package LeetCode_476 /** * 476. Number Complement * https://leetcode.com/problems/number-complement/description/ * Given a positive integer num, output its complement number. The complement strategy is to flip the bits of its binary representation. Example 1: Input: num = 5 Output: 2 Explanation: The binary representation of 5 is 101 (no leading zero bits), and its complement is 010. So you need to output 2. Example 2: Input: num = 1 Output: 0 Explanation: The binary representation of 1 is 1 (no leading zero bits), and its complement is 0. So you need to output 0. Constraints: The given integer num is guaranteed to fit within the range of a 32-bit signed integer. num >= 1 You could assume no leading zero bit in the integer’s binary representation. * */ class Solution { /* * Solution: Bit operation, Time complexity:O(32), Space complexity:O(1); * 5 is '00000101', because it complement number is '00000010': * so we need a mask like this:'11111000', then: ~num ^ mask => ~num is:'11111010' ^ mask=> the result: '00000010' * How i can make the mask '11111000' * 1.set mask: ...11111111 via ~0 * 2.loop to left shift the mask till num & mask is '00000000' * 以下是完整的位运算符(只用于Int和Long) shl(bits) – 有符号左移(signed shift left,相当于Java的<<) shr(bits) – 有符号右移(signed shift right,相当于Java的>>) ushr(bits) – 无符号右移(unsigned shift right,相当于Java的>>>) and(bits) – 按位与(bitwise and,相当于Java的&)//一一为一,其它为0 or(bits) – 按位或(bitwise or,相当于Java的|) //有一为一,零零为0 xor(bits) – 按位异或(bitwise xor,相当于Java的^)//相同为0,不相同为1 inv() – 按位取反(bitwise inversion,相当于Java的~)var z = y.inv() //z是y取反获得的 * */ fun bitwiseComplement(N: Int): Int { val zero = 0 var mask = zero.inv()//mask is ...11111111 while ((N and mask) != 0) { mask = mask shl 1 } return N.inv() xor mask } }