好久没写java的代码了, 今天闲来无事写段java的代码,算是为新的一年磨磨刀,开个头,算法是Java判断回文数算法简单实现,基本思想是利用字符串对应位置比较,如果所有可能位置都满足要求,则输入的是回文数,否则不是,不多说,上代码: import java.util.*; public class HiJava { public static void main(String[] args) { Scanner sc = new Scanner(System.in); System.out.p
Given a string, your task is to count how many palindromic substrings in this string. The substrings with different start indexes or end indexes are counted as different substrings even they consist of same characters. Example 1: Input: "abc" Ou
Given a string, your task is to count how many palindromic substrings in this string. The substrings with different start indexes or end indexes are counted as different substrings even they consist of same characters. Example 1: Input: "abc" Ou
Given a string S, find the number of different non-empty palindromic subsequences in S, and return that number modulo 10^9 + 7. A subsequence of a string S is obtained by deleting 0 or more characters from S. A sequence is palindromic if it is equal
Problem Description Write a program to determine whether a word is a palindrome. A palindrome is a sequence of characters that is identical to the string when the characters are placed in reverse order. For example, the following strings are palindro
Given a string, determine if it is a palindrome, considering only alphanumeric characters and ignoring cases. Note: For the purpose of this problem, we define empty string as valid palindrome. Example 1: Input: "A man, a plan, a canal: Panama" O