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What does each expression evaluate to? Assume x is 2 before each one.

  • int num = x++ * 3;
    So this would be equivalent to (2)*3 or num=6 and x is now 3.

  • num *= x;
    num =2*2 or 4

  • (x < 2) && (x > 1)
    Becomes FALSE, because (2<2)=false and (2>1)=true so it's false.

  • (++x < 2) || (x < 1)
    (3<2) is false and then ((2+1)<1) is also false, so it's false?
    One question is in this case, is the preincrement applied to the variable before the break? Should the second x value be 3 or 2?
    I also have the same question for postincrement. Let's say I have num=x++ *x++ where initial x=2. So is this 2*2 or 2*3?

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Which "break" are you talking about? –  Felix Kling Mar 1 '12 at 1:43
    
On the fourth one. Since the preincrement is in the first bracket thing (im sure it has a special name) does it effect the value of the x in the second parenthesis comparison? –  Chris Mar 1 '12 at 1:45
    
Like if the value of x is pre/post incremented in a first half of an AND or OR statement, does it affect the value of the second half's value? –  Chris Mar 1 '12 at 1:45
5  
Why don't you try it out yourself? --> Ideone –  JRL Mar 1 '12 at 1:47
    
This question might help: Pre & post increment operator behavior in C, C++, Java, & C#. –  Felix Kling Mar 1 '12 at 1:48

5 Answers 5

up vote 1 down vote accepted

It's incremented before the "break" yes. Basically it's the first thing java does (parenthesis are still the first ones actually). So in (++x < 2) || (++x < 3) the 2nd ++x happens after the first one if it isn't true.

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I realize it adds one to the value of the x for the first half before executing the statement. Let me try to explain this a different way: var x=2;<br> (x++ < 4)&&(x==2);<br> Is the second statement true or false. I am wondering whether preincrement affects the entire line's x value.. –  Chris Mar 1 '12 at 1:48
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The 2nd statement is false. –  fbernardo Mar 1 '12 at 1:50
    
@Chris: Why don't you just run it? If the result is false, the second statement is false. If it is true, it's true. That's easy to find out. –  Felix Kling Mar 1 '12 at 1:50
    
Felix is right, nothing like testing it. –  fbernardo Mar 1 '12 at 1:52
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return (++x < 2) || (x < 1); –  fbernardo Mar 1 '12 at 1:59

int num = x++ * 3; => OK: x = 3, num = 6
num *= x; => what's the initial value of num ? if num = 2, then you are also OK.
(x < 2) && (x > 1) is false when x = 2, OK
(++x < 2) || (x < 1) is false when x = 2, OK as well

I remember I had a look at the openJDK, especially the Lower class in javac source and ++x is translated into x += 1 therefore you can see it as:
((x += 1)) < 2) which is (whithout type casting): ((x = (x + 1)) < 2). The second test will have the newer x value i.e 3 because java evaluates the conditions from left to right.

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Yes those are some very basic concepts, do yourself a favour. Download unittest framework something like jUnit would do. Then you can run all these tests quickly with a few asserts that will show you exactly what is going on. Another way to do it without much overhead is just to print it out on the console.

int num = x++ * 3;
System.out.println( "num=" + num );  // num=6
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I don't have admin rights to the comptuer I am on to install either Eclipse or the SDK. Although someone posted this cool online java runner thing I am using now. –  Chris Mar 1 '12 at 2:00
num *= x;
num =2*2 or 4

I don't know where you got that.

num *= x; is equivalent to num = num * x;. If num was 6 (from the previous statement) then it would now be 12 (assuming x is still 2).

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"Assume x is 2 before each one"... –  fbernardo Mar 1 '12 at 1:53
    
in this case, x becomes 3 after the first sum, so num will be 18. –  Jeremy D Mar 1 '12 at 1:55
    
Thats what She gave me. I think shes assuming that all of the programs are separate with the x value initialized at 2. –  Chris Mar 1 '12 at 1:59
  1. "Assume x is 2 before each one." Is that a given assumption or is it an assumption you're making? I don't believe that you can make that assumption. I believe that you have evaluate all of these statements in sequence.
  2. What is the expanded form of a *= b?
  3. What is the initial value of num when you're at the second statement?
  4. On your last statement you did correctly (assuming your initial conditions are correct) compute (2+1) < 1 because x has been incremented.

Keep track of the values of x and num after each statement and I think you'll get to the right answer.

Good luck!

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