Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In the following program

#include<stdio.h>   
int main()    
{    
    char i=0;    
    for(i<=5 && i>=-1;++i;i>0)   
        printf("%d\t",i);
    return 0;    
}    

'i' got printed from 1 to 127 then from -128 to -1.

Why is this the case?

share|improve this question

7 Answers 7

That has got to be the most malformed for loop I have ever seen in my life. For loops are formatted as follows

for ( initalization; condition; update )

at the beginning of a for loop, initialization occurs. This is usually something like i = 0. At the top of each loop, condition (normally something like i < 5)is evaluated in order to see if the loop should continue, and should the loop continue, update is executed (again, normally something like ++i), and the loop executes once more.

Whats happening here, is the loop is using ++i as the condition, so it will only terminate when ++i evaluates to a 0 value, so you start at 1 and increment until the char i overflows from 128 to -127, and then continues incrementing until it reaches -1, at which point ++i evaluates to 0 and the loop terminates

EDIT

So according to your code, i<=5 && i>=-1 is performed at the very beginning of the first iteration of the loop (this accomplishes absolutely nothing), then ++i is evaluated for boolean state (which being 0 to start, and using a pre-increment, the evaluation is 1 and therefore, not 0 so the boolean passes), and then the update section of i>0 executes, which again, does nothing.

EDIT2

If your question was really about why it goes 1,2....128,-127,-126....-1 then Joachim provided a very good explanation of that behavior

share|improve this answer
    
Took time to explain....nice 1 –  Mr. Alien Feb 28 '13 at 14:28
    
Hah, didn't even notice that. Yeah, it's a pretty bad loop. –  Williham Totland Feb 28 '13 at 14:30
    
@WillihamTotland is this some condition? i<=5 && i>=-1 –  Mr. Alien Feb 28 '13 at 14:31
3  
@Mr.Alien: The loop just straight up makes no sense. –  Williham Totland Feb 28 '13 at 14:32
    
@WillihamTotland though it works hehehe –  Mr. Alien Feb 28 '13 at 14:32

Good news: In your implementation, char is signed!

Also, what happens is that the value of i overflows from 127 to -128, because 127 is the biggest positive value that fits in a signed char.

Edit: Actually, I'm not sure about the signedness of char in your implementation, but the loop is utterly broken:

It should probably be

for (i = 0; i <= 5; i++)

but that's just a guess. It's hard to interpret.

share|improve this answer

A char is a signed 8-bit integer in your compiler. It can represent values from -128 to +127. The loop end condition is ++i, and in C all non-zero values are considered to be true, so it will loop until ++i is zero which will happen when i is -1.

The reason that if goes from 127 to -128 is because how signed integers work in computer. The binary bits for 127 is 01111111, and the bit pattern for -128 is 1000000. Adding one to 01111111 will result in 10000000.

All in all, your for loop makes no real sense. It's syntactically correct, but doesn't make any sense. For an explanation of how for-loops works see the answer by Dan F.

share|improve this answer

you might want to read about Two's complement representation

share|improve this answer
    
Good reading for anyone though. –  Mikhail Kalashnikov Feb 28 '13 at 14:32

The program interprets "i" at print time as an 8-bit signed integer, meaning one bit for sign, seven bits for data. That gives you a range of -128 to 127 for valid values.

The "for" loop preincrements i before the printf, hence giving it a first-pass value of 1, and the increment continues until i+1=128 - which flips the sign bit in a signed integer, then runs the loop until ++i causes i to be 0.

share|improve this answer

As an aside, that for loop is horrible. You know it's supposed to be for(intialisation; end condition; increment), right?

Anyway. i is initialised to 0; the first go round the for loop is testing the end condition (++i) which has a pre-increment. So i gets incremented to 1, the loop is run to print 1.

Now repeat. Each loop prints a one higher value for i because the end-condition test is pre-incrementing i.

Eventually i reaches 127; it then increments to 128, but you are printing it as "%d" which is expecting a signed integer, so using two's complement this is interpreted as -128.

The increment then continues all the way to 255 (printed as -1). The next pre-increment results in overflow so i becomes 0 again, at which point the "end condition test" evaluates to false and the loop stops.

share|improve this answer

This programs has quite strange used for loop. you initialize your loop variables by checking them "i<=5 && i>=-1" - no assignment is done. during loop you evaluate the condition "++i" which is true until i = -1; and in the incrementation step you just check if the number is greater than zero.

You in fact do:

for(i = 1; i != 0; i++)
{
    printf("%d\t",i);
}

with overflow above 127 you get numbers from 1 to 127 and from -128 to -1.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.