题目:
Given a sorted integer array without duplicates, return the summary of its ranges.
For example, given [0,1,2,4,5,7]
, return ["0->2","4->5","7"].
链接: http://leetcode.com/problems/summary-ranges/
题解:
总结Range。也是从头到尾走一遍。当nums[i] - 1> nums[i - 1],我们处理之前的数字们。当遍历到最后一个元素的时候也要考虑如何处理。
Time Complexity - O(n), Space Complexity - O(1)。
public class Solution { public List<String> summaryRanges(int[] nums) { List<String> res = new ArrayList<>(); if(nums == null || nums.length == 0) return res; int lo = 0; StringBuilder sb = new StringBuilder(); for(int i = 0; i < nums.length; i++) { if(i > 0 && (nums[i] - 1 > nums[i - 1])) { if(lo == i - 1) res.add(Integer.toString(nums[lo])); else { res.add(sb.append(nums[lo]).append("->").append(nums[i - 1]).toString()); sb.setLength(0); } lo = i; } if(i == nums.length - 1) { if(lo == i) res.add(Integer.toString(nums[lo])); else res.add(sb.append(nums[lo]).append("->").append(nums[i]).toString()); } } return res; } }
二刷:
- 方法和一刷一样。我们主要使用一个变量lo来保存每个interval的左边界。
- 每次当 i > 0并且 nums[i] - 1 > nums[i]的时候,我们进行判断
- 假如 lo = i - 1,那么我们只有一个数字,直接把这个数字加入到结果
- 否则 我们要把 nums[lo] + "->" + nums[i - 1]这个字符串加入到结果
- 更新 lo = i
- 当i = len - 1的时候,我们也要根据上面的逻辑判断一遍
- 最后返回结果.
Java:
可以使用StringBuilder来减少空间复杂度。
Time Complexity - O(n), Space Complexity - O(1)。
public class Solution { public List<String> summaryRanges(int[] nums) { List<String> res = new ArrayList<>(); if (nums == null || nums.length == 0) { return res; } int lo = 0, len = nums.length; for (int i = 0; i < len; i++) { if (i > 0 && (nums[i] - 1 > nums[i - 1])) { if (lo == i - 1) { res.add(nums[lo] + ""); } else { res.add(nums[lo] + "->" + nums[i - 1]); } lo = i; } if (i == len - 1) { if (lo == len - 1) { res.add(nums[lo] + ""); } else { res.add(nums[lo] + "->" + nums[len - 1]); } } } return res; } }
三刷:
不知道上面在写什么...这回主要使用一个变量count和一个StringBuilder sb。遍历整个数组,当count = 0的时候,我们在sb中加入当前nums[i]。 当nums[i] - nums[i - 1]时,我们增加count。否则,这时nums[i] - nums[i - 1] > 1,假如count > 1,则形成了一个range,我们在sb中append一个符号"->",再append上一个数字,把sb输出到结果。否则count = 1,我们直接输出sb到结果。 最后运行完毕时假如count仍然>0,我们做相应步骤,把sb输出到结果。
Java:
public class Solution { public List<String> summaryRanges(int[] nums) { List<String> res = new ArrayList<>(); if (nums == null || nums.length == 0) return res; StringBuilder sb = new StringBuilder(); int count = 0; for (int i = 0; i < nums.length; i++) { if (count == 0) { sb.append(nums[i]); count++; } else if (nums[i] - nums[i - 1] == 1) { count++; } else { if (count > 1) sb.append("->").append(nums[i - 1]); res.add(sb.toString()); sb.setLength(0); sb.append(nums[i]); count = 1; } } if (count > 1) sb.append("->").append(nums[nums.length - 1]); res.add(sb.toString()); return res; } }
简化一下。分析的时候要考虑起始状态,过程分支以及结束时的边界条件。
public class Solution { public List<String> summaryRanges(int[] nums) { List<String> res = new ArrayList<>(); if (nums == null || nums.length == 0) return res; StringBuilder sb = new StringBuilder(nums[0] + ""); int count = 1; for (int i = 1; i < nums.length; i++) { if (nums[i] - nums[i - 1] == 1) { count++; } else { if (count > 1) sb.append("->").append(nums[i - 1]); res.add(sb.toString()); sb.setLength(0); sb.append(nums[i]); count = 1; } } if (count > 1) sb.append("->").append(nums[nums.length - 1]); res.add(sb.toString()); return res; } }
Update:
Different logic. This time we use a sliding window. If we found out nums[i] > nums[i - 1] + 1, we need to add result to res. here if i - 1 != lo, we need to add a range into res, otherwise we need to add a single number into res. We also need to do double check while we finished running the loop.
public class Solution { public List<String> summaryRanges(int[] nums) { List<String> res = new ArrayList<>(); if (nums == null || nums.length == 0) return res; StringBuilder sb = new StringBuilder(); int lo = 0, len = nums.length; for (int i = 1; i < len; i++) { if (nums[i] > nums[i - 1] + 1) { if (i - 1 != lo) sb.append(nums[lo]).append("->").append(nums[i - 1]); else sb.append(nums[lo]); res.add(sb.toString()); lo = i; sb.setLength(0); } } if (lo == len - 1) sb.append(nums[lo]); else sb.append(nums[lo]).append("->").append(nums[len - 1]); res.add(sb.toString()); return res; } }
Reference:
https://leetcode.com/discuss/42229/10-line-c-easy-understand
https://leetcode.com/discuss/42199/6-lines-in-python
https://leetcode.com/discuss/42342/idea-1-liner-group-by-number-index
https://leetcode.com/discuss/42290/accepted-java-solution-easy-to-understand