+18









Martin Braun
Alex Williams
Andrej Rode
Ashish Chaudhari
Ben Hilburn
Ciro Nishiguchi
Daniel Jepson
Derek Kozel
EJ Kreinar
Humberto Jimenez
Ian Buckley
Jörg Hofrichter
Jon Kiser
Josh Blum
Jonathon Pendlum
Matt Ettus
Michael West
Moritz Fischer
Nick Foster
Nicolas Cuervo
Paul Butler
Paul David
Ryan Marlow
Sugandha Gupta
Sylvain Munaut
Trung Tran
Vidush Vishwanath
Wade Fife
6b67702ad7
The FPGA codebase was removed from the UHD repository in 2014 to reduce the size of the repository. However, over the last half-decade, the split between the repositories has proven more burdensome than it has been helpful. By merging the FPGA code back, it will be possible to create atomic commits that touch both FPGA and UHD codebases. Continuous integration testing is also simplified by merging the repositories, because it was previously difficult to automatically derive the correct UHD branch when testing a feature branch on the FPGA repository. This commit also updates the license files and paths therein. We are therefore merging the repositories again. Future development for FPGA code will happen in the same repository as the UHD host code and MPM code. == Original Codebase and Rebasing == The original FPGA repository will be hosted for the foreseeable future at its original local location: https://github.com/EttusResearch/fpga/ It can be used for bisecting, reference, and a more detailed history. The final commit from said repository to be merged here is 05003794e2da61cabf64dd278c45685a7abad7ec. This commit is tagged as v4.0.0.0-pre-uhd-merge. If you have changes in the FPGA repository that you want to rebase onto the UHD repository, simply run the following commands: - Create a directory to store patches (this should be an empty directory): mkdir ~/patches - Now make sure that your FPGA codebase is based on the same state as the code that was merged: cd src/fpga # Or wherever your FPGA code is stored git rebase v4.0.0.0-pre-uhd-merge Note: The rebase command may look slightly different depending on what exactly you're trying to rebase. - Create a patch set for your changes versus v4.0.0.0-pre-uhd-merge: git format-patch v4.0.0.0-pre-uhd-merge -o ~/patches Note: Make sure that only patches are stored in your output directory. It should otherwise be empty. Make sure that you picked the correct range of commits, and only commits you wanted to rebase were exported as patch files. - Go to the UHD repository and apply the patches: cd src/uhd # Or wherever your UHD repository is stored git am --directory fpga ~/patches/* rm -rf ~/patches # This is for cleanup == Contributors == The following people have contributed mainly to these files (this list is not complete): Co-authored-by: Alex Williams <alex.williams@ni.com> Co-authored-by: Andrej Rode <andrej.rode@ettus.com> Co-authored-by: Ashish Chaudhari <ashish@ettus.com> Co-authored-by: Ben Hilburn <ben.hilburn@ettus.com> Co-authored-by: Ciro Nishiguchi <ciro.nishiguchi@ni.com> Co-authored-by: Daniel Jepson <daniel.jepson@ni.com> Co-authored-by: Derek Kozel <derek.kozel@ettus.com> Co-authored-by: EJ Kreinar <ej@he360.com> Co-authored-by: Humberto Jimenez <humberto.jimenez@ni.com> Co-authored-by: Ian Buckley <ian.buckley@gmail.com> Co-authored-by: Jörg Hofrichter <joerg.hofrichter@ni.com> Co-authored-by: Jon Kiser <jon.kiser@ni.com> Co-authored-by: Josh Blum <josh@joshknows.com> Co-authored-by: Jonathon Pendlum <jonathan.pendlum@ettus.com> Co-authored-by: Martin Braun <martin.braun@ettus.com> Co-authored-by: Matt Ettus <matt@ettus.com> Co-authored-by: Michael West <michael.west@ettus.com> Co-authored-by: Moritz Fischer <moritz.fischer@ettus.com> Co-authored-by: Nick Foster <nick@ettus.com> Co-authored-by: Nicolas Cuervo <nicolas.cuervo@ettus.com> Co-authored-by: Paul Butler <paul.butler@ni.com> Co-authored-by: Paul David <paul.david@ettus.com> Co-authored-by: Ryan Marlow <ryan.marlow@ettus.com> Co-authored-by: Sugandha Gupta <sugandha.gupta@ettus.com> Co-authored-by: Sylvain Munaut <tnt@246tNt.com> Co-authored-by: Trung Tran <trung.tran@ettus.com> Co-authored-by: Vidush Vishwanath <vidush.vishwanath@ettus.com> Co-authored-by: Wade Fife <wade.fife@ettus.com> Original-commit: bafa9d95453387814ef25e6b6256ba8db2df612f
382 lines
18 KiB
Verilog
382 lines
18 KiB
Verilog
//
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// Copyright 2018 Ettus Research, A National Instruments Company
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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: chdr_crossbar_nxn
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// Description:
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// This module implements a full-bandwidth NxN crossbar with N input and output ports
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// for CHDR traffic. It supports multiple optimization strategies for performance,
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// area and timing tradeoffs. It uses AXI-Stream for all of its links. The crossbar
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// has a dynamic routing table based on a Content Addressable Memory (CAM). The SID
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// is used to determine the destination of a packet and the routing table contains
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// a re-programmable SID to crossbar port mapping. The table is programmed using
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// special route config packets on the data input ports or using an optional
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// management port.
