引用:http://blog.csdn.net/hackbuteer1/article/details/6686263
题目:输入一个字符串,输出该字符串中对称的子字符串的最大长度。比如输入字符串“google”,由于该字符串里最长的对称子字符串是“goog”,因此输出4。
算法一:O(n^3)
判断字串是否对称是从外到里, O(n)
#include <stdio.h> #include <string.h> /* *判断起始指针,到结束指针的字符串是否对称 */ int IsSymmetrical(char* pBegin, char* pEnd) { if(pBegin == NULL || pEnd == NULL || pBegin > pEnd) return 0; while(pBegin < pEnd) { if(*pBegin != *pEnd) return 0; pBegin++; pEnd--; } return 1; } /* *查找最大对称字串长度,时间复杂度是O(n^3) */ int GetLongestSymmetricalLength(char* pString) { if(pString == NULL) return 0; int symmetricalLength = 1; char* pFirst = pString; int length = strlen(pString); while(pFirst < &pString[length-1]) { char* pLast = pFirst + 1; while(pLast <= &pString[length-1]) { if(IsSymmetrical(pFirst, pLast)) { int newLength = pLast - pFirst + 1; if(newLength > symmetricalLength) symmetricalLength = newLength; } pLast++; } pFirst++; } return symmetricalLength; } int main() { char* str = "google"; int len = GetLongestSymmetricalLength(str); printf("%d", len); return 0; }
算法2: O(n^2)
判断字串是否对称是从外到里, O(1)
#include <stdio.h> #include <string.h> int GetLongestSymmetricalLength(char* pString) { if(pString == NULL) return 0; int symmetricalLength = 1; char* pChar = pString; while(*pChar != '\0') { //奇数长度对称, 如 aAa char* left = pChar - 1; char* right = pChar + 1; while(left >= pString && *right != '\0' && *left==*right) { left--; right++; } int newLength = right - left - 1; //退出循环是*left!=*right if(newLength > symmetricalLength) symmetricalLength = newLength; //偶数长度对称, 如 aAAa left = pChar; right = pChar + 1; while(left >= pString && *right != '\0' && *left==*right) { left--; right++; } newLength = right - left - 1; //退出循环是*left!=*right if(newLength > symmetricalLength) symmetricalLength = newLength; pChar++; } return symmetricalLength; } int main() { char* str = "google"; int len = GetLongestSymmetricalLength(str); printf("%d", len); return 0; }
算法3:manacher算法
原串:abaab
新串:#a#b#a#a#b#
这样一来,原来的奇数长度回文串还是奇数长度,偶数长度的也变成以‘#’为中心的奇数回文串了。
接下来就是算法的中心思想,用一个辅助数组P记录以每个字符为中心的最长回文半径,也就是P[i]记录以Str[i]字符为中心的最长回文串半径。P[i]最小为1,此时回文串为Str[i]本身。
我们可以对上述例子写出其P数组,如下
新串: # a # b # a # a # b #
P[] : 1 2 1 4 1 2 5 2 1 2 1
我们可以证明P[i]-1就是以Str[i]为中心的回文串在原串当中的长度。
证明:
1、显然L=2*P[i]-1即为新串中以Str[i]为中心最长回文串长度。
2、以Str[i]为中心的回文串一定是以#开头和结尾的,例如“#b#b#”或“#b#a#b#”所以L减去最前或者最后的‘#’字符就是原串中长度的二倍,即原串长度为(L-1)/2,化简的P[i]-1。得证。
注: 不是很懂, 自己改了
#include <stdio.h> #include <string.h> int GetLongestSymmetricalLength(char* pString) { int length = strlen(pString); char* pNewString = malloc(2*length+2); int i; for(i=0; i<length; i++) { *(pNewString+i*2) = '#'; *(pNewString+i*2+1) = *(pString+i); } *(pNewString+2*length) = '#'; *(pNewString+2*length+1) = '\0'; printf("%s\n", pNewString); int maxLength = 1; char* pChar; for(i=0; i<2*length+2; i++) { int newLength = 1; pChar = pNewString + i; char* left = pChar-1; char* right = pChar+1; while(left>=pNewString && *right!='\0'&& *left==*right) { left--; right++; newLength++; } if(newLength > maxLength) maxLength = newLength; } return maxLength-1; } int main() { char* str = "google"; int len = GetLongestSymmetricalLength(str); printf("%d", len); return 0; }