Files
b210-k7-fpga/top/x400/rf/common/gpio_to_axis_mux.vhd
T
adf6f576c6 mpm/fpga: x4xx: Major updates in preparation for future devices
FPGA:
- Split up MB registers that control daughterboard specific settings so
  that daughterboards 0 and 1 could have different setings, in
  preparation for future devices that require different settings.
  This requires a compat number bump to 8.0.
- Add registers for additional RFDC information, including the
  block/tile mapping of the individual channels, and information about
  resampling capabilities
- Identify sections of code that would be specific to X410/ZBX and move
  them to their own headers, so it's trivial to add device-specific
  sections of code instead for other devices in the future.
  - This includes constraints for clocks and I/O pins.
- Remove ability to do timed ctrlport transactions to the MB CPLD, this
  was unused and possibly broken.
- Move daughterboard-specific code into its own code location
  (dboards/zbx)
- Move X410-specific register documentation to its own location
  (doc/X410)
- Refactor Makefiles to split out X410/ZBX specific components and allow
  switching between device types
- Add 512-bit AXI interconnects
- Make number of timekeepers configurable (X410 keeps the single
  timekeeper)

MPM:
- Required compat is bumped to 8.0
- Now supports new registers for detecting DSP capabilities and
  multi-rate settings for the daughterboards
- Adds MMCM controls (currently unused)

Co-authored-by: Wade Fife <wade.fife@ni.com>
Co-authored-by: Ryan Marlow <ryan@lmarlow.com>
Co-authored-by: Martin Braun <martin.braun@ettus.com>
Co-authored-by: Humberto Jimenez <humberto.jimenez@ni.com>


Original-commit: c1d268917ea65dd9c5a42366014cb96d3c025223
2023-05-23 09:06:17 +02:00

