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7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire temp1, temp2; and_gate g1(temp1, p1a, p1b, p1c, p1d); and_gate g2(temp2, p2a, p2b, p2c, p2d); inverter inv1(p1y, temp1); inverter inv2(p2y, temp2); endmodule module and_ga...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire temp1, temp2; and_gate g1(temp1, p1a, p1b, p1c, p1d); and_gate g2(temp2, p2a, p2b, p2c, p2d); inverter inv1(p1y, temp1); inverter inv2(p2y, temp2); endmodule
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire p1_and, p2_and; and(p1_and, p1a, p1b, p1c, p1d); and(p2_and, p2a, p2b, p2c, p2d); assign p1y = ~p1_and; assign p2y = ~p2_and; endmodule
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire p1y, p2y; and(p1y, p1a, p1b, p1c, p1d); and(p2y, p2a, p2b, p2c, p2d); assign p1y = ~p1y; assign p2y = ~p2y; endmodule
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Your code here wire n1_out, n2_out; // 1st 4-input NAND gate nand n1(n1_out, p1a, p1b, p1c, p1d); // 2nd 4-input NAND gate nand n2(n2_out, p2a, p2b, p2c, p2d); // Assign outputs assign p1y = n1_out; ...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Your code here wire n1, n2, n3, n4; // 1st 4-input NAND gate nand #1 n1(p1a, p1b, p1c, p1d); // 2nd 4-input NAND gate nand #2 n2(p2a, p2b, p2c, p2d); // Assign outputs assign p1y = n1; assign p2y = n...
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // The 7420 chip has two 4-input NAND gates. // The first NAND gate takes inputs from p1a, p1b, p1c, and p1d and outputs to p1y. nand nand1( p1y, p1a, p1b, p1c, p1d ); // The second NAND gate ta...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // The 7420 chip has two 4-input NAND gates. wire nand1, nand2; // The first NAND gate takes inputs from p1a, p1b, p1c, and p1d and outputs to p1y. nand nand1( .A(p1a), .B(p1b), .C(p1c), .D(p1d), ...
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire temp_wire1, temp_wire2; // Define the nand4_gate_1 module module nand4_gate_1 ( input a, b, c, d, output y ); assign y = ~(a & b & c & d); endmodule // D...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire temp_wire1, temp_wire2; nand4_gate_1 nand4_gate_1_inst ( .a(p1a), .b(p1b), .c(p1c), .d(p1d), .y(temp_wire1) ); nand4_gate_2 nand4_gate_2_inst ( .a(p2a), .b(p2b), .c(p2c), ...
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire n1, n2, n3, n4, n5, n6, n7, n8, n9, n10; // 4-input NAND gate 1 assign n1 = ~(p1a & p1b & p1c & p1d); assign n2 = ~(p2a & p2b & p2c & p2d); // 4-input NAND gate 2 assign n5 = ~(n...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire n1, n2, n3, n4, n5, n6, n7, n8, n9, n10; // 4-input NAND gate 1 nand4(p1a, p1b, p1c, p1d, n1); nand4(p2a, p2b, p2c, p2d, n2); // 4-input NAND gate 2 nand4(n1, n2, n3, n4, n5); nand4(n5, n6, n7...
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Create two NAND gates with 4 inputs each. wire nand1_out; wire nand2_out; nand_gate_4 nand1 ( .a(p1a), .b(p1b), .c(p1c), .d(p1d), .out(nand1_out) ); nand_gate_4 nand2 ( ...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Create two NAND gates with 4 inputs each. wire nand1_out; wire nand2_out; nand_gate_4 nand1 ( .a(p1a), .b(p1b), .c(p1c), .d(p1d), .out(nand1_out) ); nand_gate_4 nand2 ( .a(p2a), .b(p2b),...
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); assign p1y = ~(p1a & p1b & p1c & p1d); assign p2y = ~(p2a & p2b & p2c & p2d); endmodule
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire p1y; wire p2y; assign p1y = ~(p1a & p1b & p1c & p1d); assign p2y = ~(p2a & p2b & p2c & p2d); endmodule
7420
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire nand1_out, nand2_out, nand3_out, nand4_out; nand nand1(nand1_out, p1a, p1b); nand nand2(nand2_out, p1c, p1d); nand nand3(p1y, nand1_out, nand2_out); nand nand4(nand3_out, p2a, p...
module top_module ( input p1a, p1b, p1c, p1d, output p1y, input p2a, p2b, p2c, p2d, output p2y ); nand(p1a, p1b, p1c, p1d, p1y); nand(p2a, p2b, p2c, p2d, p2y); endmodule
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire and1, and2, or1, or2; // Perform the AND operations assign and1 = p1a & p1b & p1c; assign and2 = p2a & p2b; // Perform the OR operations assign or1 = p1d | p1e | p1f; ...
