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using namespace std;

vector<vector<T> > vec_collection(3);

vec_collection[0]=vector<T>(12);
vec_collection[1]=vector<T>(3);
vec_collection[2]=vector<T>(14);

Suppose I have an empty collection of 3 vectors and after initialization, I want the first, second, and third vector to be of specific size 12, 3, and 14 say. Is the above code snippet the right way to declare their sizes?

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Yes .................. –  Praetorian Sep 13 '11 at 22:04
2  
"Suppose I have an empty collection of 3 vectors" - actually after vector<vector<T> > vec_collection(3); you have a collection of 3 empty vectors. vec_collection itself isn't empty, its size is of course 3. See also: the difference between an empty box, and a box containing 3 empty boxes. –  Steve Jessop Sep 13 '11 at 22:33
    
Thank you for pointing that out :D –  smilingbuddha Sep 13 '11 at 22:58

4 Answers 4

up vote 7 down vote accepted

Your code in line of principle creates separated temporary vector instances that replace the existing zero-size ones, which in theory means that for every of those lines you have a constructor call (create the temporary), a copy-constructor call (copy it over the existing vector) and a destructor call (destroy the temporary).

Although I think that some optimizations could make it actually better than it sounds, it's way easier and almost surely more efficient to simply do:

using namespace std;

vector< vector<T> > vec_collection(3);

vec_collection[0].resize(12);
vec_collection[1].resize(3);
vec_collection[2].resize(14);

On the other hand, if you need such vectors to be always of that fixed size, you should replace them with fixed-size data structures (e.g. a struct containing three C-style arrays or std::array), as in @sehe's answer.

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Yes. Allthough it doesn't make the vectors fixed-size (vectors can be resized explicitely, or implicitely - e.g. using push_back or insert).

Finally, vectors can simply be assigned over.

If you need strongtype, fixed-size, jagged nested vectors (urrfff that's a mouth-full):

#include <tuple>
#include <array>

using std::array;
using std::tuple;

typedef tuple<
       array<T, 12>,
       array<T, 3>,
       array<T, 14>
    > vec_collection;

That would be a bit more awkward to work with, but if speed and container size guarantees were of the essence, go for it.

Note that in pre-TR1 world (say, c++98 with a c++03 library), this would be pretty close to equivalent (but even less comfortable to work with):

struct vec_collection
{
     T a[12];
     T b[3];
     T c[14];
};
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4  
Strongly typed fixed-size jagged nested vectors - or Sitfisjanvees as we call them in the bizness. –  Seth Carnegie Sep 13 '11 at 22:06
    
@Seth: hi name-fellow; I googled that but came up empty... (other Seth) –  sehe Sep 13 '11 at 22:09
1  
Perhaps you would like to use different names for the members of your struct? Or am I missing any subtlety? –  bitmask Sep 13 '11 at 22:51
    
@bitmask: thx for the heads up; typed that up a bit too quickly –  sehe Sep 13 '11 at 23:48
vector< vector<T>* > vec_collection(3); // i changed it to a vector of vector<T>*


 vec_collection[0]=new vector<MyType>(12);
 //etc

You probably want to replace with in the code. E.g.

vector<int>(12);

Moreover, if your vector are fixed size, you can just use arrays.

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Try this and the compiler will give you a long error message stating it cannot convert vector<T> * to vector<T> –  Praetorian Sep 13 '11 at 22:06
    
Ugh no, that's a vector of vectors, not a vector of pointers to vector. –  Matteo Italia Sep 13 '11 at 22:06
    
Sorry, my code didn't have 4 leading spaces, and <> wasn't showing :) I fixed it now. –  BlackRider Sep 13 '11 at 22:07
    
Yes, you're right about vector<T>*. Let me correct the answer. –  BlackRider Sep 13 '11 at 22:09
2  
Ok, this will compile, but what's the benefit? It's just complicated things even more because you must manually delete each element of vec_collection before clearing it. –  Praetorian Sep 13 '11 at 22:12

If you have C++11, you can do it with an initialiser list, which is more efficient:

vector<vector<T>> vec_collection(3) { vector<T>(12), vector<T>(3), vector<T>(14) };

Otherwise, you can do it the way you're doing which is fine, or just call resize on the elements like in Matteo's answer.

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