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Given an integer array, find a subarray where the sum of numbers is zero. Your code should return the index of the first number and the index of the last number.
Given [-3, 1, 2, -3, 4], return [0, 2] or [1, 3].
Solution 1 (nlog(n)):
1 class Element implements Comparable<Element>{ 2 int index; 3 int value; 4 public Element(int i, int v){ 5 index = i; 6 value = v; 7 } 8 public int compareTo(Element other){ 9 return this.value-other.value; 10 } 11 public int getIndex(){ 12 return index; 13 } 14 public int getValue(){ 15 return value; 16 } 17 } 18 19 public class Solution { 20 /** 21 * @param nums: A list of integers 22 * @return: A list of integers includes the index of the first number 23 * and the index of the last number 24 */ 25 public ArrayList<Integer> subarraySum(int[] nums) { 26 ArrayList<Integer> res = new ArrayList<Integer>(); 27 if (nums==null || nums.length==0) return res; 28 int len = nums.length; 29 Element[] sums = new Element[len+1]; 30 sums[0] = new Element(-1,0); 31 int sum = 0; 32 for (int i=0;i<len;i++){ 33 sum += nums[i]; 34 sums[i+1] = new Element(i,sum); 35 } 36 Arrays.sort(sums); 37 for (int i=0;i<len;i++) 38 if (sums[i].getValue()==sums[i+1].getValue()){ 39 int start = Math.min(sums[i].getIndex(),sums[i+1].getIndex())+1; 40 int end = Math.max(sums[i].getIndex(),sums[i+1].getIndex()); 41 res.add(start); 42 res.add(end); 43 return res; 44 } 45 46 return res; 47 } 48 }
Solution 2 ( n, but more memory):
1 public class Solution { 2 /** 3 * @param nums: A list of integers 4 * @return: A list of integers includes the index of the first number 5 * and the index of the last number 6 */ 7 public ArrayList<Integer> subarraySum(int[] nums) { 8 ArrayList<Integer> res = new ArrayList<Integer>(); 9 if (nums==null || nums.length==0) return res; 10 int len = nums.length; 11 Map<Integer,List<Integer>> map = new HashMap<Integer,List<Integer>>(); 12 List<Integer> aList = new ArrayList<Integer>(); 13 aList.add(-1); 14 map.put(0,aList); 15 int sum =0; 16 for (int i=0;i<len;i++){ 17 sum += nums[i]; 18 //check the exists of current sum. 19 if (map.containsKey(sum)){ 20 int start = map.get(sum).get(0)+1; 21 res.add(start); 22 res.add(i); 23 return res; 24 } else { 25 aList = new ArrayList<Integer>(); 26 aList.add(i); 27 map.put(sum,aList); 28 } 29 } 30 31 return res; 32 } 33 }
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原文地址:http://www.cnblogs.com/lishiblog/p/4189339.html