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`include "parameters.vh"
`include "encoding.vh"
module ddr_pipeline(
// common signals
input clk,
input rst,
// execute_stage <-> ddr_pipeline if
input ddr_valid,
input [`DDR_UOP_WIDTH*4-1:0] ddr_uop,
// ddr_pipeline <-> outer DDRX IP interface
output [3:0] ddr_write,
output [3:0] ddr_read,
output [3:0] ddr_pre,
output [3:0] ddr_act,
output [3:0] ddr_ref,
output [3:0] ddr_zq,
output [3:0] ddr_nop,
output [3:0] ddr_sre,
output [3:0] ddr_srx,
output [3:0] ddr_ap,
output [3:0] ddr_pall,
output [3:0] ddr_half_bl,
output [3:0] ddr_rank,
output [4*`HBM_CH_WIDTH-1:0] hbm_ch,
output [4*`BG_WIDTH-1:0] ddr_bg,
output [4*`BANK_WIDTH-1:0] ddr_bank,
output [4*`COL_WIDTH-1:0] ddr_col,
output [4*`ROW_WIDTH-1:0] ddr_row,
output [511:0] ddr_wdata,
// ddr_pipeline <-> regfile interface
input [511:0] wide_reg,
output [7:0] update_en,
output [4*8-1:0] update_ids,
output [32*8-1:0] update_vals,
input [`COL_WIDTH-1:0] casr,
input [`BANK_WIDTH+`BG_WIDTH-1:0] basr,
input [`ROW_WIDTH-1:0] rasr,
output [4*8-1:0] reg_ids, // registers we need to read
input [32*8-1:0] reg_vals // register values
);
//Split input uop into four ways
wire [`DDR_UOP_WIDTH-1:0] uop [3:0];
genvar uops;
generate
for(uops = 0 ; uops < 4 ; uops = uops + 1) begin: split_uops
assign uop[uops] = ddr_uop[`DDR_UOP_WIDTH*uops +: `DDR_UOP_WIDTH];
end
endgenerate
// Figure out reg ids in the bubble cycle
reg [4*8-1:0] reg_ids_ns, reg_ids_r;
reg s2_valid;
reg [`DDR_UOP_WIDTH-1:0] s2_uop [3:0];
reg [7:0] s2_update_en; // which registers will we update
reg [8*32-1:0] s2_update_val;
reg [3:0] ddr_write_ns, ddr_write_r;
reg [3:0] ddr_read_ns, ddr_read_r;
reg [3:0] ddr_pre_ns, ddr_pre_r;
reg [3:0] ddr_act_ns, ddr_act_r;
reg [3:0] ddr_ref_ns, ddr_ref_r;
reg [3:0] ddr_sre_ns, ddr_sre_r;
reg [3:0] ddr_srx_ns, ddr_srx_r;
reg [3:0] ddr_zq_ns, ddr_zq_r;
reg [3:0] ddr_nop_ns, ddr_nop_r;
reg [3:0] ddr_ap_ns, ddr_ap_r;
reg [3:0] ddr_pall_ns, ddr_pall_r;
reg [3:0] ddr_half_bl_ns, ddr_half_bl_r;
reg [4*`HBM_CH_WIDTH-1:0] hbm_ch_ns, hbm_ch_r;
reg [3:0] ddr_rank_ns, ddr_rank_r;
reg [4*`BG_WIDTH-1:0] ddr_bg_ns, ddr_bg_r;
reg [4*`BANK_WIDTH-1:0] ddr_bank_ns, ddr_bank_r;
reg [4*`COL_WIDTH-1:0] ddr_col_ns, ddr_col_r;
reg [4*`ROW_WIDTH-1:0] ddr_row_ns, ddr_row_r;
reg [511:0] ddr_data_r;
assign update_vals = s2_update_val;
assign update_en = s2_update_en;
assign update_ids = reg_ids_r;
assign reg_ids = reg_ids_r;
// these values are registered before
// being offloaded to the outer module
assign ddr_write = ddr_write_r;
assign ddr_read = ddr_read_r;
assign ddr_pre = ddr_pre_r;
assign ddr_act = ddr_act_r;
assign ddr_ref = ddr_ref_r;
assign ddr_sre = ddr_sre_r;
assign ddr_srx = ddr_srx_r;
assign ddr_zq = ddr_zq_r;
assign ddr_nop = ddr_nop_r;
assign ddr_ap = ddr_ap_r;
assign ddr_pall = ddr_pall_r;
assign ddr_half_bl = ddr_half_bl_r;
assign ddr_rank = ddr_rank_r;
assign hbm_ch = hbm_ch_r;
assign ddr_bg = ddr_bg_r;
assign ddr_bank = ddr_bank_r;
assign ddr_col = ddr_col_r;
assign ddr_row = ddr_row_r;
assign ddr_wdata = ddr_data_r;
integer i;
always @* begin
ddr_nop_ns = {4{`HIGH}};
s2_update_en = {4{`LOW}};
reg_ids_ns = reg_ids_r;
