fpga: x440: refactor rf_core_full to use parameters on ports

Original-commit: 40bd20d240b2ee60ec58ad5a00a9ec9eebd1e9af
This commit is contained in:
Max Köhler
2024-08-21 08:06:41 -05:00
committed by Wade Fife
parent 08f8b269fa
commit ea4f2ff009
10 changed files with 281 additions and 889 deletions
+3 -2
View File
@@ -55,7 +55,7 @@ endif
# Sources # Sources
################################################## ##################################################
TOP_SRCS = \ TOP_SRCS = \
x4xx.v \ x4xx.sv \
x4xx_core.v \ x4xx_core.v \
x4xx_core_common.v \ x4xx_core_common.v \
x4xx_global_regs.v \ x4xx_global_regs.v \
@@ -90,7 +90,8 @@ endif
ifdef X440 ifdef X440
TOP_SRCS += \ TOP_SRCS += \
rf/100m/rf_core_100m.v \ rf/100m/rf_core_100m.v \
rf/full/rf_core_full.v \ rf/full/rf_core_full.sv \
rf/common/adc_iq_repacker.v \
rf/x440/x440_rf_reset_controller.vhd \ rf/x440/x440_rf_reset_controller.vhd \
dboards/fbx/db_gpio_interface.v \ dboards/fbx/db_gpio_interface.v \
dboards/fbx/ctrlport_to_i2c_sync_ctrl.v \ dboards/fbx/ctrlport_to_i2c_sync_ctrl.v \
-3
View File
@@ -34,7 +34,6 @@ include $(IP_DIR)/x4xx_ps_rfdc_bd/x410_ps_rfdc_bd/Makefile.inc
endif endif
ifdef X440 ifdef X440
include $(IP_DIR)/adc_full_bd/Makefile.inc
include $(IP_DIR)/adc_100m_bd/Makefile.inc include $(IP_DIR)/adc_100m_bd/Makefile.inc
include $(IP_DIR)/dac_100m_bd/Makefile.inc include $(IP_DIR)/dac_100m_bd/Makefile.inc
include $(IP_DIR)/ddr4_64bits_x440/Makefile.inc include $(IP_DIR)/ddr4_64bits_x440/Makefile.inc
@@ -76,7 +75,6 @@ endif
ifdef X440 ifdef X440
BD_SRCS += \ BD_SRCS += \
$(IP_ADC_FULL_BD_SRCS) \
$(IP_ADC_FULL_HDL_SRCS) \ $(IP_ADC_FULL_HDL_SRCS) \
$(IP_ADC_100M_BD_SRCS) \ $(IP_ADC_100M_BD_SRCS) \
$(IP_ADC_100M_HDL_SRCS) \ $(IP_ADC_100M_HDL_SRCS) \
@@ -128,7 +126,6 @@ endif
ifdef X440 ifdef X440
BD_OUTPUTS += \ BD_OUTPUTS += \
$(BD_ADC_FULL_BD_OUTS) \
$(BD_ADC_100M_BD_OUTS) \ $(BD_ADC_100M_BD_OUTS) \
$(BD_DAC_100M_BD_OUTS) $(BD_DAC_100M_BD_OUTS)
endif endif
-38
View File
@@ -1,38 +0,0 @@
#
# Copyright 2022 Ettus Research, a National Instruments Brand
#
# SPDX-License-Identifier: LGPL-3.0-or-later
#
include $(TOOLS_DIR)/make/viv_ip_builder.mak
IP_ADC_FULL_ORIG_SRCS = $(addprefix $(IP_DIR)/adc_full_bd/, \
adc_full_bd.tcl \
)
IP_ADC_FULL_HDL_SRCS = $(addprefix $(BASE_DIR)/x400/rf/, \
common/adc_iq_repacker.v \
)
IP_ADC_FULL_BDTCL_SRCS = $(addprefix $(IP_BUILD_DIR)/adc_full_bd/, \
adc_full_bd.tcl \
)
IP_ADC_FULL_BD_SRCS = $(addprefix $(IP_BUILD_DIR)/adc_full_bd/, \
adc_full_bd/adc_full_bd.bd \
)
BD_ADC_FULL_BD_OUTS = $(addprefix $(IP_BUILD_DIR)/adc_full_bd/, \
adc_full_bd.bd.out \
adc_full_bd/adc_full_bd_ooc.xdc \
adc_full_bd/synth/adc_full_bd.v \
)
EMPTY_IP_SRCS =
.INTERMEDIATE: IP_ADC_FULL_BD_TRGT
$(IP_ADC_FULL_BD_SRCS) $(BD_ADC_FULL_BD_OUTS) $(IP_ADC_FULL_BDTCL_SRCS): IP_ADC_FULL_BD_TRGT
@:
IP_ADC_FULL_BD_TRGT: $(IP_ADC_FULL_ORIG_SRCS) $(IP_ADC_FULL_HDL_SRCS)
$(call BUILD_VIVADO_BDTCL,adc_full_bd,$(ARCH),$(PART_ID),$(IP_DIR),$(IP_BUILD_DIR),$(EMPTY_IP_SRCS),$(IP_ADC_FULL_HDL_SRCS),)
-338
View File
@@ -1,338 +0,0 @@
################################################################
# This is a generated script based on design: adc_full_bd
#
# Though there are limitations about the generated script,
# the main purpose of this utility is to make learning
# IP Integrator Tcl commands easier.
################################################################
namespace eval _tcl {
proc get_script_folder {} {
set script_path [file normalize [info script]]
set script_folder [file dirname $script_path]
return $script_folder
}
}
variable script_folder
set script_folder [_tcl::get_script_folder]
################################################################
# Check if script is running in correct Vivado version.
################################################################
set scripts_vivado_version 2021.1
set current_vivado_version [version -short]
if { [string first $scripts_vivado_version $current_vivado_version] == -1 } {
puts ""
catch {common::send_gid_msg -ssname BD::TCL -id 2041 -severity "ERROR" "This script was generated using Vivado <$scripts_vivado_version> and is being run in <$current_vivado_version> of Vivado. Please run the script in Vivado <$scripts_vivado_version> then open the design in Vivado <$current_vivado_version>. Upgrade the design by running \"Tools => Report => Report IP Status...\", then run write_bd_tcl to create an updated script."}
return 1
}
################################################################
# START
################################################################
# To test this script, run the following commands from Vivado Tcl console:
# source adc_full_bd_script.tcl
# The design that will be created by this Tcl script contains the following
# module references:
# adc_iq_repacker
# Please add the sources of those modules before sourcing this Tcl script.
# If there is no project opened, this script will create a
# project, but make sure you do not have an existing project
# <./myproj/project_1.xpr> in the current working folder.
set list_projs [get_projects -quiet]
if { $list_projs eq "" } {
create_project project_1 myproj -part xczu28dr-ffvg1517-2-e
}
# CHANGE DESIGN NAME HERE
variable design_name
set design_name adc_full_bd
# If you do not already have an existing IP Integrator design open,
# you can create a design using the following command:
# create_bd_design $design_name
# Creating design if needed
set errMsg ""
set nRet 0
set cur_design [current_bd_design -quiet]
set list_cells [get_bd_cells -quiet]
if { ${design_name} eq "" } {
# USE CASES:
# 1) Design_name not set
set errMsg "Please set the variable <design_name> to a non-empty value."
set nRet 1
} elseif { ${cur_design} ne "" && ${list_cells} eq "" } {
# USE CASES:
# 2): Current design opened AND is empty AND names same.
# 3): Current design opened AND is empty AND names diff; design_name NOT in project.
# 4): Current design opened AND is empty AND names diff; design_name exists in project.
if { $cur_design ne $design_name } {
common::send_gid_msg -ssname BD::TCL -id 2001 -severity "INFO" "Changing value of <design_name> from <$design_name> to <$cur_design> since current design is empty."
set design_name [get_property NAME $cur_design]
}
common::send_gid_msg -ssname BD::TCL -id 2002 -severity "INFO" "Constructing design in IPI design <$cur_design>..."