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Insert your code here wire and1, and2, or1, or2; // Perform the AND operations and1 (.a(p1a), .b(p1b), .c(p1c), .y(and1)); and2 (.a(p2a), .b(p2b), .y(and2)); // Perform the OR ...
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); assign p1y = (p1a && p1b && p1c) || (p1d && p1e && p1f); assign p2y = (p2a && p2b) || (p2c && p2d); endmodule
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); always_comb begin p1y = p1a && p1b && p1c || p1d && p1e && p1f; p2y = p2a && p2b || p2c && p2d; end endmodule
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); assign p1y = (p1a & p1b & p1c) | (p1d & p1e & p1f); assign p2y = (p2a & p2b) | (p2c & p2d); endmodule
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire p1y, p2y; assign p1y = (p1a & p1b & p1c) | (p1d & p1e & p1f); assign p2y = (p2a & p2b) | (p2c & p2d); endmodule
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); assign p1y = (p1a & p1b & p1c) | (p1d & p1e & p1f); assign p2y = (p2a & p2b) | (p2c & p2d); endmodule
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire p1y, p2y; assign p1y = (p1a & p1b & p1c) | (p1d & p1e & p1f); assign p2y = (p2a & p2b) | (p2c & p2d); endmodule
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Combine the logical operations for p1y assign p1y = (p1a & p1b & p1c) | (p1d | p1e | p1f); // Combine the logical operations for p2y assign p2y = (p2a & p2b) | (p2c | p2d); ...
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Logical AND operation on the first three inputs (p1a, p1b, and p1c) assign p1y = p1a & p1b & p1c; // Logical OR operation on the last three inputs (p1d, p1e, and p1f) assign p1y = p1d | p1...
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Intermediate wires to hold results of operations wire p1y_and, p1y_or; wire p2y_and, p2y_or; // Logical AND operation on p1a, p1b, and p1c. assign p1y_and = p1a & p1b & p...
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); // Logical AND operation on p1a, p1b, and p1c. assign p1y = p1a & p1b & p1c; // Logical OR operation on p1d, p1e, and p1f. assign p1y = p1d | p1e | p1f; // Logical AND operation on p2a and p2...
7458
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); assign p1y = (p1a & p1b & p1c) | p1d | p1e | p1f; assign p2y = (p2a & p2b) | p2c | p2d; endmodule
module top_module ( input p1a, p1b, p1c, p1d, p1e, p1f, output p1y, input p2a, p2b, p2c, p2d, output p2y ); wire p1y; wire p2y; assign p1y = p1a & p1b & p1c | p1d | p1e | p1f; assign p2y = p2a & p2b | p2c | p2d; endmodule
2012_q1g
module top_module ( input [4:1] x, output reg f ); always @(*) begin case (x) 4'b0000 : f = 1'b1; 4'b0001 : f = 1'b1; 4'b0010 : f = 1'b0; 4'b0011 : f = 1'b0; 4'b0100 : f = 1'b1; 4'b0101 : f = 1'b1; 4'b0110 : f = 1'b1; 4'b0111 : f = 1'b0; 4'b1000 : f = 1'b0; 4'b1001 : f = 1'b0; 4'b1010 : ...
module top_module ( input [4:1] x, output f ); always_comb begin unique case (x) 5'b0000 : f = 1'b1; 5'b0001 : f = 1'b1; 5'b0010 : f = 1'b0; 5'b0011 : f = 1'b0; 5'b0100 : f = 1'b1; 5'b0101 : f = 1'b1; 5'b0110 : f = 1'b1; 5'b0111 : f = 1'b0; 5'b1000 : f = 1'b0; 5'b1001 : f = 1'b0; 5'b1010...
2012_q1g
module top_module ( input [4:1] x, output reg f ); always @* begin case (x) 4'b1011: f = 1'b1; 4'b1101: f = 1'b1; 4'b1110: f = 1'b1; 4'b1111: f = 1'b0; 4'b1010: f = 1'b1; 4'b1001: f = 1'b0; 4'b0011: f = 1'b0; 4'b0101: f = 1'b0; default...
module top_module ( input [4:1] x, output f ); //Your code here //Assuming the inputs are x[4], x[3], x[2], and x[1] always_comb begin casex ({x[4], x[3], x[2], x[1]}) 5'b1011: f = 1'b1; 5'b1101: f = 1'b1; 5'b1110: f = 1'b1; 5'b1111: f = 1'b0; 5'b1010: f = 1'b1; 5'b1001: f = 1'b0; 5'b0011: f = ...
