Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

As a function argument I get a vector<double>& vec (an output vector, hence non-const) with unknown length and values. I want to initialise this vector to a specific length n with all zeroes.

This will work

vec.clear();
vec.resize( n, 0.0 );

And this will work as well:

vec.resize( n );
vec.assign( n, 0.0 );

Is the second more efficient (because no memory deallocation/allocation is involved)? Is there a more efficient way to do this?

share|improve this question

4 Answers 4

up vote 7 down vote accepted
std::vector<double>(n).swap(vec);

After this, vec is guaranteed to have size and capacity n, with all values 0.0.

share|improve this answer
    
Thanks for your correction---I've updated my entry too. :-) –  Chris Jester-Young Oct 7 '08 at 0:07
std::vector<double>(n).swap(vec);

This has the advantage of actually compacting your vector too. (In your first example, clear() does not guarantee to compact your vector.)

share|improve this answer
    
You could had that resize() doesn't shrink the vector capacity either. –  Luc Touraille Oct 6 '08 at 12:15
    
True, sorry I took that for granted (since I see clear() as a special case of resize()). :-) –  Chris Jester-Young Oct 6 '08 at 12:17
    
This is non-standard C++ - swap takes a non-const reference which won't bind to the temporary vector. Visual C++ allows this as a language extension. –  James Hopkin Oct 6 '08 at 14:40
    
Tried it, but this failed to compile, due to the reason James Hopkin indicated. –  andreas buykx Oct 6 '08 at 15:23
    
Thanks for the correction! :-) –  Chris Jester-Young Oct 7 '08 at 0:06

Neither of the code snippets that you posted do any memory deallocation, so they are roughly equal.

The swap trick that everyone else keeps posting will take longer to execute, because it will deallocate the memory originally used by the vector. This may or may not be desirable.

share|improve this answer

Well let's round out the ways to do this :)

vec.swap(std::vector<double>(n));
std::vector<double>(n).swap(vec);
std::swap(vector<double>(n), vec);
std::swap(vec, vector<double>(n));
share|improve this answer
    
The last two don't have the desired effect, at least under the default implementation of std::swap. :-) –  Chris Jester-Young Oct 7 '08 at 4:36
    
Actually it does :) std::swap is overloaded in vector and calls the member function. This is required by the standard. –  Matt Price Oct 8 '08 at 16:02

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.