`timescale 1ns / 1ps ////////////////////////////////////////////////////////////////////////////////// // Company: // Engineer: // // Create Date: 08/08/2023 10:01:25 PM // Design Name: // Module Name: fibonacci_bram // Project Name: // Target Devices: // Tool Versions: // Description: // // Dependencies: // // Revision: // Revision 0.01 - File Created // Additional Comments: // ////////////////////////////////////////////////////////////////////////////////// module fibonacci_bram ( input clk, input rst, output [31:0] BRAM_addr, output BRAM_clk, output [31:0] BRAM_din, input [31:0] BRAM_dout, output BRAM_en, output BRAM_rst, output [3:0] BRAM_we ); localparam BRAM_DEPTH = 2048; localparam SEQ_BITS = 32; localparam CLK_MHZ = 100; logic [SEQ_BITS-1:0] seq_num; logic seq_valid; logic [31:0] address; logic [31:0] counter; logic get_next_number; assign get_next_number = (counter == 1) ? 1 : 0; localparam COUNTER_MAX = CLK_MHZ*500000; fibonacci #( .SEQ_BITS(SEQ_BITS) ) fibonacci_i ( .clk(clk), .rst(rst | address == BRAM_DEPTH-1), .get_next_number(get_next_number), .seq(seq_num), .seq_valid(seq_valid) ); always_ff @(posedge clk) begin if (rst) begin address <= 0; end else begin if (seq_valid) begin if (address < BRAM_DEPTH-1) begin address <= address + 1; end else begin address <= 0; end end end end always_ff @(posedge clk) begin if (rst) begin counter <= 0; end else begin if (counter < COUNTER_MAX-1) begin counter <= counter + 1; end else begin counter <= 0; end end end assign BRAM_addr = address << 2; assign BRAM_clk = clk; assign BRAM_din = seq_num; assign BRAM_en = 1; assign BRAM_rst = rst; assign BRAM_we = {4{seq_valid}}; endmodule