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I have the following problem.

The recursive method public static String doSomeMagic("Test") should return:

TTeesstt
TTeess
TTee
TT

I've implemented this behaviour already like this:

public static String rowFunction(String s) {
    String toReturn = new String();

    if (!s.isEmpty()) {
        toReturn = String.valueOf(s.charAt(0));
        toReturn += toReturn + rowFunction(s.substring(1));
    }
    return toReturn;
}

public static String doSomeMagic(String s) {
    String toReturn = new String();

    if (!s.isEmpty()) {
        toReturn = rowFunction(s) + "\n" + doSomeMagic(s.substring(0, s.length() - 1));
    }
    return toReturn;
}

How can one achieve this with just one function? Any ideas?

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migrated from programmers.stackexchange.com Mar 26 '14 at 21:24

This question came from our site for professional programmers interested in conceptual questions about software development.

    
@SotiriosDelimanolis How should I rename it? English isn't my native language and I don't know how to precise the question's title. Any advice would be appreciated. –  Endzeit Mar 26 '14 at 18:45
    
@SotiriosDelimanolis Oh, of course. You're right. Thanks for the hint. –  Endzeit Mar 26 '14 at 18:47
1  
Also, you might have better luck on code review or programmers Stack Exchange web site. –  Sotirios Delimanolis Mar 26 '14 at 18:47
    
What prevents you from moving the logic of rowFunction into doSomeMagic? –  user289086 Mar 26 '14 at 19:11
    
@MichaelT How could I then call it recursively as I do right now? I'm aware of the fact that this can be simply achieved with a loop but I was just wondering if it is possible to do this without any loop AND only one method and if - how? –  Endzeit Mar 26 '14 at 19:22

4 Answers 4

up vote 1 down vote accepted

I noticed you wanted to do this without a loop and in one function call. You can probably clean this up a lot more. Here it is:

public static String doSomeMagic(String s) {
    if (!s.isEmpty()) {
        StringBuffer sb = new StringBuffer();
        return sb.append(s.replaceAll("(\\S)", "$1$1"))
                 .append("\n")
                 .append(doSomeMagic( s.replaceAll(".$", "") )
                 .toString();
    }
    return "";
}
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I didn't see your answer but this is great! I'm a little bit ashamed that this approach with RegEx didn't come to mind yet. Thanks! –  Endzeit Mar 27 '14 at 5:42

To do it in one function, just iterate over the string rather than calling another recursive function.

public static String doSomeMagic(String s) {
    String doubled = new String();
    if (s.length() == 0) return s;
    for(int i=0;i<s.length();i++)
        doubled += s.substring(i,i+1) + s.substring(i,i+1)
    return doubled + "\n" + doSomeMagic(s.substring(0, s.length()-1));
}
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1  
Ouch. Please, if you are doing either new String() or double += ..., please, please, please use a StringBuilder instead. Please look into the memory use of this approach if s is 1024 characters long. –  user289086 Mar 26 '14 at 19:14
    
Oh, I agree. I was just trying to use as much of the OP's code as I could to simplify things. –  Roger Mar 26 '14 at 19:18
    
@MichaelT Is it also the wrong approach in my code? And if so - why? Is calling s += s + "abc" not the same as s = s + s + "abc"? Or should one use (Stringbuilder sb) sb.append("xy"); sb.append(sb.toString); sb.append("abc"); instead? –  Endzeit Mar 26 '14 at 19:24
3  
In a loop, each time you go through that you are creating a new string and discarding the old one. If the String was 8 characters, once through that for loop you'd have the following length strings created and discarded: 2, 4, 6, 8, 10, 12, 14... and then the 16... but the 16 would be appended to... ug... the return value of the recursive return value. You'd be using megabytes of space when running a string of 1024 characters long. Thus, the StringBuilder, allowing you to work with a mutable string and manipulate it rather than creating an immutable string each time through the loop. –  user289086 Mar 26 '14 at 19:35

Thanks to @rock_win for the approach the following works.

private static String magic(String s, int currentLastLetter, int currentLetter) {
    StringBuilder sb = new StringBuilder();

    if (currentLastLetter >= 0) {
        sb.append(s.charAt(currentLetter));
        sb.append(s.charAt(currentLetter));

        currentLetter++;
        if (currentLetter > currentLastLetter) {
            currentLastLetter--;
            currentLetter = 0;
            sb.append("\n");
        }
        sb.append(magic(s, currentLastLetter, currentLetter));
    }
    return sb.toString();
}

At first currentLastLetter must be the string's length - 1 and currentLetter = 0 to work as desired.

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I wish I knew we could change the method signature! :P I guess regex was out of the question? –  Pete Mar 26 '14 at 21:31

Quick solution could be like

testMethod(string ip){
    if(ip.length()==1){
        ip=ip.toUppercase();
    }
    For(int i=0;i<ip.length()-1;i++){
        System.out.print(ip.charAt(i)+""+ip.charAt(i));
    }
    if(ip.length()>1){
        System. out. println();
        testMethod(ip.substring(1));
    }
}

Haven't tested it... But should work fairly

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I want it to be fully recursive, not iterative. Thanks anyway. :) –  Endzeit Mar 26 '14 at 19:03
    
It is recursive with the call of testMethod –  rock_win Mar 26 '14 at 19:11
    
Of course, but it's also iterative using a loop. –  Endzeit Mar 26 '14 at 19:14
    
Then easiest would be to have function liketestMethod(string ip, int current Index, int iteration Counter) current index will tell which character to print and you keep incrementing iteration counter till its equal to length of string –  rock_win Mar 26 '14 at 19:23
    
Thanks, this actually worked. :) –  Endzeit Mar 26 '14 at 19:46

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