Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a simple hash table template,

template <class K, class V, long H(K)>
class HashTableAbs{/* .... */}
//where K is key type, V is value type, H gives hash code for K value

and simple inheritor class

template <class K, class V, long H(K)>
class HashTable:public HashTableAbs<K, V, H> {}; 

and i want to specialize this template for string, with my default hash function

template <class V> 
class HashTable<std::string, V, strSimpleHash>:public HashTableAbs<std::string, V, strSimpleHash> {};
//where strSimpleHash is long strSimpleHash(std::string)

But when i trying to compile this compiler write this

test.o: In function `strSimpleHash(std::string)':
test.cpp:(.text+0x0): multiple definition of `strSimpleHash(std::string)'
/tmp/main-i7yPhc.o:main.cc:(.text+0x0): first defined here
clang: error: linker command failed with exit code 1 (use -v to see invocation)

(test includes hashtable.h where HashTable is defined) strSimpleHash is defined only in hashtable.h

Is there way out? PS sorry for my writing mistakes. English in not my native language

share|improve this question
    
did you define strSimpleHash before or after your template specialisation? It needs to be before. –  Dave Apr 7 '13 at 18:42
    
i defined it before template and template specialisation –  Dark_Daiver Apr 7 '13 at 18:44
    
Please show more, code, notably the part where you define strSimpleHash, for more complete answers. –  Synxis Apr 7 '13 at 18:46

1 Answer 1

up vote 3 down vote accepted

This error is not really related to templates. It is a multiple definition of a function. I guess you have defined strSimpleHash in a header without using inline (you didn't add the code where you define this function).

You asked in your comments a way to use HashTable like the following:

HashTable<std::string, int> // (ie, without passing the 3rd argument)

This is not directly possible. Althought you can specify a default value for a template argument (but not in a specialization), for example:

template<int n = 0> struct dummy {};
dummy<> obj;

in your case you cannot do that, because the general case of your template does not accept only functions of type long(std::string). However, it is possible to workaround this by assigning a default function for each possible type. Note that you should use pointer-to-function, as the code is a little clearer:

// A C++03-style template typedef
template<typename K>
struct HashFunc
{
    typedef long (*type)(K);
};

// The default value. Defined only for some cases,
// compile error for not handled cases
template<typename K>
struct DefaultHash;

template<>
struct DefaultHash<std::string>
{
    // Static constant pointer-to-function, pointing to the hash func.
    static constexpr HashFunc<std::string>::type func = &strSimpleHash;
};

// The HashTable class
template <class K, class V, typename HashFunc<K>::type H = DefaultHash<K>::func>
class HashTable
{
};

template <class V> 
class HashTable<std::string, V, strSimpleHash>
{
};

And then you can use it as you wanted, omitting the third template parameter. Note that this code compiles on gcc, but not on clang. (Actually, I'm not sure about which compiler is right...)

share|improve this answer
    
Great! I added inline to strSimpleHash and it compiled. But when i trying to define HashTable<std::string, int>* table, compiler write: test.cpp:126:17: error: too few template arguments for class template 'HashTable' void printTable(HashTable<std::string, int> *table) –  Dark_Daiver Apr 7 '13 at 18:52
    
Great! For what you have put in the comment, you forgot to pass the function: HashTable<std::string,int,strSimpleHash>* table;. –  Synxis Apr 7 '13 at 18:54
    
can i specialize my template, to make this (HashTable<std::string, int> *table) valid? –  Dark_Daiver Apr 7 '13 at 18:59
    
See my edit, I added some code for what you want. –  Synxis Apr 7 '13 at 20:09
    
Thank you! PS clang works –  Dark_Daiver Apr 8 '13 at 15:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.