2012_q1g
module top_module ( input [4:1] x, output reg f ); // Invert the input x wire [4:1] x_inv; assign x_inv = ~x; always @(*) begin case (x_inv) 4'b0100: f = 1'b1; 4'b1110: f = 1'b1; 4'b0111: f = 1'b1; 4'b1011: f = 1'b1; defau...
module top_module ( input [4:1] x, output f ); // Your code here logic [2:0] x_inv; assign x_inv = ~x; always_comb begin unique case (x_inv) 5'b01001: f = 1'b1; 5'b11110: f = 1'b1; 5'b10111: f = 1'b1; 5'b11011: f = 1'b1; default: f = 1'b0; endcase end endmodule
2012_q1g
module top_module ( input [4:1] x, output reg f ); always @* begin f = 0; case(x) 4'b0001: f = 1; 4'b0011: f = 1; 4'b1011: f = 1; 4'b1101: f = 1; endcase end endmodule
module top_module ( input [4:1] x, output f ); always_comb begin f = 0; unique case(x) 5'b10001: f = 1; 5'b10011: f = 1; 5'b11011: f = 1; 5'b11101: f = 1; endcase end endmodule
2012_q1g
module top_module ( input [4:1] x, output logic f ); always_comb begin case (x) // The output is a 1 when x is 0x0 4'd0: f = 1; // The output is a 1 when x is 0x1 4'd1: f = 1; // The output is a 0 when x is 0x2 4'd2: f = 0; // The output is a 0 when x is 0x3 4'd3: f = 0; // The output is a ...
module top_module ( input [4:1] x, output f ); // The output signal f is a one bit signal logic f; always_comb begin case (x) // The output is a 1 when x is 0x0 'd0: f = 1; // The output is a 1 when x is 0x1 'd1: f = 1; // The output is a 0 when x is 0x2 'd2: f = 0; // The output is a 0 when x ...
2012_q1g
module top_module ( input [4:1] x, output f ); logic [4:0] state_q; // Use combinational logic instead of sequential logic assign state_q = {1'b0, x}; // Extend x with a 0 at MSB to match state_q width assign f = state_q[0]; endmodule
module top_module ( input [4:1] x, output f ); logic [4:0] state_q; always_ff @(posedge clk) state_q <= x; assign f = state_q[0]; endmodule
2012_q1g
module top_module ( input [4:1] x, output f ); assign f = (x[3] && x[1]) || (x[3] && x[2]) || (x[4] && x[1]) || (x[4] && x[2]); endmodule
module top_module ( input [4:1] x, output f ); always_comb begin f = x[3] && x[1] || x[3] && x[2] || x[4] && x[1] || x[4] && x[2]; end endmodule
2012_q1g
module top_module ( input [4:1] x, output f ); assign f = x[3] | (x[1] & x[4]) | (x[1] & ~x[4]) | (~x[1] & x[4]) | (~x[1] & ~x[4]); endmodule
module top_module ( input [4:1] x, output f ); always_comb begin : f_comb f = 0; if( x[3] ) f = f | 1; if( x[1] & x[4] ) f = f | 1; if( x[1] & ~x[4] ) f = f | 1; if( ~x[1] & x[4] ) f = f | 1; if( ~x[1] & ~x[4] ) f = f | 1; end endmodule
2012_q1g
module top_module ( input [4:1] x, output f ); // Corrected the syntax for NOT operation using '~' instead of '\''. // Also added '&' for AND operation and '|' for OR operation. assign f = (~x[1] & ~x[2] & x[3] & x[4]) | (~x[1] & x[2] & ~x[3] & x[4]) | (x[1] & ~x[2] ...
module top_module ( input [4:1] x, output f ); // The function f is the sum of products of x. // f = (x[1]' x[2]' x[3] x[4]) + (x[1]' x[2] x[3]' x[4]) + (x[1] x[2]' x[3] x[4]) + (x[1] x[2] x[3]' x[4]) // To implement this function in Verilog, we can use the following code: assign f = (x[1]' x[2]' x[3] x[4]) + ...
2012_q1g
module top_module ( input [4:1] x, output f ); assign f = (x[4] && x[3] && (x[2] || x[1])) || (!x[4] && !x[3] && !x[2] && !x[1]); endmodule
module top_module ( input [4:1] x, output f ); always_comb begin f = x[4] && x[3] && (x[2] || x[1]) || !x[4] && !x[3] && !x[2] && !x[1]; end endmodule
2012_q1g
module top_module ( input [4:1] x, output f ); always_comb begin case (x) 4'b0000: f = 1; 4'b0001: f = 0; 4'b0010: f = 0; 4'b0011: f = 1; 4'b0100: f = 0; 4'b0101: f = 0; 4'b0110: f = 0; 4'b0111: f = 0; 4'b1000: f = 1; 4'b1001:...
module top_module ( input [4:1] x, output f ); logic [3:0] f_table [0:15] = '{1, 0, 0, 1, 0, 0, 0, 0, 1, 1, 1, 0, 1, 1, 0, 1}; assign f = f_table[x]; endmodule
2012_q1g
module top_module ( input [4:1] x, output logic f ); assign f = x[3] | x[4] | (x[1] & x[2]); endmodule
module top_module ( input [4:1] x, output f ); module top_module ( input [4:1] x, output logic f ); always_comb begin f = x[3] | x[4] | (x[1] & x[2]); end endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // logic for Y1 assign Y1 = (w == 1) ? y[0] : 0; // logic for Y3 assign Y3 = (w == 0) ? (y[1] || y[2] || y[4] || y[5]) : 0; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // logic for Y1 always @(posedge clk) begin if (w == 1) begin Y1 <= y[0]; end else begin Y1 <= 0; end end // logic for Y3 always @(posedge clk) begin if (w == 0) begin Y3 <= (y[1] || y[2] || y[4] || y[5]); end else begin ...
