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Please help me with the following code. I need to add lengths of strings to a vector. I have no idea how to achieve it with boost. My best idea so far is:

boost::bind(add2Vect, boost::ref(lengths), L::_1)

Where add2Vect is a simple function that takes a vector, a string and add the length of the string to the vector. L is just a shorthand for boost::lambda

But this solution is bad, because I have to create a discrete function. That's not what lambdas should be about.

The code:

vector<string> strings;
strings.push_back("Boost");
strings.push_back("C++");
strings.push_back("Libraries");

vector<int> lengths;

for_each(strings.begin(), strings.end(),    
    // add lengths of strings to the vector 'lengths'

);

for_each(lengths.begin(), lengths.end(), 
    cout << L::_1 << " "
);  
share|improve this question
    
Do you even need bind or I am just not getting something. Your for_each could be replaced with an iterator loop going through strings and push_backing it->length() onto lengths. Alternatively, something like std::transform would work well. Even better, instead of using a separate vector, use strings and call length() instead of having 2 copies. – chris May 5 '12 at 20:23
    
Sure... ;-) It's just an example. I just want to know how to do it using boost:bind, lambda::bind or somehow else. It's an example from a book, and it should be easy.. – emesx May 5 '12 at 20:25
up vote 2 down vote accepted

Boost.Bind and Boost.Lambda are not the same thing. You can't use lambda placeholders in bind unless you're using boost::lambda::bind.

Here's how you do what you seem to want:

std::transform(strings.begin(), strings.end(), std::back_inserter(lengths), 
               boost::bind(&std::string::size, _1));

If you really MUST use for_each:

std::for_each(strings.begin(), strings.end(), 
             boost::bind(&std::vector<int>::push_back,
               &lengths, boost::bind(&std::string::size, _1)));

But you should be using size_t rather than int.

share|improve this answer
2  
Why can you use a lambda placeholder in a bind expression but not a bind placeholder inside a lambda? – emesx May 6 '12 at 6:47
    
AFAIK you cannot. – Crazy Eddie May 6 '12 at 16:52

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