用 Java 编写一个函数,它接受一个字符串数组,并从字符串数组中仅返回那些连续重复特定字母的字符串,例如:如果 I/P 是
{"Dauresselam", "slab", "fuss", "boolean", "clap"}
那么 O/P 应该是
{"Dauresselam", "fuss", "boolean"}
我可以使用解决它
import java.util.Scanner;
public class doubleChars {
public static String[] getDoubles(String[]In)
{
int inLen=In.length;
String zoom[]=new String[inLen];
int count=0;
if(inLen==0)
{
return zoom;
}
for(int i=0;i<=inLen-1;i++)
{
String A=In[i];
//System.out.println(A);
int striLen=A.length();
for(int j=0;j<striLen-1;j++)
{
if(A.substring(j, j+1).equals(A.substring(j+1, j+2)))
{
zoom[count]=A;
count++;
break;
}
}
}
return zoom;
}
public static void main(String[] args)
{
char more='y';
int ab=0;
String[] res={};
String[] fillMe={"durres", "murres", "", "abcdeee", "boolean", "nger", "lagger"};
Scanner strobe=new Scanner(System.in);
System.out.println("Please enter the arraye of the string");
/*while(strobe.hasNext())
{
fillMe[ab]=strobe.next();
ab++;
}
*/
res=doubleChars.getDoubles(fillMe);
for(int k=0;k<res.length;k++)
{
if(res[k]==null)
{
break;
}
System.out.println(res[k]);
}
}
}
IS 有一种方法可以使用正则表达式让它更短?
你可以使用反向引用:
([a-z])\1
可视化Debuggex
Java 示例:
String[] strings = { "Dauresselam", "slab", "fuss", "boolean", "clap" };
String regex = "([a-z])\\1";
Pattern pattern = Pattern.compile(regex);
for (String string : strings) {
Matcher matcher = pattern.matcher(string);
if (matcher.find()) {
System.out.println(string);
}
}
Prints:
Dauresselam
fuss
boolean