Examine the structure of the EMPLOYEES and DEPARTMENTS tables: EMPLOYEESColumn name Data type RemarksEMPLOYEE_ID NUMBER NOT NULL, Primary KeyEMP_NAME VARCHAR2 (30)JOB_ID VARCHAR2 (20)SALARY NUMBERMGR_ID NUMBER References EMPLOYEE_ID COLUMNDEPARTMENT ID NU

题目

Examine the structure of the EMPLOYEES and DEPARTMENTS tables: EMPLOYEESColumn name Data type RemarksEMPLOYEE_ID NUMBER NOT NULL, Primary KeyEMP_NAME VARCHAR2 (30)JOB_ID VARCHAR2 (20)SALARY NUMBERMGR_ID NUMBER References EMPLOYEE_ID COLUMNDEPARTMENT ID NUMBER Foreign key to DEPARTMENT ID column of the DEPARTMENTS tableDEPARTMENTSColumn name Data type RemarksDEPARTMENT_ID NUMBER NOT NULL, Primary Key DEPARTMENT_NAME VARCHAR2(30)MGR_ID NUMBER References MGR_ID column of the EMPLOYEES tableEvaluate this SQL statement:SELECT employee_id, e.department_id, department_name, salaryFROM employees e, departments dWHERE e. department_id = d.department_id;Which SQL statement is equivalent to the above SQL statement? ()

A. SELECT employee_id, department_id, department_name, salary FROM employees WHERE department_id IN (SELECT department_id FROM departments);

B. SELECT employee_id, department_id, department_name, salary FROM employees NATURAL JOIN departments;

C. SELECT employee_id, d.department_id, department_name, salary FROM employees e JOIN departments d ON e.department _ id = d. department_id;

D. SELECT employee_id, department_id, department_name, Salary FROM employees JOIN departments USING (e.department_id, d.department_id);


相似考题
更多“Examine the structure of the EMPLOYEES and DEPARTMENTS tables: EMPLOYEESColumn name Data t ”相关问题
  • 第1题:

    Examine the data of the EMPLOYEES table.EMPLOYEES (EMPLOYEE_ID is the primary key. MGR_ID is the ID of managers and refers to the EMPLOYEE_ID)Which statement lists the ID, name, and salary of the employee, and the ID and name of the employee‘s manager, for all the employees who have a manager and earn more than 4000?()

    A.

    B.

    C.

    D.

    E.


    参考答案:C

  • 第2题:

    Examine the data in the EMPLOYEES and DEPARTMENTS tables.EMPLOYEESLAST_NAME DEPARTMENT_ID SALARYGetz 10 3000Davis 20 1500Bill 20 2200Davis 30 5000Kochhar 5000DEPARTMENTSDEPARTMENT_ID DEPARTMENT_NAME10 Sales20 Marketing30 Accounts40 AdministrationYou want to retrieve all employees, whether or not they have matching departments in the departments table.Which query would you use?()

    A. SELECT last_name, department_name FROM employees , departments(+);

    B. SELECT last_name, department_name FROM employees JOIN departments(+);

    C. SELECT last_name, department_name ON (e. department_ id = d. departments_id); FROM employees(+) e JOIN departments d

    D. SELECT last_name, department_name FROM employees e RIGHT OUTER JOIN departments d ON (e.department_id = d.department_id);

    E. SELECT last_name, department_name FROM employees(+) , departments ON (e. department _ id = d. department _id);

    F. SELECT last_name, department_name FROM employees e LEFT OUTER JOIN departments d ON (e. department _ id = d. department _id);


    参考答案:F

  • 第3题:

    Examinethestatement:SQL>CREATETABLESPACEuser_data2>EXTENTMANAGEMENTLOCAL3>SEGMENTSPACEMANAGEMENTAUTO;Whichtwpassumptionsmustbetrueforthisstatementtoexecutesuccessfully?()

    A.OracleManagedFilesareusedforthisinstance.

    B.TheUSER_DATAtablespaceismanagedusingFET$/UET$tables.

    C.TheCOMPATIBLEinitializationparametermustbe9.0.0orhigher.

    D.SpacewithinsegmentsintheUSER_DATAtablespaceismanagedwithfreelists.


    参考答案:A, C

  • 第4题:

    UserSCOTTwantstoexporthisobjectsusingOracleDataPumpandexecutesthefollowingcommand:$expdpscott/tigerdirectory=EXPORT_DIRdumpfile=scott.dmpinclude=tableinclude=view:"like’%DEPARTMENTS%’"content=DATA_ONLYWhichtaskwouldthecommandaccomplish?()

    A.A

    B.B

    C.C

    D.D

    E.E


    参考答案:C

  • 第5题:

    已知关系模式R的全部属性集U={A,B,C,D,E,G}及函数依赖集:

    F=(AB→C,C→A,BC→D,ACD→B,D→EG,BE→C,CG→BD,CE→AG}求属性集闭包(BD)+

    (2) 现有如下两个关系模式:

    Employees(Eid,Name,DeptNO)

    Departments(DeptNO,DeptName,TotalNumber)

    Employees关系模式描述了职工编号、姓名和所在部门编号;Departments关系模式描述了部门编号、名称和职工总


    正确答案:(BD)+=ABCDEG X(O)=BD;由D→EG可知X(1) =BDEG;再由BE→C可知X(2)→BDEGC;又有CG→BDCE→AG可知X(3)=BDEGCA因为X(3)中包含了所有的属性集即有(BD)+=X(3)=ABCDEG T—C(TNO.CNO)主码(TNOCNO)外码TNOCNO S—C(SNOCNO成绩)主码(SNOCNO).外码SNOCNO (2) create trigger sql_tri on employees for
    (BD)+=ABCDEG X(O)=BD;由D→EG可知X(1) =BDEG;再由BE→C,可知X(2)→BDEGC;又有CG→BD,CE→AG,可知X(3)=BDEGCA,因为X(3)中包含了所有的属性集,即有(BD)+=X(3)=ABCDEG T—C(TNO.CNO)主码(TNO,CNO),外码TNO,CNO S—C(SNO,CNO,成绩)主码(SNO,CNO).外码SNO,CNO (2) create trigger sql_tri on employees for 解析:本题考查了后触发器的Transact—SQL语句。其语法格式为:
    CREATE TRIGGER触发器名称
    0N |表名|视图名|
    [WITH ENCRYPTION]
    AS
    SQL语句
    AFTER和FOR,指定触发器只有在引发的SQL语句中指定的操作都已成功执行,并且所有的约束检查也成功完成后,才执行此触发器,即后触发型触发器。

  • 第6题:

    函数substr(“DATASTRUCTURE”,5,9)的返回值为()。

    A.“STRUCTURE”
    B.“DATA”
    C.“DATASTRUCTURE”
    D.“ASTRUCTUR”

    答案:A
    解析:
    substr函数的作用是找到从第5个字符开始,长度为9的子串。