题目:给你一个小写字母组成大的串和一个整数n。找到里面长度为n出现最频繁的子串。
分析:字符串、hash表、字典树。
这里使用hash函数求解,仅仅做一次扫描就可以。
说明:假设频率同样输出字典序最小的。
#include <cstdlib>
#include <cstring>
#include <cstdio>
#include <cmath>
char subs[15],buf[1000001];
char *strsub(char *str, int n)
{
for (int i = 0 ; i < n ; ++ i)
subs[i] = str[i];
subs[n] = 0;
return subs;
}
//hash_define
typedef struct node0
{
char name[15];
int count;
node0*next;
}hnode;
hnode* hash_head[1000000];
hnode hash_node[1000000];
int hash_size;
void hash_init()
{
hash_size = 0;
memset(hash_node, 0, sizeof(hash_node));
memset(hash_head, 0, sizeof(hash_head));
}
void hash_insert(char* str)
{
int value = 0;
for (int i = 0 ; str[i] ; ++ i)
value = (value*10+str[i]-'a')%1000000;
for (hnode* p = hash_head[value] ; p ; p = p->next)
if (!strcmp(str, p->name)) {
p->count ++;
return;
}
strcpy(hash_node[hash_size].name, str);
hash_node[hash_size].count = 1;
hash_node[hash_size].next = hash_head[value];
hash_head[value] = &hash_node[hash_size ++];
}
void hash_max()
{
int max = 0;
for (int i = 1 ; i < hash_size ; ++ i)
if (hash_node[max].count == hash_node[i].count) {
if (strcmp(hash_node[max].name, hash_node[i].name) > 0)
max = i;
}else if (hash_node[max].count < hash_node[i].count)
max = i;
printf("%s
",hash_node[max].name);
}
//hash_end
int main()
{
int n;
while (~scanf("%d%s",&n,buf)) {
hash_init();
int end = strlen(buf)-n;
if (end < 0) continue;
for (int i = 0 ; i <= end ; ++ i)
hash_insert(strsub(&buf[i], n));
hash_max();
}
return 0;
}