• Leetcode OJ : Merge k Sorted Lists 归并排序+最小堆 mergesort heap C++ solution


     1 /**
     2  * Definition for singly-linked list.
     3  * struct ListNode {
     4  *     int val;
     5  *     ListNode *next;
     6  *     ListNode(int x) : val(x), next(NULL) {}
     7  * };
     8  */
     9 
    10 struct helper {
    11     ListNode *head;
    12     int len;
    13     helper(ListNode *h, int l) : head ( h ), len ( l ) {}
    14 };
    15 
    16 class helpercmp {
    17 public:
    18     bool operator() (const helper &a, const helper &b) {
    19         return a.len > b.len;
    20     }
    21 };
    22 
    23 class Solution {
    24 public:
    25     priority_queue<helper, vector<helper>, helpercmp> heap; 
    26     
    27     inline int listSize(ListNode *head) {
    28         int len = 0;
    29         for ( ; head != nullptr; head = head->next, len++ );
    30         return len;
    31     }
    32     ListNode *mergeKLists(vector<ListNode *> &lists) {
    33         if ( lists.empty() ) return nullptr;
    34         if ( lists.size() == 1 ) return lists[0];
    35         ListNode *head = nullptr, *left = nullptr,  *right = nullptr;
    36         for ( auto list : lists ) {
    37             heap.push( helper(list, listSize(list) )  );
    38         }
    39         while ( heap.size() != 1 ) {
    40             left = heap.top().head;
    41             heap.pop();
    42             right = heap.top().head;
    43             heap.pop();
    44             head = mergeList( left, right );
    45             heap.push( helper( head, listSize(head) ) );
    46         }
    47         return heap.top().head;
    48     }
    49     ListNode *mergeList(ListNode *a, ListNode *b) {
    50         ListNode dummy(0);
    51         ListNode *tail = &dummy;
    52         while ( a != nullptr && b != nullptr ) {
    53             if ( a-> val <= b->val ) {
    54                 tail->next = a;
    55                 a = a->next;
    56             } else {
    57                 tail->next = b;
    58                 b = b->next;
    59             }
    60             tail = tail->next;
    61         }
    62         tail->next =  a == nullptr ? b : a;
    63         return dummy.next;
    64     }
    65 };
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  • 原文地址:https://www.cnblogs.com/ydlme/p/4295723.html
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