leetcode 165. Compare Version Numbers

Compare two version numbers version1 and version2.
If version1 > version2 return 1; if version1 < version2 return -1;otherwise return 0.

You may assume that the version strings are non-empty and contain only digits and the . character.

The . character does not represent a decimal point and is used to separate number sequences.

For instance, 2.5 is not "two and a half" or "half way to version three", it is the fifth second-level revision of the second first-level revision.

You may assume the default revision number for each level of a version number to be 0. For example, version number 3.4 has a revision number of 3 and 4 for its first and second level revision number. Its third and fourth level revision number are both 0.

 

Example 1:

Input: version1 = "0.1", version2 = "1.1"
Output: -1

Example 2:

Input: version1 = "1.0.1", version2 = "1"
Output: 1

Example 3:

Input: version1 = "7.5.2.4", version2 = "7.5.3"
Output: -1

Example 4:

Input: version1 = "1.01", version2 = "1.001"
Output: 0
Explanation: Ignoring leading zeroes, both “01” and “001" represent the same number “1”

Example 5:

Input: version1 = "1.0", version2 = "1.0.0"
Output: 0
Explanation: The first version number does not have a third level revision number, which means its third level revision number is default to "0"

 

Note:

  1. Version strings are composed of numeric strings separated by dots . and this numeric strings may have leading zeroes.
  2. Version strings do not start or end with dots, and they will not be two consecutive dots.

题目归类:简单题

题目大意:比较版本数的大小。

思路:硬编码。比较相同位置的数值大小

C++代码:

 1 class Solution {
 2 public:
 3     int compareVersion(string version1, string version2) {
 4         int flag = 0;
 5         int s1 = 0, s2 = 0;
 6         int len1 = version1.length(), len2 = version2.length();
 7         while (s1 < len1 || s2 < len2) {
 8             int n1 = 0, n2 = 0;
 9             while ((s1 < len1) && (version1[s1] != '.')) {
10                 n1 = n1 * 10 + (version1[s1] - '0');
11                 ++s1;
12             }
13             while ((s2 < len2) && (version2[s2] != '.')) {
14                 n2 = n2 * 10 + (version2[s2] - '0');
15                 ++s2;
16             }
17             if (n1 > n2) {
18                 flag = 1;
19                 break;
20             } 
21             else if (n1 < n2) {
22                 flag = -1;
23                 break;
24             } 
25             ++s1;
26             ++s2;
27         }
28         return flag;
29     }
30 };

 

posted @ 2020-09-09 21:39  琴影  阅读(172)  评论(0编辑  收藏  举报