Co-authored-by: Martin Braun <martin.braun@ettus.com> Co-authored-by: Wade Fife <wade.fife@ni.com> Co-authored-by: Ryan Marlow <ryan@lmarlow.com> Original-commit: 596760a12e4834e47589c12f8a4fd083aa2f7c25
190 lines
6.8 KiB
VHDL
190 lines
6.8 KiB
VHDL
--
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-- Copyright 2022 Ettus Research, a National Instruments Brand
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--
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-- SPDX-License-Identifier: LGPL-3.0-or-later
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--
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-- Module: x440_rf_reset_controller
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--
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-- Description:
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--
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-- Control RFDC, ADC, and DAC resets.
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-- This file contains a similar structure to '../x410/x410_rf_reset_controller',
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-- with the main difference of not having to support a complex reset chain.
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-- This means that the instantiations of 'rf_reset' can be taken out in favor
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-- having a simple combination of the incoming pulses and the software triggers
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-- to generate the different outputs.
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--
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library IEEE;
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use IEEE.std_logic_1164.all;
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use IEEE.numeric_std.all;
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library WORK;
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use WORK.PkgRFDC_REGS_REGMAP.all;
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entity x440_rf_reset_controller is
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port(
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-- Clocks
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-- Config clock is async to all the others.
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ConfigClk : in std_logic;
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PllRefClk : in std_logic;
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RfClk : in std_logic;
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RfClk2x : in std_logic;
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-- Master resets from the Radio
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rAdcResetPulse : in std_logic;
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rDacResetPulse : in std_logic;
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-- ADC Resets
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r2AdcReset_n : out std_logic;
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rAdcEnableData : out std_logic;
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rAdcReset_n : out std_logic;
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-- DAC Resets
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r2DacReset_n : out std_logic;
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rDacReset_n : out std_logic;
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-- SW Control and Status
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-- Control to initiate resets to RFDC.
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-- The reset status is a sticky status of both ADC and DAC.
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cSoftwareControl : in std_logic_vector(31 downto 0);
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cSoftwareStatus : out std_logic_vector(31 downto 0)
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);
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end x440_rf_reset_controller;
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architecture RTL of x440_rf_reset_controller is
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-- POR value for all resets are high.
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signal cTriggerAdcReset : std_logic := '1';
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signal cTriggerAdcResetDlyd : std_logic := '1';
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signal cTriggerDacReset : std_logic := '1';
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signal cTriggerDacResetDlyd : std_logic := '1';
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signal rTriggerAdcReset_ms : std_logic := '1';
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signal rTriggerAdcReset : std_logic := '1';
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signal rTriggerDacReset_ms : std_logic := '1';
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signal rTriggerDacReset : std_logic := '1';
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-- POR value of all reset done signals are set to low.
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signal cTriggerAdcResetDone_ms : std_logic := '0';
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signal cTriggerAdcResetDone : std_logic := '0';
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signal cAdcResetDoneSticky : std_logic := '0';
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signal cTriggerDacResetDone_ms : std_logic := '0';
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signal cTriggerDacResetDone : std_logic := '0';
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signal cDacResetDoneSticky : std_logic := '0';
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attribute ASYNC_REG : string;
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attribute ASYNC_REG of rTriggerAdcReset : signal is "TRUE";
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attribute ASYNC_REG of rTriggerDacReset : signal is "TRUE";
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attribute ASYNC_REG of cTriggerAdcResetDone : signal is "TRUE";
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attribute ASYNC_REG of cTriggerDacResetDone : signal is "TRUE";
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attribute ASYNC_REG of rTriggerAdcReset_ms : signal is "TRUE";
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attribute ASYNC_REG of rTriggerDacReset_ms : signal is "TRUE";
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attribute ASYNC_REG of cTriggerAdcResetDone_ms : signal is "TRUE";
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attribute ASYNC_REG of cTriggerDacResetDone_ms : signal is "TRUE";
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begin
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-- rAdcEnableData is set to '1' as we don't control the flow of RX data.
