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.
Here is an example of version numbers ordering:
0.1 < 1.1 < 1.2 < 13.37
思路:每次比较小数点之前的数,看能不能分出伯仲。就是比较“版本号”大小,给定的版本号version1和version2是字符串类型的,当version1>version2的时候,返回1,反之返回-1。
这道题属于细节处理题,除了字符串处理繁琐一点之外没有什么。
解题思路:先分别将version1、version2字符串按‘.‘分割成多个子串,每个子串转化成整型存入容器。最后再比较两个容器中对应位置的数的大小。当然需要考虑它们长度不同的情况。
注意点:
(1)version的形式:10.23.1、01.23、1.2.3.4....诸如
int compareVersion(string& s1, string& s2) {
int i=0,j=0;
int temp1,temp2;
while(i<s1.length() && j<s2.length())
{
temp1=0;
temp2=0;
for(;i<s1.length();i++)
if(s1[i]!='.')
temp1 = temp1*10 + (s1[i]-'0');
for(;j<s2.length();j++)
if(s2[j]!='.')
temp2 = temp2*10 + (s2[j]-'0');
if(temp1> temp2)
return 1;
else if(temp1<temp2)
return -1;
else
{
i++;
j++;
}
}
if(i>=s1.length() && j< s2.length())
return -1;
if(i<s1.length() && j>=s2.length())
return 1;
if(i>=s1.length() && j>=s2.length())
return 0;
}
Compare Version Numbers--LeetCode
原文:http://blog.csdn.net/yusiguyuan/article/details/45037401