)display the who are not managers
SQL>select ename from emp where ename not in(select distinct(m.ename)
from emp e,emp m where m.empno=e.mgr);
SQL>select ename from emp where ename not in(select distinct(m.ename)
from emp e,emp m where m.empno=e.mgr);
86) Display those employee whose name contains not less than 4 characters.
SQL>select ename from emp where length(ename)>4;
SQL>select ename from emp where length(ename)>4;
87) Display those department whose name start with “S” while the location
name ends with “K”.
SQL>select dname from dept where dname like ‘S%’ and loc like ‘%K’;
name ends with “K”.
SQL>select dname from dept where dname like ‘S%’ and loc like ‘%K’;
88) Display those employees whose manager name is JONES.
SQL>select p.ename from emp e,emp p where e.empno=p.mgr and
e.ename=’JONES’;
SQL>select p.ename from emp e,emp p where e.empno=p.mgr and
e.ename=’JONES’;
89) Display those employees whose salary is more than 3000 after giving 20%
increment.
SQL>select ename,sal from emp where (sal+sal*.2)>3000;
increment.
SQL>select ename,sal from emp where (sal+sal*.2)>3000;
90) Display all employees while their dept names;
SQL>select ename,dname from emp,dept where emp.deptno=dept.deptno
SQL>select ename,dname from emp,dept where emp.deptno=dept.deptno
91) Display ename who are working in sales dept.
SQL>select ename from emp where deptno=(select deptno from dept where
dname=’SALES’);
SQL>select ename from emp where deptno=(select deptno from dept where
dname=’SALES’);
92) Display employee name,deptname,salary and comm for those sal in between
2000 to 5000 while location is chicago.
SQL>select ename,dname,sal,comm from emp,dept where sal between 2000
and 5000
and loc=’CHICAGO’ and emp.deptno=dept.deptno;
2000 to 5000 while location is chicago.
SQL>select ename,dname,sal,comm from emp,dept where sal between 2000
and 5000
and loc=’CHICAGO’ and emp.deptno=dept.deptno;
93)Display those employees whose salary greter than his manager salary.
SQL>select p.ename from emp e,emp p where e.empno=p.mgr and p.sal>e.sal
SQL>select p.ename from emp e,emp p where e.empno=p.mgr and p.sal>e.sal
94) Display those employees who are working in the same dept where his
manager is work.
SQL>select p.ename from emp e,emp p where e.empno=p.mgr and
p.deptno=e.deptno;
manager is work.
SQL>select p.ename from emp e,emp p where e.empno=p.mgr and
p.deptno=e.deptno;
95) Display those employees who are not working under any manager.
SQL>select ename from emp where mgr is null
SQL>select ename from emp where mgr is null
96) Display grade and employees name for the dept no 10 or 30 but grade is
not 4 while joined the company before 31-dec-82.
SQL>select ename,grade from emp,salgrade where sal between losal and
hisal and deptno in(10,30) and grade<>4 and hiredate<’31-DEC-82′;
not 4 while joined the company before 31-dec-82.
SQL>select ename,grade from emp,salgrade where sal between losal and
hisal and deptno in(10,30) and grade<>4 and hiredate<’31-DEC-82′;
97) Update the salary of each employee by 10% increment who are not
eligiblw for commission.
SQL>update emp set sal=sal+sal*10/100 where comm is null;
eligiblw for commission.
SQL>update emp set sal=sal+sal*10/100 where comm is null;
98) SELECT those employee who joined the company before 31-dec-82 while
their dept location is newyork or Chicago.
SQL>SELECT EMPNO,ENAME,HIREDATE,DNAME,LOC FROM EMP,DEPT
WHERE (EMP.DEPTNO=DEPT.DEPTNO)AND
HIREDATE <’31-DEC-82′ AND DEPT.LOC IN(‘CHICAGO’,'NEW YORK’);
their dept location is newyork or Chicago.
