2021年5月4日 星期二

HBLbits_Verilog Basic_Exams/2012 q2b

HBLbits_Verilog Basic_Exams/2012 q2b

 The state diagram for this question is shown again below.

Assume that a one-hot code is used with the state assignment y[5:0] = 000001(A), 000010(B), 000100(C), 001000(D), 010000(E), 100000(F)

Write a logic expression for the signal Y1, which is the input of state flip-flop y[1].

Write a logic expression for the signal Y3, which is the input of state flip-flop y[3].

(Derive the logic equations by inspection assuming a one-hot encoding. The testbench will test with non-one hot inputs to make sure you're not trying to do something more complicated).

module top_module (
    input [5:0] y,
    input w,
    output Y1,
    output Y3
);
    parameter A=6'b000001,B=6'b000010,C=6'b000100;
    parameter D=6'b001000,E=6'b010000,F=6'b100000;
    reg[5:0] current_state, next_state;

    always@(*)begin
        case(current_state)
            A: next_state = w?B:A;
            B: next_state = w?C:D;
            C: next_state = w?E:D;
            D: next_state = w?F:A;
            E: next_state = w?E:D;
            F: next_state = w?C:D;
            default: next_state = A;
        endcase
    end
  
    assign Y1 = (y[0] & w) ;
    assign Y3 = ~w & (y[1] | y[2] | y[4]| y[5]) ;   
endmodule


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