leetcode 405. Convert a Number to Hexadecimal
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Given an integer, write an algorithm to convert it to hexadecimal. For negative integer, two’s complement method is used.
Note:
- All letters in hexadecimal (
a-f
) must be in lowercase. - The hexadecimal string must not contain extra leading
0
s. If the number is zero, it is represented by a single zero character‘0‘
; otherwise, the first character in the hexadecimal string will not be the zero character. - The given number is guaranteed to fit within the range of a 32-bit signed integer.
- You must not use any method provided by the library which converts/formats the number to hex directly.
Example 1:
Input: 26 Output: "1a"
Example 2:
Input: -1 Output: "ffffffff"
10进制转换到16进制,其中负数用补码的形式处理
其实,计算机内都是用补码的形式进行计算的。被题目晃了一下。
下面是我愚笨的代码,把10进制转换到二进制然后转换到负数的二进制,然后再转换到16进制。
class Solution { public: char get(int x) { if (x < 10) return char(x + ‘0‘); else { switch(x){ case 10: return ‘a‘; case 11: return ‘b‘; case 12: return ‘c‘; case 13: return ‘d‘; case 14: return ‘e‘; case 15: return ‘f‘; } } } string toHex(int num) { if (num == 0) return "0"; int x = num; if (x < 0) x = -x; vector<int> v; while (x > 0) { v.push_back(x%2); x /= 2; } while (v.size() < 32) { v.push_back(0); } string s = ""; if (num < 0) v[31] = 1; else { int mark = 0; for (int i = 31; i >= 0; i -= 4) { int x = 0; for (int j = 3; j >= 0; --j) { if (v[i - j] == 1)x += (int)pow(2.0,3 - j); } if (x == 0 && !mark) continue; mark = 1; s += get(x); } return s; } for (int i = 30; i >= 0; --i) { v[i] = 1 - v[i]; } for (int i = 0; i < 30; ++i) { if (i == 0) { v[i] ++; if (v[i] >= 2) v[i + 1] ++,v[i] = 0; else break; } else { if (v[i] >= 2) v[i] = 0, v[i + 1]++; else break; } } int mark = 0; for (int i = 31; i >= 0; i -= 4) { int x = 0; for (int j = 3; j >= 0; --j) { if (v[i - j] == 1) x += (int)pow(2.0,3 - j); } if (x == 0 && !mark) continue; mark = 1; s += get(x); } return s; } };
其实计算机中数字本身就是补码的形式表示的,我们只需要直接将其装换到16进制就可以了,转换的思路就是每4个二进制位进行枚举,将这4个二进制转换到0~15就ok了
class Solution { public: string toHex(int num) { if(0==num) return "0"; string res; const string HEX = "0123456789abcdef"; int count=0; while(num && 8>count++){ res = HEX[(num & 0xf)] + res; num>>=4; } return res; } };
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