} elseif { ${cur_design} ne "" && $list_cells ne "" && $cur_design eq $design_name } {
# USE CASES:
# 5) Current design opened AND has components AND same names.
set errMsg "Design <$design_name> already exists in your project, please set the variable <design_name> to another value."
set nRet 1
} elseif { [get_files -quiet ${design_name}.bd] ne "" } {
# USE CASES:
# 6) Current opened design, has components, but diff names, design_name exists in project.
# 7) No opened design, design_name exists in project.
set errMsg "Design <$design_name> already exists in your project, please set the variable <design_name> to another value."
set nRet 2
} else {
# USE CASES:
# 8) No opened design, design_name not in project.
# 9) Current opened design, has components, but diff names, design_name not in project.
common::send_gid_msg -ssname BD::TCL -id 2003 -severity "INFO" "Currently there is no design <$design_name> in project, so creating one..."
create_bd_design $design_name
common::send_gid_msg -ssname BD::TCL -id 2004 -severity "INFO" "Making design <$design_name> as current_bd_design."
current_bd_design $design_name
}
# Add USER_COMMENTS on $design_name
set_property USER_COMMENTS.comment_0 "Scale_2x is a simple shift to left by 2 logic and does not need any pipeline stage" [get_bd_designs $design_name]
common::send_gid_msg -ssname BD::TCL -id 2005 -severity "INFO" "Currently the variable <design_name> is equal to \"$design_name\"."
if { $nRet != 0 } {
catch {common::send_gid_msg -ssname BD::TCL -id 2006 -severity "ERROR" $errMsg}
return $nRet
}
set bCheckIPsPassed 1
##################################################################
# CHECK IPs
##################################################################
set bCheckIPs 1
if { $bCheckIPs == 1 } {
set list_check_ips "\
xilinx.com:ip:axis_register_slice:1.1\
xilinx.com:ip:xlconstant:1.1\
"
set list_ips_missing ""
common::send_gid_msg -ssname BD::TCL -id 2011 -severity "INFO" "Checking if the following IPs exist in the project's IP catalog: $list_check_ips ."
foreach ip_vlnv $list_check_ips {
set ip_obj [get_ipdefs -all $ip_vlnv]
if { $ip_obj eq "" } {
lappend list_ips_missing $ip_vlnv
}
}
if { $list_ips_missing ne "" } {
catch {common::send_gid_msg -ssname BD::TCL -id 2012 -severity "ERROR" "The following IPs are not found in the IP Catalog:\n $list_ips_missing\n\nResolution: Please add the repository containing the IP(s) to the project." }
set bCheckIPsPassed 0
}
}
##################################################################
# CHECK Modules
##################################################################
set bCheckModules 1
if { $bCheckModules == 1 } {
set list_check_mods "\
adc_iq_repacker\
"
set list_mods_missing ""
common::send_gid_msg -ssname BD::TCL -id 2020 -severity "INFO" "Checking if the following modules exist in the project's sources: $list_check_mods ."
foreach mod_vlnv $list_check_mods {
if { [can_resolve_reference $mod_vlnv] == 0 } {
lappend list_mods_missing $mod_vlnv
}
}
if { $list_mods_missing ne "" } {
catch {common::send_gid_msg -ssname BD::TCL -id 2021 -severity "ERROR" "The following module(s) are not found in the project: $list_mods_missing" }
common::send_gid_msg -ssname BD::TCL -id 2022 -severity "INFO" "Please add source files for the missing module(s) above."
set bCheckIPsPassed 0
}
}
if { $bCheckIPsPassed != 1 } {
common::send_gid_msg -ssname BD::TCL -id 2023 -severity "WARNING" "Will not continue with creation of design due to the error(s) above."
return 3
}
##################################################################
# DESIGN PROCs
##################################################################
# Procedure to create entire design; Provide argument to make
# procedure reusable. If parentCell is "", will use root.
proc create_root_design { parentCell } {
variable script_folder
variable design_name
if { $parentCell eq "" } {
set parentCell [get_bd_cells /]
}
# Get object for parentCell
set parentObj [get_bd_cells $parentCell]
if { $parentObj == "" } {
catch {common::send_gid_msg -ssname BD::TCL -id 2090 -severity "ERROR" "Unable to find parent cell <$parentCell>!"}
return
}
# Make sure parentObj is hier blk
set parentType [get_property TYPE $parentObj]
if { $parentType ne "hier" } {
catch {common::send_gid_msg -ssname BD::TCL -id 2091 -severity "ERROR" "Parent <$parentObj> has TYPE = <$parentType>. Expected to be <hier>."}
return
}
# Save current instance; Restore later
set oldCurInst [current_bd_instance .]
# Set parent object as current
current_bd_instance $parentObj
# Create interface ports
set adc_data_out [ create_bd_intf_port -mode Master -vlnv xilinx.com:interface:axis_rtl:1.0 adc_data_out ]
set_property -dict [ list \
CONFIG.FREQ_HZ {512000000} \
] $adc_data_out
set adc_i_data_in [ create_bd_intf_port -mode Slave -vlnv xilinx.com:interface:axis_rtl:1.0 adc_i_data_in ]
set_property -dict [ list \
CONFIG.FREQ_HZ {512000000} \
CONFIG.HAS_TKEEP {0} \
CONFIG.HAS_TLAST {0} \
CONFIG.HAS_TREADY {1} \
CONFIG.HAS_TSTRB {0} \
CONFIG.LAYERED_METADATA {undef} \
CONFIG.TDATA_NUM_BYTES {16} \
CONFIG.TDEST_WIDTH {0} \
CONFIG.TID_WIDTH {0} \
CONFIG.TUSER_WIDTH {0} \
] $adc_i_data_in
set adc_q_data_in [ create_bd_intf_port -mode Slave -vlnv xilinx.com:interface:axis_rtl:1.0 adc_q_data_in ]
set_property -dict [ list \
CONFIG.FREQ_HZ {512000000} \
CONFIG.HAS_TKEEP {0} \
CONFIG.HAS_TLAST {0} \
CONFIG.HAS_TREADY {1} \
CONFIG.HAS_TSTRB {0} \
CONFIG.LAYERED_METADATA {undef} \
CONFIG.TDATA_NUM_BYTES {16} \
CONFIG.TDEST_WIDTH {0} \
CONFIG.TID_WIDTH {0} \
CONFIG.TUSER_WIDTH {0} \
] $adc_q_data_in
# Create ports
set enable_data_to_repacker_rclk [ create_bd_port -dir I enable_data_to_repacker_rclk ]
set rfdc_adc_axi_resetn_rclk [ create_bd_port -dir I -type rst rfdc_adc_axi_resetn_rclk ]
set rfdc_clk [ create_bd_port -dir I -type clk -freq_hz 512000000 rfdc_clk ]
set swap_iq_rclk [ create_bd_port -dir I swap_iq_rclk ]
# Create instance: adc_data_to_axi, and set properties
set adc_data_to_axi [ create_bd_cell -type ip -vlnv xilinx.com:ip:axis_register_slice:1.1 adc_data_to_axi ]
set_property -dict [ list \
CONFIG.REG_CONFIG {1} \
CONFIG.TDATA_NUM_BYTES {32} \
] $adc_data_to_axi
# Create instance: adc_i_data_from_axi, and set properties
set adc_i_data_from_axi [ create_bd_cell -type ip -vlnv xilinx.com:ip:axis_register_slice:1.1 adc_i_data_from_axi ]
set_property -dict [ list \
CONFIG.REG_CONFIG {0} \
CONFIG.TDATA_NUM_BYTES {16} \
] $adc_i_data_from_axi
# Create instance: adc_iq_repacker, and set properties
set block_name adc_iq_repacker
set block_cell_name adc_iq_repacker
if { [catch {set adc_iq_repacker [create_bd_cell -type module -reference $block_name $block_cell_name] } errmsg] } {
catch {common::send_gid_msg -ssname BD::TCL -id 2095 -severity "ERROR" "Unable to add referenced block <$block_name>. Please add the files for ${block_name}'s definition into the project."}
return 1
} elseif { $adc_iq_repacker eq "" } {
catch {common::send_gid_msg -ssname BD::TCL -id 2096 -severity "ERROR" "Unable to referenced block <$block_name>. Please add the files for ${block_name}'s definition into the project."}
return 1
}
set_property -dict [ list \
CONFIG.SPC {8} \
] $adc_iq_repacker