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // The first output Y1 is the logical AND of the first bit of the input vector y and the single bit input w. assign Y1 = y[0] & w; // The second output Y3 is the logical AND of the logical OR of the second, third, fifth and...
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // The first output Y1 is the logical AND of the first bit of the input vector y and the single bit input w. Y1 = y[0] & w; // The second output Y3 is the logical AND of the logical OR of the second, third, fifth and sixth bits of the ...
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = (y[1] | y[2] | y[4] | y[5]) & ~w; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); always @* begin Y1 = y[0] & w; Y3 = (y[1] | y[2] | y[4] | y[5]) & ~w; end endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); wire y0, y1, y2, y3, y4, y5; assign y0 = y[0]; assign y1 = y[1]; assign y2 = y[2]; assign y3 = y[3]; assign y4 = y[4]; assign y5 = y[5]; wire not_w; assign not_w = ~w; wire or_y2y3y5; ...
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); wire y0, y1, y2, y3, y4, y5; assign y0 = y[0]; assign y1 = y[1]; assign y2 = y[2]; assign y3 = y[3]; assign y4 = y[4]; assign y5 = y[5]; wire not_w; assign not_w = ~w; wire or_y2y3y5y6; assign or_y2y3y5y6 = y2 | y3 | y5 | ...
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] && w; assign Y3 = (y[1] || y[2] || y[4] || y[5]) && !w; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); always @ (posedge clk) begin Y1 <= y[0] && w; Y3 <= ((y[1] || y[2] || y[4] || y[5]) && !w); end endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = (y[1] | y[2] | y[4] | y[5]) & ~w; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); always @ (posedge clk) begin Y1 <= y[0] & w; Y3 <= (y[1] | y[2] | y[4] | y[5]) & ~w; end endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // Implement the logic for Y1 assign Y1 = y[0] & w; // Implement the logic for Y3 assign Y3 = ~w & (y[1] | y[2] | y[4] | y[5]); endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // Signal declarations wire Y1, Y3; // Implement the logic for Y1 assign Y1 = y[0] & w; // Implement the logic for Y3 assign Y3 = ~w & (y[1] | y[2] | y[4] | y[5]); endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = y[1] | y[2] | y[4] | (y[5] & ~w); endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); Y1 <= y[0] & w; Y3 <= y[1] | y[2] | y[4] | y[5] & ~w; endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = |y[3:1] & ~w; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = |y[1:3] & ~w; endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output reg Y1, output reg Y3 ); // Combinational logic using one-hot encoding always @(*) begin Y1 = 0; Y3 = 0; case(y) 6'b000001: Y1 = w; 6'b000010: Y3 = w; default: begin Y1 = 0; Y3 = 0; en...
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // Define the state machine using one-hot encoding always @(posedge clk) case(y) 5'b000001: Y1 = w; 5'b000010: Y3 = w; endcase endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output reg Y1, output reg Y3 ); always @(*) begin case (y) 6'b000001: begin Y1 = 0; Y3 = 0; end 6'b000010: begin Y1 = 0; Y3 = 1; end 6'b000100: begin Y1 = ...
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); always @(posedge clk) begin case (y) 000001: begin Y1 = 0; Y3 = 0; end 000010: begin Y1 = 0; Y3 = 1; end 000100: begin Y1 = 1; Y3 = 0; end 001000: begin Y1 = 1; Y3 = 1; end 010000: begin Y1 = 0; Y3 = 0; en...
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // write Verilog code for Y1 and Y3 assign Y1 = y[1] && !y[2] && !y[3] && !y[4] && !y[5]; assign Y3 = y[3] && !y[2] && !y[1] && !y[4] && !y[5]; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // write Verilog code for Y1 and Y3 Y1 = y[1] && !y[2] && !y[3] && !y[4] && !y[5]; Y3 = y[3] && !y[2] && !y[1] && !y[4] && !y[5]; endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output reg Y1, output reg Y3 ); always @* begin case (y) 6'b000001: Y1 = w; 6'b000010: Y1 = w; 6'b000100: Y1 = w; 6'b001000: Y1 = w; 6'b010000: Y1 = w; 6'b100000: Y1 = w; default: Y1 = 0; // Default ...
