[LeetCode] Add Two Numbers II 两个数字相加之二
You are given two linked lists representing two non-negative numbers. The most significant digit comes first and each of their nodes contain a single digit. Add the two numbers and return it as a linked list.
You may assume the two numbers do not contain any leading zero, except the number 0 itself.
Follow up:
What if you cannot modify the input lists? In other words, reversing the lists is not allowed.
Example:
Input: (7 -> 2 -> 4 -> 3) + (5 -> 6 -> 4) Output: 7 -> 8 -> 0 -> 7
这道题是之前那道Add Two Numbers的拓展,我们可以看到这道题的最高位在链表首位置,如果我们给链表翻转一下的话就跟之前的题目一样了,这里我们来看一些不修改链表顺序的方法。由于加法需要从最低位开始运算,而最低位在链表末尾,链表只能从前往后遍历,没法取到前面的元素,那怎么办呢?我们可以利用栈来保存所有的元素,然后利用栈的后进先出的特点就可以从后往前取数字了,我们首先遍历两个链表,将所有数字分别压入两个栈s1和s2中,我们建立一个值为0的res节点,然后开始循环,如果栈不为空,则将栈顶数字加入sum中,然后将res节点值赋为sum%10,然后新建一个进位节点head,赋值为sum/10,如果没有进位,那么就是0,然后我们head后面连上res,将res指向head,这样循环退出后,我们只要看res的值是否为0,为0返回res->next,不为0则返回res即可,参见代码如下:
解法一:
class Solution { public: ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) { stack<int> s1, s2; while (l1) { s1.push(l1->val); l1 = l1->next; } while (l2) { s2.push(l2->val); l2 = l2->next; } int sum = 0; ListNode *res = new ListNode(0); while (!s1.empty() || !s2.empty()) { if (!s1.empty()) {sum += s1.top(); s1.pop();} if (!s2.empty()) {sum += s2.top(); s2.pop();} res->val = sum % 10; ListNode *head = new ListNode(sum / 10); head->next = res; res = head; sum /= 10; } return res->val == 0 ? res->next : res; } };
下面这种方法使用递归来实现的,我们知道递归其实也是用栈来保存每一个状态,那么也就可以实现从后往前取数字,我们首先统计出两个链表长度,然后根据长度来调用递归函数,需要传一个参数差值,递归函数参数中的l1链表长度长于l2,在递归函数中,我们建立一个节点res,如果差值不为0,节点值为l1的值,如果为0,那么就是l1和l2的和,然后在根据差值分别调用递归函数求出节点post,然后要处理进位,如果post的值大于9,那么对10取余,且res的值自增1,然后把pos连到res后面,返回res,最后回到原函数中,我们仍要处理进位情况,参见代码如下:
解法二:
class Solution { public: ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) { int n1 = getLength(l1), n2 = getLength(l2); ListNode *head = new ListNode(1); head->next = (n1 > n2) ? helper(l1, l2, n1 - n2) : helper(l2, l1, n2 - n1); if (head->next->val > 9) { head->next->val %= 10; return head; } return head->next; } int getLength(ListNode* head) { int cnt = 0; while (head) { ++cnt; head = head->next; } return cnt; } ListNode* helper(ListNode* l1, ListNode* l2, int diff) { if (!l1) return NULL; ListNode *res = (diff == 0) ? new ListNode(l1->val + l2->val) : new ListNode(l1->val); ListNode *post = (diff == 0) ? helper(l1->next, l2->next, 0) : helper(l1->next, l2, diff - 1); if (post && post->val > 9) { post->val %= 10; ++res->val; } res->next = post; return res; } };
下面这种方法借鉴了Plus One Linked List中的解法三,在处理加1问题时,我们需要找出右起第一个不等于9的位置,然后此位置值自增1,之后的全部赋为0。这里我们同样要先算出两个链表的长度,我们把其中较长的放在l1,然后我们算出两个链表长度差diff。如果diff大于0,我们用l1的值新建节点,并连在cur节点后(cur节点初始化时指向dummy节点)。并且如果l1的值不等于9,那么right节点也指向这个新建的节点,然后cur和l1都分别后移一位,diff自减1。当diff为0后,我们循环遍历,将此时l1和l2的值加起来放入变量val中,如果val大于9,那么val对10取余,right节点自增1,将right后面节点全赋值为0。在cur节点后新建节点,节点值为更新后的val,如果val的值不等于9,那么right节点也指向这个新建的节点,然后cur,l1和l2都分别后移一位。最后我们看dummy节点值若为1,返回dummy节点,如果是0,则返回dummy的下一个节点。
解法三:
class Solution { public: ListNode* addTwoNumbers(ListNode* l1, ListNode* l2) { int n1 = getLength(l1), n2 = getLength(l2), diff = abs(n1 - n2); if (n1 < n2) swap(l1, l2); ListNode *dummy = new ListNode(0), *cur = dummy, *right = cur; while (diff > 0) { cur->next = new ListNode(l1->val); if (l1->val != 9) right = cur->next; cur = cur->next; l1 = l1->next; --diff; } while (l1) { int val = l1->val + l2->val; if (val > 9) { val %= 10; ++right->val; while (right->next) { right->next->val = 0; right = right->next; } right = cur; } cur->next = new ListNode(val); if (val != 9) right = cur->next; cur = cur->next; l1 = l1->next; l2 = l2->next; } return (dummy->val == 1) ? dummy : dummy->next; } int getLength(ListNode* head) { int cnt = 0; while (head) { ++cnt; head = head->next; } return cnt; } };
类似题目:
参考资料:
https://discuss.leetcode.com/topic/67076/ac-follow-up-java
https://discuss.leetcode.com/topic/65279/easy-o-n-java-solution-using-stack