# Create instance: adc_q_data_from_axi, and set properties
set adc_q_data_from_axi [ create_bd_cell -type ip -vlnv xilinx.com:ip:axis_register_slice:1.1 adc_q_data_from_axi ]
set_property -dict [ list \
CONFIG.REG_CONFIG {0} \
CONFIG.TDATA_NUM_BYTES {16} \
] $adc_q_data_from_axi
# Create instance: const_1, and set properties
set const_1 [ create_bd_cell -type ip -vlnv xilinx.com:ip:xlconstant:1.1 const_1 ]
# Create interface connections
connect_bd_intf_net -intf_net adc_i_data_in_1 [get_bd_intf_ports adc_i_data_in] [get_bd_intf_pins adc_i_data_from_axi/S_AXIS]
connect_bd_intf_net -intf_net adc_iq_repacker_0_data_out [get_bd_intf_pins adc_data_to_axi/S_AXIS] [get_bd_intf_pins adc_iq_repacker/data_out]
connect_bd_intf_net -intf_net adc_q_data_from_axi1_M_AXIS [get_bd_intf_ports adc_data_out] [get_bd_intf_pins adc_data_to_axi/M_AXIS]
connect_bd_intf_net -intf_net adc_q_data_in_1 [get_bd_intf_ports adc_q_data_in] [get_bd_intf_pins adc_q_data_from_axi/S_AXIS]
# Create port connections
connect_bd_net -net adc_i_data_from_axi_m_axis_tdata [get_bd_pins adc_i_data_from_axi/m_axis_tdata] [get_bd_pins adc_iq_repacker/adc_i_in]
connect_bd_net -net adc_i_data_from_axi_m_axis_tvalid [get_bd_pins adc_i_data_from_axi/m_axis_tvalid] [get_bd_pins adc_iq_repacker/valid_in]
connect_bd_net -net adc_q_data_from_axi_m_axis_tdata [get_bd_pins adc_iq_repacker/adc_q_in] [get_bd_pins adc_q_data_from_axi/m_axis_tdata]
connect_bd_net -net const_1_dout [get_bd_pins adc_i_data_from_axi/m_axis_tready] [get_bd_pins adc_q_data_from_axi/m_axis_tready] [get_bd_pins const_1/dout]
connect_bd_net -net enable_data_to_repacker_rclk_1 [get_bd_ports enable_data_to_repacker_rclk] [get_bd_pins adc_iq_repacker/enable]
connect_bd_net -net rfdc_adc_axi_resetn_rclk_1 [get_bd_ports rfdc_adc_axi_resetn_rclk] [get_bd_pins adc_data_to_axi/aresetn] [get_bd_pins adc_i_data_from_axi/aresetn] [get_bd_pins adc_q_data_from_axi/aresetn]
connect_bd_net -net rfdc_clk_1 [get_bd_ports rfdc_clk] [get_bd_pins adc_data_to_axi/aclk] [get_bd_pins adc_i_data_from_axi/aclk] [get_bd_pins adc_iq_repacker/clk] [get_bd_pins adc_q_data_from_axi/aclk]
connect_bd_net -net swap_iq_rclk_1 [get_bd_ports swap_iq_rclk] [get_bd_pins adc_iq_repacker/swap_iq]
# Create address segments
# Restore current instance
current_bd_instance $oldCurInst
validate_bd_design
save_bd_design
}
# End of create_root_design()
##################################################################
# MAIN FLOW
##################################################################
create_root_design ""
-6
View File
@@ -1,6 +0,0 @@
set script_loc [file normalize [info script]]
set script_dir [file dirname $script_loc]
# Vivado's block diagram default library for files not belonging to any special
# library is called xil_defaultlib
read_verilog -library xil_defaultlib $script_dir/../../rf/common/adc_iq_repacker.v
@@ -89,13 +89,13 @@
// Enumerated type RF_CORE_FULL_VERSION // Enumerated type RF_CORE_FULL_VERSION
localparam RF_CORE_FULL_VERSION_SIZE = 7; localparam RF_CORE_FULL_VERSION_SIZE = 7;
localparam RF_CORE_FULL_CURRENT_VERSION_MINOR = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_CURRENT_VERSION_MINOR localparam RF_CORE_FULL_CURRENT_VERSION_MINOR = 'h1; // RF_CORE_FULL_VERSION:RF_CORE_FULL_CURRENT_VERSION_MINOR
localparam RF_CORE_FULL_CURRENT_VERSION_BUILD = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_CURRENT_VERSION_BUILD localparam RF_CORE_FULL_CURRENT_VERSION_BUILD = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_CURRENT_VERSION_BUILD
localparam RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR localparam RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR
localparam RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD localparam RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD = 'h0; // RF_CORE_FULL_VERSION:RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD
localparam RF_CORE_FULL_CURRENT_VERSION_MAJOR = 'h1; // RF_CORE_FULL_VERSION:RF_CORE_FULL_CURRENT_VERSION_MAJOR localparam RF_CORE_FULL_CURRENT_VERSION_MAJOR = 'h1; // RF_CORE_FULL_VERSION:RF_CORE_FULL_CURRENT_VERSION_MAJOR
localparam RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR = 'h1; // RF_CORE_FULL_VERSION:RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR localparam RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR = 'h1; // RF_CORE_FULL_VERSION:RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR
localparam RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME = 'h22062900; // RF_CORE_FULL_VERSION:RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME localparam RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME = 'h24080915; // RF_CORE_FULL_VERSION:RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME
//=============================================================================== //===============================================================================
// Register Group VERSIONING_REGS // Register Group VERSIONING_REGS
+1 -1
View File
@@ -5,5 +5,5 @@
# #
RF_FULL_SRCS = $(abspath $(addprefix $(BASE_DIR)/../top/x400/rf/full/, \ RF_FULL_SRCS = $(abspath $(addprefix $(BASE_DIR)/../top/x400/rf/full/, \
rf_core_full.v \ rf_core_full.sv \
)) ))
+256
View File
@@ -0,0 +1,256 @@
//
// Copyright 2024 Ettus Research, a National Instruments Brand
//
// SPDX-License-Identifier: LGPL-3.0-or-later
//
// Module: rf_core_full
//
// Description:
//
// Top-level wrapper for the ADC/DAC processing logic. One of these wrappers
// exists for every supported Data Rate. An instance of this core should
// exist per dboard.
//
// Data/RF Specs:
// DBs: 1
// RX/DB: via parameter NUM_ADC_CHANNELS
// TX/DB: via parameter NUM_DAC_CHANNELS
// Data Rate: rfdc_clk @ RADIO_SPC
//
`default_nettype none
module rf_core_full # (
parameter NUM_ADC_CHANNELS = 4,
parameter NUM_DAC_CHANNELS = 4,
parameter RADIO_SPC = 8
) (
//---------------------------------------------------------------------------
// Clocking
//---------------------------------------------------------------------------
// Main Clock Inputs
input wire rfdc_clk,
// AXI4-Lite Config Clock
// This clock is used to synchronize status bits for the RFDC
// registers in the AXI-S clock domain.
input wire s_axi_config_clk,
//---------------------------------------------------------------------------
// RFDC Data Interfaces
//---------------------------------------------------------------------------
// All ports here are in the rfdc_clk domain.
// ADC
input wire [16*RADIO_SPC-1:0] adc_data_in_i_tdata [0:NUM_ADC_CHANNELS-1],
output wire [NUM_ADC_CHANNELS-1:0] adc_data_in_i_tready,
input wire [NUM_ADC_CHANNELS-1:0] adc_data_in_i_tvalid,
input wire [16*RADIO_SPC-1:0] adc_data_in_q_tdata [0:NUM_ADC_CHANNELS-1],
output wire [NUM_ADC_CHANNELS-1:0] adc_data_in_q_tready,
input wire [NUM_ADC_CHANNELS-1:0] adc_data_in_q_tvalid,
// DAC
output wire [32*RADIO_SPC-1:0] dac_data_out_tdata [0:NUM_DAC_CHANNELS-1],
input wire [NUM_ADC_CHANNELS-1:0] dac_data_out_tready,
output wire [NUM_ADC_CHANNELS-1:0] dac_data_out_tvalid,
//---------------------------------------------------------------------------
// User Data Interfaces
//---------------------------------------------------------------------------
// All ports here are in the rfdc_clk domain on the X440.
