题目:
Given a sorted linked list, delete all nodes that have duplicate numbers, leaving only distinct numbers from the original list.
For example,
Given 1->2->3->3->4->4->5, return 1->2->5.
Given 1->1->1->2->3, return 2->3.
代码:
/** * Definition for singly-linked list. * struct ListNode { * int val; * ListNode *next; * ListNode(int x) : val(x), next(NULL) {} * }; */ class Solution { public: ListNode* deleteDuplicates(ListNode* head) { if ( !head || !head->next ) return head; ListNode dummy(INT_MIN); dummy.next = head; ListNode *prev = &dummy; ListNode *p = head; while ( p && p->next ) { if ( p->val!=p->next->val ) { prev = p; p = p->next; } else { while ( p->next && p->val==p->next->val ) p = p->next; prev->next = p->next; p = p->next; } } return dummy.next; } };
Tips:
主要思路就是:如果遇上相同的,就用while循环一直往后过。
具体思路沿用了之前Python版的:http://www.cnblogs.com/xbf9xbf/p/4186852.html
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第二次过这道题,思路忘记了。赶紧翻了了一下上面的笔记,才想起来;代码一次AC了。
/** * Definition for singly-linked list. * struct ListNode { * int val; * ListNode *next; * ListNode(int x) : val(x), next(NULL) {} * }; */ class Solution { public: ListNode* deleteDuplicates(ListNode* head) { if ( !head ) return head; ListNode dummpy(-1); dummpy.next = head; ListNode* pre = &dummpy; ListNode* curr = head; while ( curr && curr->next ) { if ( curr->val!=curr->next->val ) { pre = curr; curr = curr->next; } else { while ( curr->next && curr->val==curr->next->val ) { curr = curr->next; } pre->next = curr->next; curr = curr->next; } } return dummpy.next; } };
这里的思路关键点是while循环的判断条件(curr && curr->next)。