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I am attempting to create a C# wrapper for a C class library the controls an external device. This device supports being hooked up to an external clock or using its internal clock depending on the value set when its intialized.

The manufacture provided header files for its C Library with the following #defne variables

#define DATA_SRC_INT = 0x000000000L
#define DATA_SRC_EXT = 0x000000001L
#define DATA_SRC_NONE = 0x00000000FL

I cannot for the life of me figure out what the value of the number is, I have several people in my office, and they have not see anything like this before.

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2 Answers 2

up vote 8 down vote accepted

Those are long values of 0, 1 and 15, respectively. The suffixed L signals that it is a long literal, while the prefix 0x is for hexadecimal numeric literals.

In C# you can do pretty much the same as well (the L suffix isn't necessary here since the compiler already knows the type and converts accordingly – in your C code the defines are only string replacements and therefore the type has to be carried with them):

public const long DATA_SRC_INT = 0x0;
public const long DATA_SRC_EXT = 0x1;
public const long DATA_SRC_NONE = 0xF;

But unless the hexadecimal notation yields actual insights (such as composition of bit fields) I usually stick to decimals:

public const long DATA_SRC_INT = 0;
public const long DATA_SRC_EXT = 1;
public const long DATA_SRC_NONE = 15;
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Ramhound: The format is just there for the compiler. If you declare it as long in C# as well you shouldn't get any surprises – it's the same type and value after all. The L and the hexadecimal notation simply vanishes after the compiler nibbled away at the source. Then again, for a port consistency with the original code is probably not a bad idea either, but the hardware really doesn't care :-) –  Joey Dec 15 '10 at 20:46

The 0x means that the number is in hex. The L at the end means that it's a long.

So... the the numbers listed are 0, 1, and 15, respectively.

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