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How would one access an entire row of a multidimensional array? For example:

int logic[4][9] = {
    {0,1,8,8,8,8,8,1,1},
    {1,0,1,1,8,8,8,1,1},
    {8,1,0,1,8,8,8,8,1},
    {8,1,1,0,1,1,8,8,1}
};

// I want everything in row 2. So I try...
int temp[9] = logic[2];

My attempt throws the error:

array initialization needs curly braces

I know I can retrieve the row using a FOR loop, however I'm curious if there was a more obvious solution.

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1  
Possible alternative: std::vector<int> temp(std::begin(logic[2]), std::end(logic[2])); ? –  hmjd Feb 20 '13 at 21:43
1  
Arrays aren't too C++. Use an std::vector if you can. –  Daniel Kamil Kozar Feb 20 '13 at 21:44
    
You could look into valarray and slice. –  Peter Wood Feb 20 '13 at 22:18

4 Answers 4

up vote 2 down vote accepted

That's not how arrays/pointers work in C++.

That array is stored somewhere in memory. In order to reference the same data, you'll want a pointer that points to the the beginning of the array:

int* temp = logic[2];

Or if you need a copy of that array, you'll have to allocate more space.

Statically:

int temp[9];
for (int i = 0; i < 9; i++) {
    temp[i] = logic[2][i];
}

Dynamically:

// allocate
int* temp = new int(9);
for (int i = 0; i < 9; i++) {
    temp[i] = logic[2][i];
}

// when you're done with it, deallocate
delete [] temp;

Or since you're using C++, if you want to not worry about all this memory stuff and pointers, then you should use std::vector<int> for dynamically sized arrays and std::array<int> for statically sized arrays.

#include <array>
using namespace std;

array<array<int, 9>, 4> logic = {
  {0,1,8,8,8,8,8,1,1},
  {1,0,1,1,8,8,8,1,1},
  {8,1,0,1,8,8,8,8,1},
  {8,1,1,0,1,1,8,8,1}
}};

array<int, 9> temp = logic[2];
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As well as decaying the array to a pointer, you can also bind it to a reference:

int (&temp)[9] = logic[2];

One advantage of this is it will allow you to use it C++11 range-based for loops:

for (auto t : temp) {
  // stuff
}
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A direct assignment won't work. C++ does not allow that. At best you'll be able to assign them to point to the same data - int *temp = logic[2]. You'll need a for loop or something like the below.

I believe this would work:

int temp[9];
memcpy(temp, logic[2], sizeof(temp));

But I'd generally suggest using std::vector or std::array instead.

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Use Boost's ublas library; the matrix will be stored on the heap and loads of algorithms are implemented for you.

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2  
There is no indication the asker is doing any linear algebra. –  David Brown Feb 20 '13 at 21:49
    
@DavidBrown That looks like a 4 by 9 matrix to me... –  Alex Chamberlain Feb 20 '13 at 21:58
    
Matrices are not only used for linear algebra, and especially not a matrix of integers. –  David Brown Feb 20 '13 at 22:01
    
@DavidBrown Ok, but they are still represented in memory in the same way (whether that be row/column major or various optimised forms). –  Alex Chamberlain Feb 20 '13 at 22:44

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