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); always @ (posedge clk) begin case (y) 000001: Y1 = w; 000010: Y1 = w; 000100: Y1 = w; 001000: Y1 = w; 010000: Y1 = w; 100000: Y1 = w; endcase end always @ (posedge clk) begin case (y) 000001: Y3 = w; 000010: Y3 = w; ...
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // Y1 assign Y1 = (y[0] == 1) ? 1 : (y[1] == 1) ? 0 : (y[2] == 1) ? 1 : (y[3] == 1) ? 0 : (y[4] == 1) ? 1 : 0; // Y3 assign Y3 = (y[0] == 1) ? 1 : (y[1] == 1) ? 0 : ...
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); // Y1 always @ (posedge w) begin if (y[0] == 1) Y1 = 1; else if (y[1] == 1) Y1 = 0; else if (y[2] == 1) Y1 = 1; else if (y[3] == 1) Y1 = 0; else if (y[4] == 1) Y1 = 1; else Y1 = 0; end // Y3 always @ (posedge w) begin...
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = |y[4:1] & ~w; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = |y[1:4] & ~w; endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[0] & w; assign Y3 = (y[1] | y[2] | y[4] | y[5]) & ~w; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); wire Y1; wire Y3; assign Y1 = y[0] & w; assign Y3 = (y[1] | y[2] | y[4] | y[5]) & ~w; endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[2] | y[4] | (w & y[5]); // Y1 is the OR combination of y[2], y[4], and (w AND y[5]) assign Y3 = (y[2] & y[3]) | (y[1] & y[5]); // Y3 is the OR combination of (y[2] AND y[3]) and (y[1] AND y[5]) endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); wire Y1; wire Y3; assign Y1 = y[2] | y[4] | w & y[5]; // Y1 is the OR combination of y[2], y[4], and (w AND y[5]) assign Y3 = y[2] & y[3] | y[1] & y[5]; // Y3 is the OR combination of (y[2] AND y[3]) and (y[1] AND y[5]) endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[4] | y[5]; assign Y3 = y[2] | y[3]; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); wire Y1; wire Y3; assign Y1 = y[4] | y[5]; assign Y3 = y[2] | y[3]; endmodule
2012_q2b
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); assign Y1 = y[1]; assign Y3 = y[3]; endmodule
module top_module ( input [5:0] y, input w, output Y1, output Y3 ); wire Y1; wire Y3; assign Y1 = y[1]; assign Y3 = y[3]; endmodule
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; // A end else begin case (state) 3'b000: state <= w ? 3'b001 : 3'b000; // A to B or A to A 3'b...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; // A end else begin case (state) 3'b000: state <= w ? 3'b001 : 3'b000; // A to B or A to A...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; // State A end else begin case (state) 3'b000: state <= w ? 3'b001 : 3'b000; // A -> B if w=1, els...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; // State A end else begin case (state) 3'b000: state <= w ? 3'b001 : 3'b000; // A -> B if w...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Declare z as a reg type ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; // State A end else begin case (state) 3'b000: state <= w ? 3'b00...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; // State A end else begin case (state) 3'b000: state <= w ? 3'b001 : 3'b000; // A -> B if w...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; // Combinational logic block always @(*) begin case (w) 1'b0: begin case (state) 3'b000: state = 3'b000; // A to A 3'b001: state = 3'b010; // B to D 3'b010: state = 3'b...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; // Combinational logic block always @(*) begin case (w) 1'b0: begin case (state) 3'b000: state = 3'b000; // A to A 3'b001: state = 3'b010; // B to D 3'b010: stat...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); // Declare a 3-bit register called state that holds the current state reg [2:0] state; // Set the initial state to A initial state = 3'b000; // Use a case statement to determine the ne...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); // Declare a 3-bit register called state that holds the current state reg [2:0] state; // Set the initial state to A initial state = 3'b000; // Use a case statement to determine the next state based o...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Change from wire to reg ); // Internal signals reg [1:0] state; reg [1:0] next_state; reg w_delayed; // State Table always @(*) begin case (state) 2'b00: nex...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); // Internal signals reg [1:0] state; reg [1:0] next_state; reg w_delayed; // State Table always @(*) begin case (state) 2'b00: next_state = w ? 2'b01 : 2'b00; // A -> B 2'b01: next_state = w...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Change from wire to reg ); // Declare signals reg [1:0] state, next_state; // State table always @(posedge clk or posedge reset) begin if (reset) begin state <= 2'b00; // State A end e...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); // Declare signals reg [1:0] state, next_state; // State table always @(posedge clk or posedge reset) begin if (reset) begin state <= 2'b00; // State A end else begin state <= next_state;...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); // Declare the three-bit state register reg [2:0] state; // Define the states of the state machine localparam integer A = 3'b000; localparam integer B = 3'b001; localparam integer C = 3'b010; localparam ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); // Declare the three-bit state register reg [2:0] state; // Define the states of the state machine const integer A = 2'b00; const integer B = 2'b01; const integer C = 2'b10; const integer D = 2'b11; cons...