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rAdcEnableData <= '1';
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cTriggerAdcReset <= cSoftwareControl(kADC_RESET);
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cTriggerDacReset <= cSoftwareControl(kDAC_RESET);
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cSoftwareStatus <= (
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kADC_SEQ_DONE => cAdcResetDoneSticky,
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kDAC_SEQ_DONE => cDacResetDoneSticky,
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others => '0'
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);
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-----------------------------------------------------------------------------
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-- High-Level Resets Using ConfigClk
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-----------------------------------------------------------------------------
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-- Pass the master FSM reset around to the other clock domains and then
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-- return them back to the ConfigClk domain. This is also a handy way to
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-- prove all your clocks are toggling to some extent.
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-----------------------------------------------------------------------------
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SeqResetRfClk : process(RfClk)
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begin
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if rising_edge(RfClk) then
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-- double-syncs have no sync reset!
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rTriggerAdcReset_ms <= cTriggerAdcReset;
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rTriggerAdcReset <= rTriggerAdcReset_ms;
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rTriggerDacReset_ms <= cTriggerDacReset;
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rTriggerDacReset <= rTriggerDacReset_ms;
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end if;
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end process;
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-----------------------------------------------------------------------------
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-- Reset Sequence Done Status
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-----------------------------------------------------------------------------
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-- Now back to ConfigClk! We provide the status for all software controlled
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-- resets. We move the signal from ConfigClk to RfClk domain and move it
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-- back to ConfigClk domain. This just proves that RfClk is toggling and
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-- the reset requested by software is sampled in the RfClk.
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-----------------------------------------------------------------------------
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SeqResetDone : process(ConfigClk)
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begin
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if rising_edge(ConfigClk) then
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-- double-syncs have no sync reset!
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cTriggerAdcResetDone_ms <= rTriggerAdcReset;
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cTriggerAdcResetDone <= cTriggerAdcResetDone_ms;
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cTriggerDacResetDone_ms <= rTriggerDacReset;
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cTriggerDacResetDone <= cTriggerDacResetDone_ms;
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end if;
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end process;
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-- ADC reset done
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SwAdcResetDone: process(ConfigClk)
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begin
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if rising_edge(ConfigClk) then
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cTriggerAdcResetDlyd <= cTriggerAdcReset;
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-- De-assert reset status on the rising edge of SW ADC reset.
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if cTriggerAdcReset = '1' and cTriggerAdcResetDlyd = '0' then
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cAdcResetDoneSticky <= '0';
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-- Assert and hold the ADC reset status on ADC reset strobe.
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elsif cTriggerAdcResetDone = '1' then
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cAdcResetDoneSticky <= '1';
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end if;
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end if;
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end process SwAdcResetDone;
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-- DAC reset done
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SwDacResetDone: process(ConfigClk)
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begin
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if rising_edge(ConfigClk) then
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cTriggerDacResetDlyd <= cTriggerDacReset;
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-- De-assert reset status on the rising edge of SW DAC reset.
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if cTriggerDacReset = '1' and cTriggerDacResetDlyd = '0' then
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cDacResetDoneSticky <= '0';
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-- Assert and hold the DAC reset status on DAC reset strobe.
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elsif cTriggerDacResetDone = '1' then
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cDacResetDoneSticky <= '1';
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end if;
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end if;
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end process SwDacResetDone;
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-----------------------------------------------------------------------------
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-- rf_reset Instances
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-----------------------------------------------------------------------------
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RfClkResets: process(RfClk)
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begin
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if rising_edge(RfClk) then
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rAdcReset_n <= not (rAdcResetPulse or rTriggerAdcReset);
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rDacReset_n <= not (rDacResetPulse or rTriggerDacReset);
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end if;
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end process RfClkResets;
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RfClk2xResets: process(RfClk2x)
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begin
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if rising_edge(RfClk2x) then
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r2AdcReset_n <= not (rAdcResetPulse or rTriggerAdcReset);
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r2DacReset_n <= not (rDacResetPulse or rTriggerDacReset);
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end if;
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end process RfClk2xResets;
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end RTL;
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