Create prefix-hash.cc
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class Solution {
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public:
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int countMatchingSubarrays(vector<int>& nums, vector<int>& pattern) {
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constexpr int b = 31;
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int n = nums.size(), m = pattern.size();
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ll hp1 = 0, hp2 = 0;
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ll pow1 = 1, pow2 = 1;
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for (int i = 1; i <= m; ++i) {
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hp1 = mod(hp1 + mod(pow1 * (pattern[i-1] + 1), MDL1), MDL1);
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hp2 = mod(hp2 + mod(pow2 * (pattern[i-1] + 1), MDL2), MDL2);
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pow1 = mod(pow1 * b, MDL1);
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pow2 = mod(pow2 * b, MDL2);
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}
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vector<ll> hn1(n + 1), hn2(n + 1);
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pow1 = 1, pow2 = 1;
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for (int i = 2; i <= n; ++i) {
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int p;
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if (nums[i-1] > nums[i-2]) p = 1;
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else if (nums[i-1] == nums[i-2]) p = 0;
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else p = -1;
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hn1[i] = mod(hn1[i-1] + mod(pow1 * (p + 1), MDL1), MDL1);
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hn2[i] = mod(hn2[i-1] + mod(pow2 * (p + 1), MDL2), MDL2);
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pow1 = mod(pow1 * b, MDL1);
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pow2 = mod(pow2 * b, MDL2);
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}
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int res = 0;
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pow1 = 1, pow2 = 1;
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for (int i = 1; i + m <= n; ++i) {
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if (mod(hp1 * pow1, MDL1) == mod(hn1[i+m] - hn1[i], MDL1) &&
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mod(hp2 * pow2, MDL2) == mod(hn2[i+m] - hn2[i], MDL2)) {
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res += 1;
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}
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pow1 = mod(pow1 * b, MDL1);
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pow2 = mod(pow2 * b, MDL2);
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}
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return res;
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}
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};
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作者:subcrip
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链接:https://leetcode.cn/problems/number-of-subarrays-that-match-a-pattern-ii/solutions/2637701/zi-fu-chuan-ha-xi-by-subcrip-r3z4/
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来源:力扣(LeetCode)
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著作权归作者所有。商业转载请联系作者获得授权,非商业转载请注明出处。
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