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); parameter A = 2'b00, B = 2'b01, C = 2'b10, D = 2'b11; reg [1:0] state, next_state; always @ (posedge clk) begin if (reset) begin state <= A; end else begin ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); parameter A = 2'b00, B = 2'b01, C = 2'b10, D = 2'b11; reg [1:0] state; wire next_state; always @ (posedge clk) begin if (reset) begin state <= A; end else begin state <= next_state; end en...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; end else begin case (state) 3'b000: begin if (w) state ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) 3'b000: begin if (w) state <= 3'b001; else st...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Declare z as a reg ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) 3'b000: begin if (w) state <= 3'b001; else st...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; end else begin case (state) 3'b000: begin if (w) state ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) 3'b000: begin if (w) state <= 3'b001; else st...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; end else begin case (state) 3'b000: begin // State A if...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) 3'b000: begin // State A if (w) begin state ...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Declare z as a reg in the module header ); reg [2:0] state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) 3'b000: beg...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; z <= 0; end else begin case (state) 3'b000: begin if (w) state <= 3'b001; else st...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Declare z as a reg ); reg [2:0] state, next_state; parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; parameter E = 3'b100; parameter F = 3'b101; // State tran...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state, next_state; parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; parameter E = 3'b100; parameter F = 3'b101; // State transition table always @(posedg...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z ); reg [2:0] state, next_state; // State codes parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; parameter E = 3'b100; parameter F = 3'b101; // Sequential logic to...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state, next_state; // State codes parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; parameter E = 3'b100; parameter F = 3'b101; // Sequential logic to com...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state, next_state; // Increase the size to 3 bits to accommodate more states parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; parameter E = 3'b100; parame...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [1:0] state, next_state; parameter A = 2'b00; parameter B = 2'b01; parameter C = 2'b10; parameter D = 2'b11; always @(posedge clk or posedge reset) begin if(reset == 1'b1) state <= A...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z ); reg [2:0] state; // State table always @(*) begin case (state) 0: begin // A if (w) begin state <= 1; // B end else begin state <= 0; // A end end 1: begin // B if (w) begi...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state; reg z; // State table always @(state, w) begin case (state) 0: begin // A if (w) begin state <= 1; // B end else begin state <= 0; // A end end 1: begin // B i...
2012_q2fsm
`timescale 1ns / 1ps module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Output should be declared as reg for assignment in always block ); parameter A = 2'b00; parameter B = 2'b01; parameter C = 2'b10; parameter D = 2'b11; parameter E = 2'b10; // ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); `timescale 1ns / 1ps parameter A = 2'b00; parameter B = 2'b01; parameter C = 2'b10; parameter D = 2'b11; module top_module ( input clk, input reset, input w, output z ); reg [1:0] state, next_state; alway...
2012_q2fsm
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z // Declare z as reg because it is assigned in an always block ); reg [2:0] state, next_state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000;...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); `timescale 1ns / 1ps module top_module ( input clk, input reset, input w, output z ); reg [2:0] state, next_state; always @(posedge clk or posedge reset) begin if (reset) begin state <= 3'b000; end else b...
2012_q2fsm
`timescale 1ns / 1ps module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); reg [2:0] state, next_state; parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; parameter E = 3'b100; parameter F = 3...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); `timescale 1ns / 1ps module top_module ( input clk, input reset, input w, output z ); reg [2:0] state, next_state; parameter A = 3'b000; parameter B = 3'b001; parameter C = 3'b010; parameter D = 3'b011; p...
2012_q2fsm
`timescale 1ns / 1ps module top_module ( input clk, input reset, // Synchronous active-high reset input w, output reg z ); parameter A = 2'b00; parameter B = 2'b01; parameter C = 2'b10; parameter D = 2'b11; parameter E = 2'b10; // Corrected state encoding parameter F = 2'b11; ...
