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//////////////////////////////////////////////////////////////////////////////
// //
// DDR3 memory interface //
// Copyright (c)2019 Alexey Melnikov //
// Based on SDRAM controller by Tobias Gubener //
// //
// This source file is free software: you can redistribute it and/or modify //
// it under the terms of the GNU General Public License as published //
// by the Free Software Foundation, either version 3 of the License, or //
// (at your option) any later version. //
// //
// This source file is distributed in the hope that it will be useful, //
// but WITHOUT ANY WARRANTY; without even the implied warranty of //
// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the //
// GNU General Public License for more details. //
// //
// You should have received a copy of the GNU General Public License //
// along with this program. If not, see <http://www.gnu.org/licenses/>. //
// //
//////////////////////////////////////////////////////////////////////////////
module ddram_ctrl
(
// system
input sysclk,
input reset_n,
input cache_rst,
input cache_inhibit,
input [3:0] cpu_cache_ctrl,
input dcache_sw_en,
// DDR3
output DDRAM_CLK,
input DDRAM_BUSY,
output [7:0] DDRAM_BURSTCNT,
output [28:0] DDRAM_ADDR,
input [63:0] DDRAM_DOUT,
input DDRAM_DOUT_READY,
output DDRAM_RD,
output [63:0] DDRAM_DIN,
output [7:0] DDRAM_BE,
output DDRAM_WE,
// Second memory port, shared onto the same DDR3 interface. Used by the
// A2065 Ethernet card, which touches DDR3 rarely; the CPU's fast RAM has
// priority over it and is never made to wait.
input [28:0] mem2_address,
input [7:0] mem2_burstcount,
input mem2_read,
output [63:0] mem2_readdata,
output mem2_readdatavalid,
input [63:0] mem2_writedata,
input [7:0] mem2_byteenable,
input mem2_write,
output mem2_waitrequest,
// cpu
input [28:1] cpuAddr,
input cpuCS,
input [1:0] cpustate,
input cpuL,
input cpuU,
input [15:0] cpuWR,
output [15:0] cpuRD,
input ramshared,
output ramready,
input [28:1] dmaAddr,
input dmaCS,
input dmaWE,
input dmaL,
input dmaU,
input [15:0] dmaWR,
output reg [15:0] dmaRD,
output dmaACK
);
wire ramsel = cpuCS & (~&cpustate | ~cpuU | ~cpuL);
wire cache_hit;
wire cache_req;
reg cache_fill;
wire cache_ack;
reg dma_snoop_act;
reg [28:1] dma_snoop_adr;
reg [15:0] dma_snoop_dat;
reg [1:0] dma_snoop_bs;
cpu_cache_new cpu_cache
(
.clk (sysclk), // clock
.rst (~reset_n | ~cache_rst), // cache reset
.cpu_cache_ctrl (cpu_cache_ctrl), // CPU cache control
.dcache_sw_en (dcache_sw_en),
.cache_inhibit (cache_inhibit | ramshared), // cache inhibit
.cpu_cs (ramsel), // cpu activity
.cpu_adr (cpuAddr), // cpu address
.cpu_bs (~{cpuU, cpuL}), // cpu byte selects
.cpu_we (cpustate == 3), // cpu write
.cpu_ir (cpustate == 0), // cpu instruction read
