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#include<stdio.h>

main()
{
       int x = 5, y = 10, z = 10;    

       x = y == z;          // This computational expression causes the value of x to be 1. I fail to understand why
       printf("%d\n", x); //Why is the value of x 1 here.

}

I fail to understand the statement x = y ==z;

According to me - x = 10 since y == z. z=10 and is stated to be equivalent to y. The value of y is then assigned to x - x = y

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Sorry, I was trying different statements on my compiler to see what happens for operators '=' and '=='. I have edited and made my code more precise. –  Niteesh Jul 29 '12 at 12:03

9 Answers 9

up vote 3 down vote accepted

You assign the result of the comparison »Is y equal to z« to x, which is 1, i.e. true.

Note the different operators:

x = ... // assignment
y == z  // comparison with either 0 (false) or 1 (true) result

Let's break the program down a little bit further:

  1. You initialize x to 5 and y and z to 10.
  2. You perform a comparison (see above) of y and z without caring for the result. So that's a line that can safely be ignored. But it results in 1 since y is equal to z.
  3. You print the current values of all three variables.
  4. You perform the same comparison, this time assigning the result to x. x now has the value »Is y equal to z«, which is 1 in this case.
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Thank you for an elaborate answer to my unnecessarily complex code. I was just trying what different statements did for assignment as well as comparison operator. I just misunderstood the == operator first. –  Niteesh Jul 29 '12 at 12:10

Because of operators precedence

x = y == z;

is the same as

x = (y == z);

Now as y == z evaluates to 1, so x value is 1 after the statement.

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y == z returns 1 if they are the same and 0 if they are not and the result of this is set to x

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== is a comparison operator, so will return 1 (true) if both of the operands are equal and 0 (false) if they are not.

The statement x = y == z is equivalent to x = (y == z), because == has a higher precedence than =. Because y is equal to z, this will assign 1 to x.

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Please refer to Operator Precedence Table. == (Comparison Operator) has a higher precedence over = (Assignment Operator). So, the y == z gets executed first and then yields result of 1 as y and z are having the same values which results in x being assigned a value of 1.

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= is the assignment operator and == is the comparison operator. you compare y and z, they are equal, so the comparison returns true which is 1. this value is assigned to x.

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Thank you. I misunderstood the '==' part. Now i get it. Since, it is the comparison operator, it would return the value 1, for being true and then assign it to x. Thank you duedl0r. –  Niteesh Jul 29 '12 at 12:06

the == operator acts first. Hence it becomes x= (value of y==z); now since y and z are the same, the value of y==z is 1 that gets assigned to x.

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== has a greater precedence than =.

  1. The expression y == z is evaluated to 1.
  2. The instruction x = y == z puts 1 in x.
  3. The instruction printf("%d\n", x); prints the value of x (1).
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The precedence of == operator is higher than = operator.

y==z evaluates to 1; since both are equal.

Thisn value gets assigned to x.

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