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std::vector::size returns a size_t so I guess it can hold up to 2^32 elements.

Is there a standard container than can hold much more elements, e.g. 2^64 OR a way to tweak std::vector to be "indexed" by e.g. a unsigned long long?

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size_t doesn't have a defined size of 32 bits. –  chris Mar 19 '13 at 18:04
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The only container where this is important is std::vector<bool>. std::size_t otherwise is always large enough (that's how it's defined). –  ipc Mar 19 '13 at 18:06
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Programming by guessing does not work. –  Slava Mar 19 '13 at 18:06
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Here's what the standard has on size_t: The type size_t is an implementation-defined unsigned integer type that is large enough to contain the size in bytes of any object. –  chris Mar 19 '13 at 18:10
    
I'm curious to know what kind of hardware you intend to use, to store 2^64 elements. –  Beta Mar 19 '13 at 18:18

2 Answers 2

Sure. Compile a 64-bit program. size_t will be 64 bits wide then.

But really, what you should be doing is take a step back, and consider why you need such a big vector. Because most likely, you don't, and there's a better way to solve whatever problem you're working on.

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size_t doesn't have a predefined size, although it is often capped at 232 on 32 bit computers.

Since a std::vector must hold contiguous memory for all elements, you will run out of memory before exceeding the size.

Compile your program for a 64 bit computer and you'll have more space.

Better still, reconsider if std::vector is appropriate. Why do you want to hold trillions of adjacent objects directly in memory?

Consider a std::map<unsigned long long, YourData> if you only want large indexes and aren't really trying to store trillions of objects.

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