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Suppose I have a vector:

std::vector <char> c;
c.push_back(0);
c.push_back(1);
c.push_back(0);
c.push_back(1);

I want to convert this into std::vector<short> s So that elements would:

s[0] == 256;
s[1] == 256;

Because if you combine the chars 0 and 1 it makes 256 in short.

Is there a better way to convert the vectors like this?

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Use memcpy perhaps. –  herohuyongtao Jan 21 '14 at 17:21
1  
Relying on this implementation-dependent details is often not a good idea, especially for portability. –  Jefffrey Jan 21 '14 at 17:22
    
Better way than what? –  Steve Jessop Jan 21 '14 at 17:26
    
@herohuyongtao I would not recommend it. –  James Kanze Jan 21 '14 at 17:31
    
@JamesKanze The reason? –  herohuyongtao Jan 21 '14 at 17:32

2 Answers 2

up vote 4 down vote accepted

Assuming you're happy with implementation-specific behavior, that could be undefined on unusual architectures, then I'd do it like this:

short *ptr = reinterpret_cast<short*>(c.data());
std::vector<short> s(ptr, ptr+c.size()/2);

If what you want is to treat the array of char as a little-endian representation of half as many short, regardless of the endian-ness of the implementation, then it's a little more complicated. Something like this:

std::vector<short> s;
s.reserve(c.size() / 2);
for (size_t idx = 0; idx < c.size(); idx += 2) {
    s.push_back(c[idx] & 0xff + static_cast<unsigned>(c[idx+1]) << 8);
}

Beware that this still involves a conversion from unsigned to signed type, so it's still implementation dependent. You need more bit-twiddling to make it truly portable.

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yeah, something like that but not exactly... I am not sure you need the &0xff and your <<8 will overflow unless you cast, plus as they are signed, not sure it handles negative numbers well, so I prefer using unsigned to do this, then just cast it back if necessary. –  CashCow Jan 21 '14 at 17:39
    
@CashCow: agreed, I was just working on it. And a caveat added about the conversion back from unsigned. –  Steve Jessop Jan 21 '14 at 17:39
    
Ok, you edited. so better. –  CashCow Jan 21 '14 at 17:39
    
And yeah, the sign issue assumes 2's complement, not sure if that is totally portable but works on all systems I know. –  CashCow Jan 21 '14 at 17:41

Your solution should ideally write a function that creates a short from two chars, and not rely in platform endianness or the size of short on your platform.

Easier to do unsigned where you can simply do something like ptr[i] + static_cast<unsigned short>( ptr[i+1] ) << 8;

If you just want to copy the data directly by casting, it is trivial.

const short * data = reinterpret_cast< const short * > ( c.data() ); 
std::vector< short > s( data, data + c.size() / 2 );

It will "truncate" the last character off your vector if its size is odd. (i.e. if the char vector has an odd number of chars it will ignore the last one)

Note data is only a member of vector in C++11. For older version replace with &c[0]

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