2022-12-13 23:50:49 +08:00
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// File: time_complexity.go
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2022-12-13 09:53:17 +08:00
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// Created Time: 2022-12-13
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// Author: msk397 (machangxinq@gmail.com)
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2022-12-13 23:24:12 +08:00
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package chapter_computational_complexity
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2022-12-13 09:24:59 +08:00
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/* 常数阶 */
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func constant(n int) int {
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count := 0
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size := 100000
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for i := 0; i < size; i++ {
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count++
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}
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return count
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}
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/* 线性阶 */
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func linear(n int) int {
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count := 0
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for i := 0; i < n; i++ {
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count++
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}
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return count
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}
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/* 线性阶(遍历数组) */
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func arrayTraversal(nums []int) int {
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count := 0
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// 循环次数与数组长度成正比
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for range nums {
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count++
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}
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return count
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}
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/* 平方阶 */
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func quadratic(n int) int {
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count := 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 := 0; i < n; i++ {
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for j := 0; j < n; j++ {
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count++
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}
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}
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return count
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}
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/* 平方阶(冒泡排序) */
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func bubbleSort(nums []int) int {
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count := 0 // 计数器
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2023-05-22 23:05:37 +08:00
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// 外循环:未排序区间为 [0, i]
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2022-12-13 09:24:59 +08:00
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for i := len(nums) - 1; i > 0; i-- {
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2023-05-22 23:05:37 +08:00
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// 内循环:将未排序区间 [0, i] 中的最大元素交换至该区间的最右端
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2022-12-13 09:24:59 +08:00
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for j := 0; j < i; j++ {
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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 := 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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}
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}
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}
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return count
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}
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/* 指数阶(循环实现)*/
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func exponential(n int) int {
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count, base := 0, 1
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2023-08-08 23:16:33 +08:00
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// 细胞每轮一分为二,形成数列 1, 2, 4, 8, ..., 2^(n-1)
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2022-12-13 09:24:59 +08:00
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for i := 0; i < n; i++ {
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for j := 0; j < base; j++ {
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count++
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}
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base *= 2
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}
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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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}
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/* 指数阶(递归实现)*/
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func expRecur(n int) int {
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if n == 1 {
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return 1
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}
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return expRecur(n-1) + expRecur(n-1) + 1
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}
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/* 对数阶(循环实现)*/
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func logarithmic(n float64) int {
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count := 0
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for n > 1 {
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n = n / 2
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count++
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}
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return count
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}
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/* 对数阶(递归实现)*/
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func logRecur(n float64) int {
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if n <= 1 {
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return 0
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}
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return logRecur(n/2) + 1
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}
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/* 线性对数阶 */
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func linearLogRecur(n float64) int {
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if n <= 1 {
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return 1
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}
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2023-10-09 18:21:18 +08:00
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count := linearLogRecur(n/2) + linearLogRecur(n/2)
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2022-12-13 09:24:59 +08:00
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for i := 0.0; i < n; i++ {
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count++
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}
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return count
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}
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/* 阶乘阶(递归实现) */
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func factorialRecur(n int) int {
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if n == 0 {
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return 1
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}
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count := 0
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// 从 1 个分裂出 n 个
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for i := 0; i < n; i++ {
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count += factorialRecur(n - 1)
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}
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return count
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}
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