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I was running the following code

int x=4;
int y=3;
double z=1.5;
z=++x/y*(x-- +2);
int t=(++x/y);
    System.out.println(z); //7

wondering how does it produce 7 when

  1. (x-- +2) =6
  2. ++x/y=1.6666

    3=6*1.6666=10

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2 Answers 2

up vote 5 down vote accepted
z=++x/y*(x-- +2);

is evaluated as:

z = ++x / y * (x-- + 2);  // Substitute value of ++x, y and x--
  = 5 / 3 * (5 + 2);      // After this point, x will be 4. Evaluate parenthesized expr
  = 5 / 3 * 7   // Now, left-to-right evaluation follows
  = 1 * 7       // 5 / 3 due to integer division will give you 1, and not 1.66

and:

t = ++x / y;   // x is 4 here
  = 5 / 3
  = 1
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(++x / y) how this get executed first, as it is not in the round brackets.. () are supposed to be evaluted first –  user1765876 Jan 18 '14 at 10:17
    
@user1765876 Even though (x-- + 2) part will be evaluated first, that will not make any difference to the result. As the value for ++x and x-- will be substituted before evaluation. –  Rohit Jain Jan 18 '14 at 10:18
    
@user1765876 Removed the parenthesis. Now it should be clear. –  Rohit Jain Jan 18 '14 at 10:19
    
++ or -- when comes before (leftside), it is incremented or decremented and then the immediate expression is evaluated. ++ or -- when comes after(right side) the variable, the immediate expression is evaluated first and then the new value will be assigned to the variable. –  sivatumma Jan 18 '14 at 10:19
1  
@user1765876 The expression in the parenthesis will be evaluated first. But before evaluation, the value for all the variable are substituted. So, for y / x++ * (x-- + 1), value of x-- will be evalated after the value of x++. And then (x-- + 1) will be evaluated as an expression before y / x++. –  Rohit Jain Jan 18 '14 at 10:25

The code is evaluated as:

z=((++x)/y)*(x-- +2);

x and y are both int, so the calculation results of each step will be cast into int type. Which means 5/3=1.

In the end, the result is assigned to a double variable, so 7 will be cast to 7.0.

Modify the code to:

z=1.0 * ((++x)/y)*(x-- +2);

You'll get a decimal result.

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