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|
`default_nettype none
`define PH_RESET 3'd0
`define PH_FETCH 3'd1
`define PH_DECODE 3'd2
`define PH_EXECUTE 3'd3
`define FL_CARRY 2'd3
`define FL_OVERFLOW 2'd2
`define FL_NEGATIVE 2'd1
`define FL_ZERO 2'd0
// Legend:
// T = target register select
// L = left operand register select
// R = right operand register select
// I = immediate operand
// S = ALU operation select
// F = flag select
// A = absolute (1) / relative (0) addressing
// D = direct (1) / indirect (0) load/store
// X = unused
// ALR (arithmetic-logic, register)
// 0000 TTTL LLRR RSSS
`define OP_ALR 4'b0000
// ALI (arithmetic-logic, immediate)
// 0001 TTTL LLII ISSS
`define OP_ALI 4'b0001
// LDR (load by register)
// 0010 TTTR RRXX XXAD
`define OP_LDR 4'b0010
// STR (store to memory)
// 0011 XXXL LLRR RXAD
`define OP_STR 4'b0011
// LDI (load by immediate)
// 0100 TTTI IIII IIAD
`define OP_LDI 4'b0100
// JPR (jump by register)
// 0101 ADRR RXXX XXXX
`define OP_JPR 4'b0101
// JPI (jump by immediate)
// 0110 ADII IIII IIII
`define OP_JPI 4'b0110
// BRR (branch by register)
// 0111 ADFF RRRX XXXX
`define OP_BRR 4'b0111
// BRI (branch by immediate)
// 1000 ADFF IIII IIII
`define OP_BRI 4'b1000
// LPC (load PC+1)
// 1001 TTTX XXXX XXXX
`define OP_LPC 4'b1001
// RTI (return from interrupt)
// 1010 XXXX XXXX XXXX
`define OP_RTI 4'b1010
`define OP_NOP1 4'b1011
`define OP_NOP2 4'b1100
`define OP_NOP3 4'b1101
`define OP_NOP4 4'b1110
// HLT (halt)
// 1111 XXXX XXXX XXXX
`define OP_HLT 4'b1111
module cu(
input wire clk,
input wire rst,
input wire [3:0] int_lines
);
reg [15:0] regbank [0:7];
reg [15:0] decoded_tmp;
reg [2:0] phase = `PH_RESET;
reg [15:0] pc;
reg [15:0] ir;
reg halted = 0;
// interrupts
reg [15:0] int_pc;
reg [3:0] int_line_regs;
reg int_en = 1;
reg [15:0] mem_addr;
reg [15:0] mem_data_in;
reg mem_read_en, mem_write_en;
wire [15:0] mem_data_out;
reg mem_waiting = 0;
sram sram_inst(
.cs_n(1'd0),
.wr_n(~mem_write_en),
.rd_n(~mem_read_en),
.addr({ 2'd0, mem_addr }),
.data_in(mem_data_in),
.data_out(mem_data_out)
);
reg [2:0] alu_sel;
reg [15:0] alu_a;
reg [15:0] alu_b;
wire [15:0] alu_result;
wire [3:0] alu_flags;
alu alu_inst(
.sel(alu_sel),
.a(alu_a),
.b(alu_b),
.result(alu_result),
.flags(alu_flags)
);
// Named reg wires for debugging purposes
wire [15:0] ra, rb, rc, rd, re, rf, rg, rh;
assign ra = regbank[0];
assign rb = regbank[1];
assign rc = regbank[2];
assign rd = regbank[3];
assign re = regbank[4];
assign rf = regbank[5];
assign rg = regbank[6];
assign rh = regbank[7];
always @(posedge int_lines[0]) int_line_regs[0] <= int_lines[0];
always @(posedge int_lines[1]) int_line_regs[1] <= int_lines[1];
always @(posedge int_lines[2]) int_line_regs[2] <= int_lines[2];
always @(posedge int_lines[3]) int_line_regs[3] <= int_lines[3];
integer i;
always @(posedge clk or posedge rst) begin
// Handle reset button
if (rst) begin
phase <= `PH_RESET;
halted <= 0;
end
else if (halted) begin
// Do nothing
end
else if (int_en && int_line_regs != 4'b00) begin
int_en <= 0;
int_pc <= pc;
casez (int_line_regs)
4'bzzz1: begin
pc <= 16'h10;
int_line_regs[0] <= 0;
end
4'bzz1z: begin
pc <= 16'h11;
int_line_regs[1] <= 0;
end
4'bz1zz: begin
pc <= 16'h12;
int_line_regs[2] <= 0;
end
4'b1zzz: begin
pc <= 16'h13;
int_line_regs[3] <= 0;
end
endcase
end
else if (phase == `PH_RESET) begin
phase <= `PH_FETCH;
pc <= 16'd0;
mem_read_en <= 0;
mem_write_en <= 0;
for (i = 0; i < 8; i = i + 1) begin
regbank[i] <= 16'd0;
end
end
// Fetch stage
else if (phase == `PH_FETCH) begin
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc;
mem_waiting <= 1;
end else begin
mem_read_en <= 0;
ir <= mem_data_out;
phase <= `PH_DECODE;
pc <= pc + 16'd1;
mem_waiting <= 0;
end
end
// Decode stage
else if (phase == `PH_DECODE) begin
case (ir[15:12])
`OP_ALR: begin
alu_sel <= ir[2:0]; // select ALU operation
alu_a <= regbank[ir[8:6]]; // read operand A
