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I'm pretty new to C, I come from a web development background so I'm a little bit unsure of some of the bits and bytes coding that I have seen C programmers use. I'm looking at some C code that passes in a parameter to a function.

insert_chem(int jobId, ...);

And when this function is called, the jobId passed is actually a constant, that is originally defined like this:

CYCLE_JOB_MEM = 0x00020000

it would be used like this:

insert_chem(CYCLE_JOB_MEM, ...);

I have seen that this can be passed along in with the same first parameter:

#define DETAILS 0x80000000

Like this:

insert_chem(CYCLE_JOB_MEM|DETAILS, ...);

What exactly is happening here? This code is pretty old, does C still use practices like these? If someone could provide me with some keywords and a simple explanation, then I could continue to research about this.

Sorry if this stuff is simple!

UPDATE:

These appear to be hexidecimal values, how are multiple values passed in? Are they split apart when the function is entered? Why not pass multiple parameters in the first place?

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closed as too localized by H2CO3, Hunter McMillen, WhozCraig, K-ballo, Pondlife Dec 20 '12 at 22:27

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2  
google 'hexadecimal' –  Hunter McMillen Dec 20 '12 at 21:56
    
Thank you! Hunter –  SSH This Dec 20 '12 at 21:57
    
If you're curious I've been reading this: cprogramming.com/tutorial.html The C part of course not the C++ part –  SSH This Dec 20 '12 at 22:01
1  
@SSHThis They are integers, just is a different base (base 16). –  Hunter McMillen Dec 20 '12 at 22:15
1  
Google bitflags, quite more specific than "hexadecimal". –  Matteo Italia Dec 20 '12 at 22:19

3 Answers 3

The single | is the bitwise-or operator. A Boolean OR operation is performed for each bit in the two operands. For example, the bitwise-or operation of 2 and 4 is

  0010
| 0100
------
  0110

giving the value 6. The result of CYCLE_JOB_MEM|DETAILS is 0x80020000; that's the value that gets passed as the first argument to insert_chem.

For more information, google "C bitwise operators".

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This is a nice easy one... The | in "CYCLE_JOB_MEM|DETAILS" is performing a binary OR operation on the two values. The result of OR-ing 0x10 with 0x02 would be 0x12.

In your case, it's OR-ing 0x00020000 with 0x80000000 resulting in the value of 0x80020000 being passed in as the argument.

EDIT: This sort of thing is commonly done with communications packets. Where each Bit is used to indicate a different condition or a fault (for example). This way, you can indicate 8 boolean (true/false) conditions with a single byte.

#define PACKET_ACK 0x80
#define PACKET_NAK 0x40
#define PACKET_ERR 0x20
#define PACKET_WTF 0x10
#define PACKET_LOL 0x01

etc...

If you pass in (PACKET_ACK|PACKET_WTF) the incoming argument will have a value of 0x81.

This is then often handled by (as per comment)

if ( arg & PACKET_ACK ){/*do some stuff*/}
if ( arg & PACKET_WTF ){/*do some other stuff*/}
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3  
... which can then be split back using the & operator. –  Matteo Italia Dec 20 '12 at 22:18
    
Why the down-votes? –  Darcy Dec 21 '12 at 0:14

This is a classic way to use one parameter for multiple things, often called "bitmask" or "bitflags". The key here is to understand how numbers are represented in the computer, and the operator "or" (|).

If you understand how numbers are stored in the computer, and how the or operator works, then the rest is pretty straight forward.

Why not multple parameters? Well, if it's only two, then perhaps it's not a big issue, but imagine that if you have 16 different options?

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1  
Perhaps use a word not mentioned once in this answer: bitflags (though I would have accepted bitmask as well). –  WhozCraig Dec 20 '12 at 22:17
    
+1 There you go. –  WhozCraig Dec 20 '12 at 22:21
    
Thx for answering the last part about the multiple operators, it's a good point –  SSH This Dec 20 '12 at 22:21
    
Who downvoted, and why? –  Mats Petersson Dec 21 '12 at 1:55

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