题解 | #从单向链表中删除指定值的节点#
从单向链表中删除指定值的节点
http://www.nowcoder.com/practice/f96cd47e812842269058d483a11ced4f
- 记住列表创建得套路。
- 记住cur得用法(每次要从头开始搜索)
- 删列表中元素得时候,cur要指向dummy
- 记住cur 以及 cur->next用来判断时,要注意cur->next为空,且要放到左边
#include<bits/stdc++.h> using namespace std; struct ListNode{ int val; ListNode* next; ListNode(int x): val(x), next(NULL){ } }; int main(){ int n,a,b; while(cin>>n){ cin>>a; ListNode* dummy_head = new ListNode(-1);//头节点 dummy_head->next = new ListNode(a); ListNode* cur = dummy_head->next; //继续完成剩余节点得构建 for(int i = 1; i< n;i++){ cin>>a; cin>>b; cur = dummy_head->next;//每次要从第一个开始找 while(cur->val!= b) cur = cur->next; ListNode* q = cur->next;// ListNode* p = new ListNode(a); cur->next = p; p->next = q; } int del; cin>>del; //删除 ListNode* cur2 = dummy_head; //del while(cur2){ if(cur2->next!=NULL && cur2->next->val==del ){//注意这种前瞻性判断, 且放到左边!!! cur2->next = cur2->next->next; }else{ cur2 = cur2->next; } } while(dummy_head->next){ if(dummy_head->next->next==NULL){ cout<<dummy_head->next->val<<endl; }else{ cout<<dummy_head->next->val<<" "; } dummy_head->next = dummy_head->next->next; } } return 0; }
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