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I have the below 2 Problems asked yesterday in an interview

1> Given a string, compute a new string where identical chars that are adjacent in the original string are separated from each other by a "*".

Examples are as shown below::
function name is public String pairStar(String str)

 pairStar("hello") → "hel*lo"     
 pairStar("xxyy") → "x*xy*y"          
 pairStar("aaaa") → "a*a*a*a"

2> Given a string, compute a new string where all the lowercase 'x' chars have been moved to the end of the string.

Examples are as shown below::
function name is public String endX(String str)

endX("xxre") → "rexx"     
endX("xxhixx") → "hixxxx"     
endX("xhixhix") → "hihixxx"

Im not sure how to accomplish the given set of problems, and struggling how to solve this

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1  
Uh, are you forgetting some additional constraints? Otherwise this problem seems trivially solveable with a loop and one lookahead symbol (1) or a loop and a counter (2) –  Voo Mar 28 '11 at 14:58
    
You're not sure - doesn't that mean you don't have the slightest idea? –  Ingo Mar 28 '11 at 14:59
2  
did you try anything? These seem relatively simple problems that do not require any java experience, and just basic programming logic –  Bozho Mar 28 '11 at 15:00
    
im getting confused with both the problems Bozho –  Deepak Mar 28 '11 at 15:01
    
given this is an interview question, I'd focus more on the algorithm rather than knowledge of Java API –  Dan Mar 28 '11 at 15:03

9 Answers 9

up vote 8 down vote accepted

For 1), here's a very straightforward regex way:

  String in = "helllo goodbye";
  String out = in.replaceAll("(.)(?=\\1)", "$1*");
  System.out.println(out);

Prints:

hel*l*lo go*odbye

Explanation:

(.)     //match any one character into group 1
(?=\\1) //positive lookahead for that same character by backreferencing group 1

$1*     //replace that one character with the character followed by *

I might take a crack at 2) later, but I don't like multiple questions wrapped into one.

Edit

Alright since I'm in a regex mood here's 2):

  String in = "xhixhix";
  String out = in;
  while (!out.matches("[^x]*x*")) {
     out = out.replaceAll("x(.*)", "$1x");
  }
  System.out.println(out);

This replaces x(something) with (something)x until all the xs are at the end of the string. I'm sure that there's a better way of doing this one with/than regex though.

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Well the second variant is quite inefficient and imho a lot harder to understand compared to a simple for-loop. Wouldn't use a regex in production code for such a problem, but it's always nice to work out those regexes as an intellectual exercise ;) –  Voo Mar 28 '11 at 15:16
    
Thank you Voo it helped –  Deepak Mar 28 '11 at 15:19
    
@Voo: I agree, I upvoted Brian's answer for that reason. His is much easier to understand for 2). For 1) I don't think you'll get much easier than my solution though. –  Mark Peters Mar 28 '11 at 15:53
    
Goddamn genius! –  MJafar Mash Feb 7 at 10:33

In the first case you can iterate through the string keeping track of the previous character and comparing it to the current. Use a StringBuilder to build the new String.

In the second, iterate through, using two string builders (one for characters other than x, one for x), combine them at the end.

This is just off the top of my head in 30 seconds, and is the simplest approach. The second thought is that I'd prob use a regular expression, now that I think about it for 10 more seconds :)

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sample logic?.... –  Deepak Mar 28 '11 at 14:58
1  
That is sample logic. –  Brian Roach Mar 28 '11 at 15:02
3  
@Deepak - work it out for yourself. If you can't, perhaps you are not ready to interview for Java jobs. Either way, you will learn more by doing this yourself. –  Stephen C Mar 28 '11 at 15:02
    
i meant the code,i confused with both the problems –  Deepak Mar 28 '11 at 15:02
2  
We know what you meant, but if you can't figure it out with the above description it's probably a better idea to get a simple introduction to programming (or Java). –  Voo Mar 28 '11 at 15:04

Maybe I have misunderstood the question but if not if seems pretty simple. Your method could be something like for number 1:

public String pairStar(String s) {
    StringBuilder answer = new StringBuilder();
    char lastChar = s.charAt(0);
    answer.append(lastChar);

    for (int i = 1; i < s.length(); i++) {
        char currentChar = s.charAt(i);

        if (currentChar == lastChar) {
             answer.append("*");
        }
        answer.append(currentChar);
        lastChar = currentChar;
    }
    return answer.toString();
}
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for the second one:

Loop through the string copying all the non lowercase x's into a new string while keeping count of the x's. At the end, just add the relevant number of x's to produce the final string.

public String endX(String str)
{
    StringBuilder s = new StringBuilder();
    int x = 0;

    for (int i = 0; i < str.length(); ++i)
    {
        if (str.charAt(i) == 'x')
        {
            ++x;
        }
        else
        {
            s.append(str.charAt(i));
        }
    }

    for (int i = 0; i < x; ++i)
    {
        s.append('x');
    }

    return s.toString();
}
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Thanks a lot for immediate reply,it worked. –  Deepak Mar 28 '11 at 15:16

for 1 you need a state machine with two states: (a) different from previous and (b) same as previous. starting state is (a). for each letter, you have to check in which state you are, output a character and change state accordingly. for each letter read in state (b), you also output a '*'.

for 2 you need an array in which you can shift elements left, and push at the end. 1. push a monitor token at the end (useful for halting condition) 2. iterate over all letters: when finding an "x", shift all elements left, push the x at the end and count the amount of x's you have seen. 3. stop when seeing the monitor token

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I usually start problems like this with psuedo code, then move to the actual implementation.

For problem 1, here's how the psuedo code in my head works

for each character in the input string{
 if the previous character is the same{
  append a star to output string
 }
 append the character to the output string
}

For problem 2

for each character in the input string{
  if character is an x{
   increment x counter
  } else {
   append the character to the output string
  }
}
x counter times{
  append x to the output string
}
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for the first problem :

public class StreamGobbler {

    public static void main(String[] a) {

        String s = "xxyy";

        StringBuffer sb = new StringBuffer(s);

        for(int i=0; i < sb.length()-1; i++) {
            if(sb.charAt(i) == sb.charAt(i+1)) {
                sb.insert(i+1, "*");
                i++;
            }
        }

        System.out.println(sb.toString());
    }
}

prints : x*xy*y

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cool...it worked –  Deepak Mar 28 '11 at 15:20

for your first problem

public String pairStar(String str){
        StringBuilder sb = new StringBuilder(str);
        for (int i = 0; i < sb.length()-1; i++) {
            if(sb.charAt(i)==sb.charAt(i+1)){
                sb.insert(++i, '*');
            }
        }
        return sb.toString();
    }

and for your second problem

public String endX(String str){
        StringBuilder sb = new StringBuilder(str);
        int length = sb.length()-1;
        for (int i = 0; i < length; i++) {
            if(sb.charAt(i)=='x'){
                sb.deleteCharAt(i--);
                sb.append('x');
                length--;
            }
        }
        return sb.toString();
    }
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+1 for neat and complete solution. Also, may be instead of appending 'x' everytime it occurs we should just maintain a count of no. of 'x' that occurred in some variable say 'xcount' then build a String of 'x' like: StringBuilder sbX = new StringBuilder(xcount); for (int i = 0; i < xcount; i++) { sbX.append('x'); } And finally append that String of 'x' to actual string like: sb.append(sbX); –  sactiw Apr 26 '11 at 11:28
public class IdenticalChars {

    /**
     * separates any two same n adjacent characters of any string
     * by a * 
     */
    public static void main(String[] args) {
        StringBuilder sb=new StringBuilder();
        String s="aaabcgghelllloii";
        for(int i=0;i+1<s.length();i++){
            if((s.charAt(i)!=s.charAt(i+1)&&(i==0))){
                sb.append(s.charAt(i)+" "+s.charAt(i+1));
                //System.out.println(sb.toString());
            }
            else if((s.charAt(i)!=s.charAt(i+1)&&(i>0))){
                sb.append(s.charAt(i+1));
            }
            else if((s.charAt(i)==s.charAt(i+1))&&(i>0)){
                sb.append("*"+s.charAt(i+1));

            }
            else if((s.charAt(i)==s.charAt(i+1))&&(i==0)){
                sb.append(s.charAt(i)+"*"+s.charAt(i+1));
                }
        }

        System.out.println(sb.toString());
    }

}

output::a*a*abcg*ghel*l*l*loi*i

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