SQL>SELECT EMPNO,ENAME,HIREDATE,DNAME,LOC FROM EMP,DEPT
WHERE (EMP.DEPTNO=DEPT.DEPTNO)AND
HIREDATE <’31-DEC-82′ AND DEPT.LOC IN(‘CHICAGO’,'NEW YORK’);
99) DISPLAY EMPLOYEE NAME,JOB,DEPARTMENT,LOCATION FOR ALL WHO ARE WORKING
AS MANAGER?
SQL>select ename,JOB,DNAME,LOCATION from emp,DEPT where mgr is not
null;
AS MANAGER?
SQL>select ename,JOB,DNAME,LOCATION from emp,DEPT where mgr is not
null;
100) DISPLAY THOSE EMPLOYEES WHOSE MANAGER NAME IS JONES? –
[AND ALSO DISPLAY THEIR MANAGER NAME]?
SQL> SELECT P.ENAME FROM EMP E, EMP P WHERE E.EMPNO=P.MGR AND
E.ENAME=’JONES’;
[AND ALSO DISPLAY THEIR MANAGER NAME]?
SQL> SELECT P.ENAME FROM EMP E, EMP P WHERE E.EMPNO=P.MGR AND
E.ENAME=’JONES’;
101) Display name and salary of ford if his salary is equal to hisal of his
grade
a)select ename,sal,grade from emp,salgrade where sal between losal and
hisal
and ename =’FORD’ AND HISAL=SAL;
grade
a)select ename,sal,grade from emp,salgrade where sal between losal and
hisal
and ename =’FORD’ AND HISAL=SAL;
102) Display employee name,job,depart name ,manager name,his grade and make
out an under department wise?
SQL>SELECT E.ENAME,E.JOB,DNAME,EMP.ENAME,GRADE FROM EMP,EMP
E,SALGRADE,DEPT
WHERE EMP.SAL BETWEEN LOSAL AND HISAL AND EMP.EMPNO=E.MGR
AND EMP.DEPTNO=DEPT.DEPTNO ORDER BY DNAME
out an under department wise?
SQL>SELECT E.ENAME,E.JOB,DNAME,EMP.ENAME,GRADE FROM EMP,EMP
E,SALGRADE,DEPT
WHERE EMP.SAL BETWEEN LOSAL AND HISAL AND EMP.EMPNO=E.MGR
AND EMP.DEPTNO=DEPT.DEPTNO ORDER BY DNAME
103) List out all employees name,job,salary,grade and depart name for every
one in the company except ‘CLERK’.Sort on salary display the highest salary?
SQL>SELECT ENAME,JOB,DNAME,SAL,GRADE FROM EMP,SALGRADE,DEPT WHERE
SAL BETWEEN LOSAL AND HISAL AND EMP.DEPTNO=DEPT.DEPTNO AND JOB
NOT IN(‘CLERK’)ORDER BY SAL ASC;
one in the company except ‘CLERK’.Sort on salary display the highest salary?
SQL>SELECT ENAME,JOB,DNAME,SAL,GRADE FROM EMP,SALGRADE,DEPT WHERE
SAL BETWEEN LOSAL AND HISAL AND EMP.DEPTNO=DEPT.DEPTNO AND JOB
NOT IN(‘CLERK’)ORDER BY SAL ASC;
104) Display the employee name,job and his manager.Display also employee who
are without manager?
SQL>select e.ename,e.job,eMP.ename AS Manager from emp,emp e where
emp.empno(+)=e.mgr
are without manager?
SQL>select e.ename,e.job,eMP.ename AS Manager from emp,emp e where
emp.empno(+)=e.mgr
105) Find out the top 5 earners of company?
