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Asked: 2026-05-27T12:15:22+00:00

For some reason this is giving me more trouble than i thought… int *myArray[3];

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For some reason this is giving me more trouble than i thought…

int *myArray[3];

myArray = new int[mySize];

does not work…

I’ve used a typedef before in a similar manner and it worked perfectly, but this time i dont want to create the typedef

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1 Answer

  1. Editorial Team

    One might be tempted to do this:

    ::std::vector<int[3]> myArray;

    Because vector is so nice for dynamically sized arrays. Unfortunately, while that declaration works, the resulting vector is unusable.

    This will be just as efficient, if you have ::std::array (a C++11 feature) and it will actually work:

    ::std::vector< ::std::array<int, 3> > myArray;

    If you can do this, I would highly recommend it. vector is much nicer and safer to deal with than an array you have to allocate yourself with new.

    Otherwise, try this:

    typedef int inner_array_t[3];
inner_array_t *myArray = new inner_array_t[mySize];

    And since you don’t want to use a typedef for some odd reason, you can unwrap it like so:

    int (*myArray)[3] = new int[mySize][3];
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