riscv single cycle
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133
chapter4/RISCcore.v
Normal file
133
chapter4/RISCcore.v
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module RISCcore (
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input rst,
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input clk,
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output reg [31:0] pc,
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output reg [31:0] next_pc,
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output wire [31:0] instr
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);
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//PC
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always @(posedge clk) begin
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if(rst) begin
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pc <= 32'h0;
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next_pc <= 32'h4;
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end
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else begin
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next_pc <= taken_br ? br_tgt_pc : (pc + 32'h4);
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pc <= next_pc;
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end
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end
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//IMem
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reg [31:0] imem [0:255];
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initial begin
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$readmemh("program.hex", imem);
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end
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assign instr = imem[pc[31:2]];
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//Decoder
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wire isUType = ((instr[6:0] == 7'b0110111) || (instr[6:0] == 7'b0010111));
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wire isIType = ((instr[6:0] == 7'b0000011) || (instr[6:0] == 7'b0000111) || (instr[6:0] == 7'b0010011) || (instr[6:0] == 7'b0011011) || (instr [6:0] == 7'b1100111));
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wire isRType = ((instr[6:0] == 7'b0101111) || (instr[6:0] == 7'b0110011) || (instr[6:0] == 7'b0111011) || (instr[6:0] == 7'b0110011));
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wire isSType = ((instr[6:0] == 7'b0100011) || (instr[6:0] == 7'b0100111));
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wire isBType = (instr[6:0] == 7'b1100011);
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wire isJType = (instr[6:0] == 7'b1101111);
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wire [4:0] rs1 = instr[19:15];
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wire [4:0] rs2 = instr[24:20];
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wire [4:0] rd = instr[11:7];
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wire rs2Valid = (isRType || isSType || isBType);
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wire rs1Valid = (~isUType && ~isJType);
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wire rdValid = (~isSType && ~isBType);
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wire [3:0] funct3 = instr[14:12];
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wire [6:0] funct7 = instr[31:25];
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wire funct3Valid = rs1Valid;
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wire funct7Valid = isRType;
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wire [31:0] Iimm = {{21{instr[31]}}, {instr[30:25]}, {instr[24:20]}};
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wire [31:0] Simm = {{21{instr[31]}}, {instr[30:25]}, {instr[11:7]}};
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wire [31:0] Bimm = {{20{instr[31]}}, {instr[7]}, {instr[30:25]}, {instr[11:8]}, 1'b0};
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wire [31:0] Uimm = {{instr[31]}, {instr[30:20]}, {instr[19:12]}, {12{1'b0}};
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wire [31:0] Jimm = {{12{instr[31]}}, {instr[19:12]}, {instr[20]}, {instr[30:25]}, {instr[24:21]}, 1'b0};
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//Instructions
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isBEQ = (funct3 == 3'b000 && isBType);
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isBNE = (funct3 == 3'b001 && isBType);
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isBLT = (funct3 == 3'b100 && isBType);
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isBGE = (funct3 == 3'b101 && isBType);
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isBLTU = (funct3 == 3'b110 && isBType);
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isBGEU = (funct3 == 3'b111 && isBType);
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isADDI = (funct3 == 3'b000 && isIType);
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isADD = (funct7[5] == 1'b0 && isRType);
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isLW = (funct3 == 3'b010 && isIType);
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isSW = (funct3 == 3'b010 && isSType);
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//Register file
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wire rf_wr_en;
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wire [4:0] rf_wr_index;
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wire [31:0] rf_wr_data;
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wire rf_rd_en1, rf_rd_en2;
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wire [4:0] rf_rd_index1, rf_rd_index2;
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wire rf_rd_data1, rf_rd_data2;
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wire src1_value, src2_value;
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assign rf_rd_en1 = rs1Valid;
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assign rf_rd_en2 = rs2Valid;
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assign rf_rd_index1 = rs1;
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assign rf_rd_index2 = rs2;
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assign [31:0] src1_value = {31{rf_rd_data1}};
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assign [31:0] src2_value = {31{rf_rd_data2}};
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/* Maybe write logic ?
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assign rf_wr_en = 1'b0;
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assign rf_wr_index = 5'b0;
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assign rf_wr_data = 32'b0;
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Disabled */
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// ALU FOR ADD, ADDI
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wire [31:0] alu_result = 32'b0;
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wire [31:0] alu_op2 = isADDI ? Iimm : src2_value;
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assign alu_result = (isADDI || isADD) ? (src1_value + alu_op2) : 32'b0;
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//ALU Register file connect
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/*
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assign rf_wr_data = alu_result;
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assign rf_wr_en = rdValid && (isADD || isADDI);
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assign rf_wr_index = rd;
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*/
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//x0 support adding
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assign rf_wr_data = rf_wr_en ? alu_result : 32'b0;
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assign rf_wr_en = rdValid && (isADD || isADDI) && (rd != 5'b0);
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assign rf_wr_index = rd;
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//Branch
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if(isBType) begin
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wire taken_br = (isBEQ ? src1_value == src2_value : 1'b0) ||
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(isBNE ? src1_value != src2_value : 1'b0) ||
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(isBLT ? ((src1_value < src2_value) ^ (src1_value[31] != src2_value[31])) : 1'b0) ||
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(isBGE ? ((src1_value >= src2_value) ^ (src1_value[31] != src2_value)) : 1'b0) ||
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(isBLTU ? src1_value < src2_value : 1'b0) ||
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(isBGEU ? src1_value >= src2_value : 1'b0);
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wire [31:0] br_tgt_pc = next_pc + Bimm;
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end
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endmodule
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