# 2020q3 Homework4 (quiz4) contributed by < `haoyu0970624763` > # 測驗 1 - Hamming Distance ```c= int hammingDistance(int x, int y){ return __builtin_popcount(x ^ y); } ``` ## 程式原理 Hamming Distance 是要計算兩串二進位字串不同的地方有幾個，也就是計算 XOR 之後 有幾個 1 ## 不使用 gcc extension 的 C99 實作程式碼 ```c= int hammingDistance(int x, int y) { x=x^y; unsigned count=0; while(x){ count++; x=x&(x-1); } return count; } ``` [參考資訊](http://github.tiankonguse.com/blog/2014/11/16/bit-count-more.html) # 測驗二-Kth Ancestor of a Tree Node ```c= #include <stdlib.h> typedef struct { int **parent; int max_level; } TreeAncestor; TreeAncestor *treeAncestorCreate(int n, int *parent, int parentSize) { TreeAncestor *obj = malloc(sizeof(TreeAncestor)); obj->parent = malloc(n * sizeof(int *)); int max_level = 32 - __builtin_clz(n) + 1; for (int i = 0; i < n; i++) { obj->parent[i] = malloc(max_level * sizeof(int)); for (int j = 0; j < max_level; j++) obj->parent[i][j] = -1; } for (int i = 0; i < parentSize; i++) obj->parent[i][0] = parent[i]; for (int j = 1;; j++) { int quit = 1; for (int i = 0; i < parentSize; i++) { obj->parent[i][j] = obj->parent[i][j-1] == -1 ? -1:obj->parent[obj->parent[i][j - 1]]; if (obj->parent[i][j] != -1) quit = 0; } if (quit) break; } obj->max_level = max_level - 1; return obj; } int treeAncestorGetKthAncestor(TreeAncestor *obj, int node, int k) { int max_level = obj->max_level; for (int i = 0; i < max_level && node != -1; ++i) if (k & (1 << i)) node = obj->parent[node][i]; return node; } void treeAncestorFree(TreeAncestor *obj) { for (int i = 0; i < obj->n; i++) free(obj->parent[i]); free(obj->parent); free(obj); } ``` ## 程式碼解析 ```cpp obj->parent = malloc(n * sizeof(int *)); ``` 可以從這一行看出 `parent` 為 pointer to pointer 的 type ```cpp int max_level = 32 - __builtin_clz(n) + 1; for (int i = 0; i < n; i++) { obj->parent[i] = malloc(max_level * sizeof(int)); for (int j = 0; j < max_level; j++) obj->parent[i][j] = -1; } ``` `max_level`是紀錄現在這個tree當中最大的level數為多少 將 `obj->parent` 做成二維陣列，`obj->parent[n][max_level]` 並將所有值初始化成 `-1` ( -1 表示 no ancestor 的意思) ```cpp for (int i = 0; i < parentSize; i++) obj->parent[i][0] = parent[i]; ``` `parent[i]` 存放的是 node~i~ 父親的位置 並把`obj->parent[i][0]` 用來存放 node~i~ 的父親 ```cpp for (int j = 1;; j++) { int quit = 1; for (int i = 0; i < parentSize; i++) { obj->parent[i][j] = obj->parent[i][j-1] == -1 ? -1:obj->parent[obj->parent[i][j - 1]]; if (obj->parent[i][j] != -1) quit = 0; } if (quit) break; } ``` 目的: **設置 obj->parent 的 element** # 測驗3-FizzBuzz **從 1 數到 n** * 如果是 3的倍數，印出 “Fizz” * 如果是 5 的倍數，印出 “Buzz” * 如果是 15 的倍數，印出 “FizzBuzz” * 如果都不是，就印出數字本身 **可以觀察到:** * 整數格式字串 "%d" : 長度為 2 * "Fizz" 或 "Buzz" : 長度為 4 * "FizzBuzz" : 長度為 8 ```c= #define MSG_LEN 8 static inline bool is_divisible(uint32_t n, uint64_t M) { return n * M <= M - 1; } static uint64_t M3 = UINT64_C(0xFFFFFFFFFFFFFFFF) / 3 + 1; static uint64_t M5 = UINT64_C(0xFFFFFFFFFFFFFFFF) / 5 + 1; int main(int argc, char *argv[]) { for (size_t i = 1; i <= 100; i++) { uint8_t div3 = is_divisible(i, M3); uint8_t div5 = is_divisible(i, M5); unsigned int length = (2 << div3) << div5; char fmt[MSG_LEN + 1]; strncpy(fmt, &"FizzBuzz%u"[(MSG_LEN >> div5) >> (div3 << 2)], length); fmt[length] = '\0'; printf(fmt, i); printf("\n"); } return 0; } ``` **程式解說** `div3`、`div5` 分別可知道 `i` 是否為 3 或 5 的倍數 * 是，為 1 * 否，則為 0 這個概念在quiz2有碰過 **`length`則是根據我們觀察，判斷是不是3或5的倍數進行 operator 的平移** | `div3` | `div5` | `length` | ( 8 >> div5) >> (div3 << 2) | |:------:|:------:|:--------:|:-----------------------------------:| | 1 | 0 | 4 | 0 | | 0 | 1 | 4 | 4 | | 1 | 1 | 8 | 0 | | 0 | 0 | 2 | 8 |