0

I'm wondering whether how you can write something like this recursively or using a different loop system:

std::string a = "00000000";
for (int i = 0; i<8; i++) {
    a[i] = '1';
    for (int j = 0; j<8; j++) {
        if (i!=j) {
            a[j] = '1';
            ... //more for loops with the same structure
            std::cout<<a[j]<<"\n";
            a[j] = '0';
    }
    a[i] = '0';
}

I'm trying to print out every possible eight bit combination of 0s and 1s without using any libraries (except bitset if I have to). If I do it this way, I'll end up with 8 for loops, which is a bit much. I'm wondering whether there is a way to condense this using either recursion or a clever trick with using the standard do/while/for loops.

2
  • 1
    I don't see what that code is supposed to do, but recursion is almost always a bad idea. – πάντα ῥεῖ May 21 '17 at 22:17
  • Tail-recursion is theoretically as efficient as iteration, but gcc does not optimize it. Clang does. – Davislor May 21 '17 at 23:40
3

This task can be achieved with a simple for loop and binary operations. Bitshift i by an amount, then & it by 1 to mask that bit.

#include <iostream>
void printBinary()
{
    for(int i = 0; i < 256; i++){
        for(int bit = 7; bit >= 0; bit--){
            std::cout << (i >> bit & 1);
        }
        std::cout << std::endl;
    }
}
2
  • Very elegant solution, didn't even use std::bitset! – Linus Rastegar May 21 '17 at 22:35
  • And in general, if you have a loop from a to b containing a loop from c to d, you can flatten them into a single loop from ac to bd. Here, a = 0, b = 8, c = 0, d = 8. – Davislor May 21 '17 at 23:39
3

First, your loops are incorrect: they run from 0 to 7, inclusive, while they should be running from 0 to 1, inclusive, because a bit is either zero or one.

As far as going through all 8-bit combinations goes, you can do it with a single loop: use an int counting from 0 to 255, inclusive, and print its binary representation:

for (int i = 0 ; i != 256 ; i++) {
    cout << bitset<8>(i).to_string() << endl;
}
2
  • My loops are fine since I've tried the full eight loops and you do get the desired (rather messy) output. I do appreciate your other solution though! Very clever. I can't believe I didn't think of this before. – Linus Rastegar May 21 '17 at 22:28
  • @LinusRastegar I think I see what you did: each if inside the next loop became more and more complex, right? Eight nested loops with lots of ifs like that is a tough thing to write, though. – Sergey Kalinichenko May 21 '17 at 22:31

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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