.cpu_dr (cpustate == 2), // cpu data read
.cpu_dat_w (cpuWR), // cpu write data
.cpu_dat_r (cpuRD), // cpu read data
.cpu_ack (cache_hit), // cpu acknowledge
.wb_en (cache_ack), // write enable
.sdr_dat_r (ddr_swap ? {ddr_data[7:0], ddr_data[15:8]} : ddr_data), // sdram read data
.sdr_read_req (cache_req), // sdram read request from cache
.sdr_read_ack (cache_fill), // sdram read acknowledge to cache
.snoop_act (dma_snoop_act),
.snoop_adr (dma_snoop_adr),
.snoop_dat_w (dma_snoop_dat),
.snoop_bs (dma_snoop_bs)
);
// write buffer, enables CPU to continue while a write is in progress
reg write_ena;
reg write_req;
reg write_ack;
reg [1:0] writeBE;
reg [28:1] writeAddr;
reg [15:0] writeDat;
always @ (posedge sysclk) begin
reg [1:0] write_state;
if(~reset_n) begin
write_req <= 0;
write_ena <= 0;
write_state <= 0;
end else begin
case(write_state)
default:
if(ramsel && cpustate == 3) begin
writeAddr <= cpuAddr;
writeDat <= ramshared ? {cpuWR[7:0],cpuWR[15:8]} : cpuWR;
writeBE <= ramshared ? ~{cpuL, cpuU} : ~{cpuU, cpuL};
write_req <= 1;
if(cache_ack) begin
write_ena <= 1;
write_state <= 1;
end
end
1: if(write_ack) begin
// The SDRAM controller has picked up the request
write_req <= 0;
write_state <= 2;
end
2: if(!write_ack) write_state <= 0;
endcase
if(~ramsel) write_ena <= 0;
end
end
assign ramready = cache_hit || write_ena;
reg dmaCS_sync1;
reg dmaCS_sync2;
reg dmaCS_sync3;
always @ (posedge sysclk) begin
if (~reset_n) begin
dmaCS_sync1 <= 0;
dmaCS_sync2 <= 0;
dmaCS_sync3 <= 0;
end else begin
dmaCS_sync1 <= dmaCS;
dmaCS_sync2 <= dmaCS_sync1;
dmaCS_sync3 <= dmaCS_sync2;
end
end
wire dmaCS_rise = dmaCS_sync2 & ~dmaCS_sync3;
reg dma_write_req;
reg dma_write_ack;
reg [28:1] dmaWriteAddr;
reg [15:0] dmaWriteDat;
reg [1:0] dmaWriteBE;
reg dmaACK_r;
reg dma_read_req;
reg dma_read_ack;
reg [28:1] dmaReadAddr;
reg [1:0] dmaReadBA;
reg dma_read_in_flight;
assign dmaACK = dmaACK_r;
always @ (posedge sysclk) begin
dma_snoop_act <= 0;
if (~reset_n) begin
dma_write_req <= 0;
dma_read_req <= 0;
dmaACK_r <= 0;
end else begin
if (dmaCS_rise & ~dma_write_req & ~dma_read_req & ~dmaACK_r) begin
if (dmaWE) begin
dmaWriteAddr <= dmaAddr;
dmaWriteDat <= dmaWR;
dmaWriteBE <= ~{dmaU, dmaL};
dma_write_req <= 1'b1;
dma_snoop_act <= 1'b1;
dma_snoop_adr <= dmaAddr;
dma_snoop_dat <= dmaWR;
dma_snoop_bs <= ~{dmaU, dmaL};
end else begin
dmaReadAddr <= dmaAddr;
dma_read_req <= 1'b1;
end
end
if (dma_write_ack) begin
dma_write_req <= 1'b0;
dmaACK_r <= 1'b1;
end
if (dma_read_ack) begin
dma_read_req <= 1'b0;
dmaACK_r <= 1'b1;
end
if (~dmaCS_sync2) dmaACK_r <= 1'b0;
end
end
assign DDRAM_CLK = sysclk;
// Fast RAM's own view of DDR3. It goes through the arbiter below rather than
// straight to the pins, so that the second port can share the interface.
