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My OS is Win8
using Code::Blocks 12.10

I'm trying to get a handle on throwing and handling exceptions using an
example from Starting Out with C++ Early Objects Addison Wesley.

Here is the simple code I'm using:

// This program illustrates exception handling
#include <iostream>
#include <cstdlib>

using namespace std;

// Function prototype
double divide(double, double);

int main()
{
    int num1, num2;
    double quotient;

    //cout << "Enter two integers: ";
    //cin >> num1 >> num2;

    num1 = 3;
    num2 = 0;

    try
    {
        quotient = divide(num1,num2);
        cout << "The quotient is " << quotient << endl;
    }
    catch (char *exceptionString)
    {
        cout << exceptionString;
        exit(EXIT_FAILURE);     // Added to provide a termination.
    }
    cout << "End of program." << endl;
    return 0;
  }

 double divide(double numerator, double denominator)
 {
    if (denominator == 0)
        throw "Error: Cannot divide by zero\n";
    else
        return numerator/denominator;
 }

The program will compile, and when I use two ints > 0 execution is normal. If I try to divide by 0 however, I get the following message:

terminate called after throwing an instance of 'char const*'

This application has requested the Runtime to terminate it in an unusual way.
Please contact the application's support team for more information.

Process returned 255 (0xFF)   execution time : 4.485 s
Press any key to continue.

I've looked at other examples, but have yet to find similar code to derive an answer from.

Any advice?

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5  
Did you try to catch a char const*? (just a wild guess) –  dyp Jul 13 '13 at 18:58
    
what is the "following message " ? –  alexbuisson Jul 13 '13 at 18:59
1  
I recommend declaring variables closest to first use and initializing them to their value when possible. –  chris Jul 13 '13 at 19:00
    
The program runs fine for me in VC11. I get the exception message as output. –  typ1232 Jul 13 '13 at 19:02
1  
@jrok - prior to C++11 there was an implicit conversion of the type of a string literal to char*, so for compilers prior to C++11 the code is valid. –  Pete Becker Jul 13 '13 at 19:35

1 Answer 1

up vote 1 down vote accepted

There's a compelling example in the C++ Standard, [except.throw]/1:

Example:

throw "Help!";

can be caught by a handler of const char* type:

try {
    // ...
} catch(const char* p) {
    // handle character string exceptions here
}

When you throw via throw "Error: Cannot divide by zero\n";, the expression after throw is a string literal, therefore of type array of n const char (where n is the length of the string + 1). This array type is decayed to a pointer [except.throw]/3, therefore the type of the object thrown is char const*.

Which types are catched by a handler (catch) is described in [except.handle]/3, and none of the cases apply here, i.e. the const char* is not catched by a handler of type char*.

share|improve this answer
    
That's correct for C++11; prior to C++11 there was an implicit type conversion from a string literal to char*, and the code was valid. –  Pete Becker Jul 13 '13 at 19:36
    
Yes, it was deprecated, but that doesn't mean it wasn't part of the language. Deprecated means only that it might go away in the future. Use of C-style headers is deprecated, but they won't ever go away, despite the fantasies of some of the people in the earlier days of standardization. –  Pete Becker Jul 13 '13 at 19:39
    
Yeah I didn't mean to say it was disallowed. It just should have already been avoided to use it, even when it still was legal in C++03. –  dyp Jul 13 '13 at 19:40
    
Yup; I would never write that catch clause without a const. –  Pete Becker Jul 13 '13 at 19:42
    
@PeteBecker Upon further investigation of the C++03 Standard, isn't the conversion that was legal from array to n const char to pointer to char, and not a pointer conversion? –  dyp Jul 13 '13 at 19:42

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