SQL>SELECT DISTINCT SAL FROM EMP E WHERE 5>=(SELECT COUNT(DISTINCT SAL)
FROM
EMP A WHERE A.SAL>=E.SAL)ORDER BY SAL DESC;
SQL>SELECT DISTINCT SAL FROM EMP E WHERE 5>=(SELECT COUNT(DISTINCT SAL)
FROM
EMP A WHERE A.SAL>=E.SAL)ORDER BY SAL DESC;
106) Display name of those employee who are getting the highest salary?
SQL>select ename from emp where sal=(select max(sal) from emp);
SQL>select ename from emp where sal=(select max(sal) from emp);
107) Display those employee whose salary is equal to average of maximum and
minimum?
SQL>select ename from emp where sal=(select max(sal)+min(sal)/2 from
emp);
minimum?
SQL>select ename from emp where sal=(select max(sal)+min(sal)/2 from
emp);
108) Select count of employee in each department where count greater than 3?
SQL>select count(*) from emp group by deptno having count(deptno)>3
SQL>select count(*) from emp group by deptno having count(deptno)>3
109) Display dname where at least 3 are working and display only department
name?
SQL>select distinct d.dname from dept d,emp e where d.deptno=e.deptno
and 3>any
(select count(deptno) from emp group by deptno)
name?
SQL>select distinct d.dname from dept d,emp e where d.deptno=e.deptno
and 3>any
(select count(deptno) from emp group by deptno)
110) Display name of those managers name whose salary is more than average
salary of his company?
SQL>SELECT E.ENAME,EMP.ENAME FROM EMP,EMP E
WHERE EMP.EMPNO=E.MGR AND E.SAL>(SELECT AVG(SAL) FROM EMP);
salary of his company?
SQL>SELECT E.ENAME,EMP.ENAME FROM EMP,EMP E
WHERE EMP.EMPNO=E.MGR AND E.SAL>(SELECT AVG(SAL) FROM EMP);
111)Display those managers name whose salary is more than average salary of
his employee?
SQL>SELECT DISTINCT EMP.ENAME FROM EMP,EMP E WHERE
E.SAL <(SELECT AVG(EMP.SAL) FROM EMP
WHERE EMP.EMPNO=E.MGR GROUP BY EMP.ENAME) AND
EMP.EMPNO=E.MGR;
his employee?
SQL>SELECT DISTINCT EMP.ENAME FROM EMP,EMP E WHERE
E.SAL <(SELECT AVG(EMP.SAL) FROM EMP
WHERE EMP.EMPNO=E.MGR GROUP BY EMP.ENAME) AND
EMP.EMPNO=E.MGR;
112) Display employee name,sal,comm and net pay for those employee
whose net pay is greter than or equal to any other employee salary of
the company?
SQL>select ename,sal,comm,sal+nvl(comm,0) as NetPay from emp
where sal+nvl(comm,0) >any (select sal from emp)
whose net pay is greter than or equal to any other employee salary of
the company?
SQL>select ename,sal,comm,sal+nvl(comm,0) as NetPay from emp
where sal+nvl(comm,0) >any (select sal from emp)
113) Display all employees names with total sal of company with each
employee name?
SQL>SELECT ENAME,(SELECT SUM(SAL) FROM EMP) FROM EMP;
employee name?
SQL>SELECT ENAME,(SELECT SUM(SAL) FROM EMP) FROM EMP;
114) Find out last 5(least)earners of the company.?
SQL>SELECT DISTINCT SAL FROM EMP E WHERE
5>=(SELECT COUNT(DISTINCT SAL) FROM EMP A WHERE
A.SAL<=E.SAL)
ORDER BY SAL DESC;
SQL>SELECT DISTINCT SAL FROM EMP E WHERE
5>=(SELECT COUNT(DISTINCT SAL) FROM EMP A WHERE
A.SAL<=E.SAL)
ORDER BY SAL DESC;
115) Find out the number of employees whose salary is greater than their
manager salary?
SQL>SELECT E.ENAME FROM EMP ,EMP E WHERE EMP.EMPNO=E.MGR
AND EMP.SAL<E.SAL;
manager salary?
