mor1kx-bemicrocv/ip/altera/ddr3/sequencer_reg_file.sv

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2016-08-04 19:22:38 +02:00
// (C) 2001-2015 Altera Corporation. All rights reserved.
// Your use of Altera Corporation's design tools, logic functions and other
// software and tools, and its AMPP partner logic functions, and any output
// files any of the foregoing (including device programming or simulation
// files), and any associated documentation or information are expressly subject
// to the terms and conditions of the Altera Program License Subscription
// Agreement, Altera MegaCore Function License Agreement, or other applicable
// license agreement, including, without limitation, that your use is for the
// sole purpose of programming logic devices manufactured by Altera and sold by
// Altera or its authorized distributors. Please refer to the applicable
// agreement for further details.
`timescale 1 ps / 1 ps
// ******
// reg_file
// ******
//
// Register file
//
// General Description
// -------------------
//
// This component stores all configuration/parameterization information
// that other components need to calibrate.
//
// Architecture
// ------------
//
// The PHY Manager is organized as an
// - Avalon Interface: it's a Memory-Mapped interface to the Avalon
// Bus.
// - Register File: The "register file" of read/write registers
//
module sequencer_reg_file (
// Avalon Interface
avl_clk,
avl_reset_n,
avl_address,
avl_write,
avl_writedata,
avl_read,
avl_readdata,
avl_waitrequest,
avl_be
);
parameter AVL_DATA_WIDTH = 32;
parameter AVL_ADDR_WIDTH = 4;
parameter AVL_NUM_SYMBOLS = 4;
parameter AVL_SYMBOL_WIDTH = 8;
parameter REGISTER_RDATA = 0;
parameter NUM_REGFILE_WORDS = 16;
parameter DEBUG_REG_FILE_WORD = 2;
input avl_clk;
input avl_reset_n;
input [AVL_ADDR_WIDTH - 1:0] avl_address;
input avl_write;
input [AVL_DATA_WIDTH - 1:0] avl_writedata;
input [AVL_NUM_SYMBOLS - 1:0] avl_be;
input avl_read;
output [AVL_DATA_WIDTH - 1:0] avl_readdata;
output avl_waitrequest;
// synthesis translate_off
//Internal versions of request signals
reg [AVL_ADDR_WIDTH-1 : 0] int_addr;
reg [AVL_NUM_SYMBOLS - 1 : 0] int_be;
reg [AVL_DATA_WIDTH - 1 : 0] int_rdata;
reg [AVL_DATA_WIDTH - 1 : 0] int_rdata_reg;
// synthesis translate_on
logic int_waitrequest;
// synthesis translate_off
reg [AVL_DATA_WIDTH - 1 : 0] int_wdata;
logic [AVL_DATA_WIDTH - 1 : 0] int_wdata_wire;
reg [AVL_DATA_WIDTH-1 : 0] reg_file [0 : NUM_REGFILE_WORDS-1] /* synthesis syn_ramstyle = "logic" */;
integer i, b;
// synthesis translate_on
//State machine states
typedef enum int unsigned {
INIT,
IDLE,
WRITE2,
READ2,
READ3,
READ4
} avalon_state_t;
avalon_state_t state;
always_ff @ (posedge avl_clk or negedge avl_reset_n) begin
if (~avl_reset_n)
state <= INIT;
else begin
if (state == READ2)
state <= READ3;
else if ((state == READ3) && (REGISTER_RDATA))
state <= READ4;
else if (state == IDLE)
if (avl_read)
state <= READ2;
else if (avl_write)
state <= WRITE2;
else
state <= IDLE;
else
state <= IDLE;
end
end
assign int_waitrequest = (state == IDLE) || (state == WRITE2) || ((state == READ4) && (REGISTER_RDATA)) || ((state == READ3) && (REGISTER_RDATA == 0)) ? 1'b0 : 1'b1;
// synthesis translate_off
generate
if (0) begin
// synthesis translate_on
altsyncram altsyncram_component (
.aclr0 (!avl_reset_n),
.address_a (avl_address),
.address_b (avl_address),
.byteena_a (avl_be),