alu_b <= regbank[ir[5:3]]; // read operand B
phase <= `PH_EXECUTE;
end
`OP_ALI: begin
alu_sel <= ir[2:0]; // select ALU operation
alu_a <= regbank[ir[8:6]]; // read operand A
alu_b <= ir[5:3]; // read immediate operand
phase <= `PH_EXECUTE;
end
`OP_LDR: begin
// ir[1] = A = absolute (1) / relative (0) addressing
// ir[0] = D = direct (1) / indirect (0) store
// set target reg value to address, dereference in execute phase
if (ir[1] == 1 && ir[0] == 1) begin // addressing mode: absolute, direct
decoded_tmp <= regbank[ir[8:6]];
phase <= `PH_EXECUTE;
end
else if (ir[1] == 0 && ir[0] == 1) begin // addressing mode: pc relative, direct
decoded_tmp <= pc + regbank[ir[8:6]] - 1;
phase <= `PH_EXECUTE;
end
else if (ir[1] == 1 && ir[0] == 0) begin // addressing mode: absolute, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= regbank[ir[8:6]];
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
else if (ir[1] == 0 && ir[0] == 0) begin // addressing mode: pc relative, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc + regbank[ir[8:6]] - 1;
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
end
`OP_STR: begin
// ir[1] = A = absolute (1) / relative (0) addressing
// ir[0] = D = direct (1) / indirect (0) store
// ir[5:3] = data reg
// ir[8:6] = address reg
// decoded_tmp will be the address to write to
if (ir[1] == 1 && ir[0] == 1) begin // addressing mode: absolute, direct
decoded_tmp <= regbank[ir[8:6]];
phase <= `PH_EXECUTE;
end
else if (ir[1] == 0 && ir[0] == 1) begin // addressing mode: pc relative, direct
decoded_tmp <= pc + regbank[ir[8:6]] - 1;
phase <= `PH_EXECUTE;
end
else if (ir[1] == 1 && ir[0] == 0) begin // addressing mode: absolute, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= regbank[ir[8:6]];
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
else if (ir[1] == 0 && ir[0] == 0) begin // addressing mode: pc relative, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc + regbank[ir[8:6]] - 1;
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
end
`OP_LDI: begin
// ir[1] = A = absolute (1) / relative (0) addressing
// ir[0] = D = direct (1) / indirect (0) load
// ir[8:2] = immediate
// ir[11:9] = target reg
if (ir[1] == 1) begin // addressing mode: absolute
decoded_tmp <= ir[8:2];
end
else if (ir[1] == 0) begin // addressing mode: pc relative
decoded_tmp <= pc + {{9{ir[8]}}, ir[8:2]} - 1;
end
phase <= `PH_EXECUTE;
end
`OP_JPR: begin
// ir[11] = A = absolute (1) / relative (0) addressing
// ir[10] = D = direct (1) / indirect (0) load
// ir[9:6] = address reg
if (ir[11] == 1 && ir[10] == 1) begin // addressing mode: absolute, direct
pc <= regbank[ir[9:6]];
phase <= `PH_FETCH;
end
else if (ir[11] == 0 && ir[10] == 1) begin // addressing mode: pc relative, direct
pc <= pc + regbank[ir[9:6]] - 1;
phase <= `PH_FETCH;
end
else if (ir[11] == 1 && ir[10] == 0) begin // addressing mode: absolute, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= regbank[ir[9:6]];
mem_waiting <= 1;
end else begin
pc <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
else if (ir[11] == 0 && ir[10] == 0) begin // addressing mode: pc relative, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc + regbank[ir[9:6]] - 1;
mem_waiting <= 1;
end else begin
pc <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
end
`OP_JPI: begin
// ir[11] = A = absolute (1) / relative (0) addressing
// ir[10] = D = direct (1) / indirect (0) load
// ir[9:0] = immediate
if (ir[11] == 1 && ir[10] == 1) begin // addressing mode: absolute, direct
pc <= {6'd0, ir[9:0]};
phase <= `PH_FETCH;
end
else if (ir[11] == 0 && ir[10] == 1) begin // addressing mode: pc relative, direct
pc <= pc + {{6{ir[9]}}, ir[9:0]} - 1;
phase <= `PH_FETCH;
end
else if (ir[11] == 1 && ir[10] == 0) begin // addressing mode: absolute, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= {6'd0, ir[9:0]};
mem_waiting <= 1;
end else begin
pc <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
