1.单纯的Unicode 转码 String a = "\u53ef\u4ee5\u6ce8\u518c"; a = new String(a.getBytes("UTF-16"),"Unicode"); 2.String 字符串中含有 Unicode 编码时,转为UTF-8 public static String decodeUnicode(String theString) { char aChar; int len = theString

题目描述 编写一个函数,计算字符串中含有的不同字符的个数.字符在ACSII码范围内(0~127).不在范围内的不作统计. 输入描述: 输入N个字符,字符在ACSII码范围内. 输出描述: 输出范围在(0~127)字符的个数. 输入例子: abc 输出例子: 3 import java.util.Scanner; public class Main {     public static void main(String[] args) {         Scanner scanner=new

/** * 方法名称:replaceBlank * 方法描述: 将string字符串中的换行符进行替换为"" * */ public static String replaceBlank(String str) { String dest = ""; if (str != null) { Pattern p = Pattern.compile("\t|\r|\n"); Matcher m = p.matcher(str); dest = m.re

1.1 Implement an algorithm to determine if a string has all unique characters. What if you cannot use additional data structure? 这道题让我们判断一个字符串中是否有重复的字符,要求不用特殊的数据结构,这里应该是指哈希表之类的不让用.像普通的整型数组应该还是能用的,这道题的小技巧就是用整型数组来代替哈希表,在之前Bitwise AND of Numbers Range 数

Given a string s and a list of strings dict, you need to add a closed pair of bold tag <b> and </b> to wrap the substrings in s that exist in dict. If two such substrings overlap, you need to wrap them together by only one pair of closed bold

Given two strings s1 and s2, write a function to return true if s2 contains the permutation of s1. In other words, one of the first string's permutations is the substring of the second string. Example 1: Input:s1 = "ab" s2 = "eidbaooo"

package stringyiwen; //字符串中常用的方法public class StringTest03 { public static void main(String[] args) { String str = " ahgklajwggaal "; // System.out.println("字符串长度是:" + str.length()); // 返回一个字符串,其值为此字符串,并删除任何前导和尾随空格.//trim:vi. 削减; System

知识点一:equalsIgnore 1.使用equals( )方法比较两个字符串是否相等.它具有如下的一般形式: boolean equals(Object str) 这里str是一个用来与调用字符串(String)对象做比较的字符串(String)对象.如果两个字符串具有相同的字符和长度,它返回true,否则返回false.这种比较是区分大小写的. 2.为了执行忽略大小写的比较,可以调用equalsIgnoreCase( )方法.当比较两个字符串时,它会认为A-Z和a-z是一样的.其一般形式如

统计字符串中的单词个数,这里的单词指的是连续的非空字符.请注意,你可以假定字符串里不包括任何不可打印的字符.示例:输入: "Hello, my name is John"输出: 5 详见:https://leetcode.com/problems/number-of-segments-in-a-string/description/ C++: 方法一: class Solution { public: int countSegments(string s) { int cnt=0; f

Given two strings s1 and s2, write a function to return true if s2 contains the permutation of s1. In other words, one of the first string's permutations is the substring of the second string. Example 1: Input:s1 = "ab" s2 = "eidbaooo"

统计字符串中的单词个数,这里的单词指的是连续的不是空格的字符. 请注意,你可以假定字符串里不包括任何不可打印的字符. 示例: 输入: "Hello, my name is John" 输出: 5 class Solution { public: int countSegments(string s) { int len = s.size(); string temp = ""; int res = 0; for(int i = 0; i < len; i++)

/** * 正则提前字符串中的IP地址 * @param ipString * @return */ public static List<String> getIps(String ipString){ String regEx="((2[0-4]\\d|25[0-5]|[01]?\\d\\d?)\\.){3}(2[0-4]\\d|25[0-5]|[01]?\\d\\d?)"; List<String> ips = new ArrayList<Strin

Count the number of segments in a string, where a segment is defined to be a contiguous sequence of non-space characters. Please note that the string does not contain any non-printable characters. Example: Input: "Hello, my name is John" Output:

$pattern = "/(&|"|<|>|')+/";  preg_match($pattern, $media_name, $matches);  var_dump($matches,$media_name); exit();  if($matches){   printJson(null,-12,'来源媒体名称含有非法字符,请重新输入');  } 一.利用正则表达式验证中文 注意UTF8编码和GB2312有所不同. 1.UTF8下的中文验证 $str

Given a set of keywords words and a string S, make all appearances of all keywords in S bold. Any letters between <b> and </b> tags become bold. The returned string should use the least number of tags possible, and of course the tags should fo

题目:Reverse Words in a String Given an input string, reverse the string word by word. For example, Given s = "the sky is blue", return "blue is sky the". 比较基础的一个题,拿到这个题,我的第一想法是利用vector来存每一个子串,然后在输出,这是一个比较简单的思路,此外,还有第二个思路,就是对所有的字符反转,然后在针

去掉字符串首尾空格 防止不必要的空格导致错误public class test{ public static void main(String[] args) { String str = " abc "; System.out.println(str.length());//输出6 System.out.println(str.trim().length());//输出3 }}

以空格为分隔符,判断一个string可以被分成几部分. 注意几种情况:(1)全都是空格 (2)空字符串(3)结尾有空格 思路: 只要统计出单词的数量即可.那么我们的做法是遍历字符串,遇到空格直接跳过,如果不是空格,则计数器加1,然后用个while循环找到下一个空格的位置,这样就遍历完了一个单词,再重复上面的操作直至结束,就能得到正确结果: class Solution { public: int countSegments(string s) { , n = s.size(); ; i < n;

import java.text.MessageFormat; import java.util.GregorianCalendar; import java.util.Locale; public class Test3 { public static void main(String[] args) throws Exception { String pattern1 = "{0},你好!你于 {1} 存入 {2}元"; String pattern2 = "At {1,

String character = "根据url获取一个字符串"; System.out.println("character"+character);            int indexOf = character.indexOf("{");//记录{开始的下标            int lastIndexOf = character.lastIndexOf("}");//记录}结束的下标