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Can you give me an instance where my code fails, because it appears CodingBat is in no mood for elaboration (usually it gives me a fail example).

Here is coding bat denying me satisfaction:

http://i49.tinypic.com/29z1km1.png

Link to the problem:

http://codingbat.com/prob/p139411

And my code (i change string to str cause I'm used to the problems with "str"):

 public String mirrorEnds(String string) {

 String str = string;
 StringBuilder sb = new StringBuilder();
 int beg = 0;
 int end = str.length()-1;

 while(beg < end)
 {
   if(str.charAt(beg)==str.charAt(end))
    sb.append(str.substring(beg,beg+1));
   else
    break;

   ++beg;
   --end;      
 }

 if(beg==end)
  return str;
 else
  return sb.toString();

}

Thank you

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6 Answers 6

Here's mine, for what it's worth (not much, I know, but I was writing it while you were finding the bug..)

private String mirrorEnds(String string) {
    final char[] chars = string.toCharArray();
    final int n = chars.length;
    StringBuilder sb = new StringBuilder();

    for (int i = 0; i < n; i++) {
        if (chars[i] != chars[n - i - 1])
            break;
        sb.append(chars[i]);
    }
    return sb.toString();
}
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Bah. I found it. Instance is "abba"

Needed to change "if(beg==end)" to "if(beg>=end)".

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public String mirrorEnds(String string) {
    String s = "";
    String str = "";

    for (int i=string.length()-1; i>=0; i--)
    {
        s = s + string.charAt(i);
    }

    for (int j=0; j<string.length(); j++)
    {
        if (s.charAt(j) == string.charAt(j))
        {
            str = str + string.charAt(j);
        }

        if (s.charAt(j) != string.charAt(j))
        {
            break;
        }
    }

    return str;

}
share|improve this answer
public static String mirrorEnds(String string) {
    for (int i = 0; i < string.length(); i++) {
        if(string.charAt(i) != string.charAt(string.length()-i-1)){
            return string.substring(0,i);
        }
        else if(i==string.length()-1) return string;
    }       
    return "";    
}
share|improve this answer
    
Welcome to Stack Overflow. While a code sample may answer the question, it's better to provide some sort of explanation behind what it is meant to do or show. It also increases your chances of getting upvotes! See How to Answer for more information. Thanks! –  Qantas 94 Heavy Apr 2 at 11:33

Making a helper method is both efficient and makes the job easier, and logic clearer, recommended strategy for beginners, dissect the logic out, then put it together, as seen in codingBat's fizzBuzz questions that build up to the real fizzBuzz. Even though there a shorter solutions, this shows the full extent of logic used.

public String mirrorEnds(String string) {
  String reversed = reverseString(string); //the reversed version 
  String result = ""; 
  for(int a = 0; a < string.length(); a++){
  if(string.charAt(a) == reversed.charAt(a)){ //keep going...
  result += string.charAt(a);
  }
  else if(string.charAt(a) != reversed.charAt(a)){
  break; //error, stop
  }  
  }
  return result;
}
public String reverseString(String s){
  String reversed = "";
  for(int a = s.length() - 1; a >= 0; a--){
  reversed += s.charAt(a);
  }
  return reversed;
} 
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Here is mine:

public String mirrorEnds(String str) {
    String res = "";
    int count = str.length() - 1;

    for(int i = 0;i < str.length();i++)
    {
        if(str.charAt(i) == str.charAt(count))
        res += str.substring(i, i + 1);
        else
            break;
        count--;
    }

    return res;
}
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