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I am very new to C++ and still trying to learn syntax and best practices.

I've defined a method with a single parameter:

void foo(const std::string& name)

1) Is this a proper parameter declaration for a function that will be taking in a string defined by the user in, for example, a main method?

2) If this is proper/recommended syntax, what would an instantiation of a sample parameter look like?

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What is "instantiation of parameter"? Do you mean passing an argument that will bind to that parameter, as in foo("bar")? –  Pavel Minaev Nov 2 '09 at 22:16
    
Yankee, in my answer, I assumed that "instantiation of a sample parameter" meant you wanted to know ways your program could pass a string as a parameter to the function, which pretty much amounts to all the ways that you can create a string. You accepted my answer, but now you've switched to Darren's, which demonstrates how to define a function and how to instantiate a class that contains your function, but demonstrates only one sample parameter. Can you please clarify what you meant by "instantiation of a sample parameter"? Maybe you unclear on what parameter means? Or instantiation? –  Rob Kennedy Nov 2 '09 at 23:16

6 Answers 6

up vote 2 down vote accepted

I'm not sure if I fully understand your question, but I'll try to clarify it.

You use the terminology 'method'. I'm assuming that your method is encapsulated in a class? If so, then :-

In your header file (eg. source.h),

class dog
{
    ...
    public:
       void foo(const std::string &name);
    ...
};

In your source file (eg. source.cpp)

void dog::foo(const std::string &name)
{
    // Do something with 'name' in here
    std::string temp = name + " is OK!";
}

In your 'main' function, you can instantiate your 'dog' class, and call the 'foo' function like :-

void blah()
{
    dog my_class;
    my_class.foo("Testing my class");
}

If you want a function (ie. a 'method' that is not encapsulated within a class), then what you have is correct.

In your source file (eg. source.cpp)

void foo(const std::string &name)
{
    // Do something with 'name' in here
    std::string temp = name + " is OK!";
}

If you want to be able to call your function from outside that particular source file, you'll also need to forward declare your function in a header file.

In your header file (eg. source.h)

void foo(const std::string &name);

To call your function,

void blah()
{
    foo("Testing my class");
}

Hope this helps!

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Yes, that is the correct syntax. You can call it and provide parameters several different ways:

  • With a string literal:

    foo("bar");
    
  • With a string variable:

    std::string b = "bar";
    foo(b);
    
  • With the result of a function return type string:

    std::string quux();
    foo(quux());
    
  • With a char* variable:

    int main(int argc, char const* argv[]) {
      foo(argv[0]);
    }
    
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1) It is a proper parameter declaration if function foo() doesn't mean to change the string. The 'const' keyword is used to signify that the string won't be changed by the receiver. If you write code in foo() which modifies the string you will get compiler error/warning.

2)

std::string theString = "Hello";
foo( theString );
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Is this a proper parameter declaration for a function that will be taking in a string defined by the user in, for example, a main method?

Yes.

#include <string>
using namespace std;
void foo(const string& name)
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3  
More organized? how so, all you have accomplished is adding std to the global namespace for the entire unit (or for any unit which includes this file). –  Ed S. Nov 2 '09 at 22:17
    
It's just because the code gets more clean, in my opinion. –  Nathan Campos Nov 2 '09 at 22:21

1) Yes, that's a very good way to do it if you only need to read the string in the function.
2) There is no instantiation going on?

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1) For most functions, it would be a fine signature. However, since you mentioned main(), there are only two valid signatures:

  • int main()
  • int main(int argc, const char* argv[])

...as you can see, you have to use C-style strings due to C-legacy compatibility (and efficiency)

2) Not sure I understand your second question, but since std::string has a constructor that takes a const char*, you can just say:

foo("hello");

or:

std::string input;
std::cout << "Enter some text:  ";
std::cin >> input;
foo(input);
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