[LintCode] Missing Interval

Given a sorted integer array where the range of elements are in the inclusive range [lower, upper], return its missing ranges.

Example

Given nums = [0, 1, 3, 50, 75], lower = 0 and upper = 99
return ["2", "4->49", "51->74", "76->99"].

The algorithm to solve this problem is pretty straightforward. The hard part is to think of all cases and handle them correctly.

All possible corner cases are shown as follows.

1. nums has no elements;

2. the first element is bigger than lower

3. the last element is smaller than upper

Another place that needs our attention is when subtracting two numbers to get the difference. Because the elements in nums,

lower and upper can be very big or very small, so the subtraction operation to get the diff can overflow the integer size, causing

incorrect behavior when using diff's value to determine what to do.

For example, if nums[0] = 1, lower = Integer.MIN_VALUE, then nums[0] - lower > Integer.MAX_VALUE, OVERFLOW!!!

As a result, we initialize diff as type of long, and convert all operands to long in these diff subtractions.

 1 public class Solution {
 2     /**
 3      * @param nums a sorted integer array
 4      * @param lower an integer
 5      * @param upper an integer
 6      * @return a list of its missing ranges
 7      */
 8     public List<String> findMissingRanges(int[] nums, int lower, int upper) {
 9         List<String> missRange = new ArrayList<String>();
10         if(nums == null){
11             return missRange;
12         }
13         if(nums.length == 0){
14             if(lower == upper){
15                 missRange.add(String.valueOf(lower));
16             }
17             else{
18                 missRange.add(String.valueOf(lower) + "->" + String.valueOf(upper));
19             }
20             return missRange;
21         }
22         int n = nums.length;
23         long diff = 0;
24         if(nums[0] > lower){
25             diff = (long)nums[0] - (long)lower;
26             if(diff == 1){
27                 missRange.add(String.valueOf(lower));
28             }
29             else{
30                 missRange.add(String.valueOf(lower) + "->" + String.valueOf(nums[0] - 1));
31             }
32         }
33         for(int i = 1; i < n; i++){
34             diff = (long)nums[i] - (long)nums[i - 1];
35             if(diff > 0){
36                 if(diff == 2){
37                     missRange.add(String.valueOf(nums[i - 1] + 1));    
38                 }
39                 else if(diff > 2){
40                     missRange.add(String.valueOf(nums[i - 1] + 1) + "->" + String.valueOf(nums[i] - 1));
41                 }
42             }
43         }
44         if(nums[n - 1] < upper){
45             diff = (long)upper - (long)nums[n - 1];
46             if(diff == 1){
47                 missRange.add(String.valueOf(upper));
48             }
49             else{
50                 missRange.add(String.valueOf(nums[n - 1] + 1) + "->" + String.valueOf(upper));                
51             }
52         }
53         return missRange;
54     }
55 }

相关阅读:
文件上传
 data.push({name:'a',value:'a'});
es数据迁移脚本(python)
es修改数据类型
 SqlServer应用程序的高级Sql注入
 ASP.NET中如何防范SQL注入式攻击
 AJAX.NET框架构建Lookup服务器控件
 asp.net 读写 XML 小结
 Global.asax 文件
 ajaxpro.2.dll 简单应用
原文地址：https://www.cnblogs.com/lz87/p/7203600.html