// ADC
// Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire [32*RADIO_SPC-1:0] adc_data_out_tdata [0:NUM_ADC_CHANNELS-1],
output wire [NUM_ADC_CHANNELS-1:0] adc_data_out_tvalid,
// DAC
input wire [32*RADIO_SPC-1:0] dac_data_in_tdata [0:NUM_DAC_CHANNELS-1],
output wire [NUM_ADC_CHANNELS-1:0] dac_data_in_tready,
input wire [NUM_ADC_CHANNELS-1:0] dac_data_in_tvalid,
//---------------------------------------------------------------------------
// Miscellaneous
//---------------------------------------------------------------------------
// Invert I/Q control signals from RFDC to DSP chain.
input wire [NUM_ADC_CHANNELS-1:0] invert_adc_iq_rclk,
input wire [NUM_ADC_CHANNELS-1:0] invert_dac_iq_rclk,
// Control/status vectors from/to RFDC.
// Notice these are all in the s_axi_config_clk domain.
output wire [ 9:0] dsp_info_sclk,
output wire [15:0] axi_status_sclk,
output wire [15:0] rfdc_info_sclk,
// Resets.
input wire adc_enable_data_rclk,
input wire adc_rfdc_axi_resetn_rclk,
// Version (Constant)
output wire [95:0] version_info
);
`include "../../regmap/x440/rfdc_regs_regmap_utils.vh"
`include "../../regmap/x440/versioning_regs_regmap_utils.vh"
`include "../../regmap/versioning_utils.vh"
//---------------------------------------------------------------------------
// Resets, Debug and Misc.
//---------------------------------------------------------------------------
wire [15:0] axi_status;
// Group all these status bits together. They don't toggle frequently so data
// coherency is not an issue here.
// Using constants for DB0 since the bits are the 16 LSBs in a 32-bit vector.
// DB1 simply uses the 16 MSBs when wiring the status vector.
// There is no tready going to the ADC (one has to be always ready for ADC
// data), but it is still a component of the axi_status vector as a generic
// AXI stream status. Report 1'b1 to the status vector consistent with being
// always ready
assign axi_status[USER_ADC_TREADY_MSB :USER_ADC_TREADY ] = '1;
assign axi_status[USER_ADC_TVALID_MSB :USER_ADC_TVALID ] = adc_data_out_tvalid;
assign axi_status[RFDC_ADC_I_TVALID_MSB:RFDC_ADC_I_TVALID] = adc_data_in_i_tvalid;
assign axi_status[RFDC_ADC_Q_TVALID_MSB:RFDC_ADC_Q_TVALID] = adc_data_in_q_tvalid;
assign axi_status[RFDC_ADC_I_TREADY_MSB:RFDC_ADC_I_TREADY] = adc_data_in_i_tready;
assign axi_status[RFDC_ADC_Q_TREADY_MSB:RFDC_ADC_Q_TREADY] = adc_data_in_q_tready;
assign axi_status[RFDC_DAC_TVALID_MSB :RFDC_DAC_TVALID ] = dac_data_out_tvalid;
assign axi_status[RFDC_DAC_TREADY_MSB :RFDC_DAC_TREADY ] = dac_data_out_tready;
synchronizer #(
.WIDTH (16),
.STAGES (2),
.INITIAL_VAL (0),
.FALSE_PATH_TO_IN (1)
) synchronizer_axis_status (
.clk (s_axi_config_clk),
.rst (1'b0),
.in (axi_status),
.out (axi_status_sclk)
);
// Drive the DSP info vector with information on this specific DSP chain.
assign dsp_info_sclk[FABRIC_DSP_RX_CNT_MSB:FABRIC_DSP_RX_CNT] = NUM_ADC_CHANNELS;
assign dsp_info_sclk[FABRIC_DSP_TX_CNT_MSB:FABRIC_DSP_TX_CNT] = NUM_DAC_CHANNELS;
// This RF core always consumes 8 SPC from the gearbox per I/Q signal
assign rfdc_info_sclk[RFDC_INFO_SPC_RX_MSB:RFDC_INFO_SPC_RX] = $clog2(8);
assign rfdc_info_sclk[RFDC_INFO_SPC_TX_MSB:RFDC_INFO_SPC_TX] = $clog2(16);
// This RF core module contains no additional resampling
assign rfdc_info_sclk[RFDC_INFO_XTRA_RESAMP_MSB:RFDC_INFO_XTRA_RESAMP] = 4'd1;
//---------------------------------------------------------------------------
// ADC Post-Processing
//---------------------------------------------------------------------------
// ADC Data from the RFDC arrives here with separate I and Q
// streams. It gets combined to a single stream.
for (genvar adc_num = 0; adc_num < (NUM_ADC_CHANNELS); adc_num++)
begin : adc_gen
//signals between packer and register
wire [32*RADIO_SPC-1:0] packer_to_reg_tdata;
wire packer_to_reg_tvalid;
adc_iq_repacker #(
.SPC (RADIO_SPC),
.SAMPLE_WIDTH (16)
) iq_repacker (
.clk (rfdc_clk),
.adc_q_in (adc_data_in_q_tdata[adc_num]),
.adc_i_in (adc_data_in_i_tdata[adc_num]),
.valid_in (adc_data_in_i_tvalid[adc_num]), // taking I stream valid bit only to reduce complexity
.enable (adc_enable_data_rclk),
.swap_iq (invert_adc_iq_rclk[adc_num]),
.data_out_tdata (packer_to_reg_tdata),
.data_out_tvalid (packer_to_reg_tvalid)
);
// Create instances of axi_fifo_flop2 module for each ADC channel
axi_fifo_flop2 #(
.WIDTH (32*RADIO_SPC)
) adc_reg (
.clk (rfdc_clk),
.reset ('0),
.clear ('0),
.i_tdata (packer_to_reg_tdata),
.i_tvalid (packer_to_reg_tvalid),
.i_tready (),
.o_tdata (adc_data_out_tdata[adc_num]),
.o_tvalid (adc_data_out_tvalid[adc_num]),
.o_tready ('1),
.space (),
.occupied ()
);
end
//---------------------------------------------------------------------------
// DAC Pre-Processing
//---------------------------------------------------------------------------
for (genvar dac_num = 0; dac_num < NUM_DAC_CHANNELS; dac_num++)
begin : dac_swap_gen
for (genvar sample_num = 0; sample_num < RADIO_SPC; sample_num++)
begin : sample_swap_gen
assign dac_data_out_tdata[dac_num][32*sample_num+00 +: 16] = invert_dac_iq_rclk[dac_num] ?
dac_data_in_tdata[dac_num][32*sample_num+16 +: 16] :
dac_data_in_tdata[dac_num][32*sample_num+00 +: 16];
assign dac_data_out_tdata[dac_num][32*sample_num+16 +: 16] = invert_dac_iq_rclk[dac_num] ?
dac_data_in_tdata[dac_num][32*sample_num+00 +: 16] :
dac_data_in_tdata[dac_num][32*sample_num+16 +: 16];
end
end
assign dac_data_out_tvalid = dac_data_in_tvalid;
assign dac_data_in_tready = dac_data_out_tready;
//---------------------------------------------------------------------------
// Version
//---------------------------------------------------------------------------
// Version metadata, constants come from auto-generated
// versioning_regs_regmap_utils.vh
assign version_info = build_component_versions(
RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME,
build_version(
RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR,
RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR,
RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD
),
build_version(
RF_CORE_FULL_CURRENT_VERSION_MAJOR,
RF_CORE_FULL_CURRENT_VERSION_MINOR,
RF_CORE_FULL_CURRENT_VERSION_BUILD
)
);
endmodule
`default_nettype wire
//XmlParse xml_on
//<regmap name="VERSIONING_REGS_REGMAP">
// <group name="VERSIONING_CONSTANTS">
// <enumeratedtype name="RF_CORE_FULL_VERSION" showhex="true">
// <info>
// Full BW RF core.{BR/}
// For guidance on when to update these revision numbers,
// please refer to the register map documentation accordingly:
// <li> Current version: @.VERSIONING_REGS_REGMAP..CURRENT_VERSION
// <li> Oldest compatible version: @.VERSIONING_REGS_REGMAP..OLDEST_COMPATIBLE_VERSION
// <li> Version last modified: @.VERSIONING_REGS_REGMAP..VERSION_LAST_MODIFIED
// </info>
// <value name="RF_CORE_FULL_CURRENT_VERSION_MAJOR" integer="1"/>
// <value name="RF_CORE_FULL_CURRENT_VERSION_MINOR" integer="1"/>
// <value name="RF_CORE_FULL_CURRENT_VERSION_BUILD" integer="0"/>
// <value name="RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR" integer="1"/>
// <value name="RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR" integer="0"/>
// <value name="RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD" integer="0"/>
// <value name="RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME" integer="0x24080915"/>
// </enumeratedtype>
// </group>
//</regmap>
//XmlParse xml_off
-436
View File
@@ -1,436 +0,0 @@
//
// Copyright 2023 Ettus Research, a National Instruments Brand
//
// SPDX-License-Identifier: LGPL-3.0-or-later
//
// Module: rf_core_full
//
// Description:
//
// Top-level wrapper for the ADC/DAC processing logic. One of these wrappers
// exists for every supported Data Rate. An instance of this core should
// exist per dboard.
