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I am trying to do the following:

        case MOVE_DIRECTION_UP:
            //do something

Where MOVE_DIRECTION_UP is this:

    const unsigned char MOVE_DIRECTION_UP = 0x0;

The compiler gives the error: MOVE_DIRECTION_UP cannot appear in constant-expression

Surely this should be allowed, because it compiles fine if I replace MOVE_DIRECTION_UP with 0x0.

Any help is appreciated, thanks!

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Which compiler ? g++ does not give me an error – AsheeshR Dec 1 '12 at 12:16

4 Answers 4

up vote 2 down vote accepted

If you're working with C++11, you can declare MOVE_DIRECTION_UP as a constexpr. The compiler will regard it as a constant value that can be used as a switch label.

If you're not, you may define an enumeration:

namespace eDirection { enum e {
    UP = 0x0,
    DOWN = 0x1

switch( direction ) {
    case eDirection::UP: ...
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This is allowed in C++. Your code is correct. A const variable can be used in a constant expression.

Are you sure you're building a C++ source file and not C? In C, the code is not valid (a const variable cannot be used in a constant expression.)

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This seems like a compiler error.

In C++98:

5.19 Constant expression


An integral constant-expression can involve only literals (2.13), enumerators, const variables or static data members of integral or enumeration types initialized with constant expressions (8.5)

In C++11:

5.19 Constant expressions


2 A conditional-expression is a core constant expression unless it involves one of the following as a potentially evaluated subexpression


— an lvalue-to-rvalue conversion (4.1) unless it is applied to

a glvalue of integral or enumeration type that refers to a non-volatile const object with a preceding initialization, initialized with a constant expression, or

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You did not provide an actual program with your problem demonstrated, so I will use a crystal ball. You forward declared your const and its value is not directly visible at the switch.

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