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I want to understand why FAR is used in the below typedef syntax?

#define FAR
//some other instructions
//.....
//.....

typedef struct tagDEVICE_BUFFER_W
{
 ....
 ....
}DEVICE_BUFFER_W;

typedef DEVICE_BUFFER_W FAR * LPDEVICE_BUFFER_W; //Why FAR is used here?

What if I dont use FAR as mentioned below? Will it make any difference?

typedef DEVICE_BUFFER_W * LPDEVICE_BUFFER_W;
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up vote 5 down vote accepted

It's legacy from the olden days. 16-bit Windows code had near and far pointers. I think it was to distinguish between inter-segment and intra-segment addressing, but the memory has faded (a lot).

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Back in the old days making games for DOS with Borland C++ I remember near, far, and I think huge pointers which did some sort of EMM/EMS magic. Of course, once we switched to the flat memory model with Watcom all that went away. – Retired Ninja Jan 12 '12 at 7:44

I don't actually know what a far pointer is, so I'm just going to point you to Wikipedia. As Marcelo has said though, it appears to be outdated and a legacy technology/technique.

See here for the Wikipedia article.

Also, taken from a programming forum (this links to a daniweb thread):

In the old days of the 80286, there were near (16-bit) and far (16:16 = 20/24 bits) pointers. Memory was divided into segments of 64k bytes (16-bits) because of the 16-bit nature of the x86. The address bus supported 20 to 24-bits (1-16MB), so in order to address the larger area, segment registers were combined with 16-bit pointers to form the complete address. This architecture still exists on today's Pentiums, but it has become a non-issue. Windows uses a "flat" memory model where all segments point to the same place and instead of 16-bit offsets, there are 32-bit offsets. The FAR keyword has become unnecessary in modern x86 software.

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It might not make a difference for this particular implementation but on a different operating system or architecture they can use it to define extra information. In this case it's probably used for far pointers:

#define FAR far
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