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// The topology, routing algorithms and the router architecture is
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// described in README.md in this directory.
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// Parameters:
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// - CHDR_W: Width of the AXI-Stream data bus
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// - NPORTS: Number of ports to instantiate
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// - DEFAULT_PORT: The failsafe port to forward a packet to is SID mapping is missing
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// - MTU: log2 of max packet size (in words)
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// - ROUTE_TBL_SIZE: log2 of the number of mappings that the routing table can hold
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// at any time. Mapping values are maintained in a FIFO fashion.
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// - MUX_ALLOC: Algorithm to allocate the egress MUX
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// * PRIO: Priority based. Lower port numbers have a higher priority
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// * ROUND-ROBIN: Round robin input port allocation
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// - OPTIMIZE: Optimization strategy for performance vs area vs timing tradeoffs
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// * AREA: Attempt to minimize area at the cost of performance (throughput) and/or timing
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// * PERFORMANCE: Attempt to maximize performance at the cost of area and/or timing
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// * TIMING: Attempt to maximize Fmax at the cost of area and/or performance
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// - NPORTS_MGMT: Number of ports with management endpoint. The first NPORTS_MGMT ports will
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// have the management port instantiated
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// - EXT_RTCFG_PORT: Enable a side-channel AXI-Stream management port to configure the
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// routing table
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// Signals:
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// - s_axis_*: Slave port for router (flattened)
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// - m_axis_*: Master port for router (flattened)
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// - s_axis_mgmt_*: Management slave port
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// - device_id: The ID of the device that has instantiated this module
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//
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module chdr_crossbar_nxn #(
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parameter [15:0] PROTOVER = {8'd1, 8'd0},
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parameter CHDR_W = 64,
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parameter [7:0] NPORTS = 8,
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parameter [7:0] DEFAULT_PORT = 0,
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parameter MTU = 9,
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parameter ROUTE_TBL_SIZE = 6,
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parameter MUX_ALLOC = "ROUND-ROBIN",
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parameter OPTIMIZE = "AREA",
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parameter [7:0] NPORTS_MGMT = NPORTS,
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parameter [0:0] EXT_RTCFG_PORT = 0
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) (
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input wire clk,
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input wire reset,
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// Device info
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input wire [15:0] device_id,
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// Inputs
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input wire [(CHDR_W*NPORTS)-1:0] s_axis_tdata,
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input wire [NPORTS-1:0] s_axis_tlast,
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input wire [NPORTS-1:0] s_axis_tvalid,
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output wire [NPORTS-1:0] s_axis_tready,
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// Output
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output wire [(CHDR_W*NPORTS)-1:0] m_axis_tdata,
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output wire [NPORTS-1:0] m_axis_tlast,
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output wire [NPORTS-1:0] m_axis_tvalid,
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input wire [NPORTS-1:0] m_axis_tready,
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// Router config management port
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input wire ext_rtcfg_stb,
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input wire [15:0] ext_rtcfg_addr,
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input wire [31:0] ext_rtcfg_data,
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output wire ext_rtcfg_ack
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);
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// ---------------------------------------------------
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// RFNoC Includes
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// ---------------------------------------------------
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`include "../core/rfnoc_chdr_utils.vh"
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`include "../core/rfnoc_chdr_internal_utils.vh"
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localparam NPORTS_W = $clog2(NPORTS);
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localparam EPID_W = 16;
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localparam [17:0] EXT_INFO = {1'b0, EXT_RTCFG_PORT, NPORTS_MGMT, NPORTS};
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localparam [0:0] PKT_ST_HEAD = 1'b0;
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localparam [0:0] PKT_ST_BODY = 1'b1;
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// The compute_mux_alloc function is the switch allocation function for the MUX
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// i.e. it chooses which input port reserves the output MUX for packet transfer.
