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I want to search for multiple strings in a vector at once.

i.e vector = "H" "H" "I" "I" vector2 = "H" "I"

so i want to search vector with the contents of vector2 my code is below but i don't think it is the best way. If all the strings are present then return a identifier so i know all strings are present.

could someone check the code below just to see if its correct :) Thanks

std::vector<std::string> test; 
        test.push_back("YES");
        test.push_back("YES");
        test.push_back("NO");
        test.push_back("NO");

        std::vector<std::string> test1; 
        test1.push_back("YES");
        test1.push_back("NO");

        std::vector<std::string>::iterator it;
        for(int i = 0; i < test1.size(); i++)
        {



            if(find (test.begin(), test.end(),test[i]) != test.begin() )
            {
                DCS_LOG_DEBUG("Some elements have appeared more than once...");

            }

        }
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4  
Belongs on codereview.stackexchange.com –  Lightness Races in Orbit Mar 14 '12 at 10:04

4 Answers 4

up vote 2 down vote accepted

The comparison is incorrect. If you want to check if there is at least one element in the container instead of:

if(find(test.begin(), test.end(),test[i]) != test.begin())

you should use:

if(find(test.begin(), test.end(),test1[i]) != test.end())

because find returns test.end() when it founds no match.

If you want to check if more than one element exists use count:

if(count(test.begin(), test.end(),test1[i]) > 1)
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no i do not need to check if more than on element exists just need to find out if there both there and if not exit the loop and signal a error @RafalRawicki –  CodersSC Mar 14 '12 at 10:20
    
I guess i could retrieve the count for each and check if they are equal to one @RafalRawicki –  CodersSC Mar 14 '12 at 10:23
    
The log message "Some elements have appeared more than once..." was unclear to me. Anyway, comparing to test.begin() doesn't make sense. –  Rafał Rawicki Mar 14 '12 at 10:26
    
Log message is jsut saying that there are some elements which should not have appeared more than once –  CodersSC Mar 14 '12 at 10:41
    
i am using that if count now however when i put an else it will execute both, hmm but i do not need a else here i can just break in the if but just saying –  CodersSC Mar 14 '12 at 10:46

A problem could be:

if(find (test.begin(), test.end(),test[i]) != test.begin() )

instead of

if(find (test.begin(), test.end(),test1[i]) != test.end() )

Your version looks for elements of test inside of test, which will always return a valid iterator.

Other than that, when you find a string that is not present, you can just break from the loop, no need to continue searching, right?

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Yes that is correct i have a vector of strings and i will populate another vector with strings and i have to check that the 1st vector test contains those strings from test1 @LuchianGrigore –  CodersSC Mar 14 '12 at 10:05
    
@ShamariCampbell ok, then this should do it. –  Luchian Grigore Mar 14 '12 at 10:05
    
oh yeah i mean to put test1 sorry @LuchianGrigore –  CodersSC Mar 14 '12 at 10:06
    
Yes that is correct i can just break @LuchianGrigore –  CodersSC Mar 14 '12 at 10:07
    
However if i put an else and a break inside the else it would not work as it also goes into else if the strings are present @LuchianGrigore –  CodersSC Mar 14 '12 at 10:09

If you can sort the two vectors, you can use std::includes.

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Yes this may work –  CodersSC Mar 14 '12 at 10:24

Let me add a solution which doesn't include an explicit for, and supposing that:

  • There are no repeated items in test1.
  • You are looking for exactly the same string to be contained in test.

    #include <vector>
    #include <string>
    #include <algorithm>
    #include <iostream>
    
    using namespace std;
    
    struct StringFoundCounter 
    {
        StringFoundCounter(const vector<string>& haystack) 
            : sum(0), haystack(haystack) { }
    
        void operator()(string needle) {
            if (find(haystack.begin(), haystack.end(), needle) != haystack.end())
                sum++;
        }
    
        int get_sum() const  { return sum; }
    
    private:
        int sum;
        const vector<string>& haystack;
    };
    
    int main()
    {
        std::vector<std::string> test;
        test.push_back("YES");
        test.push_back("YES");
        test.push_back("NO");
        test.push_back("NO");
    
        std::vector<std::string> test1;
        test1.push_back("YES");
        test1.push_back("NO");
        test1.push_back("CR");
    
        StringFoundCounter sfc = 
            for_each(test1.begin(), test1.end(), StringFoundCounter(test));
    
        if (test1.size() == sfc.get_sum())
            cout << "All elements found" << endl;
        else
            cout << "Some or all elements not found" << endl;
    }
    

    ~

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