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I'm a noob at C/C++ So excuse the simplicity of the question, but here goes

unsigned char i;
for (i=0; i<1000; ++i)
  if ((i%4) == 0)
    printf("hello\n");

how many times will the code print "hello". I say 63, but alas its not one of the options. Can someone provide an answer, but more importantly an explanation as to why

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1  
Infinite, no? Common range of char is only to 256, so always < 1000. –  edA-qa mort-ora-y Sep 20 '11 at 11:10
    
The code won't even compile, let alone print anything. There are 4 ( and 3 ) in the snippet shown. –  pmg Sep 20 '11 at 11:13
    
Read more about unsigned char: stackoverflow.com/questions/75191/what-is-an-unsigned-char –  newenglander Sep 20 '11 at 11:14

6 Answers 6

up vote 7 down vote accepted

Note: I am assuming 8 bit char types.

You will overflow when you perform ++i for i equal to 255. At that point the language standard decrees that i becomes 0, a phenomenon commonly known as wraparound.

So, you have an infinite loop, since i<1000 for all values of i.

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+1 to compensate bad downvote on a good answer. –  Luchian Grigore Sep 20 '11 at 11:17
    
-1 to compensate bad upvote on a bad answer ;-) Overflowing an unsigned char is not undefined behavior, but the answer is otherwise correct. I think you would get UB if UCHAR_MAX is equal to INT_MAX, but that would be some weird implementation. –  Steve Jessop Sep 20 '11 at 11:20
    
HA! You need to downvote about 5 times to compensate my upvote :P –  Luchian Grigore Sep 20 '11 at 11:22
    
@Steve Sorry. What is the standards definition of the behaviour? I might as well learn something. –  David Heffernan Sep 20 '11 at 11:22
1  
@David: I assume without proof that it's a hardware consideration from the dawn of time -- either some machine out there which traps on out-of-bounds signed arithmetic but not unsigned, or else to do with sign-magnitude representation (where an overflowing signed value of INT_MAX+1 can't be represented modulo 2*(INT_MAX+1)). –  Steve Jessop Sep 20 '11 at 11:43

I would urge you to conduct an experiment by running the code. If that doesn't clear things up, try printing out the values of i for which the condition is true. If you then notice any anomalies in how the value of i changes, think about possible causes of that.

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Answer is Infinite time, range of unsigned character is between 0-255(1 byte) when it goes beyond 255 it will overflow and come back to 0 that mean it will never reach to 1000 ..hence infinite loop

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Not if CHAR_BIT != 8. –  Vicky Sep 20 '11 at 11:32
    
same reason applied to accepted answer :P –  Aman Agarwal Sep 20 '11 at 12:19
    
The accepted answer explicitly stated the assumption was being made about 8-bit chars. –  Vicky Sep 20 '11 at 12:20
    
@Vicky agree :D –  Aman Agarwal Sep 20 '11 at 12:39

Here the you decleared "i" as unsigned char whose range in less than 1000 and its of size 1 byte (0-255) when it reaches the 255 again it decrements then at any condition the value will not exceeds 1000 bcoz "i" ranges from 0-255 only.

so the for loop doesn't fail n executes indefinatly

I Hope u got my point......!!!!!!!!!!

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I say 0 - it is not "hello", but "hellow" :-)

But now in real: i has the values 0, 1, 2, ... 999. These are 1000 values.

When will the string be printed? If i is 0, 4, 8, 12, ... - so once every 4 loop cycles.

--> In 1000 loop cycles, it gets printed 250 times.

This would be true without unsigned char as data type.

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Infinite time "hello" print because reason is simple, unsigned char have a limit up to 255 after that if u again increment on it ,they will become zero & again they reach to 255 then zero , so variable i never reach 1000 we call it infinite loop.

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