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Ok so i really think I'm over thinking this, but I've been programming for 48 hours straight and my mind is gone. Background info: using Visual Studio 2010, creating a console application using C++. I was having trouble with some logic, and got stuck on the following:

I have a 2 dimensional 8 x 8 array, matrix[8][8]. This array contains either 0's, 1's, and 2's. Now as the program executes the array replaces either the 1's or 2's with 0's. So as it is running, I want to have a check to see if the array has removed either all of the 1's or 2's. So if there are only 0's and 1's I want to cout a message saying something like "your array no longer contains 2's" and vice versa if there are only 0's and 2's.

Here is some code i was thinking of using:

for(row = 0; row < 8; row++)
{
    for (col = 0; col < 8; col++)
    {
        if(matrix[row][col] != 1){
            cout<<"message"<<endl; }

        else if(matrix[row][col] != 2){
            cout<<"message"<<endl; }
    }
}

Now my problem with this is that if the array contains [0, 1, 2, 0] it would run through and check the first element, and it wouldnt contain a 1 or a 2. Some ideas as to what i could do please?

share|improve this question
    
A bunch of hints: Wrap your matrix in a class, use iterators for that class, matrix[col * row] is more efficient. If you did this solving your problem is a simple fold or accumulate (in C++ terms) away. This also keeps your mind from "being gone". –  pmr Apr 23 '11 at 22:15
    
thanks for the advice –  tehman Apr 23 '11 at 22:34

4 Answers 4

up vote 1 down vote accepted

You cannot decide that inside the loop. You only know the result after going through the whole matrix:

bool hasOnes = false;
bool hasTwos = false;
for(row = 0; row < 8; row++)
{
    for (col = 0; col < 8; col++)
    {
        if(matrix[row][col] == 1) {
          hasOnes = true;
        } else if(matrix[row][col] == 2){
          hasTwos = true;
        }
}

if (hasOnes && !hasTwos)
  cout << "You have removed twos" << endl;
if (hasTwos && !hasOnes)
  cout << "You have removed ones" << endl;
share|improve this answer
    
This is exactly what I needed. Thanks everyone, the fast responses were perfect. Great community here at Stack overflow. –  tehman Apr 23 '11 at 22:23

I'd suggest you iterate over the matrix and count all elements like this:

int counts[3];
for(i = 0; i < 3; i++)
{
    counts[i] = 0;
}
for(row = 0; row < 8; row++)
{
    for (col = 0; col < 8; col++)
    {
        counts[matrix[row][col]]++;
    }
}

Once you have this, you can simply check for counts[1] to see the number of ones in the matrix. Also, if you are iteratively replacing the values, you can avoid re-checking the full matrix after each iteration. You can change the counts as you change the matrix.

share|improve this answer

Assuming you will only have 0-2 in each array element: int vals = 0; for (int row = 0; row < 8; row++) for (int col = 0; col < 8; col++) { vals |= matrix[row][col]; if (vals == 3) break; } if (vals & 1) cout << "Matrix contains 1's" << endl; if (vals & 2) cout << "Matrix contains 2's" << endl;

share|improve this answer
int count[3] = {0,0,0};
for (int i = 0; i < 64; i++) count[*(matrix + i)]++;

if (count[0] + count[1] == 64) cout<<"No 2s exist"<<endl;
if (count[0] + count[2] == 64) cout<<"No 1s exist"<<endl;

Edit
This may be slightly faster

int count[3] = {0,0,0};
for (int i = 0; i < 64; i++) 
     if (!count[1] && !count[2]) count[*(matrix + i)]++;
     else break;

if (count[0] + count[1] == 64) cout<<"No 2s exist"<<endl;
if (count[0] + count[2] == 64) cout<<"No 1s exist"<<endl;
share|improve this answer
    
This also works, but a boolean statement seems easier to me. Thank you! –  tehman Apr 23 '11 at 22:35
    
@tehman if you have the count variable, it would be easier to wrap this loop into the code where you update the matrix. You could do something like count[old_value[--; count[new_value]++; when you are updating the matrix and just use the if condition at the bottom. Reduces an overhead of a loop. –  Pavan Yalamanchili Apr 24 '11 at 2:53

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