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I am not sure why I get the error C2143: syntax error : missing ';' before '==' Would be most grateful if somebody would explain my error.

#include <iostream>
#include <string>
#include <cstdlib>

int main() {

std::cout << "What is your name? ";
std::string name;
std::cin >> name;
const std::string greeting = "Hello " + name + " !";
//
const int pad = 1;
const int rows = pad * 2 + 3;
std::cout << std::endl;
//
int r = 0;
while (r != rows) {
    std::cout << std::endl;
    ++r;
}
//
std::string::size_type cols = greeting.size() + pad * 2 + 2;
std::string::size_type c == 0;
while (c != cols) {
    if (r == 0 || r == rows -1 || c == 0 || c == cols -1) {
    } else {
    }
}

std::system("pause");

return 0;
};
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3  
in the future, the line number of error would be most helpful. –  KevinDTimm Nov 7 '11 at 20:01

4 Answers 4

I suspect the problem is here:

std::string::size_type c == 0;

That should probably be:

std::string::size_type c = 0;
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This line:

std::string::size_type c == 0;

should be:

std::string::size_type c = 0;
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You have not initialized 'c' yet.

std::string::size_type c == 0;

should be

std::string::size_type c = 0;

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1  
True (+1), but it doesn't have to do with not having initialized the variable; it's just an invalid grammar construct. –  user166390 Nov 7 '11 at 19:59
    
ahhh yes. thanks! –  Nathan Boyd Nov 7 '11 at 20:04

problem is

std::string::size_type c == 0; 

when should be

std::string::size_type c = 0;

it needs to be single equal operator(assignment operator)

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