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I am trying to learn DCPU and prior to this i haven't dabbled with binary so bare with me...

;Set b to 1
SET B,1 ;00001 (1)
SHL B,1 ;00010 (2)
SHL B,1 ;00100 (4)
SHL B,1 ;01000 (8)
SHL B,1 ;10000 (16)

All i am doing is shifting to the left one so shouldn't it simply double itselff each shift... in my code you can see i have the last shift turning the registry B into 16 but when ran B ends up as 10 why is that.

I know this is simple stuff but i find it hard to wrap my head around! Thanks for the help in advance, Jacob

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Are you sure you aren't accidentally displaying the registry value in hexadecimal? :) –  BlueRaja - Danny Pflughoeft Jul 25 '12 at 19:04
    
I wish i could answer that all the code is in the original post and the register window says 0x0010 so i am pretty sure that is hex not sure but i am not sure any other way to view it –  Bevilacqua Jul 25 '12 at 19:45

1 Answer 1

the register window says 0x0010...

You're getting the correct answer, you're just viewing it in hexadecimal.

Numbers starting with 0x are the standard way of signifying a hexadecimal number; so the number 0x0010 is is really the number 1016 ("one-zero in base sixteen"), which, in decimal, is the number sixteen.

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but then shouldn't it be 0x0016 –  Bevilacqua Jul 25 '12 at 20:19
1  
@Bevilacqua - Nope, 0x16 would be 0d22 in decimal notation. 0x10 = 0d16 = 0o20 (octal) = 0b10000 (binary); they're all the same number. –  Kevin Vermeer Jul 25 '12 at 20:25
    
Thanks so much for the help! –  Bevilacqua Jul 25 '12 at 20:30

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