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I typedef a vector with two elements. Then I push_back into it an other element and expect what result type is also a vector. But that's not so.

Example:

typedef boost::fusion::vector<int, double> vec1;
typedef boost::fusion::result_of::push_back<vec1, std::string> vec2;
//boost::is_same<vec2, boost::fusion::vector<int, double, std::string>>::value == false

http://liveworkspace.org/code/361492801eebe24cc5679a1e899a5240

What am I doing wrong?

Regards.

share|improve this question
up vote 2 down vote accepted

You've aliased the push_back itself as vec2. You need to use

typedef boost::fusion::result_of::push_back<vec1, std::string>::type vec2;

But keep in mind that the type might still not be the same, Fusion algorithms are not required to preserve the type (and since push_back function is supposed to return a lazy view, then vec2 will most likely be some view type). The only guarantee is that vec2 will be "A model of Forward Sequence.".

share|improve this answer
    
Please tell me, how can I initialize the object of type vec2? – niXman Dec 3 '11 at 10:18
    
@niXman: What do you mean? – Cat Plus Plus Dec 3 '11 at 10:21
    
vec2 v(33, .14, "string"); link: liveworkspace.org/code/6d35d3211640ee62174dced31a28d937 – niXman Dec 3 '11 at 10:22
    
@niXman: vec2 v(boost::fusion::push_back(vec1(33, .14), "string")); I guess. I don't really use Fusion. – Cat Plus Plus Dec 3 '11 at 10:25
1  
You can use as_vector to force the return type of the push_back to act as a vector properly – Joel Falcou Dec 3 '11 at 14:07

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