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So I know that C++ has an Operator Precedence and that

int x = ++i + i++;

is undefined because pre++ and post++ are at the same level and thus there is no way to tell which one will get calculated first. But what I was wondering is if

int i = 1/2/3;

is undefined. The reason I ask is because there are multiple ways to look at that (1/2)/3 OR 1/(2/3). My guess is that it is a undefined behavior but I would like to confirm it.

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3  
No, it's not undefined. It's (one divided by two) divided by three. It's an ordinary math expression, in other words. –  Robert Harvey Jul 2 '12 at 15:41
    
I think your thinking is a little vague here about the first one and that bled into your thinking about the second one. The first really boils down to the order of argument evaluation for a function being undefined. That is, if you think about it as operator+(++i,i++) then it jumps right out at you. –  Chris A. Jul 2 '12 at 15:47
1  
C++ (and most other programming languages) have a defined order of precedence that is borrowed from mathematics. You do not look at an expression multiple ways; mathematical operations have a hierarchy. However you can change the order of an operation using (well placed) parenthesis. –  Thomas Anthony Jul 2 '12 at 15:55
5  
The undefinededness of int x = ++i + i++ has nothing to do with operator precedence. –  Benjamin Lindley Jul 2 '12 at 16:23
2  
Note also that the undefined behavior has nothing to do with operator precedence. It has to do with order of execution, and whether or not i can be modified multiple times between a sequence point. As it happens, pre-increment and post-increment are not at the same precedence level. –  Steve Jessop Jul 2 '12 at 16:32

5 Answers 5

up vote 3 down vote accepted

In your example the compiler is free to evaluate "1" "2" and "3" in any order it likes, and then apply the divisions left to right.

It's the same for the i++ + i++ example. It can evaluate the i++'s in any order and that's where the problem lies.

It's not that the function's precedence isn't defined, it's that the order of evaluation of its arguments is.

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If you look at the C++ operator precedence and associativity, you'll see that the division operator is Left-to-right associative, which means this will be evaluated as (1/2)/3, since:

Operators that are in the same cell (there may be several rows of operators listed in a cell) are evaluated with the same precedence, in the given direction. For example, the expression a=b=c is parsed as a=(b=c), and not as (a=b)=c because of right-to-left associativity.

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The first code snippet is undefined behaviour because variable i is being modified multiple times inbetween sequence points.

The second code snippet is defined behaviour and is equivalent to:

int i = (1 / 2) / 3;

as operator / has left-to-right associativity.

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can you explain further why first code snippet is undefined behavior? It gives the output 10 if you use i = 4. Sorry, am a novice. –  akaHuman Jul 2 '12 at 15:52
    
@shrey347, see c-faq.com/expr/seqpoints.html –  hmjd Jul 2 '12 at 15:57

It is defined, it goes from left to right:

#include <iostream>

using namespace std;

int main (int argc, char *argv[]) {
    int i = 16/2/2/2;
    cout<<i<<endl;
    return 0;
}

print "2" instead of 1 or 16.

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It might be saying that it is undefined because you have chosen an int, which is the set of whole numbers. Try a double or float which include fractions.

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