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How to compress strings like “aaabbbc” to “a3b3c” and decompress the same, without using extra memory during processing, primarily in C and also in Java?

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closed as too localized by Alex Reynolds, Jim Balter, Jesse Webb, evilone, Nimit Dudani Nov 30 '12 at 9:59

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10  
What have you tried? And are you aware that simple run-length compression will expand most normal text? –  Jon Skeet Nov 29 '12 at 21:06
3  
That should be a3b3c right? –  Rohit Jain Nov 29 '12 at 21:06
1  
In Java, you'll have to use a StringBuilder, char[], or the like to do this in-place. String objects are immutable, so if you start with a String you're going to have to use some extra memory. Also, how are you supposed to compress strings that have digits in them to start with? Or does that not happen? –  Ted Hopp Nov 29 '12 at 21:09
1  
How on earth would you know that there are three a characters without storing at least one of them in memory? Are you going to read and write a single character to a file? Even then you have to store two characters in memory just to do the comparison. Voting to close. –  Alex Reynolds Nov 29 '12 at 21:09
1  
Am I the only one who wonders how to decompress 33333333? –  user405725 Nov 29 '12 at 21:20

3 Answers 3

up vote 1 down vote accepted

A simple reverse scan does provide a (seemingly) good solution to the encoding part at least. I am doing one scan from right to left and overwriting the portions of the string with the occurrence count.

char * enc(char * ip)
{
    int r,op;
    int l=strlen(ip);
    r=l-1;
    char curr;
    op=r;
    int curr_count=1,mod_curr_count;
    while(r>=0)
    {
        curr=ip[r];

        while(ip[--r]==curr)
        {

            curr_count++;
        }
        if(curr_count!=1)
        {
            while(curr_count)
            {
            mod_curr_count=curr_count%10;
            ip[op--]=(char)(mod_curr_count+48);
            curr_count/=10;
            }
            ip[op--]=curr;
            curr_count=1;

        }
        else
        {
        ip[op--]=curr;
        }
    }

    ip=ip+op+1;
    return ip;
}

Input : aaaaaaaaaaaabbbfffffffffffffffqqqqqqqqqqqqqqqqqqccccpoii

Output: a12b3f15q18c4poi2

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To do an in-place encoding, the encoded string must never be longer than the original string. Suppose we assume the following encoding rules:

  • No numeric digits in the original string (so no count delimiter characters are needed)
  • A run length of 1 is never explicitly coded (so abc remains abc)

I believe that with these assumptions, a run-length encoding is not ambiguous and will never be longer than the string itself. Then the following algorithm (pseudocode) should do the job of encoding in place:

currentChar ← string[0]
nextOutputPos ← 1
nextReadPos ← 1
count ← 1
while (nextReadPos < length of string) {
    nextChar ← string[nextReadPos++];
    if (nextChar == currentChar) {
        count++;
    } else {
        if (count > 1) {
            write (count as a string) to string at position nextOutputPos
            nextOutputPos ← nextOutputPos + (length of count as a string)
        }
        string[nextOutputPos++] ← currentChar ← nextChar;
    }
}

At the end, the encoded string is contained in the half-open range [0, nextOutputPos) of string.

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Here's a possibility in Java, making use of regular expressions:

String str = "aaabbbc";  // string to be encoded

StringBuilder sb = new StringBuilder();  // to hold encoded string

for (String s : str.split("(?<=(.))(?!\\1)")) {
    sb.append(s.charAt(0));
    if (s.length() > 1) // only append length if it's > 1
        sb.append(s.length());
}

System.out.println(sb.toString());
a3b3c
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