Given a list of non-negative numbers and a target integer k,
write a function to check if the array has a continuous subarray of size at least 2 that
sums up to the multiple of k, that is, sums up to n*k where n is also an integer. Example 1: Input: [23, 2, 4, 6, 7], k=6 Output: True Explanation: Because [2, 4] is a continuous subarray of size 2 and sums up to 6. Example 2: Input: [23, 2, 6, 4, 7], k=6 Output: True Explanation: Because [23, 2, 6, 4, 7] is an continuous subarray of size 5 and sums up to 42. Note: The length of the array won't exceed 10,000. You may assume the sum of all the numbers is in the range of a signed 32-bit integer.
这种考subarray sum 常用到累加和数组啊, 要清楚从哪到哪开始求和, 在看题意怎么判断就ok了, 数组subarray sum 问题常常用累加和基础上改变
public boolean checkSubarraySum(int[] nums, int k) {
int n = nums.length;
if (n == 0 || nums == null || n < 2) {
return false;
}
int sum = 0;
for (int i = 0; i < n - 1; i++) {
sum = nums[i];
for (int j = i + 1; j < n; j++) {
sum += nums[j];
if (helper(sum, k)) return true;
}
}
return false;
}
private boolean helper(int sum, int k) {
if (k == 0) {
if (sum == 0) return true;
} else if (sum % k == 0) {
return true;
}
return false;
}
没想到用hashmap O(n) 即可, 关键是存的都是k的余数, 然后余数相见等于零即可 if (k != 0) runningSum %= k;
public boolean checkSubarraySum(int[] nums, int k) {
Map<Integer, Integer> map = new HashMap<Integer, Integer>();
int runningSum = 0;
for (int i=0;i<nums.length;i++) {
runningSum += nums[i];
if (k != 0) runningSum %= k;
if (runningSum == 0) {
if (i > 0) {
return true;
}
}
Integer prev = map.get(runningSum);
if (prev != null) {
if (i - prev > 1) return true;
}
else map.put(runningSum, i);
}
return false;
}