module top_module ( input clk, input reset, // Synchronous active-high reset input w, output z ); `timescale 1ns / 1ps parameter A = 2'b00; parameter B = 2'b01; parameter C = 2'b10; parameter D = 2'b11; module top_module ( input clk, input reset, input w, output z ); reg [1:0] state; reg [1:0] next_st...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); // Define state encoding localparam A = 3'b000, B = 3'b001, C = 3'b010, D = 3'b100; reg [2:0] state; reg [2:0] next; always @ (posedge c...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [3:1] state; reg [3:1] next; always @ (posedge clk) begin if (resetn == 0) begin state <= A; end else begin state <= next; end end always @ (posed...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); // Define states localparam A = 3'b001; localparam B = 3'b010; localparam C = 3'b011; localparam D = 3'b100; reg [3:0] state; reg [3:0] next; always @ (posedge ...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [3:1] state; reg [3:1] next; always @ (posedge clk) begin if (resetn) state <= A; else state <= next; end always @ (state, r) begin case (state) A: b...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); // State encoding localparam A = 3'b000, B = 3'b001, C = 3'b010, D = 3'b011; reg [2:0] state, next_state; always @(posedge clk) begin ...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state, next_state; always @(posedge clk) begin if (resetn) begin state <= 0; end else begin state <= next_state; end end always @* begin ca...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); reg [2:0] state; reg [2:0] next_state; always @(posedge clk) begin if(resetn == 1'b0) state <= 3'b000; else s...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; reg [2:0] next_state; always @(posedge clk) begin if(resetn == 1'b0) state <= 3'b000; else state <= next_state; end always @(state, r...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); reg [1:0] state; reg [1:0] next; always @(posedge clk) begin if (!resetn) begin state <= 0; end else begin st...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [1:0] state; reg [1:0] next; always @(posedge clk) begin if (resetn) begin state <= 0; end else begin state <= next; end end always @* begin c...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); // Define state encoding typedef enum reg [1:0] {A = 2'b00, B = 2'b01, C = 2'b10, D = 2'b11} state_t; state_t state, next; // State transition lo...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [3:1] state; reg [3:1] next; always @(posedge clk) if (resetn) state <= A; else state <= next; always @(state, r) case (state) A: next <= r[1] ?...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; reg [2:0] next_state; // Define state names localparam A = 3'b000; localparam B = 3'b001; localparam C = 3'b010; localpa...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; reg [2:0] next_state; always @(posedge clk) if (resetn) state <= 0; else state <= next_state; always @* case (state) A: next_state = (r[1]...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [1:0] state; reg [1:0] next; always @(posedge clk) begin if (resetn == 0) begin state <= 0; end else begin state <= next; end end always @(*) begin case...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [1:0] state; reg [1:0] next; always @(posedge clk) begin if (resetn == 0) begin state <= 0; end else begin state <= next; end end always @(posedge clk) b...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); // State encoding typedef enum logic [1:0] { A = 2'b00, B = 2'b01, C = 2'b10, D = 2'b11 } state_t; state_t state, ne...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); always @(posedge clk) if (!resetn) state <= A; else state <= next_state; always @(state, r) case (state) A: if (r[1]) next_state = B; else if (r[2...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); // Declare the internal registers reg [2:1] state; reg [2:1] next_state; // Implement the always block always @(posedge clk) begin if (resetn == 1'b0) begin ...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); // Declare the internal registers reg [2:1] state; reg [2:1] next_state; // Implement the always block always @(posedge clk) begin if (resetn == 1'b0) begin state...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; reg [2:0] next_state; // Define states using local parameters localparam A = 3'b000, B = 3'b001, C = 3...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; always @(posedge clk or negedge resetn) begin if (~resetn) begin state <= A; end else begin state <= next_state; end end reg [2:0] next_st...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [1:0] state; // Define state encoding localparam A = 2'b00; localparam B = 2'b01; localparam C = 2'b10; localparam D = 2'b11; always...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [1:0] state; always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= A; end else begin case (state) A: if (r[1]) begin state ...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 0; end else begin case (state) 0: begin if (r[1]) begin s...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); reg [2:0] state; always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 0; end else begin case (state) 0: begin if (r[1]) begin s...
2013_q2afsm
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output reg [3:1] g // grant ); // Define the states typedef enum logic [1:0] {A, B, C, D} state_t; // Define the registers state_t state, next; // State register always_ff @(posedge clk or n...
module top_module ( input clk, input resetn, // active-low synchronous reset input [3:1] r, // request output [3:1] g // grant ); // Define the states typedef enum logic [1:0] {A, B, C, D} state_t; // Define the registers state_t state, next; // State register always_ff @(posedge clk or negedg...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); // Internal signals reg [2:0] current_state; // State definitions localparam A = 3'b000; localparam B = 3'b001; localparam S0 = 3'b010; ...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); // Internal signals reg [2:0] current_state; reg f, g; // State definitions localparam A = 3'b000; localparam B = 3'b001; localparam S0 = 3'b010; localparam S1 = 3'b0...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); // Declare all the registers and wires you need reg [2:0] current_state; reg f_reg, g_reg; // Define the states localparam A = 3'b000, B = 3'b001, S0 = 3'b010, S1 = 3'b011, S...