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I have 2 objects:

vector<string> v(999999);
map<int, string> m;

I need to store some index-string pairs, though it's very sparse (say only 20 pairs). I was wondering if the vector takes much more memory than map? If so, how much memory is vector taking up? And why is it bad to use vector in this case?

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That's not a sparse vector –  Mooing Duck Jan 16 '13 at 1:43
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3 Answers

up vote 3 down vote accepted

Yes, the vector will take up at least 999999 * (sizeof(string) + C) + sizeof(vector) bytes in practice (where C is any dynamic allocation automatically performed by string). The map will have overhead, but it definitely won't be anywhere near the order of 999999.

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Yeah, v(999999) is very much not sparse, regardless of the type of the vector... –  Eugene Jan 16 '13 at 0:47
    
You may not be able to access the elements of that map in key order depending on its implementation. –  Peter Wooster Jan 16 '13 at 0:55
    
@Peter Wooster if that is a requirement, one could keep a separate vector with map iterators in correct order. –  Eugene Jan 16 '13 at 0:57
    
I agree that a separate list of keys would be needed, I believe this is what third party sparse array systems usually do. It would need to allow inserts, so a linked list instead of an array would be needed. –  Peter Wooster Jan 16 '13 at 0:59
    
@PeterWooster: std::map requires the keys to be iterated in key/predicate order. –  Mooing Duck Jan 16 '13 at 1:44
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I guess you could use vector if look up time is absolutely critical, since it is constant on vector, effectively pointer arithmetics since you know index already, but grows with size on map (O(log n)). Circumstances need to be dire indeed for that kind of a tradeoff though.

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For about 20 elements there is no point in creating a vector with 10^6 elements. The use of a map is going to have much better memory footprint and may even be faster than the vector. You can also consider a mixed approach with a vector of std::pair<int,std::string> holding the key/value pairs and do linear search on the vector (20 elements are very few, few enough that you can consider the cost as constant, and the simpler algorithm probably compensates for the extra number of operations).

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