Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them, it only takes a minute:

I'm new to this so I know this is probably something simple.

I have a function like this

void GroceryList::addRecord(char* itemName, char* itemType, char rating){
//do some code;

My problem is I am having trouble creating proper arguments to pass to the function.

I've tried something like
void main() {
    string itemName;
    cin >> itemName;
    string itemType;
    cin >> itemType;
    string rating;
    cin >> rating;

gradeBook.addRecord(itemName, itemType, rating);

I didn't expect it to work as the function is expecting char* but I can't for the life of me figure out how to get the user input into a variable that I can pass to the function. I've been search for literally 13 hours trying what I can find but no luck so far.

share|improve this question
what error message do you get? –  nobody Aug 3 '11 at 10:35

5 Answers 5

Change the function prototype to

void GroceryList::addRecord(string itemName, string itemType, string rating){
//do some code;

I also recommend const correctness in your code, if you are not going to change the arguments, pass them by ref with const (for performance)

void GroceryList::addRecord(const string& itemName, const string& itemType, const string& rating){
//do some code;

All depends on the actual method body which you didn't describe.

share|improve this answer

You can use string and then when passing just call c_str() on the string. For the rating you can just use a char.

Then calling the function looks like:

gl.addRecord(itemName.c_str(), itemType.c_str(), rating);

For this to work you'll need to change the function signature to const char* instead of char*.

share|improve this answer

Well, don't use char*.

void GroceryList::addRecord(const std::string& itemName, const std::string& itemType, const std::string& rating) { /* ... */ }

You can get const char* (not char*) from string with c_str() member function, e.g. itemName.c_str(), but unless you're doing interop with C libraries, you don't need that.

share|improve this answer

Use std::string::c_str(); that's what it's for:

gradeBook.addRecord(itemName.c_str(), itemType.c_str(), rating.c_str());

This function returns a const char *. However, the addRecord function doesn't seem to be const-correct, so you need to fix that.

share|improve this answer
Don't use char *'s if you can help it. –  dascandy Aug 3 '11 at 10:47

The simple answer is that you can't. If you can modify GroceryList::addRecord, change it to use std::string const&. If you can't modify it, then you have to ask the question: why does it use char*? There are two possible answers: the author didn't understand const, or was too lazy to use it, and in fact doesn't modify the pointed to strings. In this case, something like const_cast<char*>( itemName.c_str() ) can be used; it's wordy, but that's the price you pay when the code's author doesn't do his job correctly. The other possible answer is that the code does modify something through the pointer. In this case, the only solution involves making a copy of the string into a char[], and passing it.

share|improve this answer
You could pass &itemName[0]. You might need to manually null-terminate it, though. –  ymett Aug 3 '11 at 11:22
@ymett If the called function does modify something, that would result in undefined behavior. If the called function doesn't modify something, I would prefer the const_cast: it's more verbose, but it says clearly what is going on. –  James Kanze Aug 3 '11 at 11:31
Why would it be undefined behaviour? –  ymett Aug 3 '11 at 13:27
@ymett Because the standard says so:-). In practice, I can't imagine a reasonable implementation where it would cause a problem, as long as the callee didn't go outside of the actual size, and no one did anything with the string object during the time the callee had the pointer. –  James Kanze Aug 3 '11 at 13:53
The standard says that std::string s(1); *&s[0] = 'a'; is undefined behaviour? –  ymett Aug 4 '11 at 6:57

Your Answer


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.