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I want to create a list of 4 vectors with variables sizes (n1 n2 3 and n4) and all filled with 0's How can i do that ? I can do a list<vector<float> > mylist But how to put the size of mylist[0] to n1, etc ?

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2 Answers 2

up vote 6 down vote accepted
// on a C++11 enabled compiler
std::list<std::vector<float>> listofvectors = {
    std::vector<float>(n1, 0.f)
  , std::vector<float>(n2, 0.f)
  , std::vector<float>(n3, 0.f)
  , std::vector<float>(n4, 0.f)
};
// or more traditional
std::list< std::vector<float> > listofvectors;
listofvectors.push_back(std::vector<float>(n1, 0.f));
// so forth
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2  
That's an unusual way of formatting commas. :P –  Joseph Mansfield May 12 '13 at 13:45
    
Thanks, sorry for being a total newbie, but why do you write 0.f instead of 0 ? Something related to float ? Can't we just write 0 ? –  user2370139 May 12 '13 at 13:48
    
@sftrabbit No, why? Boost always uses that, it's much better when specifying initializer lists, since first character is : and next are commas, and thus it's easier to format these lines. We are yet to see the "standard" way in multiline initializer lists, I guess. –  Bartek Banachewicz May 12 '13 at 14:00
    
@user2370139 It creates a float literal instead of int one (plain 0). It don't have much importance here, but otherwise it's a good habit to clearly state the type of the number. Consider auto f = 0.f; –  Bartek Banachewicz May 12 '13 at 14:01
    
@sftrabbit I took it over from haskell. The real benefit is to me, that it is much easier to work with when editing code. –  pmr May 12 '13 at 15:14

You have to add these vectors to your list:

mylist.push_back(vector<float>(n1, 0.f));
mylist.push_back(vector<float>(n2, 0.f));
mylist.push_back(vector<float>(n3, 0.f));
mylist.push_back(vector<float>(n4, 0.f));

vector constructor taking two parameters will create one with (first parameter) elements all set to the value of the second parameter.

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