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 vector<double> result(vectorOfClassA.size());
 vector<classB> temp(vectorOfClassA.size());
 std::transform(vectorOfClassA.begin(), vectorOfClassA.end(), back_inserter(temp),
                std::tr1::bind(&A::memberVariableOfClassB, std::tr1::placeholders::_1));
 std::transform(temp.begin(), temp.end(), back_inserter(result),
                 std::tr1::bind(&B::getValue, std::tr1::placeholders::_1));

I like to use one transform but it can't compile

std::transform(vectorOfClassA.begin(), vectorOfClassA.end(), back_inserter(result),
               std::tr1::bind(&B::getValue,
                              std::tr1::bind(&A::memberVariableOfClassB,
                                             std::tr1::placeholders::_1)));

Here double getValue() is class B member function. How to do it or what is wrong with my code?

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1  
Could the reason for the failed compile simply be that you misspelled memberVariableOfClassB? –  Rob Kennedy Oct 19 '12 at 14:24
    
There is little chance because I copy and paste it –  user1759558 Oct 19 '12 at 15:02
    
Then how do you explain that your "failed" code says memberVariableOfCallB? Call is not the same as Class. –  Rob Kennedy Oct 19 '12 at 15:29
    
memberVariableOfCallB here should be type of classB member Variable, not classB, am I right? –  user1759558 Oct 19 '12 at 16:09
    
Your first code block says memberVariableOfClassB, but the second code block says memberVariableOfCallB. Do you see the difference? Do you understand why that difference is important? I can't tell you what it's supposed to be since I can't see the rest of your code. It's your code, so you should already know what the name of your own variable or function is. –  Rob Kennedy Oct 19 '12 at 17:51

1 Answer 1

If your compiler supports C++11, you can make use of a lambda:

std::transform(vectorOfClassA.begin(), vectorOfClassA.end(), 
  back_inserter(result),
  [] (const A& a)
  {
  return a.memberVariableOfClassB.GetValue();
  });
share|improve this answer
2  
If your compiler is old, you could use a regular function instead of a lambda function (same idea) –  Kos Oct 19 '12 at 14:21
    
what is [] here? –  user1759558 Oct 19 '12 at 14:36
    
@user1759558: It is a capture clause of a lambda expression. What is a lambda expression in C++11? –  Andrey Oct 19 '12 at 14:40

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