//
// Data/RF Specs:
// DBs: 1
// RX/DB: 4
// TX/DB: 4
// Data Rate: rfdc_clk @ 8 SPC
//
// Input Clocks, all aligned to one another and coming from same MMCM
// rfdc_clk: 15.625 to 250 MHz
// rfdc_clk_2x: 2 * rfdc_clk
//
`default_nettype none
module rf_core_full # (
parameter NUM_ADC_CHANNELS = 4,
parameter NUM_DAC_CHANNELS = 4
) (
//---------------------------------------------------------------------------
// Clocking
//---------------------------------------------------------------------------
// Main Clock Inputs
input wire rfdc_clk,
input wire rfdc_clk_2x,
// AXI4-Lite Config Clock
// This clock is used to synchronize status bits for the RFDC
// registers in the AXI-S clock domain.
input wire s_axi_config_clk,
//---------------------------------------------------------------------------
// RFDC Data Interfaces
//---------------------------------------------------------------------------
// All ports here are in the rfdc_clk domain.
// ADC
input wire [127:0] adc_data_in_i_tdata_0,
output wire adc_data_in_i_tready_0,
input wire adc_data_in_i_tvalid_0,
input wire [127:0] adc_data_in_q_tdata_0,
output wire adc_data_in_q_tready_0,
input wire adc_data_in_q_tvalid_0,
input wire [127:0] adc_data_in_i_tdata_1,
output wire adc_data_in_i_tready_1,
input wire adc_data_in_i_tvalid_1,
input wire [127:0] adc_data_in_q_tdata_1,
output wire adc_data_in_q_tready_1,
input wire adc_data_in_q_tvalid_1,
input wire [127:0] adc_data_in_i_tdata_2,
output wire adc_data_in_i_tready_2,
input wire adc_data_in_i_tvalid_2,
input wire [127:0] adc_data_in_q_tdata_2,
output wire adc_data_in_q_tready_2,
input wire adc_data_in_q_tvalid_2,
input wire [127:0] adc_data_in_i_tdata_3,
output wire adc_data_in_i_tready_3,
input wire adc_data_in_i_tvalid_3,
input wire [127:0] adc_data_in_q_tdata_3,
output wire adc_data_in_q_tready_3,
input wire adc_data_in_q_tvalid_3,
// DAC
output wire [255:0] dac_data_out_tdata_0,
input wire dac_data_out_tready_0,
output wire dac_data_out_tvalid_0,
output wire [255:0] dac_data_out_tdata_1,
input wire dac_data_out_tready_1,
output wire dac_data_out_tvalid_1,
output wire [255:0] dac_data_out_tdata_2,
input wire dac_data_out_tready_2,
output wire dac_data_out_tvalid_2,
output wire [255:0] dac_data_out_tdata_3,
input wire dac_data_out_tready_3,
output wire dac_data_out_tvalid_3,
//---------------------------------------------------------------------------
// User Data Interfaces
//---------------------------------------------------------------------------
// All ports here are in the rfdc_clk domain on the X440.
// ADC
output wire [255:0] adc_data_out_tdata_0, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire adc_data_out_tvalid_0,
output wire [255:0] adc_data_out_tdata_1, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire adc_data_out_tvalid_1,
output wire [255:0] adc_data_out_tdata_2, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire adc_data_out_tvalid_2,
output wire [255:0] adc_data_out_tdata_3, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire adc_data_out_tvalid_3,
// DAC
input wire [255:0] dac_data_in_tdata_0, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire dac_data_in_tready_0,
input wire dac_data_in_tvalid_0,
input wire [255:0] dac_data_in_tdata_1, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire dac_data_in_tready_1,
input wire dac_data_in_tvalid_1,
input wire [255:0] dac_data_in_tdata_2, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire dac_data_in_tready_2,
input wire dac_data_in_tvalid_2,
input wire [255:0] dac_data_in_tdata_3, // Packed [Q7,I7, ... , Q0,I0] with Q in MSBs
output wire dac_data_in_tready_3,
input wire dac_data_in_tvalid_3,
//---------------------------------------------------------------------------
// Miscellaneous
//---------------------------------------------------------------------------
// Invert I/Q control signals from RFDC to DSP chain.
input wire [3:0] invert_adc_iq_rclk2,
input wire [3:0] invert_dac_iq_rclk2,
// Control/status vectors from/to RFDC.
// Notice these are all in the s_axi_config_clk domain.
output wire [9:0] dsp_info_sclk,
output wire [15:0] axi_status_sclk,
output wire [15:0] rfdc_info_sclk,
// Resets.
input wire adc_enable_data_rclk,
input wire adc_rfdc_axi_resetn_rclk,
// Version (Constant)
output wire [95:0] version_info
);
`include "../../regmap/x440/rfdc_regs_regmap_utils.vh"
`include "../../regmap/x440/versioning_regs_regmap_utils.vh"
`include "../../regmap/versioning_utils.vh"
// ADC data interface from RFDC.
wire [127:0] adc_data_in_i_tdata [0:NUM_ADC_CHANNELS-1]; // 8 SPC (I)
wire [127:0] adc_data_in_q_tdata [0:NUM_ADC_CHANNELS-1]; // 8 SPC (Q)
wire [NUM_ADC_CHANNELS-1:0] adc_data_in_i_tready;
wire [NUM_ADC_CHANNELS-1:0] adc_data_in_q_tready;
wire [NUM_ADC_CHANNELS-1:0] adc_data_in_i_tvalid;
wire [NUM_ADC_CHANNELS-1:0] adc_data_in_q_tvalid;
// DAC data interface to RFDC.
wire [255:0] dac_data_out_tdata [0:NUM_DAC_CHANNELS-1]; // 8 SPC (I + Q)
wire [NUM_DAC_CHANNELS-1:0] dac_data_out_tready;
wire [NUM_DAC_CHANNELS-1:0] dac_data_out_tvalid;
// ADC data interface to user.
wire [255:0] adc_data_out_tdata [0:NUM_ADC_CHANNELS-1]; // 8 SPC (I + Q)
wire [NUM_ADC_CHANNELS-1:0] adc_data_out_tready;
wire [NUM_ADC_CHANNELS-1:0] adc_data_out_tvalid;
// DAC data interface from user.
wire [255:0] dac_data_in_tdata_preswap [0:NUM_DAC_CHANNELS-1]; // 8 SPC (I + Q)
wire [255:0] dac_data_in_tdata [0:NUM_DAC_CHANNELS-1]; // 8 SPC (I + Q)
wire [NUM_DAC_CHANNELS-1:0] dac_data_in_tready;
wire [NUM_DAC_CHANNELS-1:0] dac_data_in_tvalid;
wire [15:0] axi_status;
//---------------------------------------------------------------------------
// Resets, Debug and Misc.
//---------------------------------------------------------------------------
// Group all these status bits together. They don't toggle frequently so data
// coherency is not an issue here.
// Using constants for DB0 since the bits are the 16 LSBs in a 32-bit vector.