.clock0 (avl_clk),
.clocken0 (1'b1),
.data_a (avl_writedata),
.q_b (avl_readdata),
.wren_a (avl_write));
defparam
altsyncram_component.address_aclr_b = "CLEAR0",
altsyncram_component.address_reg_b = "CLOCK0",
altsyncram_component.clock_enable_input_a = "BYPASS",
altsyncram_component.clock_enable_input_b = "BYPASS",
altsyncram_component.clock_enable_output_b = "BYPASS",
altsyncram_component.intended_device_family = "Stratix III",
altsyncram_component.lpm_type = "altsyncram",
altsyncram_component.operation_mode = "DUAL_PORT", altsyncram_component.outdata_reg_b = REGISTER_RDATA ? "CLOCK0" : "UNREGISTERED",
altsyncram_component.power_up_uninitialized = "FALSE",
altsyncram_component.ram_block_type = "MLAB",
altsyncram_component.rdcontrol_reg_b = "CLOCK0",
altsyncram_component.numwords_a = NUM_REGFILE_WORDS,
altsyncram_component.numwords_b = NUM_REGFILE_WORDS,
altsyncram_component.widthad_a = AVL_ADDR_WIDTH,
altsyncram_component.widthad_b = AVL_ADDR_WIDTH,
altsyncram_component.width_a = AVL_DATA_WIDTH,
altsyncram_component.width_b = AVL_DATA_WIDTH,
altsyncram_component.width_byteena_a = AVL_NUM_SYMBOLS,
altsyncram_component.width_byteena_b = AVL_NUM_SYMBOLS;
// synthesis translate_off
end
endgenerate
always_ff @ (posedge avl_clk or negedge avl_reset_n) begin
if (~avl_reset_n) begin
int_addr <= 0;
int_wdata <= 0;
int_be <= 0;
end
else if (int_waitrequest == 0) begin
int_addr <= avl_address;
int_wdata <= avl_writedata;
int_be <= avl_be;
end
end
always_ff @ (posedge avl_clk or negedge avl_reset_n) begin
if (~avl_reset_n) begin
int_rdata <= 0;
end
else begin
if (state == READ2)
if (int_addr < NUM_REGFILE_WORDS) begin
int_rdata <= reg_file[int_addr];
end
else begin
int_rdata <= 0;
end
else
int_rdata <= 0;
end
end
property p_illegal_read_addr;
@(posedge avl_clk)
disable iff (!avl_reset_n)
(state == READ2) |-> (int_addr < NUM_REGFILE_WORDS);
endproperty
a_illegal_read_addr : assert property (p_illegal_read_addr);
always_comb begin
int_wdata_wire <= reg_file[int_addr];
for (b=0; b < AVL_NUM_SYMBOLS; b++)
if (int_be[b])
int_wdata_wire[(b+1)*AVL_SYMBOL_WIDTH-1-:AVL_SYMBOL_WIDTH] <= int_wdata[(b+1)*AVL_SYMBOL_WIDTH-1-:AVL_SYMBOL_WIDTH];
end
always_ff @ (posedge avl_clk or negedge avl_reset_n) begin
if (~avl_reset_n) begin
for (i=0; i < NUM_REGFILE_WORDS; i++)
reg_file[i] <= 0;
end
else begin
i = 0;
if (state == WRITE2)
if (int_addr < NUM_REGFILE_WORDS) begin
reg_file[int_addr] <= int_wdata_wire;
end
else begin
end
end
end
property p_illegal_write_addr;
@(posedge avl_clk)
disable iff (!avl_reset_n)
(state == WRITE2) |-> (int_addr < NUM_REGFILE_WORDS);
endproperty
a_illegal_write_addr : assert property (p_illegal_write_addr);
generate
if (REGISTER_RDATA) begin
always_ff @ (posedge avl_clk or negedge avl_reset_n) begin
if (~avl_reset_n)
int_rdata_reg <= 0;
else
int_rdata_reg <= int_rdata;
end
assign avl_readdata = int_rdata_reg;
end
else
assign avl_readdata = int_rdata;
endgenerate
// synthesis translate_on
assign avl_waitrequest = ((state == IDLE) && ((avl_read == 1) || (avl_write == 1))) ? 1'b1 : int_waitrequest;
// synthesis translate_off
//The register file has a specific word which is expected to be the current
wire [15:0] current_seq_stage;
wire [15:0] current_seq_group;
assign current_seq_stage = reg_file[DEBUG_REG_FILE_WORD][15:0];
assign current_seq_group = reg_file[DEBUG_REG_FILE_WORD][31:16];
// synthesis translate_on
endmodule