reg [28:0] ram_addr;
reg [63:0] ram_din;
reg [7:0] ram_be;
reg ram_rd, ram_we;
wire ram_busy;
wire [63:0] ram_dout = DDRAM_DOUT;
wire ram_dout_ready;
a2065_ddram_arbiter arbiter
(
.clk (sysclk),
.rst (~reset_n),
.m0_address (ram_addr),
.m0_burstcount (8'd1),
.m0_read (ram_rd),
.m0_readdata (),
.m0_readdatavalid(ram_dout_ready),
.m0_writedata (ram_din),
.m0_byteenable (ram_be),
.m0_write (ram_we),
.m0_waitrequest (ram_busy),
.m1_address (mem2_address),
.m1_burstcount (mem2_burstcount),
.m1_read (mem2_read),
.m1_readdata (),
.m1_readdatavalid(mem2_readdatavalid),
.m1_writedata (mem2_writedata),
.m1_byteenable (mem2_byteenable),
.m1_write (mem2_write),
.m1_waitrequest (mem2_waitrequest),
.s_address (DDRAM_ADDR),
.s_burstcount (DDRAM_BURSTCNT),
.s_read (DDRAM_RD),
.s_readdata (DDRAM_DOUT),
.s_readdatavalid (DDRAM_DOUT_READY),
.s_writedata (DDRAM_DIN),
.s_byteenable (DDRAM_BE),
.s_write (DDRAM_WE),
.s_waitrequest (DDRAM_BUSY)
);
assign mem2_readdata = DDRAM_DOUT;
reg ddr_swap;
reg [15:0] ddr_data;
always @ (posedge sysclk) begin
reg [2:0] state = 0;
reg [1:0] ba;
reg [63:0] dout;
cache_fill <= 0;
ddr_data <= dout[{ba, 4'b0000} +:16];
if(~ram_busy) begin
ram_we <= 0;
ram_rd <= 0;
end
if(~reset_n) begin
state <= 0;
write_ack <= 0;
dma_write_ack <= 0;
dma_read_ack <= 0;
dma_read_in_flight <= 0;
end
else begin
case(state)
0: if(~ram_busy) begin
if(~dma_write_ack & dma_write_req) begin
ram_addr <= {3'b001, dmaWriteAddr[28:3]};
ram_be <= {6'b000000,dmaWriteBE}<<{dmaWriteAddr[2:1],1'b0};
ram_din <= {dmaWriteDat,dmaWriteDat,dmaWriteDat,dmaWriteDat};
ram_we <= 1;
dma_write_ack <= 1;
end
else if(~dma_read_ack & dma_read_req & ~dma_read_in_flight) begin
ram_addr <= {3'b001, dmaReadAddr[28:3]};
ram_be <= 8'hFF;
ram_rd <= 1;
dmaReadBA <= dmaReadAddr[2:1];
dma_read_in_flight <= 1;
state <= 1;
end
else if(~write_ack & write_req) begin
ram_addr <= {3'b001, writeAddr[28:3]};
ram_be <= {6'b000000,writeBE}<<{writeAddr[2:1],1'b0};
ram_din <= {writeDat,writeDat,writeDat,writeDat};
ram_we <= 1;
write_ack <= 1;
end
else if(cache_req) begin
ram_addr <= {3'b001, cpuAddr[28:3]};
ram_be <= 8'hFF;
ram_rd <= 1;
ba <= cpuAddr[2:1];
state <= 1;
ddr_swap <= ramshared;
end
end
1: if(~ram_busy & ram_dout_ready) begin
if (dma_read_in_flight) begin
dmaRD <= ram_dout[{dmaReadBA, 4'b0000} +:16];
dma_read_ack <= 1;
dma_read_in_flight <= 0;
state <= 0;
end else begin
ddr_data <= ram_dout[{ba, 4'b0000} +:16];
dout <= ram_dout;
cache_fill <= 1;
ba <= ba + 1'd1;
state <= state + 1'd1;
end
end
2,3: begin
cache_fill <= 1;
ba <= ba + 1'd1;
state <= state + 1'd1;
end
4: begin
cache_fill <= 1;
state <= 0;
end
endcase
if(~write_req) write_ack <= 0;
if(~dma_write_req) dma_write_ack <= 0;
if(~dma_read_req) dma_read_ack <= 0;
end
end
endmodule
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