我正在开发一个程序,我必须在其中演示线性和二进制搜索算法的工作原理。为此,我接受了一个包含 20 个数字的数组和来自用户的搜索键。代码编译,并且没有抛出运行时错误。但是,当我在数组中搜索一个数字(例如 12)时,它不是打印在位置 12 中找到该数字,而是在位置 6 中找到该数字:
import java.util.*;
class prg14
{
int num [] = new int [20];
int search;
public void lin (int arr[], int a)
{
num = arr;
search = a;
int i;
int flag = 0;
for (i=0; i<num.length; i++)
{
if (search == num[i])
{
flag = 1;
break;
}
}
if (flag == 1)
{
System.out.println("Linear Search : ");
System.out.println(a+ " found at position " + (i + 1));
}
else
{
System.out.println("Linear Search : ");
System.out.print(a+ " not present in the list \n");
}
}
public void binary(int array[], int a)
{
int first = 0;
int n = 20;
int last = n - 1;
int middle = (first + last)/2;
while( first <= last )
{
if ( array[middle] < search )
first = middle + 1;
else if ( array[middle] == search )
{
System.out.println("Binary search : ");
System.out.println(search + " found at position " + (middle+1) + ".");
break;
}
else
last = middle - 1;
middle = (first + last)/2;
}
if ( first > last )
{System.out.println("Binary Search : ");
System.out.println(search + " not present in the list.\n");
}
}
public static void main(String args[])
{
Scanner sc = new Scanner(System.in);
prg14 obj = new prg14();
System.out.println("Enter any 20 numbers.");
String str;
int linn[] = new int[20];
int i;
for( i = 0; i<10; i++)
{
str = sc.next();
linn[i] = sc.nextInt();
}
System.out.println("Enter number to be searched.");
int search = sc.nextInt();
obj.lin(linn, search);
obj.binary(linn, search);
}
}
我该如何解决这个问题?TIA。