0

The following two lines of code are not returning the same value. Any reason for that?

int i;

i = 1;
i = i + i++; //Returns 2, expecting 3

And

i = 1;
i = i++ + i; //Returns 3

Semantically, this should be the same a + b = b + a right?

The same with decreasing i:

i = 1;
i = i - i--; //Returns 0, expecting 1

And

i = 1;
i = i-- - i; //Returns 1, expecting -1

What confuses me even more is the usage of post increment operators:

i = 1;
i = i + ++i; //Returns 3

And

i = 1;
i = ++i + i; //Returns 4, expecting 3

Same again with decreasing operator:

i = 1;
i = i - --i; //Returns 1

And

i = 1;
i = --i - i; //Returns 0, expecting -1

Last Question:

How are these two lines interpreted by the compiler?

i = i+++i; // is it i + ++i or i++ + i?
i = i---i; // is it i - --i or i-- - i?
2
i = i + i++; //Returns 2, expecting 3

Know as post increment. Value will be used first and then incremented. It is equivalent to

i = i + i;
i = i+1;

and this is pre-increment. Value will be incremented first and then used.

i = i++ + i; //Returns 3

is equivalent to

i = i+1;
i = i + i;

i = i+++i; // is it i + ++i or i++ + i?

is interpretted as

i = i + 1; i = i + i;

and this

i = i---i; // is it i - --i or i-- - i?

is interpretted as

i= i-1;
i = i-i; 
2

There is a difference between pre-increment (++i) and post-increment (i++). The difference is:

Pre-increment will add the value before using the result. Post-increment will use the reslt.. then add the value. So, your first example:

int i;

i = 1;
i = i + i++; // First use equals 1, second use equals one. After this line though
             // i equals 2, because of your use of post-increment.

Likewise, your second example:

i = 1;
i = i++ + i; // First use is 1. After the first use.. it is incremented..
             // The second use it is 2. Therefore, 1 + 2 == 3.

As for your last question... why not put it into a console application and try it yourself?

0

I think the best way to try to understand this, is look at what the compiler makes of this.

See here for an overview of this for the case

x=i-- - --i;

https://stackoverflow.com/a/8573429/959028

best regards

0

Precedence of increament or decreament operator is always higher than arithmetic operators like + - * /
Refer http://msdn.microsoft.com/en-us/library/aa691323(v=vs.71).aspx for details. Also the value of postfixed increament or decreament operator is effective only after the current statement. For eg:

i = i + i++ = 1 + 1++ = 1 + 1 = 2; // value of i is effective after increament is done
i = i++ + i = 1++ + 2 = 3; //Next value of i contains updated value i.e. 2
i = i + ++i = 1 + ++1 = 1 + 2 = 3; //Next value of i contains updated value i.e. 2
i = ++i + i = ++1 + i = 2 + 2; //Both value of i contains updated value i.e. 2 because of prefixed operator
i = i+++i = i++ + i;
i = i---i = i-- - i;

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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