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I am trying to print the value of a const but it is not working. I am making a return to C++ after years so I know casting is a possible solution but I can't get that working either.

The code is as follows:

  //the number of blanks surrounding the greeting
    const int pad = 0;

    //the number of rows and columns to write
    const int rows = pad * 2 + 3;
    const string::size_type cols    =       greeting.size() + pad * 2 + 2;

    cout << endl << "Rows : " + rows;

I am trying to print the value of 'rows' without success. Can anyone please help out?

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4 Answers 4

You want:

cout << endl << "Rows : " << rows;

Note this has nothing to do with const - C++ does not allow you to concatenate strings and numbers with the + operator. What you were actually doing was that mysterious thing called pointer arithmetic.

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Not exactly: as it has been pointed out to me below, "Rows :" is a char* and when char*s are printed out, they're printed out starting at the position they point at until they hit a null character. –  trutheality Jun 6 '11 at 18:26
    
@trutheality Nope, what I'm saying is correct. s[rows] where s is a char * and rows is an integer evaluates to a char, not a char *. –  nbt Jun 6 '11 at 18:30
1  
@Neil Butterworth: Explain this then. –  trutheality Jun 6 '11 at 18:33
    
@trutheality You are quite right. I don't know where I was going there - blame it on the anti-depressants. –  nbt Jun 6 '11 at 18:43
    
@trutheality that example exits without flushing output –  Erik Olson Jun 6 '11 at 19:27

You're almost there:

cout << endl << "Rows : " << rows;

The error is because "Rows : " is a string literal, thus is a constant, and generally speaking is not modified as you may think.

Going slightly further, you likely used + (colloquially used as a concatenation operation) assuming you needed to build a string to give to the output stream. Instead operator << returns the output stream when it is done, allowing chaining.

// It is almost as if you did:
(((cout << endl) << "Rows : ") << rows)
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2  
Um, not so. It can never be modified, and the OP's code is not attempting to do so. –  nbt Jun 6 '11 at 18:13
    
Guys, thank you. I appreciate you bailing me out –  sisko Jun 6 '11 at 18:15
    
@Neil: Was trying to avoid the pointer talk, as he was using + to mean concatenation. But +1 went your way for the pointer arithmetic acknowledgement. –  user7116 Jun 6 '11 at 18:15

I think you want:

std::cout << std::endl << "Rows : " << rows << std::endl;

I make this mistake all the time as I also work with java a lot.

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As others have pointed out, you need

std::cout << std::endl << "Rows : " << rows << std::endl;

The reason (or one of the reasons) is that "Rows : " is a char* and the + operator for char*s doesn't concatenate strings, like the one for std::string and strings in languages like Java and Python.

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1  
Or strings (std::string, that is) in C++. char* and std::string are different types. char* is a carryover from C, std::string is new with C++. –  David Hammen Jun 6 '11 at 18:19
1  
Actually, in this case, there is a operator+ available. "Rows : " will devolve into a const char*, which can have an int added to it, i.e. "Rows : " + 3. The resulting output is that only "s : " is written. –  Nathan Ernst Jun 6 '11 at 18:21
    
I'll add that if you don't mind. –  trutheality Jun 6 '11 at 18:21

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