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In the code below, I'm trying to search a string array I pass to a template function for a particular string, but I get the error "no matching function for call to `arraySearch". The previous two function calls for the int array and double array work fine, seems like I'm just missing come detail for dealing with the string array, and I can't figure out what it is. At any rate, it must be an array (no vectors). Any help would be very appreciated!

#include<iostream>
#include<string>

using namespace std;

template<typename T>
bool arraySearch(T array[], int size, T thing)
{
     for(int i = 0; i < size; i++)
     {
          if(array[i] == thing)
          return true;
     }

     return false;
}         

int main()
{
    const int SIZE = 12;
    int intArray[] = {14, 3, 6, 76, 34, 22, 21, 54, 33, 23, 76, 234};
    cout << "The element was found: " << arraySearch(intArray, SIZE, 23) << endl;

    double doubleArray[] = {34.5, 65.56, 11.1, 45.4, 87.5, 98.3, 23.6, 15.5, 3.3, 5.44, 54.3, 99.9};
    cout << "The element was found: " << arraySearch(doubleArray, SIZE, 23.6) << endl;

    string stringArray[] = {"cool", "bug", "master", "katze", "republic", "randolph", "watermelon", "igloo", "sardine", "cream", "yellow", "rubber"};
    cout << "The element was found: " << arraySearch(stringArray, SIZE, "cool") << endl;

 system("pause");
 return 0;
}    
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Templates together with unsafe C-style arrays? Come on... –  leftaroundabout Apr 21 '13 at 18:53
    
@leftaroundabout Could you say a bit more? –  user2302335 Apr 21 '13 at 19:13
    
What I mean is, why don't you use proper C++ containers such as std::array or std::vector, rather than T[]? –  leftaroundabout Apr 21 '13 at 19:36

2 Answers 2

up vote 4 down vote accepted

You need to say:

cout << "The element was found: " << arraySearch(stringArray, SIZE, std::string("cool")) << endl;

The problem is that "cool" is not an instance of T when the the template is instantiated with T as std::string. In C++, string literals are C char arrays, not std::string.


Also, you could simply use std::find from <algorithm> to achieve the same effect as the code you posted. std::find can work with C-arrays and pointers as well as C++ iterators.

std::string* res = std::find(stringArray, stringArray + sizeof(stringArray) / sizeof(std::string), "cool");
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Nice! Your explanation made sense. –  user2302335 Apr 21 '13 at 18:58

The problem is that T is deduced to be std::string from the first argument, and const char* from the second argument.

Therefore, the compiler does not know which one to pick. Try doing:

arraySearch(stringArray, SIZE, std::string("cool"))

Or, alternatively, let the function template accept arguments of different type:

template<typename T, typename U>
bool arraySearch(T array[], int size, U thing)

This won't require constructing an std::string object explicitly:

arraySearch(stringArray, SIZE, "cool")

If you decide to preceed this way, you may want to further SFINAE-constrain your function template so that it accepts only types that are equality-comparable:

template<typename T, typename U, 
         decltype(declval<T>() == declval<U>())* = nullptr>
bool arraySearch(T array[], int size, U thing)
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