lintcode: 最长连续序列

时间:2022-09-17 19:41:08

最长连续序列

给定一个未排序的整数数组,找出最长连续序列的长度。

说明

要求你的算法复杂度为O(n)

样例

给出数组[100, 4, 200, 1, 3, 2],这个最长的连续序列是 [1, 2, 3, 4],返回所求长度 4

解题

排序后比较简单,快排O(nlogn)

后面只需要O(n)的时间复杂度求解了

发现原数组里面有重复数字的时候,下面方法行不通了。

lintcode: 最长连续序列

public class Solution {
/**
* @param nums: A list of integers
* @return an integer
*/
public int longestConsecutive(int[] num) {
// write you code here
quickSort(num,0,num.length - 1);
int maxLen = 1;
int subLen = 1;
if(num.length ==4){
for(int i = 0;i< num.length;i++){
System.out.print(num[i] + "\t");
}
}
for(int i = 0;i<= num.length-2 ;i++){
if(num[i] + 1 ==num[i+1]){
subLen++;
}else{
subLen = 1; }
maxLen = Math.max(maxLen,subLen);
}
return maxLen;
} public void quickSort(int[] A,int low ,int high){
if(low>= high)
return;
int i = low;
int j = high;
int tmp = A[low];
while(i<j){
while(i<j && A[j] > tmp)
j--;
if(i<j){
A[i] = A[j];
i++;
} while(i<j && A[i]<= tmp)
i++;
if(i<j){
A[j] = A[i];
j--;
} }
A[i] = tmp;
quickSort(A,low,i-1);
quickSort(A,i+1,high);
}
}

稍作修改,对连续相等的说长度不变

public class Solution {
/**
* @param nums: A list of integers
* @return an integer
*/
public int longestConsecutive(int[] num) {
// write you code here
quickSort(num,0,num.length - 1);
int maxLen = 1;
int subLen = 1;
// if(num.length ==4){
// for(int i = 0;i< num.length;i++){
// System.out.print(num[i] + "\t");
// }
// }
for(int i = 0;i<= num.length-2 ;i++){
if(num[i] + 1 ==num[i+1]){
subLen++;
}else if(num[i]==num[i+1]){
// 相等的时候不做处理
}else{
subLen = 1; }
maxLen = Math.max(maxLen,subLen);
}
return maxLen;
} public void quickSort(int[] A,int low ,int high){
if(low <0 || high>A.length || low>= high)
return;
int i = low;
int j = high;
int tmp = A[low];
while(i<j){
while(i<j && A[j] > tmp)
j--;
if(i<j){
A[i] = A[j];
i++;
} while(i<j && A[i]<= tmp)
i++;
if(i<j){
A[j] = A[i];
j--;
} }
A[i] = tmp;
quickSort(A,low,i-1);
quickSort(A,i+1,high);
}
}

但是96% 数据通过测试时,出现了快排的栈溢出

这个数据量是一万,同时还是完全逆序,网上的解释就是快排数据量太多了。

programcreek 上的方法

定义一个集合,去除了重复数,在每个数两边找,判断是否连续

public class Solution {
/**
* @param nums: A list of integers
* @return an integer
*/
public int longestConsecutive(int[] num) {
// write you code here
if(num.length <= 1)
return num.length;
Set<Integer> set = new HashSet<Integer>();
for(int e:num)
set.add(e);
int max = 1;
for(int e:num){
int count = 1;
int left = e - 1;
int right = e + 1;
while(set.contains(left)){
count++;
set.remove(left);
left--;
}
while(set.contains(right)){
count++;
set.remove(right);
right++;
}
max = Math.max(max,count);
}
return max;
}
}

Python 集合更方便

class Solution:
"""
@param num, a list of integer
@return an integer
"""
def longestConsecutive(self, num):
# write your code here
s = set(num)
Max = 1
for e in num:
count = 1
left = e - 1
right = e + 1
while left in s:
count+=1
s.remove(left)
left -=1
while right in s:
count+=1
s.remove(right)
right+=1
Max = max(Max,count)
return Max