else if (ir[11] == 0 && ir[10] == 0) begin // addressing mode: pc relative, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc + {{6{ir[9]}}, ir[9:0]} - 1;
mem_waiting <= 1;
end else begin
pc <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
end
`OP_BRR: begin
// ir[11] = A = absolute (1) / relative (0) addressing
// ir[10] = direct (1) / indirect (0) branch
// ir[9:8] = flag select
// ir[7:5] = address reg
if (ir[11] == 1 && ir[10] == 1) begin // addressing mode: absolute, direct
decoded_tmp <= regbank[ir[7:5]];
phase <= `PH_EXECUTE;
end
else if (ir[11] == 0 && ir[10] == 1) begin // addressing mode: pc relative, direct
decoded_tmp <= pc + regbank[ir[7:5]] - 1;
phase <= `PH_EXECUTE;
end
else if (ir[11] == 1 && ir[10] == 0) begin // addressing mode: absolute, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= regbank[ir[7:5]];
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
else if (ir[11] == 0 && ir[10] == 0) begin // addressing mode: pc relative, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc + regbank[ir[7:5]] - 1;
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
end
`OP_BRI: begin
// ir[11] = A = absolute (1) / relative (0) addressing
// ir[10] = direct (1) / indirect (0) branch
// ir[9:8] = flag select
// ir[7:0] = immediate
if (ir[11] == 1 && ir[10] == 1) begin // addressing mode: absolute, direct
decoded_tmp <= {8'd0, ir[7:0]};
phase <= `PH_EXECUTE;
end
else if (ir[11] == 0 && ir[10] == 1) begin // addressing mode: pc relative, direct
decoded_tmp <= pc + {{8{ir[7]}}, ir[7:0]} - 1;
phase <= `PH_EXECUTE;
end
else if (ir[11] == 1 && ir[10] == 0) begin // addressing mode: absolute, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= {8'd0, ir[7:0]};
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
else if (ir[11] == 0 && ir[10] == 0) begin // addressing mode: pc relative, indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= pc + {{8{ir[7]}}, ir[7:0]} - 1;
mem_waiting <= 1;
end else begin
decoded_tmp <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_EXECUTE;
mem_waiting <= 0;
end
end
end
`OP_LPC: begin
// ir[11:9] = target reg
regbank[ir[11:9]] <= pc;
phase <= `PH_FETCH;
end
`OP_RTI: begin
pc <= int_pc;
int_en <= 1;
phase <= `PH_FETCH;
end
`OP_HLT: begin
halted <= 1;
end
default: begin
`ifdef __SYNTHESIS__
$fatal(1, "decode: unhandled opcode %04b", ir[15:12]);
`endif
end
endcase
end
// Execute stage
else if (phase == `PH_EXECUTE) begin
case (ir[15:12])
`OP_ALR, `OP_ALI: begin
regbank[ir[11:9]] <= alu_result; // write result
phase <= `PH_FETCH;
end
`OP_LDR: begin
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= decoded_tmp;
mem_waiting <= 1;
end else begin
regbank[ir[11:9]] <= mem_data_out; // dereference address
mem_read_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
`OP_STR: begin
if (~mem_waiting) begin
mem_write_en <= 1;
mem_addr <= decoded_tmp;
mem_data_in <= regbank[ir[5:3]];
mem_waiting <= 1;
end else begin
mem_write_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
`OP_LDI: begin
// ir[1] = A = absolute (1) / relative (0) addressing
// ir[0] = D = direct (1) / indirect (0) load
// ir[8:2] = immediate
// ir[11:9] = target reg
// decoded_tmp = immediate value that takes absolute/relative to account
if (ir[0] == 1) begin // direct
regbank[ir[11:9]] <= decoded_tmp;
phase <= `PH_FETCH;
end
else if (ir[0] == 0) begin // indirect
if (~mem_waiting) begin
mem_read_en <= 1;
mem_addr <= decoded_tmp;
mem_waiting <= 1;
end else begin
regbank[ir[11:9]] <= mem_data_out;
mem_read_en <= 0;
phase <= `PH_FETCH;
mem_waiting <= 0;
end
end
end
`OP_BRR, `OP_BRI: begin
// ir[9:8] = flag select
// branch if selected flag (0..3) is set (i.e. when anded with flags is non-zero)
if ((1 << ir[9:8]) & alu_flags != 4'd0) begin
pc <= decoded_tmp;
end
phase <= `PH_FETCH;
end
default: begin
`ifdef __SYNTHESIS__
$fatal(1, "execute: unhandled opcode %04b", ir[15:12]);
`endif
end
endcase
end
end
endmodule
|