Given a singly linked list, group all odd nodes together followed by the even nodes. Please note here we are talking about the node number and not the value in the nodes.
You should try to do it in place. The program should run in O(1) space complexity and O(nodes) time complexity.
Example:
Given 1->2->3->4->5->NULL,
return 1->3->5->2->4->NULL.
Note:
The relative order inside both the even and odd groups should remain as it was in the input.
The first node is considered odd, the second node even and so on ...
题意就是把奇数偶数分成两部分,相对顺序不变,特别小心链表成环的情况。理解错题意了,只是把错位的分开即可。。。
ListNode* oddEvenList(ListNode* head) {
if (head == NULL || head->next == NULL){
return head;
}
ListNode* h1 = head;
ListNode* hji = NULL;
ListNode* hou = NULL;
ListNode* jihead = NULL;
ListNode* ouhead = NULL;
int num1 = 0;
int num2 = 0;
int type =0;//第一个为奇数则为1 第一个为偶数 则为-1
if (h1->val % 2 == 0){
hou = h1;
ouhead = hou;
num2++;
type = -1;
}
else{
hji = h1;
jihead = hji;
num1++;
type = 1;
cout << "1" << endl;
}
h1 = h1->next;
while (h1 != NULL){
ListNode *t = h1->next;
if (h1->val % 2 == 1){
num1++;
if (hji == NULL){
hji = h1;
jihead = hji;
hji->next =NULL;//特别小心 否则构成环
cout << "2" << endl;
}
else{
hji->next = h1;
hji = hji->next;
hji->next =NULL;
cout << "3" << endl;
}
}
else{
num2++;
if (hou == NULL){
hou = h1;
ouhead = hou;
hou->next = NULL;//特别小心 否则成环
cout << "4" << endl;
}
else{
hou->next = h1;
hou = hou->next;
cout << "5" << endl;
hou->next = NULL;
}
}
h1 = t;
}
if (num1 == 0){
return ouhead;
}
if (num2 == 0){
return jihead;
}
if(type==1){
hji->next = ouhead;
return jihead;
}else{
hou->next = jihead;
return ouhead;
}
}正确的代码:
public ListNode oddEvenList(ListNode head) {
if (head == null || head.next == null)
return head;
ListNode even_head = head.next;
ListNode odd = head, even = even_head;
while(even != null && even.next != null)
{
odd.next = even.next;
even.next = even.next.next;
odd = odd.next;
even = even.next;
}
odd.next = even_head;
return head;
}