Binary String Matching
时间限制:3000 ms | 内存限制:65535 KB
难度:3
- 描述
- Given two strings A and B, whose alphabet consist only ‘0’ and ‘1’. Your task is only to tell how many times does A appear as a substring of B? For example, the text string B is ‘1001110110’ while the pattern string A is ‘11’, you should output 3, because the pattern A appeared at the posit
- 输入
- The first line consist only one integer N, indicates N cases follows. In each case, there are two lines, the first line gives the string A, length (A) <= 10, and the second line gives the string B, length (B) <= 1000. And it is guaranteed that B is always longer than A.
- 输出
- For each case, output a single line consist a single integer, tells how many times do B appears as a substring of A.
- 样例输入
-
3
11
1001110110
101
110010010010001
1010
110100010101011 - 样例输出
-
3
0
3 - 来源
- 网络
- 上传者
- naonao
-
#include<stdio.h>
#include<stdlib.h>
#include<string.h>
typedef struct node
{
char a;
struct node *next;
}Node;
int i;
bool flag=true;
int main( void )
{
Node *head,*p1,*p2;
int t,n,count;
scanf("%d",&t);
getchar();
while(t--)
{
head=NULL;
count=n=;
p1=p2=( Node * )malloc( sizeof(Node) );
char str[]={'\0'};
gets(str);
//getchar();
while(p1->a=getchar(),p1->a!='\n')
{
if(n++==)
head=p1;
else
p2->next=p1;
p2=p1;
p1=(Node*)malloc(sizeof(Node));
}
p2->next=NULL;
p1=head;
/* while(p1!=NULL)
{
putchar(p1->a);
p1=p1->next;
}
puts("");
*/
while(p1!=NULL)
{ while(p1!=NULL&&p1->a!=*str) //找到第一个位置
{
p1=p1->next;
}
if(p1!=NULL) //防止万一没有找到
{
p2=p1->next; for( ::i=; str[i]!='\0'; i++ )
{
if(str[i]==p1->a)
{
p1=p1->next;
}
else
{
::flag=false;
p1=p2;
break;
} if((p1==NULL&&str[i+]!='\0'))
{
::flag=false ;
break;
}
} if(::flag)
{
p1=p2 ;
count++;
}
else
::flag=true;
}
} free(head);
printf("%d\n",count); }
return ;
}