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| ////////////////////////////////////////////////////////////////////////////////// | |
| // Company: HDLForBeginners | |
| // Engineer: Stacey | |
| // | |
| // Create Date: 14.07.2021 13:47:50 | |
| // Design Name: uart_tx | |
| // Module Name: | |
| // Project Name: uart_tx | |
| // Target Devices: | |
| // Tool Versions: | |
| // Description: | |
| // transmits a supplied word over uart | |
| // | |
| // Dependencies: | |
| // | |
| // Revision: | |
| // Revision 0.01 - File Created | |
| // Additional Comments: | |
| // | |
| ////////////////////////////////////////////////////////////////////////////////// | |
| module uart_tx | |
| #( | |
| parameter CLKRATE = 100000000, | |
| parameter BAUD = 115200, | |
| parameter WORD_LENGTH = 8 | |
| ) | |
| ( | |
| input clk, | |
| input rst, | |
| input [WORD_LENGTH-1:0] tx_data, | |
| input tx_data_valid, | |
| output tx_data_ready, | |
| output UART_TX | |
| ); | |
| // internal signals | |
| logic tx_data_ready_i; | |
| logic uart_tx_i = 1'b0; | |
| logic [WORD_LENGTH-1:0] tx_data_i; | |
| // store tx_data_i when valid for use later | |
| always @(posedge clk) | |
| begin | |
| if(rst) begin | |
| tx_data_i <= '0; | |
| end | |
| else begin | |
| // don't store the data unless we're ready | |
| if (tx_data_valid & tx_data_ready_i) begin | |
| tx_data_i <= tx_data; | |
| end | |
| end | |
| end | |
| // Define our states | |
| typedef enum {IDLE, START, DATA, PARITY, STOP,WAIT} my_state; | |
| my_state current_state = IDLE; | |
| my_state next_state = IDLE; | |
| // Define tx signal constants | |
| localparam TX_IDLE = 1'b1; | |
| localparam TX_START = 1'b0; | |
| localparam TX_STOP = 1'b1; | |
| // counter parameters | |
| // count the baud | |
| localparam BAUD_COUNTER_MAX = CLKRATE/BAUD; | |
| localparam BAUD_COUNTER_SIZE = $clog2(BAUD_COUNTER_MAX); | |
| // count the data | |
| localparam DATA_COUNTER_MAX = WORD_LENGTH; | |
| localparam DATA_COUNTER_SIZE = $clog2(DATA_COUNTER_MAX); | |
| logic [BAUD_COUNTER_SIZE-1:0] uart_baud_counter; | |
| logic [DATA_COUNTER_SIZE-1:0] uart_data_counter; | |
| logic uart_baud_done; | |
| logic uart_data_done; | |
| // buffer to store tx data while shifting | |
| logic [WORD_LENGTH-1:0] uart_data_shift_buffer; | |
| // UART Baud Clock | |
| always @(posedge clk) | |
| begin | |
| if(rst) begin | |
| uart_baud_counter <= '0; | |
| end | |
| else begin | |
| // Reset at state transition | |
| if (uart_baud_done) begin | |
| uart_baud_counter <= '0; | |
| end | |
| else begin | |
| uart_baud_counter <= uart_baud_counter + 'd1; | |
| end | |
| end | |
| end | |
| // baud clock is done | |
| assign uart_baud_done = (uart_baud_counter == BAUD_COUNTER_MAX-1) ? 1'b1 : 1'b0; | |
| // data counting and shifting | |
| always @(posedge clk) | |
| begin | |
| if(rst) begin | |
| uart_data_counter <= '0; | |
| uart_data_shift_buffer <= '0; | |
| end | |
| // note uart_baud_done is clk enable | |
| else if (uart_baud_done) begin | |
| // Reset at state transition | |
| if (current_state != next_state) begin | |
| uart_data_counter <= '0; | |
| uart_data_shift_buffer <= tx_data_i; | |
| end | |
| else begin | |
| // otherwise increment counter and shift buffer | |
| uart_data_counter <= uart_data_counter + 'd1; | |
| uart_data_shift_buffer <= uart_data_shift_buffer >> 1; | |
| end | |
| end | |
| end | |
| // uart_data_done indicates all bits are transmitted | |
| assign uart_data_done = (uart_data_counter == DATA_COUNTER_MAX-1) ? 1'b1 : 1'b0; | |
| // State Machine | |
| always @(*) | |
| begin | |
| case (current_state) | |
| IDLE : | |
| begin | |
| if (tx_data_valid) begin | |
| next_state = START; | |
| end | |
| else begin | |
| next_state = current_state; | |
| end | |
| end | |
| START : | |
| begin | |
| if (uart_baud_done) begin | |
| next_state = DATA; | |
| end | |
| else begin | |
| next_state = current_state; | |
| end | |
| end | |
| DATA : | |
| begin | |
| if (uart_data_done & uart_baud_done) begin | |
| next_state = PARITY; | |
| end | |
| else begin | |
| next_state = current_state; | |
| end | |
| end | |
| PARITY : | |
| begin | |
| if (uart_baud_done) begin | |
| next_state = STOP; | |
| end | |
| else begin | |
| next_state = current_state; | |
| end | |
| end | |
| STOP : | |
| begin | |
| if (uart_baud_done) begin | |
| next_state = WAIT; | |
| end | |
| else begin | |
| next_state = current_state; | |
| end | |
| end | |
| WAIT : | |
| begin | |
| if (uart_baud_done) begin | |
| next_state = IDLE; | |
| end | |
| else begin | |
| next_state = current_state; | |
| end | |
| end | |
| default: | |
| next_state = current_state; | |
| endcase | |
