Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This code prints the map of India. How does it work?

#include <stdio.h>
main()
{
    int a,b,c;
    int count = 1;
    for (b=c=10;a="- FIGURE?, UMKC,XYZHello Folks,\
    TFy!QJu ROo TNn(ROo)SLq SLq ULo+\
    UHs UJq TNn*RPn/QPbEWS_JSWQAIJO^\
    NBELPeHBFHT}TnALVlBLOFAkHFOuFETp\
    HCStHAUFAgcEAelclcn^r^r\\tZvYxXy\
    T|S~Pn SPm SOn TNn ULo0ULo#ULo-W\
    Hq!WFs XDt!" [b+++21]; )
    for(; a-- > 64 ; )
    putchar ( ++c=='Z' ? c = c/ 9:33^b&1);
    return 0;
}
share|improve this question
28  
It's just obfuscated C... there's whole societies dedicated to this sort of madness. –  Mark Aug 20 '10 at 17:33
7  
Output: codepad.org/ngiITeZ4 –  Andreas Rejbrand Aug 20 '10 at 17:35
2  
#include "Stdio.h" : Does that work on all compilers? I'm surprised to see that you can get working code with miscaps. Maybe its on Windows (non case sensitive FS) –  alternative Aug 20 '10 at 17:44
2  
For more fun code like that see [The International Obfuscated C Code Contest][ioccc.org/]. –  DarkDust Aug 20 '10 at 17:44
8  
Just be aware that the code is intentionally difficult to understand, and there's not much to be gained from figuring it out, as far as learning C from a beginner's level is concerned. –  Tyler McHenry Aug 20 '10 at 17:45

2 Answers 2

up vote 66 down vote accepted

The long string is simply a binary sequence converted to ASCII. The first for statement makes b start out at 10, and the [b+++21] after the string yields 31. Treating the string as an array, offset 31 is the start of the "real" data in the string (the second line in the code sample you provided). The rest of the code simply loops through the bit sequence, converting the 1's and 0's to !'s and whitespace and printing one character at a time.

Less obfuscated version:

#include "stdio.h"
int main (void) {
    int a=10, b=0, c=10;
    char* bits ="TFy!QJu ROo TNn(ROo)SLq SLq ULo+UHs UJq TNn*RPn/QPbEWS_JSWQAIJO^NBELPeHBFHT}TnALVlBLOFAkHFOuFETpHCStHAUFAgcEAelclcn^r^r\\tZvYxXyT|S~Pn SPm SOn TNn ULo0ULo#ULo-WHq!WFs XDt!";
    a = bits[b];
    while (a != 0) {
        a = bits[b];
        b++;
        while (a > 64) {
            a--;
            if (++c == 'Z') {
                c /= 9;
                putchar(c);
            } else {
                putchar(33 ^ (b & 0x01));
            }
        }
    }
    return 0;
}

The strange clever part is in the putchar statements. Take the first putchar. ASCII 'Z' is 90 in decimal, so 90 / 9 = 10 which is a newline character. In the second, decimal 33 is ASCII for '!'. Toggling the low-order bit of 33 gives you 32, which is ASCII for a space. This causes ! to be printed if b is odd, and a blank space to be printed if b is even. The rest of the code is simply there to walk the "pointer" a through the string.

share|improve this answer
11  
The string is not a bit sequence (note that there are no bit-shift operations in the code). It is a run-length encoding of the image. –  interjay Aug 20 '10 at 18:04
    
Awesome and elegant explanation. Thanks @interjay –  Jassi Jan 28 at 4:31

Basically, the string is a run-length encoding of the image: Alternating characters in the string say how many times to draw a space, and how many times to draw an exclamation mark consecutively. Here is an analysis of the different elements of this program:

The encoded string

The first 31 characters of this string are ignored. The rest contain instructions for drawing the image. The individual characters determine how many spaces or exclamation marks to draw consecutively.

Outer for loop

This loop goes over the characters in the string. Each iteration increases the value of b by one, and assigns the next character in the string to a.

Inner for loop

This loop draws individual characters, and a newline whenever it reaches the end of line. The number of characters drawn is a - 64. The value of c goes from 10 to 90, and resets to 10 when the end of line is reached.

The putchar

This can be rewritten as:

++c;
if (c==90) {       //'Z' == 90
    c = 10;        //Note: 10 == '\n'
    putchar('\n');
}
else {
    if (b % 2 == 0)
        putchar('!');
    else
        putchar(' ');
}

It draws the appropriate character, depending on whether b is even or odd, or a newline when needed.

share|improve this answer
    
+1 Great answer! –  Lazer Aug 23 '10 at 7:55
    
Why the first 31 characters are ignored? –  Pankaj Mahato Jun 5 at 18:47
1  
@PankajMahato because b starts at 10 and the index is (b++)+21, which starts at 31. –  interjay Jun 6 at 20:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.