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I want to know which of the following constructs is preferred and faster.

unsigned char str1 = (unsigned char)str2 vs unsigned char str1 = str2 & 0xff
or
unsigned value1 = (unsigned)value2 vs unsigned value1 = value2 & 0xffffffff

Questions:
- by converting from to:
- Is 1st faster than 2nd (0xff or 0xffffffff)?
- Which do you prefer to use? and which is better to use?
- Can (unsigned char)str can be changed as str & 0xff?

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closed as not a real question by Oliver Charlesworth, Hasturkun, Loki Astari, Botz3000, abatishchev May 16 '12 at 14:04

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

3  
What are you trying to accomplish? –  Mysticial May 15 '12 at 14:38
    
What? These aren't doing the same thing... –  Oliver Charlesworth May 15 '12 at 14:38
1  
Do you mean str & 0xff ? I'm not sure why you're asking this but your answer depends very much on what you're trying to acheive. Could you clarify the context? –  Component 10 May 15 '12 at 14:40
    
I edited question should be clear now –  user1396367 May 15 '12 at 15:39

2 Answers 2

up vote 4 down vote accepted

No two of those four code snippets do the same thing. Any speed difference between them is both irrelevant (since code that runs faster but does the wrong thing is worthless) and negligible (they're all pretty fast).

Edit for updated question:

Assuming that CHAR_BIT == 8, and that str is one of: an unsigned integer; a signed integer with positive value; a signed integer with 2's complement representation; then (unsigned char) str gives the same numeric result as str & 0xff, but with a different type. Whichever one you write, the compiler will pick a fast way to compute that result, quite possibly the same way in both cases. So you may as well just write unsigned char str1 = str2;, and add the cast to (unsigned char) if needed to suppress any compiler warning you get for an implicit conversion that loses information.

On most implementations, unsigned is a 32 bit type, in which case (unsigned)value2 produces different values from value2 & 0xffff for value2 greater than 65535. Leaving that aside (so assuming you're on a 16 bit implementation), it's the same deal as with unsigned char except that provided value2 also has type unsigned then the results have the same type as well as the same value.

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yes you are absolutely right, but it should be 0xffffffff not 0xffff my mistake, sorry about that. so by converting value from to I'll get same value and does not matter if I use (unsigned)value or value & 0xffffffff.If 0xff is equal 255 what value of haxdecimal will be for (-128-127)? –  user1396367 May 16 '12 at 0:37
    
@Make: I'm not sure I understand the question. -128-127 is -255. Obviously this cannot be represented in any unsigned type, since it is negative. It cannot be represented in a signed type in any less than 9 bits. Its 16-bit 2's complement representation is 0xFF01, but be careful there, because in C the literal 0xFF01 doesn't represent -255, it represents 65281. Rule of thumb, don't try to use hex literals for negative values. –  Steve Jessop May 17 '12 at 9:02
    
Thanks Steve. (-128,+127) signed byte –  user1396367 May 17 '12 at 23:15

The effect of the casts highly depends on the type of str and value.
E.g. if str is unsigned char, casting it to unsigned char does nothing, for good or bad. If it's int it changes things, and if a pointer - it's another matter completely.

Regarding performance - it's the last thing you should worry about. The difference, if any, would be tiny. Spend your optimization efforts where it matters.

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