Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

EDIT 11/3/2011 9:37pm:

This is my error:

 error: no matching function for call to "charList_join(const char [1], CISP430_A5::linked_list<char>&)"

and this is my prototype:

template <typename Item>
string charList_join(const char* glue, linked_list<char> pieces);

and this is my function call:

charList_join("", usedChars)

where usedChars is a static linked_list<char> declared in the same scope where charList_join() is called.

EDIT 11/4/2011 8:45am: Ok, so here is my code with unnecessary functions removed:

[sehe: edited from pastebin to github]

  • browse it online at github
  • download it with git:

     git clone git://gist.github.com/1340832.git
    

I'm getting the error on line 57, column 68 of premute_append.cpp. I've included the makefile so you can attempt to build it if you want. I'm only getting one single error at this point, but I just don't have any idea what it means.

If you try to compile the error will look like this:

[cisw320b_stu022@scc-bdiv-cis assn5]$ make
g++ -c main.cpp
g++ -c permute_append.cpp
permute_append.cpp: In member function âCISP430_A5::linked_list<std::basic_string<char> > CISP430_A5::permute_append::permute(CISP430_A5::linked_list<char>)â:
permute_append.cpp:57:68: error: no matching function for call to âcharList_join(const char [1], CISP430_A5::linked_list<char>&)â
make: *** [permute_append.o] Error 1

Any idea why I'm getting this error?

share|improve this question
4  
What error are you getting? –  Benjamin Lindley Nov 4 '11 at 4:16
    
I posted my error. –  trusktr Nov 4 '11 at 4:41
1  
Post a sscce. This error is most likely being caused by the implementation of linked_list, but it difficult to find the cause of this without a complete program that reproduces the error. –  Mankarse Nov 4 '11 at 4:52
    
Does changing the prototype to: string charList_join(const char* glue, CISP430_A5::linked_list<char> pieces); fix the problem? –  Mankarse Nov 4 '11 at 4:54
    
@Mankarse I tried it, but that didn't work. –  trusktr Nov 4 '11 at 5:00

2 Answers 2

up vote 1 down vote accepted
string charList_join(const char* glue, linked_list<char> pieces);

is actually

template< typename Item >
string charList_join(const char* glue, linked_list<char> pieces);

Since Item is not detected from any of the arguments, you should pass it explicitly:

charList_join<SomeItemType>( "", usedChars);

Or perhaps you just wanted instead:

template< typename Item >
string charList_join(const char* glue, linked_list<Item> pieces);
share|improve this answer
    
Indeed using charList_join<SomeItemType>( "", usedChars); made he error go away! I guess I need to read up on templates more. So charList_join<someType> sets the type for Item? Does that mean all uses of Item must be limited so someType now? –  trusktr Nov 4 '11 at 22:18
    
@trusktr: It sets the type of Item within the function, not in the enclosing class. Seems most if not all the template functions should instead be just regular functions. Keep the research on templates! –  K-ballo Nov 4 '11 at 22:20
    
Thank you! So i learnt that the template prefix is not necessary if the the data types are not ambiguous! –  trusktr Nov 4 '11 at 22:23
1  
@trusktr: Yes, most if not all of them look like an artificial ripple from not understanding templates properly. A member function of a class template does not need to include the template<> prefix since its already implicit by its class type, it only needs to do so if its indeed intended to work on a family of types itself. –  K-ballo Nov 4 '11 at 22:29
1  
@trusktr: Look for a simple tutorial on say lists using templates, and you'll understand how its supposed to be done. There are lots of examples out there. There is also the standard library implementation, but is usually too hard to read due to standard constrains. –  K-ballo Nov 4 '11 at 22:50

You said:

and this is my prototype:

string charList_join(const char* glue, linked_list<char> pieces);

But it is not. According to the code you provided, your declaration is:

template <typename Item>
string charList_join(const char* glue, linked_list<char> pieces);

Which means that you need to call it like so:

charList_join<char>("", usedChars)

However, you don't actually use Item within this function, so you should just remove the template specifier (from the declaration and the definition) and call it as you were. Better still, pass the list by const-reference:

string charList_join(const char* glue, const linked_list<char>& pieces);

The call remains:

charList_join("", usedChars)
share|improve this answer
    
Oops, it was a typo. I meant to put a return type. –  trusktr Nov 4 '11 at 5:43
    
Hey, I edited my question. –  trusktr Nov 4 '11 at 5:59
    
You did. Now that it bears no resemblance to the one you asked, I can delete this answer. –  Johnsyweb Nov 4 '11 at 8:30
    
You updated again. Now I can answer, having trawled through lots of unnecessary code. –  Johnsyweb Nov 4 '11 at 22:15
1  
Thank you! You and K-ballo both answered with the same answer but he answered first, so I gave it to him. Thank you thank you thank you! –  trusktr Nov 4 '11 at 22:22

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.