243 lines
7.7 KiB
VHDL

--
-- Copyright 2022 Ettus Research, a National Instruments Brand
--
-- SPDX-License-Identifier: LGPL-3.0-or-later
--
-- Module: gpio_to_axis_mux
--
-- Description:
--
-- This module either drives the AXIS outputs with the corresponding AXIS
-- slave inputs, or it drives the output AXIS with data provided by the GPIO
-- lines. This allows the calibration process to drive a constant value to
-- the DAC's. Although every AXIS interface has its own clock, all the clocks
-- must be connected to the same source. Independent clock inputs allows the
-- block design editor to automatically detect the clock domain of the
-- corresponding interface.
--
-- kAxiWidth must be an integer multiple of kGpioWidth. A concurrent assert
-- statement in axis_mux checks this assumption and should produce a
-- synthesis warning if that requirement is not met.
--
-- Parameters:
--
-- kGpioWidth : GPIO width.
-- kAxiWidth : AXI bus width. Must be an integer multiple of kGpioWidth
--
library IEEE;
use IEEE.std_logic_1164.all;
entity gpio_to_axis_mux is
generic (
kGpioWidth : natural := 32;
kAxiWidth : natural := 256
);
port(
gpio : in std_logic_vector(kGpioWidth-1 downto 0);
-- mux_select(n) chooses the data source for AXIS interface n.
-- '0' chooses s_axis_tdata_n. '1' chooses gpio as the data source.
mux_select : in std_logic_vector(7 downto 0);
s_axis_0_aclk : in std_logic;
s_axis_tdata_0 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_0 : in std_logic;
s_axis_tready_0 : out std_logic;
m_axis_0_aclk : in std_logic;
m_axis_tvalid_0 : out std_logic;
m_axis_tdata_0 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_1_aclk : in std_logic;
s_axis_tdata_1 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_1 : in std_logic;
s_axis_tready_1 : out std_logic;
m_axis_1_aclk : in std_logic;
m_axis_tvalid_1 : out std_logic;
m_axis_tdata_1 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_2_aclk : in std_logic;
s_axis_tdata_2 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_2 : in std_logic;
s_axis_tready_2 : out std_logic;
m_axis_2_aclk : in std_logic;
m_axis_tvalid_2 : out std_logic;
m_axis_tdata_2 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_3_aclk : in std_logic;
s_axis_tdata_3 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_3 : in std_logic;
s_axis_tready_3 : out std_logic;
m_axis_3_aclk : in std_logic;
m_axis_tvalid_3 : out std_logic;
m_axis_tdata_3 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_4_aclk : in std_logic;
s_axis_tdata_4 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_4 : in std_logic;
s_axis_tready_4 : out std_logic;
m_axis_4_aclk : in std_logic;
m_axis_tvalid_4 : out std_logic;
m_axis_tdata_4 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_5_aclk : in std_logic;
s_axis_tdata_5 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_5 : in std_logic;
s_axis_tready_5 : out std_logic;
m_axis_5_aclk : in std_logic;
m_axis_tvalid_5 : out std_logic;
m_axis_tdata_5 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_6_aclk : in std_logic;
s_axis_tdata_6 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_6 : in std_logic;
s_axis_tready_6 : out std_logic;
m_axis_6_aclk : in std_logic;
m_axis_tvalid_6 : out std_logic;
m_axis_tdata_6 : out std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_7_aclk : in std_logic;
s_axis_tdata_7 : in std_logic_vector(kAxiWidth - 1 downto 0);
s_axis_tvalid_7 : in std_logic;
s_axis_tready_7 : out std_logic;
m_axis_7_aclk : in std_logic;
m_axis_tvalid_7 : out std_logic;
m_axis_tdata_7 : out std_logic_vector(kAxiWidth - 1 downto 0)
);
end entity;
architecture RTL of gpio_to_axis_mux is
begin
axis_mux0: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(0),
s_axis_aclk => s_axis_0_aclk,
s_axis_tdata => s_axis_tdata_0,
s_axis_tvalid => s_axis_tvalid_0,
s_axis_tready => s_axis_tready_0,
m_axis_aclk => m_axis_0_aclk,
m_axis_tvalid => m_axis_tvalid_0,
m_axis_tdata => m_axis_tdata_0
);
axis_mux1: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(1),
s_axis_aclk => s_axis_1_aclk,
s_axis_tdata => s_axis_tdata_1,
s_axis_tvalid => s_axis_tvalid_1,
s_axis_tready => s_axis_tready_1,
m_axis_aclk => m_axis_1_aclk,
m_axis_tvalid => m_axis_tvalid_1,
m_axis_tdata => m_axis_tdata_1
);
axis_mux2: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(2),
s_axis_aclk => s_axis_2_aclk,
s_axis_tdata => s_axis_tdata_2,
s_axis_tvalid => s_axis_tvalid_2,
s_axis_tready => s_axis_tready_2,
m_axis_aclk => m_axis_2_aclk,
m_axis_tvalid => m_axis_tvalid_2,
m_axis_tdata => m_axis_tdata_2
);
axis_mux3: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(3),
s_axis_aclk => s_axis_3_aclk,
s_axis_tdata => s_axis_tdata_3,
s_axis_tvalid => s_axis_tvalid_3,
s_axis_tready => s_axis_tready_3,
m_axis_aclk => m_axis_3_aclk,
m_axis_tvalid => m_axis_tvalid_3,
m_axis_tdata => m_axis_tdata_3
);
axis_mux4: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(4),
s_axis_aclk => s_axis_4_aclk,
s_axis_tdata => s_axis_tdata_4,
s_axis_tvalid => s_axis_tvalid_4,
s_axis_tready => s_axis_tready_4,
m_axis_aclk => m_axis_4_aclk,
m_axis_tvalid => m_axis_tvalid_4,
m_axis_tdata => m_axis_tdata_4
);
axis_mux5: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(5),
s_axis_aclk => s_axis_5_aclk,
s_axis_tdata => s_axis_tdata_5,
s_axis_tvalid => s_axis_tvalid_5,
s_axis_tready => s_axis_tready_5,
m_axis_aclk => m_axis_5_aclk,
m_axis_tvalid => m_axis_tvalid_5,
m_axis_tdata => m_axis_tdata_5
);
axis_mux6: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(6),
s_axis_aclk => s_axis_6_aclk,
s_axis_tdata => s_axis_tdata_6,
s_axis_tvalid => s_axis_tvalid_6,
s_axis_tready => s_axis_tready_6,
m_axis_aclk => m_axis_6_aclk,
m_axis_tvalid => m_axis_tvalid_6,
m_axis_tdata => m_axis_tdata_6
);
axis_mux7: entity work.axis_mux (RTL)
generic map (
kGpioWidth => kGpioWidth,
kAxiWidth => kAxiWidth)
port map (
gpio => gpio,
mux_select => mux_select(7),
s_axis_aclk => s_axis_7_aclk,
s_axis_tdata => s_axis_tdata_7,
s_axis_tvalid => s_axis_tvalid_7,
s_axis_tready => s_axis_tready_7,
m_axis_aclk => m_axis_7_aclk,
m_axis_tvalid => m_axis_tvalid_7,
m_axis_tdata => m_axis_tdata_7
);
end RTL;