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I am trying to re-write a piece of code which was in Java to C#, and I ran into a problem, basically I am creating a method which returns a string, but the string returned from c# and java is not the same, therefore the code is fauly. One problem is the following code,

I have this Java Code:

Double localDouble1 = new Double(d1 / 100.0D);
int l = localDouble1.intValue();

And I want to re-write it in C#, I have tried

Double localDouble1 = d1 / 100.0D;
int l = Convert.ToInt32(localDouble1);

It compiles and works, but the result is different, in my particular scenario, the Java int l variable contains 0, and the c# one returns 1.

Is there a better method to achieve what I need to do, the same as in Java.

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2  
What's the value of d1? –  Jon Skeet Aug 17 '11 at 10:32
    
@Jon Skeet - I ignored d1 because it is not what is the problem, to convert.ToInt32 was to problem, btw your suggestion worked :) –  Ryan S Aug 17 '11 at 10:38
    
While I'm glad it solved the problem, it's always useful to have code we can run to see the difference - and that depends on the value of d1. –  Jon Skeet Aug 17 '11 at 10:47
    
@Jon Skeet - I understand, will make sure I put all related code next time –  Ryan S Aug 17 '11 at 10:48

2 Answers 2

up vote 9 down vote accepted

Convert.ToInt32(double) rounds to the nearest integer. intValue() doesn't - it truncates, just as a cast does (as documented).

Just cast instead:

int l = (int) localDouble1;

(Also try to avoid names like l which look like 1 :)

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i did trip on that :D –  zenwalker Aug 17 '11 at 10:35
    
@Jon Skeet - you are right about the names, I was going crazy because I was just seeing this "int i2 = ((i1 - (l * 100)) / 10);" in another line, and I was like how is this not maching, it's just integers. But I did not write this code, I am just re-writing it. Anyway thanks for your answer, going to try it out now. –  Ryan S Aug 17 '11 at 10:36
    
Doesn't this say it rounds? download.oracle.com/javase/1.3/docs/api/java/lang/… –  Hogan Aug 17 '11 at 10:36
3  
@Hogan: It's imprecise - the later documentation I linked to is better. Basically it is rounding, but rounding towards zero rather than rounding towards the nearest integer. –  Jon Skeet Aug 17 '11 at 10:38

Try this.

Double localDouble1 = d1 / 100.0D;

int l=Convert.ToInt32(Math.Floor(localDouble1));
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