• [LeetCode] 165. Compare Version Numbers 比较版本数


    Compare two version numbers version1 and version1.
    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

    Credits:
    Special thanks to @ts for adding this problem and creating all test cases.

    给2个版本的字符串,里面只含数字和 '.' ,比较两个版本的大小。

    解法:对字符串以 '.' ,进行分拆形成数组。然后从数组的第一个元素开始比较,如果相同就比较下一个元素,如果不同v1大就返回1,v2 大就返回-1,如果比较到最后都相同就返回0。

    注意:如果产生的两个数组长度不一样,例如:1.2 < 1.2.3 则要把短的后面加上'0'补齐数组长度和长的一样,然后在进行比较。

    Java:

        String[] arr1 = version1.split("\.");
        String[] arr2 = version2.split("\.");
     
        int i=0;
        while(i<arr1.length || i<arr2.length){
            if(i<arr1.length && i<arr2.length){
                if(Integer.parseInt(arr1[i]) < Integer.parseInt(arr2[i])){
                    return -1;
                }else if(Integer.parseInt(arr1[i]) > Integer.parseInt(arr2[i])){
                    return 1;
                }
            } else if(i<arr1.length){
                if(Integer.parseInt(arr1[i]) != 0){
                    return 1;
                }
            } else if(i<arr2.length){
               if(Integer.parseInt(arr2[i]) != 0){
                    return -1;
                }
            }
     
            i++;
        }
     
        return 0;
    }

    Java:

    public class Solution {
        public int compareVersion(String version1, String version2) {
            if (version1 == null || version2 == null) return 0;
            String[] v1s = version1.split("\.");
            String[] v2s = version2.split("\.");
            int i = 0, j = 0, res = 0;
            while (i < v1s.length || j < v2s.length) {
                int ver1 = i < v1s.length ? Integer.valueOf(v1s[i++]) : 0;
                int ver2 = j < v2s.length ? Integer.valueOf(v2s[j++]) : 0;
                if (ver1 < ver2) return -1;
                else if (ver1 > ver2) return 1;
            }
            return 0;
        }
    }

    Python:

    class Solution2(object):
        def compareVersion(self, version1, version2):
            """
            :type version1: str
            :type version2: str
            :rtype: int
            """
            v1, v2 = version1.split("."), version2.split(".")
            
            if len(v1) > len(v2):
                v2 += ['0' for _ in xrange(len(v1) - len(v2))]
            elif len(v1) < len(v2):
                v1 += ['0' for _ in xrange(len(v2) - len(v1))]
            
            i = 0
            while i < len(v1):
                if int(v1[i]) > int(v2[i]):
                    return 1
                elif int(v1[i]) < int(v2[i]):
                    return -1
                else:
                    i += 1
            
            return 0
    

    Python: My solution  

    class Solution(object):
        """
        :type v1, str
        :type v2, str
        :rtype: int
        """
        def compareVersion(self, v1, v2):
            split_v1 = v1.split('.')
            split_v2 = v2.split('.')
            print split_v1, split_v2
            n1 = len(split_v1)
            n2 = len(split_v2)
            
            if n1 < n2:
                for i in xrange(n2 - n1):
                    split_v1 += '0'
            elif n1 > n2: 
                for i in xrange(n1 - n2):
                    split_v2 += '0'
                
            for i in xrange(len(split_v1)):
                if split_v1[i] == split_v2[i]:
                    continue
                if split_v1[i] > split_v2[i]:
                    return 1
                if split_v1[i] < split_v2[i]:
                    return -1
            
            return 0
    

    类似题目:

    [LeetCode] 278. First Bad Version 第一个坏版本

      

    All LeetCode Questions List 题目汇总

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  • 原文地址:https://www.cnblogs.com/lightwindy/p/8643778.html
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