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I'm a bit confused with this C# snippet. Can someone explain what does the following does?

 int i = 5;

 i = i + 6;
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1  
Why? What don't you understand? – SLaks Apr 12 '12 at 14:11
1  
What are you finding confusing? And why didn't you just compile it to check? – Oded Apr 12 '12 at 14:11
    
Homework? If so, tag appropriately. – J0HN Apr 12 '12 at 14:14
3  
the console app just closes without doing anything? – Richard Dowson Apr 12 '12 at 14:14
4  
Add Console.WriteLine(i); Console.ReadLine(); to see the output – Matt Apr 12 '12 at 14:15
up vote 4 down vote accepted

Creates an integer variable with the value of 5 named i, then adds 6 to it, resulting in:

11
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int i = 5; // sets the variable i to the value of 5. (i = 5)
i = i + 6; // sets the variable i equal to itself plus 6. (i = 5 + 6)

Thus i = 11 (5 + 6)

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int i = 5;

Creates a variable called i which stores integers, and gives it the initial value 5.

i = i + 6;

Modifies i to be the value of i + 6. Confusion here is avoided by remembering the rule that everything on the right hand side of the assignment operator = is evaluated before the assignment takes place. Thus, the previous value of i, namely 5, is used. So when run, the code becomes

i = 5 + 6;

And so therefore i has the value 11.

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5  
I note that everything on both sides of the operator is evaluated before the assignment takes place, not just everything on the right side. First the left side is evaluated, then the right side is evaluated, and then the assignment takes place. – Eric Lippert Apr 12 '12 at 14:39
 int i = 5;

Creates an integer i and sets its value to 5.

i = i + 6;

Sets the value of i to be i + 6 (11 in this case)

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= means assign and not equals

int i = 5; // Means "put 5 in variable i"
i = i + 6; // Means "get the value in i, add 6 to it and put the result back in i"
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Here's the skinny, line by line.

int i = 5;

Assigned a primitive integer variable called "i" with the value 5.

i = i + 6;

The code in this line evaluates what is on the right side of the = first, getting the value before attempting to assign it. Therefore, i + 6 becomed 5 + 6 which is 11. Then, the primitive variable "i" is assigned the newly calculated value 11. So, i = 11;

Hope that helps!

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