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I'm quite a newbie in VB.NET (and VB on the whole). So my question could sound rather odd, but still. I've stumbled upon an issue with the CInt and converting a double to an integer.

The issue is the following:

CInt(10.5) would be 10

CInt(10.51) would be 11, but I expected 10... (Got used to C# style conversion: (int)10.51 would be 10)

As pointed out here Integer.Parse VS. CInt the result is just rounded in some fashion. Nowever, all I need is to get only integer part and throw away the fractional one. How can I achieve such type of conversion in VB.NET? After a short research I assume that I can use Fix() funciton to do the trick, but is it the best choice ever?

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Worse: cint(10.5) = 10 but cint(11.5) = 12. if the integer part is even rounding of .50000000 is down, for odd it is up! –  Martin Oct 7 '11 at 18:57

2 Answers 2

up vote 7 down vote accepted

You may use Int or Fix functions but return value type of these functions is double so you have to convert it to Integer if option strict is on.

  no = Convert.ToInt32(Int(10.51))
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I like this way better that the first one. Thanks a lot, AVD! –  nbulba Oct 14 '11 at 8:20
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Combining the two answers, I think CInt(Int(10.51)) should work ;) –  Jeff Bridgman Oct 14 '13 at 16:29

I think you can try CInt(Math.Floor(10.51)) hope this helps

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