leetcode:7. Reverse Integer
这题简单,也花了我好长时间,我自己写的code比较麻烦,也没啥技巧:按正负性分类执行,先转化成字符串,用stringbuilder进行旋转,如果超出范围了就用try catch
public int reverse(int x) { try { int result = 0; if (x == 0) { return x; } else if (x < 0) { String num = Integer.toString(0 - x); String newNum = new StringBuilder(num).reverse().toString(); result = 0 - Integer.parseInt(newNum); } else { String num = Integer.toString(x); String newNum = new StringBuilder(num).reverse().toString(); result = Integer.parseInt(newNum); } return result; } catch (Exception e) { return 0; } }
这种方法要好一些:https://discuss.leetcode.com/topic/15134/very-short-7-lines-and-elegant-solution
public int reverse(int x) { long rev= 0; while( x != 0){ rev= rev*10 + x % 10; x= x/10; if( rev > Integer.MAX_VALUE || rev < Integer.MIN_VALUE) return 0; } return (int) rev; }
posted on 2017-12-20 09:51 Michael2397 阅读(122) 评论(0) 编辑 收藏 举报
