Co-authored-by: Andrew Moch <Andrew.Moch@ni.com> Co-authored-by: Daniel Jepson <daniel.jepson@ni.com> Co-authored-by: Javier Valenzuela <javier.valenzuela@ni.com> Co-authored-by: Joerg Hofrichter <joerg.hofrichter@ni.com> Co-authored-by: Kumaran Subramoniam <kumaran.subramoniam@ni.com> Co-authored-by: Max Köhler <max.koehler@ni.com> Co-authored-by: Michael Auchter <michael.auchter@ni.com> Co-authored-by: Paul Butler <paul.butler@ni.com> Co-authored-by: Wade Fife <wade.fife@ettus.com> Co-authored-by: Hector Rubio <hrubio@ni.com> Original-commit: 6d3765605262016a80f71e36357f749ea35cbe5a
125 lines
4.0 KiB
VHDL
125 lines
4.0 KiB
VHDL
--
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-- Copyright 2021 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: dac_gearbox_6x12
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--
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-- Description:
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--
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-- Gearbox to expand the data width from 6 SPC to 12 SPC.
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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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entity dac_gearbox_6x12 is
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port(
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Clk1x : in std_logic;
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Clk2x : in std_logic;
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ac1Reset_n : in std_logic;
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ac2Reset_n : in std_logic;
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-- 16 bit data packing: [Q5,I5,Q4,I4,Q3,I3,Q2,I2,Q1,I1,Q0,I0] (I in LSBs)
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c2DataIn : in std_logic_vector(191 downto 0);
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c2DataValidIn : in std_logic;
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-- 16 bit data packing: [Q11,I11,Q10,I10,..,Q2,I2,Q1,I1,Q0,I0] (I in LSBs)
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c1DataOut : out std_logic_vector(383 downto 0) := (others => '0');
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c1DataValidOut : out std_logic := '0'
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);
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end dac_gearbox_6x12;
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architecture RTL of dac_gearbox_6x12 is
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subtype Word_t is std_logic_vector(191 downto 0);
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type Words_t is array(natural range<>) of Word_t;
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signal c1DataInDly, c2DataInDly : Words_t(2 downto 0);
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signal c2DataValidInDly : std_logic_vector(1 downto 0) := (others => '0');
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signal c1PhaseCount, c2PhaseCount : std_logic := '0';
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signal c1DataValidIn, c1DataValidDly0 : std_logic := '0';
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begin
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-- Input data pipeline.
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InputValidPipeline: process(Clk2x, ac2Reset_n)
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begin
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if ac2Reset_n = '0' then
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c2DataValidInDly <= (others => '0');
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elsif rising_edge(Clk2x) then
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c2DataValidInDly <= c2DataValidInDly(c2DataValidInDly'left-1 downto 0) &
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c2DataValidIn;
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end if;
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end process;
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InputDataPipeline: process(Clk2x)
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begin
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if rising_edge(Clk2x) then
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c2DataInDly <= c2DataInDly(c2DataInDly'high-1 downto 0) & c2DataIn;
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end if;
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end process;
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-- Process to determine if data valid was asserted when both clocks were
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-- in-phase. Since we are crossing a 2x clock domain to a 1x clock domain,
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-- there are only two possible phase. One is data valid assertion when both
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-- clocks rising edges are aligned. The other case is data valid assertion
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-- when Clk2x is aligned to the falling edge.
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Clock2xPhaseCount: process(ac2Reset_n, Clk2x)
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begin
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if ac2Reset_n = '0' then
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c2PhaseCount <= '0';
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elsif rising_edge(Clk2x) then
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-- This is a single bit counter. This counter is enabled for an extra
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-- clock cycle to account for the output pipeline delay.
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c2PhaseCount <= (not c2PhaseCount) and
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(c2DataValidInDly(1) or c2DataValidInDly(0));
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end if;
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end process;
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-- Crossing clock from Clk2x to Clk1x.
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Clk2xToClk1xCrossing: process(Clk1x)
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begin
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if rising_edge(Clk1x) then
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c1DataInDly <= c2DataInDly;
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c1PhaseCount <= c2PhaseCount;
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c1DataValidIn <= c2DataValidInDly(0);
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end if;
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end process;
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-- Output data packing is determined based on when input data valid was
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-- asserted. c1PhaseCount is '1' when input data valid was asserted when both
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-- clocks are rising edge aligned. In this case, we can send data from the
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-- with 1 and 2 pipeline delays.
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-- When data valid is asserted when the two clock are not rising edge
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-- aligned, we will use data from 2 and 3 pipeline delays.
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DataOut: process(Clk1x)
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begin
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if rising_edge(Clk1x) then
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c1DataOut <= c1DataInDly(1) & c1DataInDly(2);
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if c1PhaseCount = '1' then
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c1DataOut <= c1DataInDly(0) & c1DataInDly(1);
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end if;
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end if;
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end process;
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-- Similar to data output, when input data valid is asserted and both clocks
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-- are rising edge aligned, the output data valid is asserted with a single
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-- pipeline stage. If not, output data valid is asserted with two pipeline
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-- stages.
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DataValidOut: process(Clk1x, ac1Reset_n)
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begin
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if ac1Reset_n = '0' then
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c1DataValidDly0 <= '0';
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c1DataValidOut <= '0';
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elsif rising_edge(Clk1x) then
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c1DataValidDly0 <= c1DataValidIn;
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c1DataValidOut <= c1DataValidDly0;
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if c1PhaseCount = '1' then
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c1DataValidOut <= c1DataValidIn;
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end if;
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end if;
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end process;
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end RTL;
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