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I have a data-structure which looks like

template < class T1, class T2 > struct sometype
std::vector < T1 > v1;
std::vector < T2 > v2;
T1 deriv[10];

I create a vector of data-structures

std::vector <sometype <T1, T2>> somevec;

My doubt is if I do this

somevec.erase(somevec.begin(), somevec.end());
std::vector <sometype <T1, T2>>().swap (somevec);

can I reclaim the memory?

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Reclaim what memory? And why would you want to do that? What problem are you trying to solve? –  Cody Gray Mar 22 '13 at 6:33
@CodyGray Reclaim the memory used used by sometype. I want to conserve memory as I am solving a huge problem where I need to temporarily store about 10 million sometypes/core. –  Suman Vajjala Mar 22 '13 at 6:37

1 Answer 1

You can do better than that:

somevec.erase(somevec.begin(), somevec.end());
std::vector <sometype <T1, T2>>().swap (somevec);

All you need to do is:

std::vector <sometype<T1, T2>>().swap(somevec);

This is because you create a temporary which is empty. Then swap the empty content with actual data of somevec. The temporary is then destroyed and reclaiming the memory that was allocated with your variable (because the memory was swapped into the temporary).

This is called the "Shrink to Fit Idiom"

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Ok. I do not need to do anything special like in the case of multi-dimensional pointers right? –  Suman Vajjala Mar 22 '13 at 6:38
Should work fine. Because you are shrinking the first dimension to zero. Thus all the other dimensions are gone. –  Loki Astari Mar 22 '13 at 6:40
Thank you for clearing my confusion :) –  Suman Vajjala Mar 22 '13 at 6:40

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