線性和二進制搜索Java
[英]Linear and Binary Search Java
問題描述
我想生成線性搜索和二進制搜索需要多長時間的輸出。 下面給出了我的代碼,運行時給出了此錯誤。 “ java.lang.ClassCastException:無法將java.lang.String強制轉換為Employee”
import java.util.*;
import java.util.Collections;
public class H275{public static void main (String[] args){while (JPL.test()){
Employee[] employees = new Employee[1000000];
for (int i = 0, numv = employees.length; i < employees.length; numv = employees.length - ++i)
{String num = Integer.toString(numv);
switch (i % 3)
{case 0 : employees[i] = new Secretary("NameA" + num, "America" + num,
1000.0 * numv);
break;
case 1 : employees[i] = new Manager("NameB" + num, "Australia" + num,
2000.0 * numv);
break;
case 2 : employees[i] = new Salesman("NameC" + num,"Brazil" + num,
1500.0 * numv, 200.0 * numv);
}
}
for (Employee e : employees)
e.raise();
for (Employee.SortType s : Employee.SortType.values())
{employees[0].setSort(s);
long startTime = System.nanoTime();
Arrays.sort(employees);
long endTime = System.nanoTime();
}
employees[0].setSort(Employee.SortType.NAMESORT);
Arrays.sort(employees);
String name;
int count = 0;
Employee e1;
for (int i = 0, numv = employees.length; i < employees.length; numv = employees.length - ++i)
{
String num = Integer.toString(numv);
switch (i % 3)
{case 0 : e1 = new Secretary("NameA" + num, "America" + num,
1000.0 * numv);
break;
case 1 : e1 = new Manager("NameB" + num, "Australia" + num,
2000.0 * numv);
break;
case 2 : e1 = new Salesman("NameC" + num,"Brazil" + num,
1500.0 * numv, 200.0 * numv);
}
}
long startTime = System.nanoTime();
for (int e = 0; e < employees.length; e += 10000)
{
name = employees[e].getName();
count++;
if(employees[e].getName().equals(name))
{
break;
}
}
long endTime = System.nanoTime();
System.out.println("\nAverage Elapsed LinearSearch time = " + (endTime - startTime) / (1000000.0 * count) + " milliseconds");
startTime = System.nanoTime();
for (int e = 0; e < employees.length; e += 10000)
{
String name2 = employees[e].getName();
Arrays.binarySearch(employees,name2);
endTime = System.nanoTime();
break;
}
System.out.println("\nAverage Elapsed BinarySearch time = " + (endTime - startTime) / (1000000.0 * count) + " milliseconds");
}}}
abstract class Employee implements Comparable<Employee>
{
private String name;
private String address;
protected double salary;
public enum SortType{NAMESORT,ADDRESSSORT,JOBSORT,SALARYSORT};
static private SortType sortType;
public Employee(String nm, String add, double sal)
{
name=nm;
address=add;
salary=sal;
}
public abstract double raise();
public String getName()
{
return name;
}
public SortType setSort(SortType sortType)
{
return sortType;
}
public int compareTo(Employee e)
{
return 0;
}
public String toString()
{
return "hello";
}
}
class Secretary extends Employee
{
public Secretary(String name, String add, double sal)
{
super(name,add,sal);
}
public double raise()
{
return salary;
}
}
class Salesman extends Employee
{
private double commission;
public Salesman(String name,String address, double salary, double comm)
{
super(name,address,salary);
commission=comm;
}
public double raise()
{
return salary+commission;
}
public String toString()
{
return "test";
}
}
class Manager extends Employee
{
public Manager(String name,String address, double salary)
{
super(name,address,salary);
}
public double raise()
{
return salary+(0.05*salary);
}
}
1 個解決方案
解決方案1
1 已采納 2014-10-13 09:12:10
Arrays.binarySearch(的第二個參數必須是Employee的實例,因為您的數組包含Employees ,因此調用Arrays.binarySearch(employees,employees[e]);
哪個更有效,排序,然后在java中的集合或線性搜索上進行二進制搜索
[英]Which is more efficient, Sorting and then Binary Search over a Collection or Linear Search in java
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