SQL>SELECT E.ENAME FROM EMP ,EMP E WHERE EMP.EMPNO=E.MGR
AND EMP.SAL<E.SAL;
116) Display those department where no employee working?
SQL>select dname from emp,dept where emp.deptno not in(emp.deptno)
SQL>select dname from emp,dept where emp.deptno not in(emp.deptno)
117) Display those employee whose salary is ODD value?
SQL>select * from emp where sal<0;
SQL>select * from emp where sal<0;
118) Display those employee whose salary contains alleast 3 digits?
SQL>select * from emp where length(sal)>=3;
SQL>select * from emp where length(sal)>=3;
119) Display those employee who joined in the company in the month of Dec?
SQL>select ename from emp where to_char(hiredate,’MON’)=’DEC’;
SQL>select ename from emp where to_char(hiredate,’MON’)=’DEC’;
120) Display those employees whose name contains “A”?
SQL>select ename from emp where instr(ename,’A')>0;
or
SQL>select ename from emp where ename like(‘%A%’);
SQL>select ename from emp where instr(ename,’A')>0;
or
SQL>select ename from emp where ename like(‘%A%’);
121) Display those employee whose deptno is available in salary?
SQL>select emp.ename from emp, emp e where emp.sal=e.deptno;
SQL>select emp.ename from emp, emp e where emp.sal=e.deptno;
122) Display those employee whose first 2 characters from hiredate -last 2
characters of salary?
SQL>select ename,SUBSTR(hiredate,1,2)||ENAME||substr(sal,-2,2) from emp
characters of salary?
SQL>select ename,SUBSTR(hiredate,1,2)||ENAME||substr(sal,-2,2) from emp
123) Display those employee whose 10% of salary is equal to the year of
joining?
SQL>select ename from emp where to_char(hiredate,’YY’)=sal*0.1;
joining?
SQL>select ename from emp where to_char(hiredate,’YY’)=sal*0.1;
124) Display those employee who are working in sales or research?
SQL>SELECT ENAME FROM EMP WHERE DEPTNO IN(SELECT DEPTNO FROM DEPT WHERE
DNAME IN(‘SALES’,'RESEARCH’));
SQL>SELECT ENAME FROM EMP WHERE DEPTNO IN(SELECT DEPTNO FROM DEPT WHERE
DNAME IN(‘SALES’,'RESEARCH’));
125) Display the grade of jones?
SQL>SELECT ENAME,GRADE FROM EMP,SALGRADE
WHERE SAL BETWEEN LOSAL AND HISAL AND Ename=’JONES’;126) Display those employees who joined the company before 15 of the month?
a)select ename from emp where to_char(hiredate,’DD’)<15;
127) Display those employee who has joined before 15th of the month.
a)select ename from emp where to_char(hiredate,’DD’)<15;
128) Delete those records where no of employees in a particular department
is less than 3.
SQL>delete from emp where deptno=(select deptno from emp group by deptno having count(deptno)<3);129) Display the name of the department where no employee working.
SQL> SELECT E.ENAME,E.JOB,M.ENAME,M.JOB FROM EMP E,EMP M
WHERE E.MGR=M.EMPNO130) Display those employees who are working as manager.
SQL>SELECT M.ENAME MANAGER FROM EMP M ,EMP E
WHERE E.MGR=M.EMPNO GROUP BY M.ENAME
SQL>SELECT M.ENAME MANAGER FROM EMP M ,EMP E
WHERE E.MGR=M.EMPNO GROUP BY M.ENAME
131) Display those employees whose grade is equal to any number of sal but
not equal to first number of sal?
SQL> SELECT ENAME,GRADE FROM EMP,SALGRADE
WHERE GRADE NOT IN(SELECT SUBSTR(SAL,0,1)FROM EMP)
not equal to first number of sal?
