• 6 Palindrome Number


    Determine whether an integer is a palindrome. An integer is a palindrome when it reads the same backward as forward.

    Example 1:

     Input: 121
     Output: true
    

    Example 2:

     Input: -121
     Output: false
     Explanation: From left to right, it reads -121. From right to left, it becomes 121-. Therefore it is not a palindrome.
    

    Example 3:

     Input: 10
     Output: false
     Explanation: Reads 01 from right to left. Therefore it is not a palindrome.
    

    这次找了个简单题目找找自信:)不过我发现我还是太年轻了,程序仅仅可以运行是完全不够的。贴一下第一次代码,还是比较丑陋的,运行速度也比较慢(39%):

    class Solution {
    public:
        bool isPalindrome(int x) {
            
            if(x<0) return false;
            if(x==0) return true;
            
            vector<int> s;
            
            while(x>0)
            {
                int res =x%10;
                x=x/10;
                s.push_back(res);
            }
            
            
            
            bool isPalindrome = true;
            for(int i=0;i<s.size()/2;i++)
            {
                //int start = i;
                int end   = s.size() - i - 1;
                
                if(s[i] != s[end])
                {
                    isPalindrome = false;
                    break;
                }
            }
            
            return isPalindrome;
            
        }
    };
    

    后来忽然回想起来如果逆转数与原数相等应该也可以,但是忘了数值越界这个大坑,作弊式的用了long long int,然而也并没有多快(56%)

    class Solution {
    public:
        bool isPalindrome(int x) {
            
            if(x<0) return false;
            if(x==0) return true;
            
            long long int reverse = 0;
            int temp = x;
            while(temp>0)
            {
                int res = temp%10;
                reverse = 10*reverse  + res;
                temp=temp/10;
            }
            cout<<reverse;
            bool isPalindrome = (reverse == x)? true:false;
            
            return isPalindrome;
            
        }
    };
    

    又参照了大神的deque法:),但是速度也只是56%左右,不过思路比较新奇和谐

    class Solution {
    public:
         bool isPalindrome(int x) {
             if (x < 0)
                 return false;
             
             deque <int> dq;
            
             while (x > 0)
             {
                 dq.push_back(x % 10);
                 x /= 10;
             }
            
             while (!dq.empty())
             {
                 if (dq.front() != dq.back())
                     return false;
                 dq.pop_front();
                 if (dq.size() <= 1)
                     return true;
                 dq.pop_back();
                 if (dq.size() <= 1)
                     return true;
             }
            return true;
        }
    
    };
    
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  • 原文地址:https://www.cnblogs.com/xiaoyisun06/p/11173827.html
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