Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

If I have a VB.Net function that returns an Int32, but uses an unsigned int (UInt32) for calculations, etc. How can I convert a variable "MyUintVar32" with a value of say "3392918397 into a standard Int32 in VB.Net?

In c# if I just do a "return (int)(MyUintVar32);", I get -902048899, not an error.

I've tried several different methods. What is the difference in the way c# handles these conversions versus VB.Net?

share|improve this question
    
I'd argue that this IS an error, and you should be using a checked {} block, depending on why exactly you are doing this. –  Matthew Scharley Oct 16 '08 at 21:32

5 Answers 5

I realize this is an old post, but the question has not been answered. Other people my want to know:

Dim myUInt32 As UInt32 = 3392918397  
Dim myInt32 As Int32 = Convert.ToInt32(myUInt32.ToString("X"), 16)  

the reverse operation:

myUInt32 = Convert.ToUInt32(myInt32.ToString("X"), 16)

Also, one can create a union structure to easily convert between Int32 and UInt32:

Imports System.Runtime.InteropServices

<StructLayout(LayoutKind.Explicit)> _    
  Public Structure UnionInt32  
  <FieldOffset(0)> _  
  Public IntValue As Int32  
  <FieldOffset(0)> _  
  Public UIntValue As UInt32  
End Structure  

Dim MyUnionInt32 as UnionInt32  
MyUnionInt32.UIntValue = 3392918397  
Dim IntVal as Int32 = MyUnionInt32.UIntValue  '= -902048899 

the reverse operation:

MyUnionInt32.IntValue = -902048000  
Dim UIntVal as UInt32 = MyUnionInt32.UIntValue  '= 3392919296  

Cheers, TENware

share|improve this answer
    
Also, one can create a union for easily converting between Int32 and UInt32. –  user687979 Apr 4 '11 at 13:44
    
I'd completely forgotten about this union trick with structures. Fantastic way to manipulate byte elements when doing pinvoke without having to resort to the marshaller. Thanks! –  DarinH Aug 5 '11 at 20:22

3392918397 is too big to fit into a signed 32-bit integer, that's why it is coming out negative, because the most significant bit of 3392918397 is set.

1100 1010 0011 1011 1101 0011 0111 1101

If you want to maintain integers of this proportion inside a signed integer type, you'll need to use the next size up, a 64-bit signed integer.

share|improve this answer

You can't convert 3392918397 into an Int32 since that number is too large to fit in 31 bits. Why not just change the function to return a UInt32?

share|improve this answer

It's not an optimal solution, but you can use BitConverter to get a byte array from the uint and convert the byte array to int.

share|improve this answer
    
Which is an overcomplicated way of doing (int)MyUintVar32. –  MusiGenesis Oct 16 '08 at 23:40
    
Thank-you. It is a bit ugly, but this is just what I needed. I did a poor job of stating problem, this was for a third party product that uses a crc32 checksum (and I didn't wnat to get a lot of comments on that). They provided the c# code for their checksum, but the customer HAS to have vb.net –  APOD Oct 17 '08 at 13:20
    
@MusiGenesis. In the question he says that casting that way produces an errror in VB.NET –  Juanma Oct 19 '08 at 8:15
    
I like your answer as it just gave me the right food for thought. As long as -60 (int) and 4294967236 (uint) have the same bit sequence this anser is a proper way. But user687979’s anwer is more 'elegant'. Don't know why converting an int32 to uint32 won't work. –  lindinax Aug 21 '14 at 9:38

Or after doing the Uint32 work check it against MAXINT and 0.

If > MAXINT and < 0 then you're ok. If not you "overflowed" and should throw an exception.

I don't remember if MAXINT is defined. You can use: 2^31 - 1 instead.

share|improve this answer
    
You want Int32.MaxValue –  Rory May 19 '11 at 16:56

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.