[LeetCode] Roman To Integer 解题报告


Given a roman numeral, convert it to an integer.
Input is guaranteed to be within the range from 1 to 3999.
» Solve this problem

[解题思路]

从前往后扫描,用一个临时变量记录分段数字。
  • 如果当前比前一个大,说明这一段的值应该是当前这个值减去上一个值。比如IV = 5 – 1
  • 否则,将当前值加入到结果中,然后开始下一段记录。比如VI = 5 + 1, II=1+1



[Code]
1:    inline int c2n(char c) {  
2: switch(c) {
3: case 'I': return 1;
4: case 'V': return 5;
5: case 'X': return 10;
6: case 'L': return 50;
7: case 'C': return 100;
8: case 'D': return 500;
9: case 'M': return 1000;
10: default: return 0;
11: }
12: }
13: int romanToInt(string s) {
14: // Start typing your C/C++ solution below
15: // DO NOT write int main() function
16: int result=0;
17: for(int i =0; i< s.size(); i++)
18: {
19: if(i>0&& c2n(s[i]) > c2n(s[i-1]))
20: {
21: result +=(c2n(s[i]) - 2*c2n(s[i-1]));
22: }
23: else
24: {
25: result += c2n(s[i]);
26: }
27: }
28: return result;
29: }


关联题:
http://fisherlei.blogspot.com/2012/12/leetcode-integer-to-roman.html



posted on 2013-01-01 13:34  小刀初试  阅读(118)  评论(0编辑  收藏  举报