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I am using visual studio 2012 (windows) and I am trying to write an efficient c++ function to remove some words from a big vector of strings.

I am using stl algorithms. I am a c++ beginner so I am not sure that it is the best way to proceed. This is what I have did :

#include <algorithm>
#include <unordered_set>
using std::vector;

vector<std::string> stripWords(vector<std::string>& input, 
                               std::tr1::unordered_set<std::string>& toRemove){ 
     input.erase(
         remove_if(input.begin(), input.end(), 
                     [&toRemove](std::string x) -> bool {
                         return toRemove.find(x) != toRemove.end();
                     }));
     return input;
}

But this don't work, It doesn't loop over all input vector.

This how I test my code:

vector<std::string>  in_tokens;
in_tokens.push_back("removeme");
in_tokens.push_back("keep");
in_tokens.push_back("removeme1");
in_tokens.push_back("removeme1");
std::tr1::unordered_set<std::string> words;
words.insert("removeme");
words.insert("removeme1");
stripWords(in_tokens,words);
share|improve this question
    
Just as a suggestion on efficiency, if your toRemove set is large, you might want to pre-hash all strings (both in input and toRemove) and use the precomputed hashes to do the lookups. – yzt Dec 22 '13 at 2:45
1  
by the way, since you are using c++11, unordered_set is included. you don't have to use the technical report (std::tr1). – user1810087 Dec 22 '13 at 2:45
    
Returning a copy of the vector seems inefficient since you're just returning the already modified input parameter, and you're not using the return value anyway. – Retired Ninja Dec 22 '13 at 2:52
1  
You could speed up your lambda predicate a bit by taking the strings by const& instead of by value to avoid the extra copy: [&toRemove](std::string x) -> [&toRemove](const std::string& x). – Casey Dec 22 '13 at 3:09
up vote 3 down vote accepted

Your approach using std::remove_if() is nearly the correct approach but it erases just one element. You need to use the two argument version of erase():

 input.erase(
     remove_if(input.begin(), input.end(), 
                 [&toRemove](std::string x) -> bool {
                     return toRemove.find(x) != toRemove.end();
                 }), input.end());

std::remove_if() reorders the elements such that the kept elements are in the front of the sequence. It returns an iterator it to the first position which is to be considered the new end of the sequence, i.e., you need to erase the range [it, input.end()).

share|improve this answer
    
Thanks. What do you mean by reasonable? is it O(nlog(n)) ? – agstudy Dec 22 '13 at 2:47
1  
@agstudy: no, I mean it makes sense to use std::remove_if(), just that you didn't use it correctly for your objective. It has time complexity O(N * M) where N is the number of elements in the sequence and O(M) is the time complexity of calls to toRemove.find(x) which are expected to be constant. I have clarified the answer. – Dietmar Kühl Dec 22 '13 at 2:50

You need the two-argument form of erase. Don't outsmart yourself and write it on separate lines:

auto it = std::remove_if(input.begin(), input.end(), 
                         [&toRemove](std::string x) -> bool
                         { return toRemove.find(x) != toRemove.end(); });

input.erase(it, input.end());  // erases an entire range
share|improve this answer
    
thank you for the smart syntax:) any comment about efficiency? – agstudy Dec 22 '13 at 2:52
    
@agstudy: it's one linear search for each element of the vector, plus the final erase. – Kerrek SB Dec 22 '13 at 2:54

You've already gotten a couple of answers about how to this correctly.

Now, the question is whether you can make it substantially more efficient. The answer to that will depend on another question: do you care about the order of the strings in the vector?

If you can rearrange the strings in the vector without causing a problem, then you can make the removal substantially more efficient.

Instead of removing strings from the middle of the vector (which requires moving all the other strings over to fill in the hole) you can swap all the unwanted strings to the end of the vector, then remove them.

Especially if you're only removing a few strings from near the beginning of a large vector, this can improve efficiency a lot. Just for example, let's assume a string you want to remove is followed by 1000 other strings. With this, you end up swapping only two strings, then erasing the last one (which is fast). With your current method, you end up moving 1000 strings just to remove one.

Better still, even with fairly old compilers, you can expect swapping strings to be quite fast as a rule--typically faster than moving them would be (unless your compiler is new enough to support move assignment).

share|improve this answer
    
+1! interesting! I don't matter about the order. How do you write the swapping using stl? – agstudy Dec 22 '13 at 12:58
    
@agstudy: std::swap seems like the obvious thing to use. – Jerry Coffin Dec 23 '13 at 3:13

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