// DB1 simply uses the 16 MSBs when wiring the status vector.
assign axi_status[USER_ADC_TREADY_MSB :USER_ADC_TREADY ] = adc_data_out_tready[1:0];
assign axi_status[USER_ADC_TVALID_MSB :USER_ADC_TVALID ] = adc_data_out_tvalid[1:0];
assign axi_status[RFDC_ADC_I_TVALID_MSB:RFDC_ADC_I_TVALID] = adc_data_in_i_tvalid[1:0];
assign axi_status[RFDC_ADC_Q_TVALID_MSB:RFDC_ADC_Q_TVALID] = adc_data_in_q_tvalid[1:0];
assign axi_status[RFDC_ADC_I_TREADY_MSB:RFDC_ADC_I_TREADY] = adc_data_in_i_tready[1:0];
assign axi_status[RFDC_ADC_Q_TREADY_MSB:RFDC_ADC_Q_TREADY] = adc_data_in_q_tready[1:0];
assign axi_status[RFDC_DAC_TVALID_MSB :RFDC_DAC_TVALID ] = dac_data_out_tvalid[1:0];
assign axi_status[RFDC_DAC_TREADY_MSB :RFDC_DAC_TREADY ] = dac_data_out_tready[1:0];
synchronizer #(
.WIDTH (16),
.STAGES (2),
.INITIAL_VAL (0),
.FALSE_PATH_TO_IN (1)
) synchronizer_axis_status (
.clk (s_axi_config_clk),
.rst (1'b0),
.in (axi_status),
.out (axi_status_sclk)
);
// Drive the DSP info vector with information on this specific DSP chain.
assign dsp_info_sclk[FABRIC_DSP_RX_CNT_MSB:FABRIC_DSP_RX_CNT] = NUM_ADC_CHANNELS;
assign dsp_info_sclk[FABRIC_DSP_TX_CNT_MSB:FABRIC_DSP_TX_CNT] = NUM_DAC_CHANNELS;
// This RF core always consumes 8 SPC from the gearbox per I/Q signal
assign rfdc_info_sclk[RFDC_INFO_SPC_RX_MSB:RFDC_INFO_SPC_RX] = $clog2(8);
assign rfdc_info_sclk[RFDC_INFO_SPC_TX_MSB:RFDC_INFO_SPC_TX] = $clog2(16);
// This RF core module contains no additional resampling
assign rfdc_info_sclk[RFDC_INFO_XTRA_RESAMP_MSB:RFDC_INFO_XTRA_RESAMP] = 4'd1;
//---------------------------------------------------------------------------
// ADC Post-Processing
//---------------------------------------------------------------------------
// Data comes from the RFDC as 8 SPC, separate streams for each channel and
// I/Q.
assign adc_data_in_i_tdata[0] = adc_data_in_i_tdata_0;
assign adc_data_in_q_tdata[0] = adc_data_in_q_tdata_0;
assign adc_data_in_i_tdata[1] = adc_data_in_i_tdata_1;
assign adc_data_in_q_tdata[1] = adc_data_in_q_tdata_1;
assign adc_data_in_i_tdata[2] = adc_data_in_i_tdata_2;
assign adc_data_in_q_tdata[2] = adc_data_in_q_tdata_2;
assign adc_data_in_i_tdata[3] = adc_data_in_i_tdata_3;
assign adc_data_in_q_tdata[3] = adc_data_in_q_tdata_3;
assign adc_data_in_i_tready_0 = adc_data_in_i_tready[0];
assign adc_data_in_i_tvalid[0] = adc_data_in_i_tvalid_0;
assign adc_data_in_q_tready_0 = adc_data_in_q_tready[0];
assign adc_data_in_q_tvalid[0] = adc_data_in_q_tvalid_0;
assign adc_data_in_i_tready_1 = adc_data_in_i_tready[1];
assign adc_data_in_i_tvalid[1] = adc_data_in_i_tvalid_1;
assign adc_data_in_q_tready_1 = adc_data_in_q_tready[1];
assign adc_data_in_q_tvalid[1] = adc_data_in_q_tvalid_1;
assign adc_data_in_i_tready_2 = adc_data_in_i_tready[2];
assign adc_data_in_i_tvalid[2] = adc_data_in_i_tvalid_2;
assign adc_data_in_q_tready_2 = adc_data_in_q_tready[2];
assign adc_data_in_q_tvalid[2] = adc_data_in_q_tvalid_2;
assign adc_data_in_i_tready_3 = adc_data_in_i_tready[3];
assign adc_data_in_i_tvalid[3] = adc_data_in_i_tvalid_3;
assign adc_data_in_q_tready_3 = adc_data_in_q_tready[3];
assign adc_data_in_q_tvalid[3] = adc_data_in_q_tvalid_3;
// ADC Data from the RFDC arrives here as 8 SPC with separate I and Q
// streams. It leaves the adc_full_rate_bd as 8 SPC with I and Q packed into
// a single 256 bit word.
genvar adc_num;
generate
for (adc_num=0; adc_num < (NUM_ADC_CHANNELS); adc_num = adc_num + 1)
begin : adc_gen
adc_full_bd adc_full_bd_gen (
.enable_data_to_repacker_rclk (adc_enable_data_rclk),
.rfdc_adc_axi_resetn_rclk (adc_rfdc_axi_resetn_rclk),
.rfdc_clk (rfdc_clk),
.swap_iq_rclk (invert_adc_iq_rclk2 [adc_num]),
.adc_q_data_in_tvalid (adc_data_in_q_tvalid[adc_num]),
.adc_q_data_in_tready (adc_data_in_q_tready[adc_num]),
.adc_q_data_in_tdata (adc_data_in_q_tdata [adc_num]),
.adc_i_data_in_tvalid (adc_data_in_i_tvalid[adc_num]),
.adc_i_data_in_tready (adc_data_in_i_tready[adc_num]),
.adc_i_data_in_tdata (adc_data_in_i_tdata [adc_num]),
.adc_data_out_tvalid (adc_data_out_tvalid [adc_num]),
.adc_data_out_tdata (adc_data_out_tdata [adc_num])
);
end
endgenerate
// Data is released to the user as 8 SPC, separate streams for each channel.
assign adc_data_out_tdata_0 = adc_data_out_tdata[0];
assign adc_data_out_tdata_1 = adc_data_out_tdata[1];
assign adc_data_out_tdata_2 = adc_data_out_tdata[2];
assign adc_data_out_tdata_3 = adc_data_out_tdata[3];
// There is no tready going to the ADC (one has to be always ready for ADC
// data), but it is still a component of the axi_status vector as a generic
// AXI stream status. Report 1'b1 to the status vector consistent with being
// always ready
assign adc_data_out_tready[0] = 1'b1;
assign adc_data_out_tvalid_0 = adc_data_out_tvalid[0];
assign adc_data_out_tready[1] = 1'b1;
assign adc_data_out_tvalid_1 = adc_data_out_tvalid[1];
assign adc_data_out_tready[2] = 1'b1;
assign adc_data_out_tvalid_2 = adc_data_out_tvalid[2];
assign adc_data_out_tready[3] = 1'b1;
assign adc_data_out_tvalid_3 = adc_data_out_tvalid[3];
//---------------------------------------------------------------------------
// DAC Pre-Processing
//---------------------------------------------------------------------------
// Data comes from the user as 8 SPC, separate streams for each channel.
