leetcode 单链表的各种算法
2020-06-07 本文已影响0人
ColdRomantic
1 递归实现:合并两个有序的单链表
ListNode* mergeTwoLists(ListNode* l1, ListNode* l2) {
if(!l1){
return l2;
}
if(!l2){
return l1;
}
if (l1->val < l2->val){
l1->next = mergeTwoLists(l1->next, l2);
return l1;
}else{
l2->next = mergeTwoLists(l1, l2->next);
return l2;
}
}
2 递归实现:单链表逆序存入vector
vector<int> reversePrint(ListNode* head) {
if(!head){
return {};
}
vector<int> vec = reversePrint(head->next);
vec.push_back(head->val);
return vec; //std::move()
}
3 循环实现:快慢指针找到单链表中间位置
ListNode* middleNode(ListNode* head) {
ListNode* slow = head;
ListNode* fast = head;
//判断连续2个指针不为 NULL
while (fast != NULL && fast->next != NULL) {
slow = slow->next;
fast = fast->next->next;
}
return slow;
}
4 深度拷贝一个指针
时间O(n)
空间O(1)
思路:在原有指针后面dup一个,然后设置random指针,最后分离两条链!
有点像DNA复制(不过DNA是双链结构)
Node* copyRandomList(Node* head) {
if(head == NULL){
return NULL;
}
Node* p = head;
// copy at right side
while(p != NULL){
Node* copy = new Node(p->val);
copy->next = p->next;
p->next = copy;
p = p->next->next;
}
// set up random ptr
p = head;
while(p != NULL){
Node* copy = p->next;
if(p->random) {
copy->random = p->random->next;
}
p = p->next->next;
}
//split into 2 list
p = head;
Node* copy_header = p->next;
while(p){
Node* copy = p->next;
p->next = p->next->next;
//move p to next
p = p->next;
if(p){
copy->next = p->next;
}
}
return copy_header;
}
5 递归删除链表中的一个元素
ListNode* deleteNode(ListNode* head, int val) {
if(head == NULL){
return NULL;
}
if(head->val == val){
return head->next;
}
head->next = deleteNode(head->next, val);
return head;
}
6 递归实现:两个链表求和
ListNode* addLists(ListNode* l1, ListNode* l2){
if(!l1){
return l2;
}
if(!l2){
return l1;
}
ListNode* head = new ListNode(l1->val + l2->val);
head->next = addLists(l1->next, l2->next);
return head;
}
ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) {
ListNode* head = addLists(l1, l2);
adjust(head);
return head;
}
void adjust(ListNode* head){
int surplus = 0;
while(head){
int sum = head->val + surplus;
head->val = sum % 10;
surplus = sum / 10;
if(head->next == NULL){
break;
}
head = head->next;
}
if(surplus){
head->next = new ListNode(surplus);
}
}
7递归查找单链表第k个元素
ListNode* solve(ListNode* head, int k, int& count){
if(head == NULL || head->next == NULL){
count = 1;
return (k==1?head:NULL);
}
ListNode* kth = solve(head->next,k, count);
if(++count == k) {
return head;
}
return kth;
}
ListNode* getKthFromEnd(ListNode* head, int k) {
int count = 0;
return solve(head,k,count);
}
8 判断两个单链表 有没有交点
面试题 02.07. 链表相交
这个题目还说蛮有技巧性的。
采用双指针,走两遍的方法。
/**双指针,走两遍
* 没有交点:两个指针都同时到达对方链表的尾部 NULL
* 有交点: 两个指针同时到达交点处。
*/
ListNode *getIntersectionNode(ListNode *headA, ListNode *headB) {
ListNode *pa = headA;
ListNode *pb = headB;
while(pa != pb){
if(pa){
pa = pa->next;
}else {
pa = headB;
}
if(pb){
pb = pb->next;
}else {
pb = headA;
}
}
return pa;
}