SQL> SELECT ENAME,GRADE FROM EMP,SALGRADE
WHERE GRADE NOT IN(SELECT SUBSTR(SAL,0,1)FROM EMP)
132) Print the details of all the employees who are Sub-ordinate to BLAKE?
SQL>select emp.ename from emp, emp e where emp.mgr=e.empno and
e.ename=’BLAKE’;
SQL>select emp.ename from emp, emp e where emp.mgr=e.empno and
e.ename=’BLAKE’;
133) Display employee name and his salary whose salary is greater than
highest average of department number?
SQL>SELECT SAL FROM EMP WHERE SAL>(SELECT MAX(AVG(SAL)) FROM EMP
GROUP BY DEPTNO);
highest average of department number?
SQL>SELECT SAL FROM EMP WHERE SAL>(SELECT MAX(AVG(SAL)) FROM EMP
GROUP BY DEPTNO);
134) Display the 10th record of emp table(without using rowid)
SQL>SELECT * FROM EMP WHERE ROWNUM<11
MINUS
SELECT * FROM EMP WHERE ROWNUM<10
SQL>SELECT * FROM EMP WHERE ROWNUM<11
MINUS
SELECT * FROM EMP WHERE ROWNUM<10
135) Display the half of the ename’s in upper case and remaining lowercase?
SQL>SELECT
SUBSTR(LOWER(ENAME),1,3)||SUBSTR(UPPER(ENAME),3,LENGTH(ENAME))
FROM EMP;
SQL>SELECT
SUBSTR(LOWER(ENAME),1,3)||SUBSTR(UPPER(ENAME),3,LENGTH(ENAME))
FROM EMP;
136) Display the 10th record of emp table without using group by and rowid?
SQL>SELECT * FROM EMP WHERE ROWNUM<11
MINUS
SELECT * FROM EMP WHERE ROWNUM<10
SQL>SELECT * FROM EMP WHERE ROWNUM<11
MINUS
SELECT * FROM EMP WHERE ROWNUM<10
Delete the 10th record of emp table.
SQL>DELETE FROM EMP WHERE EMPNO=(SELECT EMPNO FROM EMP WHERE ROWNUM<11
MINUS
SELECT EMPNO FROM EMP WHERE ROWNUM<10)
SQL>DELETE FROM EMP WHERE EMPNO=(SELECT EMPNO FROM EMP WHERE ROWNUM<11
MINUS
SELECT EMPNO FROM EMP WHERE ROWNUM<10)
137) Create a copy of emp table;
SQL>create table new_table as select * from emp where 1=2;
SQL>create table new_table as select * from emp where 1=2;
138) Select ename if ename exists more than once.
SQL>select ename from emp e group by ename having count(*)>1;
SQL>select ename from emp e group by ename having count(*)>1;
139) Display all enames in reverse order?(SMITH:HTIMS).
SQL>SELECT REVERSE(ENAME)FROM EMP;
SQL>SELECT REVERSE(ENAME)FROM EMP;
140) Display those employee whose joining of month and grade is equal.
SQL>SELECT ENAME FROM EMP WHERE SAL BETWEEN
(SELECT LOSAL FROM SALGRADE WHERE
GRADE=TO_CHAR(HIREDATE,’MM’)) AND
(SELECT HISAL FROM SALGRADE WHERE
GRADE=TO_CHAR(HIREDATE,’MM’));
SQL>SELECT ENAME FROM EMP WHERE SAL BETWEEN
(SELECT LOSAL FROM SALGRADE WHERE
GRADE=TO_CHAR(HIREDATE,’MM’)) AND
(SELECT HISAL FROM SALGRADE WHERE
GRADE=TO_CHAR(HIREDATE,’MM’));
141) Display those employee whose joining DATE is available in deptno.
