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I need to put 32 bits of integers into a list. Problem is, I can't seem to fill that list up properly.

Ex. I need to get from this: 01000100011100111111000000000000

to this: list[0]=0, list[1]=1, list[2]=0, list[3]=0, and so on.

The number is being given to me as an integer through standard output.

Here is my go at it:

int binary;
cin << binary;
int *list = new int [32];
for (int i = 31; i >= 0; i--) {
    list[i] = binary % 10;
    binary /= 10;
}
for (int i = 0; i < 32; i++) {
    cout << list[i];
    cout << endl;
}

Let me know what I'm doing wrong.

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2  
You start out by indexing out of bounds, accessing list[4] is undefined behavior. –  Joachim Pileborg Apr 28 '13 at 18:44
5  
There's absolutely no reason to use new here. –  chris Apr 28 '13 at 18:44
2  
Also, dividing a variable named binary with the decimal value 10 doesn't seem very binary to me. You might want to think through you variable naming, or your algorithm. –  Joachim Pileborg Apr 28 '13 at 18:47
    
And how can a number be given through standard out? –  James Kanze Apr 28 '13 at 18:56
    
And of course, use std::vector. (The simplest solution is probably to use push_back for each binary digit, then std::reverse.) –  James Kanze Apr 28 '13 at 18:58
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4 Answers

The following loop results in out-of-bounds array access:

for (int i = 4; i >= 0; i--) {
    list[i] = ...

list's elements are numbered from zero to three.

Also, the following looks iffy:

list[i] = binary % 2;
binary /= 10;

The two numbers should either both be 2 or both be 10.

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This part: int *list = new int [4]; creates an array that is indexed from 0 to 3 and You're trying to access list[4] later.

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you should divide by 2 and start with index as 3

for(i=3;i>=0;i--)
{
    list[i]=binary%2;
    binary/=2;
}

This will be correct

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Use std::bitset.

#include <bitset>
int main() {
    std::bitset<32> bits("01000100011100111111000000000000");
}
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This looks promising, would you mind explaining to me how to use std::bitset to read something like that using std::cin? –  Krste Toshev Apr 28 '13 at 19:52
    
It has the usual operator>> –  Peter Wood Apr 28 '13 at 20:44
    
I Googled it, didn't quite meet the criteria for the assignment of not using classes, but gave me an idea for organizing the set of numbers. Thanks a lot, man, appreciate it. –  Krste Toshev Apr 28 '13 at 20:52
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