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:
- Version strings are composed of numeric strings separated by dots
.
and this numeric strings may have leading zeroes. - 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 };