|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| module ddram
|
| (
|
| input 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,
|
|
|
| input [27:1] wraddr,
|
| input [15:0] din,
|
| input we_req,
|
| output reg we_ack,
|
|
|
| input [27:1] rdaddr,
|
| output [15:0] dout,
|
| input [15:0] rom_din,
|
| input [1:0] rom_be,
|
| input rom_we,
|
| input rom_req,
|
| output reg rom_ack,
|
|
|
| input [27:1] rdaddr2,
|
| output [15:0] dout2,
|
| input rd_req2,
|
| output reg rd_ack2
|
| );
|
|
|
| assign DDRAM_BURSTCNT = ram_burst;
|
| assign DDRAM_BE = ram_be | {8{ram_read}};
|
| assign DDRAM_ADDR = {4'b0011, ram_address};
|
| assign DDRAM_RD = ram_read;
|
| assign DDRAM_DIN = ram_data;
|
| assign DDRAM_WE = ram_write;
|
|
|
| assign dout = ram_q[{rdaddr[2:1], 4'b0000} +:16];
|
| assign dout2 = ram_q2[{rdaddr2[2:1], 4'b0000} +:16];
|
|
|
| reg [7:0] ram_burst;
|
| reg [63:0] ram_q, next_q, ram_q2, next_q2;
|
| reg [63:0] ram_data;
|
| reg [27:3] ram_address, cache_addr, cache_addr2;
|
| reg ram_read = 0;
|
| reg ram_write = 0;
|
| reg [7:0] ram_be = 0;
|
|
|
| reg [1:0] state = 0;
|
| reg ch = 0;
|
|
|
| always @(posedge DDRAM_CLK) begin
|
|
|
| if(!DDRAM_BUSY) begin
|
| ram_write <= 0;
|
| ram_read <= 0;
|
|
|
| case(state)
|
| 0: if(we_ack != we_req) begin
|
| ram_be <= 8'd3<<{wraddr[2:1],1'b0};
|
| ram_data <= {4{din}};
|
| ram_address <= wraddr[27:3];
|
| ram_write <= 1;
|
| ram_burst <= 1;
|
| ch <= 1;
|
| state <= 1;
|
| end
|
| else if(rom_req != rom_ack) begin
|
| if(rom_we) begin
|
| ram_be <= {6'd0,rom_be}<<{rdaddr[2:1],1'b0};
|
| ram_data <= {4{rom_din}};
|
| ram_address <= rdaddr[27:3];
|
| ram_write <= 1;
|
| ram_burst <= 1;
|
| ch <= 0;
|
| state <= 1;
|
| end
|
| else if(cache_addr == rdaddr[27:3]) rom_ack <= rom_req;
|
| else if((cache_addr+1'd1) == rdaddr[27:3]) begin
|
| rom_ack <= rom_req;
|
| ram_q <= next_q;
|
| cache_addr <= rdaddr[27:3];
|
| ram_address <= rdaddr[27:3]+1'd1;
|
| ram_read <= 1;
|
| ram_burst <= 1;
|
| ch <= 0;
|
| state <= 3;
|
| end
|
| else begin
|
| ram_address <= rdaddr[27:3];
|
| cache_addr <= rdaddr[27:3];
|
| ram_read <= 1;
|
| ram_burst <= 2;
|
| ch <= 0;
|
| state <= 2;
|
| end
|
| end
|
| else if(rd_req2 != rd_ack2) begin
|
| if(cache_addr2 == rdaddr2[27:3]) rd_ack2 <= rd_req2;
|
| else if((cache_addr2+1'd1) == rdaddr2[27:3]) begin
|
| rd_ack2 <= rd_req2;
|
| ram_q2 <= next_q2;
|
| cache_addr2 <= rdaddr2[27:3];
|
| ram_address <= rdaddr2[27:3]+1'd1;
|
| ram_read <= 1;
|
| ram_burst <= 1;
|
| ch <= 1;
|
| state <= 3;
|
| end
|
| else begin
|
| ram_address <= rdaddr2[27:3];
|
| cache_addr2 <= rdaddr2[27:3];
|
| ram_read <= 1;
|
| ram_burst <= 2;
|
| ch <= 1;
|
| state <= 2;
|
| end
|
| end
|
|
|
| 1: begin
|
| cache_addr <= '1;
|
| cache_addr2 <= '1;
|
| cache_addr[3] <= 0;
|
| cache_addr2[3] <= 0;
|
| if(ch) we_ack <= we_req;
|
| else rom_ack <= rom_req;
|
| state <= 0;
|
| end
|
|
|
| 2: if(DDRAM_DOUT_READY) begin
|
| if (~ch) begin
|
| ram_q <= DDRAM_DOUT;
|
| rom_ack <= rom_req;
|
| end
|
| else begin
|
| ram_q2 <= DDRAM_DOUT;
|
| rd_ack2 <= rd_req2;
|
| end
|
| state <= 3;
|
| end
|
|
|
| 3: if(DDRAM_DOUT_READY) begin
|
| if (~ch) begin
|
| next_q <= DDRAM_DOUT;
|
| end
|
| else begin
|
| next_q2 <= DDRAM_DOUT;
|
| end
|
| state <= 0;
|
| end
|
| endcase
|
| end
|
| end
|
|
|
| endmodule
|
|
|