assign dac_data_in_tdata_preswap[0] = dac_data_in_tdata_0;
assign dac_data_in_tdata_preswap[1] = dac_data_in_tdata_1;
assign dac_data_in_tdata_preswap[2] = dac_data_in_tdata_2;
assign dac_data_in_tdata_preswap[3] = dac_data_in_tdata_3;
assign dac_data_in_tready_0 = dac_data_in_tready[0];
assign dac_data_in_tvalid[0] = dac_data_in_tvalid_0;
assign dac_data_in_tready_1 = dac_data_in_tready[1];
assign dac_data_in_tvalid[1] = dac_data_in_tvalid_1;
assign dac_data_in_tready_2 = dac_data_in_tready[2];
assign dac_data_in_tvalid[2] = dac_data_in_tvalid_2;
assign dac_data_in_tready_3 = dac_data_in_tready[3];
assign dac_data_in_tvalid[3] = dac_data_in_tvalid_3;
genvar dac_num;
generate
for (dac_num=0; dac_num < (NUM_DAC_CHANNELS); dac_num = dac_num + 1)
begin : dac_swap_gen
//IO and Q0 swap
assign dac_data_in_tdata[dac_num][15:00] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][31:16]) : (dac_data_in_tdata_preswap[dac_num][15:0]);
assign dac_data_in_tdata[dac_num][31:16] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][15:00]) : (dac_data_in_tdata_preswap[dac_num][31:16]);
//I1 and Q1 swap
assign dac_data_in_tdata[dac_num][47:32] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][63:48]) : (dac_data_in_tdata_preswap[dac_num][47:32]);
assign dac_data_in_tdata[dac_num][63:48] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][47:32]) : (dac_data_in_tdata_preswap[dac_num][63:48]);
//I2 and Q2 swap
assign dac_data_in_tdata[dac_num][79:64] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][95:80]) : (dac_data_in_tdata_preswap[dac_num][79:64]);
assign dac_data_in_tdata[dac_num][95:80] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][79:64]) : (dac_data_in_tdata_preswap[dac_num][95:80]);
//I3 and Q3 swap
assign dac_data_in_tdata[dac_num][111:96] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][127:112]) : (dac_data_in_tdata_preswap[dac_num][111:96]);
assign dac_data_in_tdata[dac_num][127:112] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][111:96]) : (dac_data_in_tdata_preswap[dac_num][127:112]);
//I4 and Q4 swap
assign dac_data_in_tdata[dac_num][143:128] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][159:144]) : (dac_data_in_tdata_preswap[dac_num][143:128]);
assign dac_data_in_tdata[dac_num][159:144] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][143:128]) : (dac_data_in_tdata_preswap[dac_num][159:144]);
//I5 and Q5 swap
assign dac_data_in_tdata[dac_num][175:160] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][191:176]) : (dac_data_in_tdata_preswap[dac_num][175:160]);
assign dac_data_in_tdata[dac_num][191:176] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][175:160]) : (dac_data_in_tdata_preswap[dac_num][191:176]);
//I6 and Q6 swap
assign dac_data_in_tdata[dac_num][207:192] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][223:208]) : (dac_data_in_tdata_preswap[dac_num][207:192]);
assign dac_data_in_tdata[dac_num][223:208] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][207:192]) : (dac_data_in_tdata_preswap[dac_num][223:208]);
//I7 and Q7 swap
assign dac_data_in_tdata[dac_num][239:224] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][255:240]) : (dac_data_in_tdata_preswap[dac_num][239:224]);
assign dac_data_in_tdata[dac_num][255:240] = invert_dac_iq_rclk2[dac_num] ?
(dac_data_in_tdata_preswap[dac_num][239:224]) : (dac_data_in_tdata_preswap[dac_num][255:240]);
end
endgenerate
// These streams are then connected to data out, no need for a bd, and form a single
// stream per channel, 8 SPC, packed: MSB [Sample7Q, Sample7I, ... ,
// Sample0Q, Sample0I] LSB.
generate
for (dac_num=0; dac_num < (NUM_DAC_CHANNELS); dac_num = dac_num + 1)
begin : dac_gen
assign dac_data_out_tdata[dac_num] = dac_data_in_tdata[dac_num];
assign dac_data_out_tvalid[dac_num] = dac_data_in_tvalid[dac_num];
assign dac_data_in_tready[dac_num] = dac_data_out_tready[dac_num];
end
endgenerate
// Data is released to the RFDC as 8 SPC, separate streams per channel (I/Q
// together).
assign dac_data_out_tdata_0 = dac_data_out_tdata[0];
assign dac_data_out_tdata_1 = dac_data_out_tdata[1];
assign dac_data_out_tdata_2 = dac_data_out_tdata[2];
assign dac_data_out_tdata_3 = dac_data_out_tdata[3];
assign dac_data_out_tready[0] = dac_data_out_tready_0;
assign dac_data_out_tvalid_0 = dac_data_out_tvalid[0];
assign dac_data_out_tready[1] = dac_data_out_tready_1;
assign dac_data_out_tvalid_1 = dac_data_out_tvalid[1];
assign dac_data_out_tready[2] = dac_data_out_tready_2;
assign dac_data_out_tvalid_2 = dac_data_out_tvalid[2];
assign dac_data_out_tready[3] = dac_data_out_tready_3;
assign dac_data_out_tvalid_3 = dac_data_out_tvalid[3];
//---------------------------------------------------------------------------
// Version
//---------------------------------------------------------------------------
// Version metadata, constants come from auto-generated
// versioning_regs_regmap_utils.vh
assign version_info = build_component_versions(
RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME,
build_version(
RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR,
RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR,
RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD
),
build_version(
RF_CORE_FULL_CURRENT_VERSION_MAJOR,
RF_CORE_FULL_CURRENT_VERSION_MINOR,
RF_CORE_FULL_CURRENT_VERSION_BUILD
)
);
endmodule
`default_nettype wire
//XmlParse xml_on
//<regmap name="VERSIONING_REGS_REGMAP">
// <group name="VERSIONING_CONSTANTS">
// <enumeratedtype name="RF_CORE_FULL_VERSION" showhex="true">
// <info>
// Full BW RF core.{BR/}
// For guidance on when to update these revision numbers,
// please refer to the register map documentation accordingly:
// <li> Current version: @.VERSIONING_REGS_REGMAP..CURRENT_VERSION
// <li> Oldest compatible version: @.VERSIONING_REGS_REGMAP..OLDEST_COMPATIBLE_VERSION
// <li> Version last modified: @.VERSIONING_REGS_REGMAP..VERSION_LAST_MODIFIED
// </info>
// <value name="RF_CORE_FULL_CURRENT_VERSION_MAJOR" integer="1"/>
// <value name="RF_CORE_FULL_CURRENT_VERSION_MINOR" integer="0"/>
// <value name="RF_CORE_FULL_CURRENT_VERSION_BUILD" integer="0"/>
// <value name="RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MAJOR" integer="1"/>
// <value name="RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_MINOR" integer="0"/>
// <value name="RF_CORE_FULL_OLDEST_COMPATIBLE_VERSION_BUILD" integer="0"/>
// <value name="RF_CORE_FULL_VERSION_LAST_MODIFIED_TIME" integer="0x22062900"/>
// </enumeratedtype>
// </group>
//</regmap>
//XmlParse xml_off
+19 -63
View File
@@ -2131,73 +2131,29 @@ module x4xx (
.version_info (rf_core_version[db_i]) .version_info (rf_core_version[db_i])
); );
end else if (RF_CORE == "FULL") begin : gen_rf_core_full end else if (RF_CORE == "FULL") begin : gen_rf_core_full
