[Swift]LeetCode413. 等差数列划分 | Arithmetic Slices
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A sequence of number is called arithmetic if it consists of at least three elements and if the difference between any two consecutive elements is the same.
For example, these are arithmetic sequence:
1, 3, 5, 7, 9 7, 7, 7, 7 3, -1, -5, -9
The following sequence is not arithmetic.
1, 1, 2, 5, 7
A zero-indexed array A consisting of N numbers is given. A slice of that array is any pair of integers (P, Q) such that 0 <= P < Q < N.
A slice (P, Q) of array A is called arithmetic if the sequence:
A[P], A[p + 1], ..., A[Q - 1], A[Q] is arithmetic. In particular, this means that P + 1 < Q.
The function should return the number of arithmetic slices in the array A.
Example:
A = [1, 2, 3, 4] return: 3, for 3 arithmetic slices in A: [1, 2, 3], [2, 3, 4] and [1, 2, 3, 4] itself.
如果一个数列至少有三个元素,并且任意两个相邻元素之差相同,则称该数列为等差数列。
例如,以下数列为等差数列:
1, 3, 5, 7, 9 7, 7, 7, 7 3, -1, -5, -9
以下数列不是等差数列。
1, 1, 2, 5, 7
数组 A 包含 N 个数,且索引从0开始。数组 A 的一个子数组划分为数组 (P, Q),P 与 Q 是整数且满足 0<=P<Q<N 。
如果满足以下条件,则称子数组(P, Q)为等差数组:
元素 A[P], A[p + 1], ..., A[Q - 1], A[Q] 是等差的。并且 P + 1 < Q 。
函数要返回数组 A 中所有为等差数组的子数组个数。
示例:
A = [1, 2, 3, 4] 返回: 3, A 中有三个子等差数组: [1, 2, 3], [2, 3, 4] 以及自身 [1, 2, 3, 4]。
8ms
1 class Solution { 2 func numberOfArithmeticSlices(_ A: [Int]) -> Int { 3 guard A.count >= 3 else { 4 return 0 5 } 6 7 var result = 0 8 for i in 2..<A.count { 9 if A[i] - A[i-1] == A[i-1] - A[i-2] { 10 result += 1 11 for j in i + 1..<A.count { 12 if A[j] - A[j - 1] == A[j - 1] - A[j - 2] { 13 result += 1 14 } else { 15 break 16 } 17 } 18 } 19 } 20 21 return result 22 } 23 }
16ms
1 class Solution { 2 func numberOfArithmeticSlices(_ A: [Int]) -> Int { 3 if A.count < 3 {return 0} 4 var res:Int = 0 5 var len:Int = 2 6 var n:Int = A.count 7 for i in 2..<n 8 { 9 if A[i] - A[i - 1] == A[i - 1] - A[i - 2] 10 { 11 len += 1 12 } 13 else 14 { 15 if len > 2 16 { 17 res += (len - 1) * (len - 2) / 2 18 len = 2 19 } 20 } 21 } 22 if len > 2 23 { 24 res += (len - 1) * (len - 2) / 2 25 } 26 return res 27 } 28 }
20ms
1 class Solution { 2 func numberOfArithmeticSlices(_ A: [Int]) -> Int { 3 guard A.count >= 3 else { 4 return 0 5 } 6 7 var P = 0 8 var res = 0 9 var diff = A[1] - A[0] 10 var count = 0 11 var i = 2 12 while i < A.count { 13 if A[i] - A[i-1] == diff { 14 count += i - P - 1 15 } 16 else { 17 res += count 18 count = 0 19 diff = A[i] - A[i-1] 20 P = i - 1 21 } 22 i += 1 23 } 24 res += count 25 return res 26 } 27 }
24ms
1 class Solution { 2 func numberOfArithmeticSlices(_ A: [Int]) -> Int { 3 let length = A.count 4 guard length > 2 else { 5 return 0 6 } 7 8 var count = 1 9 var dis = A[1] - A[0] 10 var num = 0 11 12 for index in 2..<length { 13 let curDis = A[index] - A[index - 1] 14 if curDis == dis { 15 count += 1 16 } else { 17 18 if count >= 2 { 19 num += (1 + (count - 1)) * (count - 1) / 2 20 } 21 dis = curDis 22 count = 1 23 } 24 } 25 if count >= 2 { 26 num += (1 + (count - 1)) * (count - 1) / 2 27 } 28 return num 29 } 30 }