parent
d5b31bf930
commit
a7c3cfd28e
@ -1,44 +1,44 @@
|
||||
#include <stdio.h>
|
||||
//求解结果表示
|
||||
int num; //全局变量,存放众数
|
||||
int maxcnt = 0; //全局变量,存放重数
|
||||
void split(int a[], int low, int high, int& mid, int& left, int& right)
|
||||
//以a[low..high]中间的元素为界限,确定为等于a[mid]元素的左、右位置left和right
|
||||
{
|
||||
mid = (low + high) / 2;
|
||||
for (left = low; left <= high; left++)
|
||||
if (a[left] == a[mid])
|
||||
break;
|
||||
for (right = left + 1; right <= high; right++)
|
||||
if (a[right] != a[mid])
|
||||
break;
|
||||
right--;
|
||||
}
|
||||
void Getmaxcnt(int a[], int low, int high)
|
||||
{
|
||||
if (low <= high) //a[low..high]序列至少有1个元素
|
||||
{
|
||||
int mid, left, right;
|
||||
split(a, low, high, mid, left, right);
|
||||
int cnt = right - left + 1; //求出a[mid]元素的重数
|
||||
if (cnt > maxcnt) //找到更大的重数
|
||||
{
|
||||
num = a[mid];
|
||||
maxcnt = cnt;
|
||||
}
|
||||
Getmaxcnt(a, low, left - 1); //左序列递归处理
|
||||
Getmaxcnt(a, right + 1, high); //右序列递归处理
|
||||
}
|
||||
}
|
||||
int main()
|
||||
{
|
||||
int a[] = { 1,2,2,2,3,3,5,6,6,6,6 };
|
||||
int n = sizeof(a) / sizeof(a[0]);
|
||||
printf("求解结果\n");
|
||||
printf(" 递增序列: ");
|
||||
for (int i = 0; i < n; i++)
|
||||
printf("%d ", a[i]);
|
||||
printf("\n");
|
||||
Getmaxcnt(a, 0, n - 1);
|
||||
printf(" 众数: %d, 重数: %d\n", num, maxcnt);
|
||||
}
|
||||
#include <stdio.h>
|
||||
//求解结果表示
|
||||
int num; //全局变量,存放众数
|
||||
int maxcnt = 0; //全局变量,存放重数
|
||||
void split(int a[], int low, int high, int& mid, int& left, int& right)
|
||||
//以a[low..high]中间的元素为界限,确定为等于a[mid]元素的左、右位置left和right
|
||||
{
|
||||
mid = (low + high) / 2;
|
||||
for (left = low; left <= high; left++)
|
||||
if (a[left] == a[mid])
|
||||
break;
|
||||
for (right = left + 1; right <= high; right++)
|
||||
if (a[right] != a[mid])
|
||||
break;
|
||||
right--;
|
||||
}
|
||||
void Getmaxcnt(int a[], int low, int high)
|
||||
{
|
||||
if (low <= high) //a[low..high]序列至少有1个元素
|
||||
{
|
||||
int mid, left, right;
|
||||
split(a, low, high, mid, left, right);
|
||||
int cnt = right - left + 1; //求出a[mid]元素的重数
|
||||
if (cnt > maxcnt) //找到更大的重数
|
||||
{
|
||||
num = a[mid];
|
||||
maxcnt = cnt;
|
||||
}
|
||||
Getmaxcnt(a, low, left - 1); //左序列递归处理
|
||||
Getmaxcnt(a, right + 1, high); //右序列递归处理
|
||||
}
|
||||
}
|
||||
int main()
|
||||
{
|
||||
int a[] = { 1,2,2,2,3,3,5,6,6,6,6 };
|
||||
int n = sizeof(a) / sizeof(a[0]);
|
||||
printf("求解结果\n");
|
||||
printf(" 递增序列: ");
|
||||
for (int i = 0; i < n; i++)
|
||||
printf("%d ", a[i]);
|
||||
printf("\n");
|
||||
Getmaxcnt(a, 0, n - 1);
|
||||
printf(" 众数: %d, 重数: %d\n", num, maxcnt);
|
||||
}
|
||||
Loading…
Reference in new issue