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); // Declare all the registers and wires you need reg [2:0] current_state; reg f_reg, g_reg; // Define the states localparam A = 3'b000, B = 3'b001, S0 = 3'b010, S1 = 3'b011, S...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [3:0] state, next_state; // Increased bit width to 4 bits to accommodate all states always @(posedge clk or negedge resetn) begin if (!resetn) begin ...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [1:0] state, next_state; always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 2'b00; // A state end else begin state <= next_state; end...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [2:0] state, next_state; // State register always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 3'b000; // A state end else begin stat...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [2:0] state, next_state; reg f, g; // State register always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 3'b000; // A state end else begin st...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); // Define the states typedef enum { A, B, S0, S1, S10, G1, G2, P0, P1 } state_type; // Register to hold the current state state_type state; always @(posedge...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); // Define the states typedef enum { A, B, S0, S1, S10, G1, G2, P0, P1 } state_type; // Register to hold the current state state_type state; always @(posedge clk) be...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); // Declare your internal signals here reg [2:0] state; // State encoding localparam S0 = 3'b000; localparam S1 = 3'b001; localparam S10 = 3'b010; localparam G1 = 3'b0...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); // Declare your internal signals here reg f, g; // Write your state machine code here always @ (posedge clk) begin if (resetn) begin case (state) S0: begin if (x) ...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); // Declare state as a register reg [3:0] state; // State encoding localparam A = 4'b0000, B = 4'b0001, S0 = 4'b001...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); always @(posedge clk) begin if (!resetn) begin state <= A; f <= 0; g <= 0; end else begin case (state) A: begin state <= B; end B: begin state <= S...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [3:0] state, next_state; // State encoding parameter A = 4'b0000, B = 4'b0001, S0 = 4'b0010, S1 = 4'b0011, S10 = 4'b0100, G1 = 4'b0101, G2 = 4'b0110, P0 = 4'b0111...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [3:0] state, next_state; wire f, g; // State encoding parameter A = 4'b0000, B = 4'b0001, S0 = 4'b0010, S1 = 4'b0011, S10 = 4'b0100, G1 = 4'b0101, G2 = 4'b0110, P0 = 4'b0...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); // State encoding typedef enum reg [3:0] { A = 4'b0000, B = 4'b0001, S0 = 4'b0010, S1 = 4'b0011, S10 = 4'b0100, ...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg state; reg state_n; always @(posedge clk) begin if (resetn) state <= A; else state <= state_n; end always @(state) begin case (state) A: begin ...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, // Declare f as reg output reg g // Declare g as reg ); reg [1:0] state; reg [1:0] next_state; reg [1:0] x_buffer; reg g_hold; // State encoding localparam A = 2'b00; localpar...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [1:0] state; reg [1:0] next_state; reg [1:0] x_buffer; reg g_hold; // State encoding localparam A = 2'b00; localparam B = 2'b01; localparam C = 2'b10; // Next state logi...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg a, b, c, d, e, f1, f2, g1, g2, p0, p1, s0, s1, s10; always @(posedge clk) begin if (!resetn) begin a <= 0; b <= 0; c <= 0; d <...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); wire a, b, c, d, e, f1, f2, g1, g2, p0, p1, s0, s1, s10; assign a = 0; assign b = 0; assign c = 0; assign d = 0; assign e = 0; assign f1 = 0; assign f2 = 0; assign g1 = 0; as...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); always @(posedge clk or negedge resetn) begin if (!resetn) begin g <= 0; // Initialize g to 0 on reset end else if (y == 1) begin g <= 1; ...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); always @(posedge clk or negedge resetn) if (!resetn) // do nothing else if (y == 1) g <= 1; else if (y == 0) g <= 0; always @(posedge clk or negedge resetn) if (!re...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [1:0] state; parameter STATE_A = 2'b00, STATE_B = 2'b01, STATE_C = 2'b10; always @ (posedge clk) begin if (!resetn) begin f <= 0;...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg f; reg g; always @ (posedge clk) begin if (!resetn) begin f <= 0; g <= 0; end else begin case (state) STATE_A: begin if (x == 1) begin f <= ...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [1:0] state, next_state; always @(posedge clk or negedge resetn) begin if (~resetn) begin state <= 2'b00; // state A end else begin state <= next_state; en...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [1:0] state, next_state; always @(posedge clk or negedge resetn) begin if (~resetn) begin state <= 2'b00; // state A else if (next_state != state) state <= next_sta...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [1:0] state, next_state; always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 2'b00; // state A end else begin state ...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [1:0] state, next_state; always @(posedge clk or negedge resetn) begin if (!resetn) begin state <= 2'b00; // state A end else begin state <= next_...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output reg f, output reg g ); reg [2:0] state; // Changed to 3 bits to accommodate states 0 to 6 always @(posedge clk or negedge resetn) begin if (!resetn) state <= 3'b000; // state A else beg...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); reg [1:0] state; reg f; reg g; always @(posedge clk or negedge resetn) begin if (!resetn) state <= 2'b0; // state A else begin case (state) 2'b0: begin // state A ...
2013_q2bfsm
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); parameter A = 4'b0000; parameter B = 4'b0001; parameter S0 = 4'b0010; parameter S1 = 4'b0011; parameter S10 = 4'b0100; parameter G1 = 4'b0101; para...
module top_module ( input clk, input resetn, // active-low synchronous reset input x, input y, output f, output g ); f is assigned to 1 when the state is B. g is assigned to 1 when the state is G1 or G2 or P1. module top_module ( input clk, input resetn, input x, input y, output f, output g ...
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