| end | |
| always @(posedge clk) | |
| begin | |
| if(rst) begin | |
| current_state <= IDLE; | |
| end | |
| else begin | |
| current_state <= next_state; | |
| end | |
| end | |
| always @(*) | |
| begin | |
| case (current_state) | |
| IDLE : | |
| begin | |
| uart_tx_i = TX_IDLE; | |
| end | |
| START : | |
| begin | |
| uart_tx_i = TX_START; | |
| end | |
| DATA : | |
| begin | |
| uart_tx_i = uart_data_shift_buffer[0]; | |
| end | |
| PARITY : | |
| begin | |
| uart_tx_i = ^tx_data_i; | |
| end | |
| STOP : | |
| begin | |
| uart_tx_i = TX_STOP; | |
| end | |
| WAIT : | |
| begin | |
| uart_tx_i = TX_IDLE; | |
| end | |
| endcase | |
| end | |
| assign tx_data_ready_i = (current_state == IDLE) ? 1'b1 : 1'b0; | |
| assign tx_data_ready = tx_data_ready_i; | |
| assign UART_TX = uart_tx_i; | |
| //////////////////////////////////////////////////////////////////////////////// | |
| //////////////////////////////////////////////////////////////////////////////// | |
| //////////////////////////////////////////////////////////////////////////////// | |
| // | |
| // Formal properties | |
| // {{{ | |
| //////////////////////////////////////////////////////////////////////////////// | |
| //////////////////////////////////////////////////////////////////////////////// | |
| //////////////////////////////////////////////////////////////////////////////// | |
| // Register declarations, reset assertion | |
| // {{{ | |
| reg f_past_valid; | |
| reg [WORD_LENGTH-1:0] fv_data; | |
| initial f_past_valid = 0; | |
| always @(posedge clk) | |
| f_past_valid <= 1; | |
| always @(*) | |
| if (!f_past_valid) | |
| assume(rst); | |
| // }}} | |
| //////////////////////////////////////////////////////////////////////// | |
| // | |
| // Input AXI-stream assumptions | |
| // {{{ | |
| //////////////////////////////////////////////////////////////////////// | |
| // | |
| // | |
| always @(posedge clk) | |
| if (!f_past_valid || $past(rst)) | |
| begin | |
| assume(!tx_data_valid); | |
| end | |
| else if ($past(tx_data_valid && !tx_data_ready)) | |
| begin | |
| assume(tx_data_valid); | |
| assume($stable(tx_data)); | |
| end | |
| // }}} | |
| always @(*) | |
| if (f_past_valid) | |
| begin | |
| assert(uart_data_counter < DATA_COUNTER_MAX); | |
| assert(uart_baud_done == (uart_baud_counter == BAUD_COUNTER_MAX-1)); | |
| end | |
| always @(*) | |
| if (f_past_valid) | |
| case(current_state) | |
| IDLE: assert(UART_TX); | |
| START: assert(!UART_TX); | |
| DATA: begin | |
| end | |
| PARITY: assert(UART_TX == ^tx_data_i); | |
| STOP: assert(UART_TX); | |
| WAIT: assert(UART_TX); | |
| default: assert(0); | |
| endcase | |
| always @(*) | |
| if (f_past_valid) | |
| case(current_state) | |
| DATA: begin | |
| assert(uart_data_counter < WORD_LENGTH); | |
| assert(UART_TX == fv_data[uart_data_counter]); | |
| end | |
| default: begin end | |
| endcase | |
| always @(*) | |
| if (f_past_valid) | |
| assert(tx_data_ready == (current_state == IDLE)); | |
| always @(posedge clk) | |
| if (tx_data_valid && tx_data_ready) | |
| fv_data <= tx_data; | |
| always @(*) | |
| if (f_past_valid && current_state != IDLE) | |
| assert(fv_data == tx_data_i); | |
| //////////////////////////////////////////////////////////////////////// | |
| // | |
| // Cover checks | |
| // {{{ | |
| //////////////////////////////////////////////////////////////////////// | |
| // | |
| // | |
| reg [2:0] cvr_count; | |
| always @(posedge clk) | |
| if (rst) | |
| cvr_count <= 0; | |
| else if (tx_data_valid && tx_data_ready) | |
| begin | |
| if (cvr_count == 0 && tx_data == 8'h01) | |
| cvr_count <= 1; | |
| else if (cvr_count == 1 && tx_data == 8'h7e) | |
| cvr_count <= 2; | |
| else if (cvr_count >= 2 && !(&cvr_count)) | |
| cvr_count <= cvr_count + 1; | |
| end | |
| always @(*) | |
| if (!rst) | |
| begin | |
| cover(cvr_count == 1); | |
| cover(cvr_count == 1 && current_state == START); | |
| cover(cvr_count == 1 && current_state == DATA); | |
| cover(cvr_count == 1 && current_state == PARITY); | |
| cover(cvr_count == 1 && current_state == STOP); | |
| cover(cvr_count == 1 && current_state == WAIT); | |
| cover(cvr_count == 1 && current_state == IDLE); | |
| cover(cvr_count == 2); | |
| cover(cvr_count == 2 && current_state == START); | |
| cover(cvr_count == 2 && current_state == DATA); // @88 | |
| cover(cvr_count == 2 && current_state == PARITY); // @149 | |
| cover(cvr_count == 2 && current_state == STOP); | |
| cover(cvr_count == 2 && current_state == WAIT); | |
| cover(cvr_count == 2 && current_state == IDLE); | |
| cover(cvr_count == 3); | |
| cover(cvr_count == 4); | |
| end | |
| // }}} | |
| // }}} | |
| endmodule | |