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Here SIMPLE_EX2 is being ORed with 0x0040 and the whole this providing as an address to SIMPLE_EX1. Is my understanding correct?

#define SIMPLE_EX1  (0x0040 | SIMPLE_EX2) 
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Yes, your understanding is correct.As I understand "providing as an address" is not what you really meant to say but ended up making it sound like you do. –  Alok Save Sep 5 '12 at 9:14
Except for the word "address" you are correct. –  interjay Sep 5 '12 at 9:14 it. Thanks –  Sumeet Shrestha Sep 5 '12 at 9:28

4 Answers 4

up vote 4 down vote accepted

| is not a pipe sign in C. It's a bit-wise or. So this expression:

0x0040 | SIMPLE_EX2

Simply gets the value of SIMPLE_EX2 and sets it's 7th bit (from right) to 1.

Unlikely, but note that if SIMPLE_EX2 itself is an expression with an operator that has lower precedence than |, the overall expression may be interpreted wrongly. For example if SIMPLE_EX2 is a?b:c, then SIMPLE_EX1 becomes (0x0040|a)?b:c which is not what I wrote above.

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thanks, well described ... –  Sumeet Shrestha Sep 5 '12 at 9:29

You should read a good C programming book (if you are learning C), or a good C++ programming book if you are learning C++.

Assuming SIMPLE_EX2 is #define-d as a constant integer, or a constant integer expression in parenthesis, then SIMPLE_EX1is that integer bit-or-ed with the 0x0040 hexadecimal constant (ie 64 in decimal, or 0b1000000 in binary).

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It doesn't have to be constant. Whatever integer expression SIMPLE_EX2 expands to, the result gets the 7-th bit set to 1. –  Imp Sep 5 '12 at 9:16
Agreed, but the original poster did not gave any context for his question. And if SIMPLE_EX2 is not defined, or ill-defined (e.g. as a string, or the name of a variable undefined at some using occurrence of SIMPLE_EX1) the question does not make sense. So I had to guess what SIMPLE_EX2 might be. –  Basile Starynkevitch Sep 5 '12 at 9:21

SIMPLE_EX2 is being ORed with 0x0040


and the whole this providing as an address to SIMPLE_EX1.


The #define preprocessor directive is basically a find-and-replace text operation which is done before compilation. Nothing more and noting less. So whenever you write SIMPLE_EX1 in your code, it is textually replaced with (0x0040 | SIMPLE_EX2) before compilation.

Interesting code snippet which illustrates this:

#define SIX 1+5
#define NINE 8+1

printf("Six times nine is %d.", SIX * NINE);

This code will return 42, not 54 like one would expect, because the preprocessor turns the whole program into:

printf("Six times nine is %d.", 1 + 5 * 8 + 1);
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It is just setting the 7th bit from right for SIMPLE_EX2 and assigning it to SIMPLE_EX1

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