s2_update_val = 8*32'bX;
for(i = 0 ; i < 4 ; i = i + 1) begin: gen_ddrx_sigs
// Decide which registers to read in stage 1
if(uop[i][`IS_WRITE] || uop[i][`IS_READ]) begin
reg_ids_ns[i*8 +: 4] = uop[i][`BAR +: 4];
reg_ids_ns[i*8+4 +: 4] = uop[i][`CAR +: 4];
end
if(uop[i][`IS_PRE]) begin
reg_ids_ns[i*8 +: 4] = uop[i][`BAR +: 4];
end
if(uop[i][`IS_ACT]) begin
reg_ids_ns[i*8 +: 4] = uop[i][`BAR +: 4];
reg_ids_ns[i*8+4 +: 4] = uop[i][`RAR +: 4];
end
// stage 2 control sigs
ddr_pall_ns[i] = s2_uop[i][`PRE_ALL] & s2_uop[i][`IS_PRE];
ddr_write_ns[i] = s2_uop[i][`IS_WRITE];
ddr_read_ns[i] = s2_uop[i][`IS_READ];
ddr_pre_ns[i] = s2_uop[i][`IS_PRE];
ddr_act_ns[i] = s2_uop[i][`IS_ACT];
ddr_zq_ns[i] = s2_uop[i][`IS_ZQ];
ddr_ref_ns[i] = s2_uop[i][`IS_REF];
ddr_sre_ns[i] = s2_uop[i][`IS_SRE];
ddr_srx_ns[i] = s2_uop[i][`IS_SRX];
ddr_ap_ns[i] = s2_uop[i][`DO_AP] & (s2_uop[i][`IS_WRITE] | s2_uop[i][`IS_READ]);
ddr_rank_ns[i] = s2_uop[i][`IS_RANK];
ddr_half_bl_ns[i] = s2_uop[i][`IS_BL4] & (s2_uop[i][`IS_WRITE] | s2_uop[i][`IS_READ]);
ddr_nop_ns[i] = s2_valid ? s2_uop[i][`IS_NOP] : {4{`HIGH}};
hbm_ch_ns[i*`HBM_CH_WIDTH +: `HBM_CH_WIDTH]
= s2_uop[i][`HBM_CHANNEL +: `HBM_CH_WIDTH];
// stage 2 address calculation
ddr_row_ns[i*`ROW_WIDTH +: `ROW_WIDTH]
= reg_vals[i*64+32 +: `ROW_WIDTH];
ddr_bank_ns[i*`BANK_WIDTH +: `BANK_WIDTH]
= reg_vals[i*64 +: `BANK_WIDTH];
ddr_bg_ns[i*`BG_WIDTH +: `BG_WIDTH]
= reg_vals[i*64+`BANK_WIDTH +: `BG_WIDTH];
ddr_col_ns[i*`COL_WIDTH +: `COL_WIDTH]
= reg_vals[i*64+32 +: `COL_WIDTH];
// stage 2 reg update
if(s2_uop[i][`INC_CAR] & (s2_uop[i][`IS_WRITE] | s2_uop[i][`IS_READ])) begin
s2_update_en[i*2+1] = `HIGH;
s2_update_val[i*64+32 +: 32] = reg_vals[i*64+32 +: `COL_WIDTH]
+ casr;
end
else if(s2_uop[i][`INC_RAR] & (s2_uop[i][`IS_ACT])) begin
s2_update_en[i*2+1] = `HIGH;
s2_update_val[i*64+32 +: 32] = reg_vals[i*64+32 +: `ROW_WIDTH]
+ rasr;
end
if(s2_uop[i][`INC_BAR]) begin
s2_update_en[i*2] = `HIGH;
s2_update_val[i*64 +: 32] = reg_vals[i*64 +: `BANK_WIDTH+`BG_WIDTH]
+ basr;
end
end // for
end
always @(posedge clk) begin
if(rst) begin
s2_valid <= `LOW;
for(i = 0 ; i < 4 ; i = i + 1)
s2_uop[i] <= {`DDR_UOP_WIDTH{`LOW}};
ddr_write_r <= {4{`LOW}};
ddr_read_r <= {4{`LOW}};
ddr_pre_r <= {4{`LOW}};
ddr_act_r <= {4{`LOW}};
ddr_ref_r <= {4{`LOW}};
ddr_sre_r <= {4{`LOW}};
ddr_srx_r <= {4{`LOW}};
ddr_zq_r <= {4{`LOW}};
ddr_nop_r <= {4{`HIGH}};
ddr_ap_r <= {4{`LOW}};
ddr_half_bl_r <= {4{`LOW}};
ddr_rank_r <= {4{`LOW}};
hbm_ch_r <= {4*`HBM_CH_WIDTH{`LOW}};
end
else begin
reg_ids_r <= reg_ids_ns;
s2_valid <= ddr_valid;
for(i = 0 ; i < 4 ; i = i + 1)
s2_uop[i] <= uop[i];
ddr_write_r <= ddr_write_ns;
ddr_read_r <= ddr_read_ns;
ddr_pre_r <= ddr_pre_ns;
ddr_act_r <= ddr_act_ns;
ddr_ref_r <= ddr_ref_ns;
ddr_sre_r <= ddr_sre_ns;
ddr_srx_r <= ddr_srx_ns;
ddr_zq_r <= ddr_zq_ns;
ddr_nop_r <= ddr_nop_ns;
ddr_ap_r <= ddr_ap_ns;
ddr_pall_r <= ddr_pall_ns;
ddr_half_bl_r <= {4{`LOW}}; // deprecated
ddr_rank_r <= ddr_rank_ns;
hbm_ch_r <= hbm_ch_ns;
ddr_bg_r <= ddr_bg_ns;
ddr_bank_r <= ddr_bank_ns;
ddr_col_r <= ddr_col_ns;
ddr_row_r <= ddr_row_ns;
ddr_data_r <= wide_reg;
end
end
endmodule
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