D - Blue Jeans(4.6.1)

Description

The Genographic Project is a research partnership between IBM and The National Geographic Society that is analyzing DNA from hundreds of thousands of contributors to map how the Earth was populated.

As an IBM researcher, you have been tasked with writing a program that will find commonalities amongst given snippets of DNA that can be correlated with individual survey information to identify new genetic markers.

A DNA base sequence is noted by listing the nitrogen bases in the order in which they are found in the molecule. There are four bases: adenine (A), thymine (T), guanine (G), and cytosine (C). A 6-base DNA sequence could be represented as TAGACC.

Given a set of DNA base sequences, determine the longest series of bases that occurs in all of the sequences.

Input

Input to this problem will begin with a line containing a single integer n indicating the number of datasets. Each dataset consists of the following components:
  • A single positive integer m (2 <= m <= 10) indicating the number of base sequences in this dataset.
  • m lines each containing a single base sequence consisting of 60 bases.

Output

For each dataset in the input, output the longest base subsequence common to all of the given base sequences. If the longest common subsequence is less than three bases in length, display the string "no significant commonalities" instead. If multiple subsequences of the same longest length exist, output only the subsequence that comes first in alphabetical order.

Sample Input

3
2
GATACCAGATACCAGATACCAGATACCAGATACCAGATACCAGATACCAGATACCAGATA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
3
GATACCAGATACCAGATACCAGATACCAGATACCAGATACCAGATACCAGATACCAGATA
GATACTAGATACTAGATACTAGATACTAAAGGAAAGGGAAAAGGGGAAAAAGGGGGAAAA
GATACCAGATACCAGATACCAGATACCAAAGGAAAGGGAAAAGGGGAAAAAGGGGGAAAA
3
CATCATCATCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCCC
ACATCATCATAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AACATCATCATTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTTT

Sample Output

no significant commonalities
AGATAC
CATCATCAT

  题意:求最长公共字符串。如果最大长度小与3,则输出no significant commonalities.反之输出最长的这个串。

    分析:枚举公共字符串的长度,然后再第2到N串中找是否存在字符串1中相应长度的子串。

    这里采用的是(使用朴素的模式匹配算法求最长的公共子串)

    知识点整理:

    1、

    包含文件:string.h

    函数名: strstr

    函数原型:extern char *strstr(char *str1, char *str2);

    功能:从字符串str1中查找是否有字符串str2,如果有,从str1中的str2位置起,返回str1中str2起始位置的指针,如果没有,返回null。

    返回值:返回该位置的指针,如找不到,返回空指针。

    例子:

    123 char

    str[]="1234

    xyz";char*

    str1=strstr(str,"34");cout<

    显示:   34 xyz

    2、

    原型:extern int strcmp(const char *s1,const char * s2);

    所在头文件:string.h

    功能:比较字符串s1和s2。

    一般形式:strcmp(字符串1,字符串2)

    说明:

    当s1

    当s1==s2时,返回值= 0

    当s1>s2时,返回值 = 1

    注:c++ 中

    当s1

    当s1==s2时,返回值等于0

    当s1>s2时,返回值 大于0

    即:两个字符串自左向右逐个字符相比(按ASCII值大小相比较),直到出现不同的字符或遇'\0'为止。如:

    "A"<"B" "a">"A" "computer">"compare"

    特别注意:strcmp(const char *s1,const char * s2)这里面只能比较字符串,不能比较数字等其他形式的参数。

    3、

    函数名: strncmp

     功 能: 这个函数用来比较s1和s2字符串,这个函数将返回一个值, 它的符号与第一对不同的字符的比较结果相关。 如果两个字符串相等的话,strncmp将返回0。 如果s1是s2的一个子串的话,s1小于s2。此外还有,函数 int strncmp (const char *s1, const char *s2, size_t size) 此函数与strcmp极为类似。不同之处是,strncmp函数是指定比较size个字符。也就是说,如果字符串s1与s2的前size个字符相同,函数返回值为0。
    用 法: int strncmp(char *str1, char *str2, int maxlen);
    说明:此函数功能即比较 字符串str1和str2的前maxlen个字符。如果前maxlen 字节完全相等,返回值就=0;在前maxlen字节比较过程中,如果出现str1[n]与str2[n]不等,则返回(str1[n]-str2[n])。

#include <iostream>
#include <cstdio>
#include <cstring>
using namespace std;

const int maxm = 15;
const int maxs = 65;

int main(){
	int t;
	cin >> t;
	while(t--)
    {
		int m, i, j, k, l;
		int len = 0;
		char ans[maxs], p[maxm][maxs], s[maxs];
		cin >> m;
		for(i = 0 ; i < m ; ++i)
			cin >> p[i];
        l = strlen(p[0]);
		for(i = 0 ; i < l ; ++i)
        {
			for(j = i + 2 ; j < l ; ++j)
            {
				strncpy(s,p[0] + i,j - i + 1);//将p[0]+i位置以后的j - i + 1个字符复制到s中
				s[j-i+1] = '\0';//注意,因为他是字符串,所以尽量加上'\0'
				bool ok = true;
				for(k = 1 ; ok && k < m ; ++k)
					if(strstr(p[k],s) == NULL)
					//strstr(str1,str2) :判断str1中是否含有str2
						ok = false;

				if(ok&& (j - i + 1 > len || (j - i + 1 == len && strcmp(ans,s) > 0)))
                {
					len = j - i + 1;
					strcpy(ans,s);
				}
			}
		}
		if(len < 3)
			printf("no significant commonalities\n");
		else
			printf("%s\n",ans);
	}
	return 0;

}




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