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I am just learning vhdl, and am trying to use a 3-input nand gate. The code I have is:

G => (A nand B nand C) after 3 ns;

but this does not compile.

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what is that "after 3 ns" part of that line? Bear with me, its been a couple years since I've had to do this. Also, do you have any associated error message to go with it? –  Akron Nov 2 '11 at 16:51
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@Akron: the after 3 ns is used only for simulation. It lets the simulator properly simulate the gate delay of the real hardware. You can leave it in the code when you synthesize, but the synthesizer will ignore it. –  Jerry Coffin Nov 2 '11 at 16:56
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for science, you should try running (A nand B nand C) and see if it gives the same results as not(a and b and c). I think they are the same, but it would be interesting to know for certain. –  Akron Nov 2 '11 at 17:02

2 Answers 2

up vote 7 down vote accepted

I'm not an expert on VHDL but I think you have a couple of mistakes there - it should probably be:

G <= not (A and B and C) after 3 ns;

i.e. the assignment is in the wrong direction and I'm not sure that nand commutes in the way that you need it to for 3 inputs, hence the use of and for the inputs and then not to invert the output.

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Paul is right: nand does not commute. it is illegal in VHDL to write a nand b nand c. –  Philippe Nov 3 '11 at 7:24
    
Yes, that was the problem. I was just a little mislead because the assignment only permitted the use of nand and nor gates. Thank you for your help. –  NCourtney Nov 4 '11 at 20:10

Oh I think I may know.

G <= (A nand B nand C);

You have the assignment operator sign reversed, yes?

Really delayed edit:

VHDL will not compile with the A nand B nand C syntax presented above, this gives a syntax error. Best to do what Paul suggests and pull the not out in front of the logic.

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You can't commute nand like this. You can add parentheses, e.g. G <= ((A nand B) nand C); but that still won't give the correct result. You really need to separate out the not from the and, e.g. G <= not (A and B and C); –  Paul R Nov 3 '11 at 12:19
    
Without the parentheses, wouldn't it still work exactly the way you are saying it would with the parentheses you added? –  Akron Nov 3 '11 at 16:45
    
I don't have any way to try it right now but @Philippe confirms in a comment to my answer that it is illegal –  Paul R Nov 3 '11 at 17:00
    
Oh, thats interesting. Good to know. –  Akron Nov 3 '11 at 17:03
    
Nand does not commute: ('0' nand '0') nand '1' = '0' but '0' nand ('0' nand '1') = '1' That's the reason why VHDL does not allow a nand b nand c. –  Philippe Nov 4 '11 at 10:21

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