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"""
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File: time_complexity.py
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Created Time: 2022-11-25
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Author: Krahets (krahets@163.com)
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"""
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def constant(n: int) -> int:
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""" 常数阶 """
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count: int = 0
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size: int = 100000
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for _ in range(size):
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count += 1
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return count
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def linear(n: int) -> int:
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""" 线性阶 """
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count: int = 0
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for _ in range(n):
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count += 1
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return count
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def array_traversal(nums: list[int]) -> int:
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""" 线性阶(遍历数组)"""
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count: int = 0
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# 循环次数与数组长度成正比
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for num in nums:
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count += 1
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return count
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def quadratic(n: int) -> int:
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""" 平方阶 """
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count: int = 0
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# 循环次数与数组长度成平方关系
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for i in range(n):
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for j in range(n):
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count += 1
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return count
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def bubble_sort(nums: list[int]) -> int:
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""" 平方阶(冒泡排序)"""
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count: int = 0 # 计数器
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# 外循环:待排序元素数量为 n-1, n-2, ..., 1
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for i in range(len(nums) - 1, 0, -1):
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# 内循环:冒泡操作
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for j in range(i):
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if nums[j] > nums[j + 1]:
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# 交换 nums[j] 与 nums[j + 1]
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tmp: int = nums[j]
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nums[j] = nums[j + 1]
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nums[j + 1] = tmp
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count += 3 # 元素交换包含 3 个单元操作
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return count
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def exponential(n: int) -> int:
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""" 指数阶(循环实现)"""
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count: int = 0
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base: int = 1
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# cell 每轮一分为二,形成数列 1, 2, 4, 8, ..., 2^(n-1)
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for _ in range(n):
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for _ in range(base):
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count += 1
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base *= 2
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# count = 1 + 2 + 4 + 8 + .. + 2^(n-1) = 2^n - 1
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return count
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def exp_recur(n: int) -> int:
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""" 指数阶(递归实现)"""
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if n == 1: return 1
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return exp_recur(n - 1) + exp_recur(n - 1) + 1
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def logarithmic(n: float) -> int:
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""" 对数阶(循环实现)"""
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count: int = 0
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while n > 1:
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n = n / 2
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count += 1
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return count
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def log_recur(n: float) -> int:
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""" 对数阶(递归实现)"""
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if n <= 1: return 0
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return log_recur(n / 2) + 1
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def linear_log_recur(n: float) -> int:
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""" 线性对数阶 """
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if n <= 1: return 1
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count: int = linear_log_recur(n // 2) + \
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linear_log_recur(n // 2)
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for _ in range(n):
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count += 1
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return count
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def factorial_recur(n: int) -> int:
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""" 阶乘阶(递归实现)"""
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if n == 0: return 1
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count: int = 0
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# 从 1 个分裂出 n 个
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for _ in range(n):
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count += factorial_recur(n - 1)
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return count
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""" Driver Code """
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if __name__ == "__main__":
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# 可以修改 n 运行,体会一下各种复杂度的操作数量变化趋势
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n = 8
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print("输入数据大小 n =", n)
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count: int = constant(n)
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print("常数阶的计算操作数量 =", count)
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count: int = linear(n)
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print("线性阶的计算操作数量 =", count)
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count: int = array_traversal([0] * n)
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print("线性阶(遍历数组)的计算操作数量 =", count)
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count: int = quadratic(n)
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print("平方阶的计算操作数量 =", count)
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nums: list[int] = [i for i in range(n, 0, -1)] # [n,n-1,...,2,1]
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count: int = bubble_sort(nums)
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print("平方阶(冒泡排序)的计算操作数量 =", count)
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count: int = exponential(n)
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print("指数阶(循环实现)的计算操作数量 =", count)
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count: int = exp_recur(n)
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print("指数阶(递归实现)的计算操作数量 =", count)
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count: int = logarithmic(n)
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print("对数阶(循环实现)的计算操作数量 =", count)
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count: int = log_recur(n)
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print("对数阶(递归实现)的计算操作数量 =", count)
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count: int = linear_log_recur(n)
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print("线性对数阶(递归实现)的计算操作数量 =", count)
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count: int = factorial_recur(n)
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print("阶乘阶(递归实现)的计算操作数量 =", count)
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