整数反转
給出一個 32 位的有符號整數(shù),你需要將這個整數(shù)中每位上的數(shù)字進(jìn)行反轉(zhuǎn)。
- 示例 1:
- 示例 2:
- 示例 3:
- 注意:
假設(shè)我們的環(huán)境只能存儲得下 32 位的有符號整數(shù),則其數(shù)值范圍為 [?231, 231 ? 1]。請根據(jù)這個假設(shè),如果反轉(zhuǎn)后整數(shù)溢出那么就返回 0。
class Solution { public:int reverse(int x) {int max = (1<<31)-1;int min = (1<<31);int numbers[10];bool label = true;if (x < 0) {label = false;if (x != min) {x = -x;} else {return 0;}} if (x == 0) {return 0;}int count = 0;while (x > 0) {int tmp = x % 10;x /= 10;numbers[count++] = tmp;}long result = 0;for (int i = 0; i < count; i++) {result = result * 10 + numbers[i];}if (result > max) {return 0;}if (!label) {return -result;} else {return result;}} };or
class Solution { public:int reverse(int x) {bool negative = false;if (x < 0) {negative = true;if (x == INT_MIN) {return 0;} else {x = -x;}}long result = 0;while (x > 0) {result = result * 10 + x%10;x/=10;}if (result > INT_MAX) {return 0;} else if (negative){return -result;} else {return result;}} };or
class Solution { public:int reverse(int x) {long result = 0;while (x != 0) {result = result * 10 + x%10;x/=10;}if (result > INT_MAX || result < INT_MIN) {return 0;} else {return result;}} };注:
INT_MIN 和 INT_MAX,均定義在 <limits.h>頭文件中#define INT_MAX 2147483647 #define INT_MIN (-INT_MAX - 1)來源:力扣(LeetCode)
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