SQL>SELECT ENAME FROM EMP WHERE TO_CHAR(HIREDATE,’DD’)=DEPTNO
SQL>SELECT ENAME FROM EMP WHERE TO_CHAR(HIREDATE,’DD’)=DEPTNO
142) Display those employees name as follows
A ALLEN
B BLAKE
SQL> SELECT SUBSTR(ENAME,1,1),ENAME FROM EMP;
A ALLEN
B BLAKE
SQL> SELECT SUBSTR(ENAME,1,1),ENAME FROM EMP;
143) List out the employees ename,sal,PF(20% OF SAL) from emp;
SQL>SELECT ENAME,SAL,SAL*.2 AS PF FROM EMP;
SQL>SELECT ENAME,SAL,SAL*.2 AS PF FROM EMP;
144) Create table emp with only one column empno;
SQL>Create table emp as select empno from emp where 1=2;
SQL>Create table emp as select empno from emp where 1=2;
145) Add this column to emp table ename vrachar2(20).
SQL>alter table emp add(ename varchar2(20));
SQL>alter table emp add(ename varchar2(20));
146) Oops I forgot give the primary key constraint. Add in now.
SQL>alter table emp add primary key(empno);
SQL>alter table emp add primary key(empno);
147) Now increase the length of ename column to 30 characters.
SQL>alter table emp modify(ename varchar2(30));
SQL>alter table emp modify(ename varchar2(30));
148) Add salary column to emp table.
SQL>alter table emp add(sal number(10));
SQL>alter table emp add(sal number(10));
149) I want to give a validation saying that salary cannot be greater 10,000
(note give a name to this constraint)
SQL>alter table emp add constraint chk_001 check(sal<=10000)150) For the time being I have decided that I will not impose this validation.My boss has agreed to pay more than 10,000.
SQL>again alter the table or drop constraint with alter table emp drop constraint chk_001 (or)Disable the constraint by using alter table emp modify constraint chk_001 disable;
151) My boss has changed his mind. Now he doesn’t want to pay more than
10,000.so revoke that salary constraint.
SQL>alter table emp modify constraint chk_001 enable;152) Add column called as mgr to your emp table;
SQL>alter table emp add(mgr number(5));
SQL>alter table emp add(mgr number(5));
153) Oh! This column should be related to empno. Give a command to add this
constraint.
SQL>ALTER TABLE EMP ADD CONSTRAINT MGR_DEPT FOREIGN KEY(MGR) REFERENCES
EMP(EMPNO)
constraint.
SQL>ALTER TABLE EMP ADD CONSTRAINT MGR_DEPT FOREIGN KEY(MGR) REFERENCES
EMP(EMPNO)
154) Add deptno column to your emp table;
SQL>alter table emp add(deptno number(5));
SQL>alter table emp add(deptno number(5));
155) This deptno column should be related to deptno column of dept table;
SQL>alter table emp add constraint dept_001 foreign key(deptno)
reference dept(deptno)
[deptno should be primary key]
SQL>alter table emp add constraint dept_001 foreign key(deptno)
reference dept(deptno)
[deptno should be primary key]
156) Give the command to add the constraint.
SQL>alter table <table_name) add constraint <constraint_name>
<constraint type>
SQL>alter table <table_name) add constraint <constraint_name>
<constraint type>
157) Create table called as newemp. Using single command create this table
as well as get data into this table(use create table as);
SQL>create table newemp as select * from emp;
SQL>Create table called as newemp. This table should contain only
empno,ename,dname.
SQL>create table newemp as select empno,ename,dname from emp,dept where
1=2;
as well as get data into this table(use create table as);
SQL>create table newemp as select * from emp;
SQL>Create table called as newemp. This table should contain only
empno,ename,dname.
SQL>create table newemp as select empno,ename,dname from emp,dept where
1=2;
158) Delete the rows of employees who are working in the company for more
than 2 years.
SQL>delete from emp where (sysdate-hiredate)/365>2;
than 2 years.
SQL>delete from emp where (sysdate-hiredate)/365>2;
159) Provide a commission(10% Comm Of Sal) to employees who are not earning
any commission.
