标签:字符串 convert [] range new however || ted get
题目:罗马数字转换
题目难度:easy
题目内容:Roman numerals are represented by seven different symbols: I
, V
, X
, L
, C
, D
and M
.
Symbol Value I 1 V 5 X 10 L 50 C 100 D 500 M 1000
For example, two is written as II
in Roman numeral, just two one‘s added together. Twelve is written as, XII
, which is simply X
+ II
. The number twenty seven is written as XXVII
, which is XX
+ V
+ II
.
Roman numerals are usually written largest to smallest from left to right. However, the numeral for four is not IIII
. Instead, the number four is written as IV
. Because the one is before the five we subtract it making four. The same principle applies to the number nine, which is written as IX
. There are six instances where subtraction is used:
I
can be placed before V
(5) and X
(10) to make 4 and 9. X
can be placed before L
(50) and C
(100) to make 40 and 90. C
can be placed before D
(500) and M
(1000) to make 400 and 900.Given a roman numeral, convert it to an integer. Input is guaranteed to be within the range from 1 to 3999.
翻译:
例如,2在罗马数字中被写成II,就是两个加在一起。12是写成,XII,也就是X+II。数字二十七是二十七,也就是XX+V+II。
罗马数字通常从左到右写得最大。然而,4的数字不是IIII。相反,数字4被写成IV,因为1在5之前减去它等于4。同样的原则也适用于9号,它被写成IX。有六种情况下使用减法:
I可以在V(5)和X(10)之前放置分别是4和9。
X可以放在L(50)和C(100)之前,分别是40和90。
C可以放置在D(500)和M(1000)之前,分别是400和900。
给定一个罗马数字,把它转换成整数。输入在从1到3999的范围内。
思路:
加法直接加,减法只匹配前后两个字符,所以当cur字符小于下一个字符的时候,使用减法。
用一个Map将各个字符与对应值都存进去,即可进行比较和取值
MyCode:
1 public int romanToInt(String s) { 2 if (s == null || s.isEmpty()) { 3 return -1; 4 } 5 6 char[] sChar = s.toCharArray(); 7 Map<Character, Integer> map = new HashMap<Character, Integer>(); 8 map.put(‘I‘, 1); 9 map.put(‘V‘, 5); 10 map.put(‘X‘, 10); 11 map.put(‘L‘, 50); 12 map.put(‘C‘, 100); 13 map.put(‘D‘, 500); 14 map.put(‘M‘, 1000); 15 16 int sum=0; 17 for(int i=0;i<sChar.length-1;i++){ 18 if(map.get(sChar[i]) < map.get(sChar[i+1])) 19 sum-=map.get(sChar[i]); // 当前字符比下一个小,则总和减去此数字 20 else 21 sum+=map.get(sChar[i]); // 否则直接加上 22 } 23 return sum+map.get(sChar[sChar.length-1]); // 因为最后一个没判断,并且无后续,所以必然是加 24 }
结果:Accept
参考答案:
1 public int romanToInt(String s) { 2 int nums[]=new int[s.length()]; 3 for(int i=0;i<s.length();i++){ 4 switch (s.charAt(i)){ 5 case ‘M‘: 6 nums[i]=1000; 7 break; 8 case ‘D‘: 9 nums[i]=500; 10 break; 11 case ‘C‘: 12 nums[i]=100; 13 break; 14 case ‘L‘: 15 nums[i]=50; 16 break; 17 case ‘X‘ : 18 nums[i]=10; 19 break; 20 case ‘V‘: 21 nums[i]=5; 22 break; 23 case ‘I‘: 24 nums[i]=1; 25 break; 26 } 27 } 28 int sum=0; 29 for(int i=0;i<nums.length-1;i++){ 30 if(nums[i]<nums[i+1]) 31 sum-=nums[i]; 32 else 33 sum+=nums[i]; 34 } 35 return sum+nums[nums.length-1]; 36 }
答案思路:此处直接将原来的字符数组(字符串)转换成相对应的int数组,这样就不需要一个map了,相对来说这种方法的访问更加简便,但是增加了一轮算法复杂度,不过map的访问要比直接数组访问多一个步骤,所以两者复杂度算下来可能差不多都是O(2n)的样子,而答案这种操作更加简单一些,可以借鉴。
LeetCode第[13]题(Java):Roman to Integer
标签:字符串 convert [] range new however || ted get
原文地址:https://www.cnblogs.com/Xieyang-blog/p/8878596.html