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I have google it but still understand about it. If I write the following code:

module POLY(CLK,RESET_n,IN_VALID,IN,OUT_VALID,OUT);

input         CLK,RESET_n,IN_VALID;
input  [ 3:0] IN;
output        OUT_VALID;
output [12:0] OUT;

and then use it .

always @(*)
begin
.........
end

1. Does it mean that the input CLK,RESET_n,IN_VALID;input [ 3:0] IN; will trigger the always block or only the input that has used in the block will trigger the always block?

2. But it doesn't write posedge or negedge, so the two both edge will trigger the always block or not?

Thx in advance.

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1  
This is completely specified in the IEEE Std for Verilog. – toolic Mar 16 '13 at 14:41
up vote 6 down vote accepted

The (*) means "build the sensitivity list for me".

For example, if you had a statement a = b + c; then you'd want a to change every time either b or c changes. In other words, a is "sensitive" to b & c. So to set this up:

always @( b or c ) begin
    a = b + c;
end

But imagine you had a large always block that was sensitive to loads of signals. Writing the sensitivity list would take ages. In fact, if you accidentally leave a signal out, the behaviour might change too! So (*) is a shorthand to solve these problems.

share|improve this answer
    
So in my case is it that if any one of all input changed , no matter it is used in the blocks or not. The blocks will be triggered? – Liang-Yu Pan Mar 16 '13 at 14:21
    
Just if is is used in the block. – Marty Mar 16 '13 at 14:37

It will behave like combinational logic.

share|improve this answer
    
No, it can also be used for a latch. It is usually intended for combinational logic, it is not guaranteed. – Greg Apr 25 '14 at 17:32

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