SQL>select sal*0.1 from emp where comm is null
any commission.
SQL>select sal*0.1 from emp where comm is null
160) If any employee has commission his commission should be incremented by
10% of his salary.
SQL>update emp set comm=sal*.1 where comm is not null;
10% of his salary.
SQL>update emp set comm=sal*.1 where comm is not null;
161) Display employee name and department name for each employee.
SQL>select empno,dname from emp,dept where emp.deptno=dept.deptno
SQL>select empno,dname from emp,dept where emp.deptno=dept.deptno
162)Display employee number,name and location of the department in which he
is working.
SQL>select empno,ename,loc,dname from emp,dept where
emp.deptno=dept.deptno;
is working.
SQL>select empno,ename,loc,dname from emp,dept where
emp.deptno=dept.deptno;
163) Display ename,dname even if there are no employees working in a
particular department(use outer join).
SQL>select ename,dname from emp,dept where emp.deptno=dept.deptno(+)
particular department(use outer join).
SQL>select ename,dname from emp,dept where emp.deptno=dept.deptno(+)
164) Display employee name and his manager name.
SQL>select p.ename,e.ename from emp e,emp p where e.empno=p.mgr;
SQL>select p.ename,e.ename from emp e,emp p where e.empno=p.mgr;
165) Display the department name and total number of employees in each
department.
SQL>select dname,count(ename) from emp,dept where
emp.deptno=dept.deptno group by dname;
department.
SQL>select dname,count(ename) from emp,dept where
emp.deptno=dept.deptno group by dname;
166)Display the department name along with total salary in each department.
SQL>select dname,sum(sal) from emp,dept where emp.deptno=dept.deptno
group by dname;
SQL>select dname,sum(sal) from emp,dept where emp.deptno=dept.deptno
group by dname;
167) Display itemname and total sales amount for each item.
SQL>select itemname,sum(amount) from item group by itemname;
SQL>select itemname,sum(amount) from item group by itemname;
168) Write a Query To Delete The Repeted Rows from emp table;
SQL>Delete from emp where rowid not in(select min(rowid)from emp group
by ename)
SQL>Delete from emp where rowid not in(select min(rowid)from emp group
by ename)
169) TO DISPLAY 5 TO 7 ROWS FROM A TABLE
SQL>select ename from emp
where rowid in(select rowid from emp where rownum<=7
minus
select rowid from empi where rownum<5)
SQL>select ename from emp
where rowid in(select rowid from emp where rownum<=7
minus
select rowid from empi where rownum<5)
170) DISPLAY TOP N ROWS FROM TABLE?
SQL>SELECT * FROM
(SELECT * FROM EMP ORDER BY ENAME DESC)
WHERE ROWNUM <10;
SQL>SELECT * FROM
(SELECT * FROM EMP ORDER BY ENAME DESC)
WHERE ROWNUM <10;
171) DISPLAY TOP 3 SALARIES FROM EMP;
SQL>SELECT SAL FROM ( SELECT * FROM EMP ORDER BY SAL DESC )
WHERE ROWNUM <4
SQL>SELECT SAL FROM ( SELECT * FROM EMP ORDER BY SAL DESC )
WHERE ROWNUM <4
172) DISPLAY 9th FROM THE EMP TABLE?
SQL>SELECT ENAME FROM EMP
WHERE ROWID=(SELECT ROWID FROM EMP WHERE ROWNUM<=10
MINUS
SELECT ROWID FROM EMP WHERE ROWNUM <10)
select second max salary from emp;
select max(sal) fromemp where sal<(select max(sal) from emp);
SQL>SELECT ENAME FROM EMP
WHERE ROWID=(SELECT ROWID FROM EMP WHERE ROWNUM<=10
MINUS
SELECT ROWID FROM EMP WHERE ROWNUM <10)
select second max salary from emp;
select max(sal) fromemp where sal<(select max(sal) from emp);
