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.

Hey guys, I need help with this one. I'm writing a really basic program that will generate a character array firstName[amount][size]. using this it will then pass it to the function addPerson and that will modify the value.

Here's my current code

void deletePerson(int &, int, char[], char[], char[], char[]);
int main()
{
char firstNames[100][25], lastNames[100][25], email[100][50], phone[100][16];
else if (userChoice == 'D')
    {
        deletePerson(count, amount, &firstNames,&lastNames,&email,&phone);
    }
}
void deletePerson(int count, int amount, firstNames&, lastNames&,email&,phone&);
{
//blahblahblah
}

I know that it's wrong and pardon my newbieness. I had it working to a point where it only had on error but then i decided to change everything. Anyway, I hope you get the point of what i'm trying to say. Basically i Need to pass the array and have it modified inside the function. How might i go about that?

Thanks!

edit: Ok so i can't use global variables either, that'd be too easy.

I edited the code to get rid of the &. it gives me

error LNK2019: unresolved external symbol "void __cdecl deletePerson(int &,int,char (* const)[25],char (* const)[25],char (* const)[50],char (* const)[16])" (?deletePerson@@YAXAAHHQAY0BJ@D1QAY0DC@DQAY0BA@D@Z) referenced in function _main

my new code looks like

void deletePerson(int &, int, char[][25], char[][25], char[][50], char[][16]);
int main()
{
char firstNames[100][25], lastNames[100][25], email[100][50], phone[100][16];
else if (userChoice == 'D')
        {
            deletePerson(count, amount, firstNames,lastNames,email,phone);
        }
}
void deletePerson(int count, int amount, char firstNames[100][25], char lastNames[100][25],char email[100][50],char phone[100][16])
{
    int position; //the place where the person is in the array
    position = searchName(count, amount, lastNames);
    if (position != -1)
    {
    }

}

share|improve this question
    
Your second code block declares and uses void deletePerson(int &, int, char[][25], char[][25], char[][50], char[][16]), but does not define it. It does define a completely unrelated(!) function with signature void deletePerson(int, int, char[100][25], char[100][25],char[100][50],char[100][16]), which is unused. Make sure to use exactly the same signature for declaration and definition. –  Christopher Creutzig Nov 29 '10 at 8:13

2 Answers 2

up vote 2 down vote accepted

I think you should really avoid using char arrays and char pointers. Use std::vector and std::string instead, they will save you a lot of trouble. std::vector<std::string> is probably all you need. Or even better, you should bundle firstName, lastName, email and phone together in a structure.

struct Person
{
    std::string firstName;
    std::string lastName;
    std::string email;
    std::string phone;
}

void deletePerson(std::vector<Person>& persons)
{
    int position = searchName(lastNames); // you could replace this with std::find
    if (position != -1)
    {
    }
}
share|improve this answer
    
I would, but I can't as this is a requirement. So any idea on making this work? I'm running out of ideas –  Jeremy Nov 29 '10 at 8:05
    
Thanks, i'll give it a try. –  Jeremy Nov 29 '10 at 8:10

Try this:

It uses the template argument deduction and references to simplify things. It works in case you change the dimensions of your arrays for whatever reason without changing the function (and possibly the logic).

template<class T, int N1, int N2, int N3, int N4, int N5, int N6, int N7, int N8>
void deletePerson(int &, int, T(&r1)[N1][N2], T(&r2)[N3][N4], T(&r3)[N5][N6], T(&r4)[N7][N8]){} 

int main() 
{ 
   char firstNames[100][25], lastNames[100][25], email[100][50], phone[100][16]; 
   int count = 100;
   deletePerson(count, 20, firstNames, lastNames, email, phone); 
} 
share|improve this answer
    
Thanks! I decided to do the code a different way. Thank you for helping though! –  Jeremy Nov 29 '10 at 9:08

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.