localparam ADC_AXIS_W = 128;
localparam DAC_AXIS_W = 256;
rf_core_full #( rf_core_full #(
.NUM_ADC_CHANNELS(NUM_CH_PER_DB), .NUM_ADC_CHANNELS(NUM_CH_PER_DB),
.NUM_DAC_CHANNELS(NUM_CH_PER_DB) .NUM_DAC_CHANNELS(NUM_CH_PER_DB),
.RADIO_SPC(RADIO_SPC)
) rf_core_full_i ( ) rf_core_full_i (
.rfdc_clk (rfdc_clk[db_i]), .rfdc_clk (rfdc_clk[db_i]),
.rfdc_clk_2x (rfdc_clk_2x[db_i]),
.s_axi_config_clk (clk40), .s_axi_config_clk (clk40),
.adc_data_in_i_tdata_0 (adc_tile_dout_i_tdata[NUM_CH_PER_DB*db_i+0][ADC_AXIS_W-1:0]), .adc_data_in_i_tdata (adc_tile_dout_i_tdata [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tready_0 (adc_tile_dout_i_tready[NUM_CH_PER_DB*db_i+0]), .adc_data_in_i_tready (adc_tile_dout_i_tready [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tvalid_0 (adc_tile_dout_i_tvalid[NUM_CH_PER_DB*db_i+0]), .adc_data_in_i_tvalid (adc_tile_dout_i_tvalid [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tdata_0 (adc_tile_dout_q_tdata[NUM_CH_PER_DB*db_i+0][ADC_AXIS_W-1:0]), .adc_data_in_q_tdata (adc_tile_dout_q_tdata [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tready_0 (adc_tile_dout_q_tready[NUM_CH_PER_DB*db_i+0]), .adc_data_in_q_tready (adc_tile_dout_q_tready [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tvalid_0 (adc_tile_dout_q_tvalid[NUM_CH_PER_DB*db_i+0]), .adc_data_in_q_tvalid (adc_tile_dout_q_tvalid [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tdata_1 (adc_tile_dout_i_tdata[NUM_CH_PER_DB*db_i+1][ADC_AXIS_W-1:0]), .dac_data_out_tdata (dac_tile_din_tdata [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tready_1 (adc_tile_dout_i_tready[NUM_CH_PER_DB*db_i+1]), .dac_data_out_tready (dac_tile_din_tready [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tvalid_1 (adc_tile_dout_i_tvalid[NUM_CH_PER_DB*db_i+1]), .dac_data_out_tvalid (dac_tile_din_tvalid [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tdata_1 (adc_tile_dout_q_tdata[NUM_CH_PER_DB*db_i+1][ADC_AXIS_W-1:0]), .adc_data_out_tdata (adc_data_out_tdata [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tready_1 (adc_tile_dout_q_tready[NUM_CH_PER_DB*db_i+1]), .adc_data_out_tvalid (adc_data_out_tvalid [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tvalid_1 (adc_tile_dout_q_tvalid[NUM_CH_PER_DB*db_i+1]), .dac_data_in_tdata (dac_data_in_tdata [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tdata_2 (adc_tile_dout_i_tdata[NUM_CH_PER_DB*db_i+2][ADC_AXIS_W-1:0]), .dac_data_in_tready (dac_data_in_tready [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tready_2 (adc_tile_dout_i_tready[NUM_CH_PER_DB*db_i+2]), .dac_data_in_tvalid (dac_data_in_tvalid [NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_i_tvalid_2 (adc_tile_dout_i_tvalid[NUM_CH_PER_DB*db_i+2]), .invert_adc_iq_rclk (swapped_invert_adc_iq_rclk2[NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tdata_2 (adc_tile_dout_q_tdata[NUM_CH_PER_DB*db_i+2][ADC_AXIS_W-1:0]), .invert_dac_iq_rclk (swapped_invert_dac_iq_rclk2[NUM_CH_PER_DB*db_i +: NUM_CH_PER_DB]),
.adc_data_in_q_tready_2 (adc_tile_dout_q_tready[NUM_CH_PER_DB*db_i+2]),
.adc_data_in_q_tvalid_2 (adc_tile_dout_q_tvalid[NUM_CH_PER_DB*db_i+2]),
.adc_data_in_i_tdata_3 (adc_tile_dout_i_tdata[NUM_CH_PER_DB*db_i+3][ADC_AXIS_W-1:0]),
.adc_data_in_i_tready_3 (adc_tile_dout_i_tready[NUM_CH_PER_DB*db_i+3]),
.adc_data_in_i_tvalid_3 (adc_tile_dout_i_tvalid[NUM_CH_PER_DB*db_i+3]),
.adc_data_in_q_tdata_3 (adc_tile_dout_q_tdata[NUM_CH_PER_DB*db_i+3][ADC_AXIS_W-1:0]),
.adc_data_in_q_tready_3 (adc_tile_dout_q_tready[NUM_CH_PER_DB*db_i+3]),
.adc_data_in_q_tvalid_3 (adc_tile_dout_q_tvalid[NUM_CH_PER_DB*db_i+3]),
.dac_data_out_tdata_0 (dac_tile_din_tdata[NUM_CH_PER_DB*db_i+0][DAC_AXIS_W-1:0]),
.dac_data_out_tready_0 (dac_tile_din_tready[NUM_CH_PER_DB*db_i+0]),
.dac_data_out_tvalid_0 (dac_tile_din_tvalid[NUM_CH_PER_DB*db_i+0]),
.dac_data_out_tdata_1 (dac_tile_din_tdata[NUM_CH_PER_DB*db_i+1][DAC_AXIS_W-1:0]),
.dac_data_out_tready_1 (dac_tile_din_tready[NUM_CH_PER_DB*db_i+1]),
.dac_data_out_tvalid_1 (dac_tile_din_tvalid[NUM_CH_PER_DB*db_i+1]),
.dac_data_out_tdata_2 (dac_tile_din_tdata[NUM_CH_PER_DB*db_i+2][DAC_AXIS_W-1:0]),
.dac_data_out_tready_2 (dac_tile_din_tready[NUM_CH_PER_DB*db_i+2]),
.dac_data_out_tvalid_2 (dac_tile_din_tvalid[NUM_CH_PER_DB*db_i+2]),
.dac_data_out_tdata_3 (dac_tile_din_tdata[NUM_CH_PER_DB*db_i+3][DAC_AXIS_W-1:0]),
.dac_data_out_tready_3 (dac_tile_din_tready[NUM_CH_PER_DB*db_i+3]),
.dac_data_out_tvalid_3 (dac_tile_din_tvalid[NUM_CH_PER_DB*db_i+3]),
.adc_data_out_tdata_0 (adc_data_out_tdata[NUM_CH_PER_DB*db_i+0]),
.adc_data_out_tvalid_0 (adc_data_out_tvalid[NUM_CH_PER_DB*db_i+0]),
.adc_data_out_tdata_1 (adc_data_out_tdata[NUM_CH_PER_DB*db_i+1]),
.adc_data_out_tvalid_1 (adc_data_out_tvalid[NUM_CH_PER_DB*db_i+1]),
.adc_data_out_tdata_2 (adc_data_out_tdata[NUM_CH_PER_DB*db_i+2]),
.adc_data_out_tvalid_2 (adc_data_out_tvalid[NUM_CH_PER_DB*db_i+2]),
.adc_data_out_tdata_3 (adc_data_out_tdata[NUM_CH_PER_DB*db_i+3]),
.adc_data_out_tvalid_3 (adc_data_out_tvalid[NUM_CH_PER_DB*db_i+3]),
.dac_data_in_tdata_0 (dac_data_in_tdata[NUM_CH_PER_DB*db_i+0]),
.dac_data_in_tready_0 (dac_data_in_tready[NUM_CH_PER_DB*db_i+0]),
.dac_data_in_tvalid_0 (dac_data_in_tvalid[NUM_CH_PER_DB*db_i+0]),
.dac_data_in_tdata_1 (dac_data_in_tdata[NUM_CH_PER_DB*db_i+1]),
.dac_data_in_tready_1 (dac_data_in_tready[NUM_CH_PER_DB*db_i+1]),
.dac_data_in_tvalid_1 (dac_data_in_tvalid[NUM_CH_PER_DB*db_i+1]),
.dac_data_in_tdata_2 (dac_data_in_tdata[NUM_CH_PER_DB*db_i+2]),
.dac_data_in_tready_2 (dac_data_in_tready[NUM_CH_PER_DB*db_i+2]),
.dac_data_in_tvalid_2 (dac_data_in_tvalid[NUM_CH_PER_DB*db_i+2]),
.dac_data_in_tdata_3 (dac_data_in_tdata[NUM_CH_PER_DB*db_i+3]),
.dac_data_in_tready_3 (dac_data_in_tready[NUM_CH_PER_DB*db_i+3]),
.dac_data_in_tvalid_3 (dac_data_in_tvalid[NUM_CH_PER_DB*db_i+3]),
.invert_adc_iq_rclk2 (swapped_invert_adc_iq_rclk2[4*db_i +: 4]),
.invert_dac_iq_rclk2 (swapped_invert_dac_iq_rclk2[4*db_i +: 4]),
.dsp_info_sclk (rf_dsp_info_clk40[10*db_i+:10]), .dsp_info_sclk (rf_dsp_info_clk40[10*db_i+:10]),
.rfdc_info_sclk (rf_rfdc_info_clk40[16*db_i+:16]), .rfdc_info_sclk (rf_rfdc_info_clk40[16*db_i+:16]),
.axi_status_sclk (rf_axi_status_clk40[16*db_i +: 16]), .axi_status_sclk (rf_axi_status_clk40[16*db_i +: 16]),
@@ -2881,7 +2837,7 @@ module x4xx (
.qsfp1_tx_n (qsfp1_tx_n), .qsfp1_tx_n (qsfp1_tx_n),
.qsfp1_rx_p (qsfp1_rx_p), .qsfp1_rx_p (qsfp1_rx_p),
.qsfp1_rx_n (qsfp1_rx_n), .qsfp1_rx_n (qsfp1_rx_n),
.qsfp1_recovered_clk (rx_rec_clk_out1), .qsfp1_recovered_clk (rx_rec_clk_out1),
.qsfp1_device_id (device_id), .qsfp1_device_id (device_id),
.qsfp1_rx_irq (eth1_rx_irq), .qsfp1_rx_irq (eth1_rx_irq),
.qsfp1_tx_irq (eth1_tx_irq), .qsfp1_tx_irq (eth1_tx_irq),