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function [NPORTS_W-1:0] compute_mux_alloc;
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input [NPORTS-1:0] pkt_waiting;
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input [NPORTS_W-1:0] last_alloc;
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reg signed [NPORTS_W:0] i;
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begin
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compute_mux_alloc = last_alloc;
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for (i = NPORTS-1; i >= 0; i=i-1) begin
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if (MUX_ALLOC == "PRIO") begin
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// Priority. Lower port index gets a higher priority.
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if (pkt_waiting[i])
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compute_mux_alloc = i;
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end else begin
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// Round-robin
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if (pkt_waiting[(last_alloc + i + 1) % NPORTS])
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compute_mux_alloc = (last_alloc + i + 1) % NPORTS;
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end
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end
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end
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endfunction
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wire [NPORTS-1:0] rtcfg_req_wr;
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wire [(16*NPORTS)-1:0] rtcfg_req_addr;
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wire [(32*NPORTS)-1:0] rtcfg_req_data;
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wire [NPORTS-1:0] rtcfg_resp_ack;
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wire [(EPID_W*NPORTS)-1:0] find_tdata;
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wire [NPORTS-1:0] find_tvalid;
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wire [NPORTS-1:0] find_tready;
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wire [(NPORTS_W*NPORTS)-1:0] result_tdata;
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wire [NPORTS-1:0] result_tkeep;
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wire [NPORTS-1:0] result_tvalid;
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wire [NPORTS-1:0] result_tready;
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// Instantiate a single CAM-based routing table that will be shared between all
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// input ports. Configuration and lookup is performed using an AXI-Stream iface.
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// If multiple packets arrive simultaneously, only the headers of those packets will
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// be serialized in order to arbitrate this map. Selection is done round-robin.
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chdr_xb_routing_table #(
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.SIZE(ROUTE_TBL_SIZE), .NPORTS(NPORTS),
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.EXT_INS_PORT_EN(EXT_RTCFG_PORT)
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) routing_tbl_i (
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.clk (clk ),
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.reset (reset ),
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.port_req_wr (rtcfg_req_wr ),
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.port_req_addr (rtcfg_req_addr),
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.port_req_data (rtcfg_req_data),
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.port_resp_ack (rtcfg_resp_ack),
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.ext_req_wr (ext_rtcfg_stb ),
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.ext_req_addr (ext_rtcfg_addr),
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.ext_req_data (ext_rtcfg_data),
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.ext_resp_ack (ext_rtcfg_ack ),
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.axis_find_tdata (find_tdata ),
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.axis_find_tvalid (find_tvalid ),
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.axis_find_tready (find_tready ),
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.axis_result_tdata (result_tdata ),
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.axis_result_tkeep (result_tkeep ),
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.axis_result_tvalid(result_tvalid ),
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.axis_result_tready(result_tready )
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);
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wire [CHDR_W-1:0] i_tdata [0:NPORTS-1];
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wire [9:0] i_tdest [0:NPORTS-1];
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wire [1:0] i_tid [0:NPORTS-1];
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wire i_tlast [0:NPORTS-1];
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wire i_tvalid [0:NPORTS-1];
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wire i_tready [0:NPORTS-1];
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wire [CHDR_W-1:0] buf_tdata [0:NPORTS-1];
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wire [NPORTS_W-1:0] buf_tdest [0:NPORTS-1], buf_tdest_tmp[0:NPORTS-1];
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wire buf_tkeep [0:NPORTS-1];
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wire buf_tlast [0:NPORTS-1];
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wire buf_tvalid[0:NPORTS-1];
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wire buf_tready[0:NPORTS-1];
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wire [CHDR_W-1:0] swi_tdata [0:NPORTS-1];
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wire [NPORTS_W-1:0] swi_tdest [0:NPORTS-1];
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wire swi_tlast [0:NPORTS-1];
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wire swi_tvalid[0:NPORTS-1];
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wire swi_tready[0:NPORTS-1];
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wire [(CHDR_W*NPORTS)-1:0] swo_tdata [0:NPORTS-1], muxi_tdata [0:NPORTS-1];
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wire [NPORTS-1:0] swo_tlast [0:NPORTS-1], muxi_tlast [0:NPORTS-1];
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wire [NPORTS-1:0] swo_tvalid[0:NPORTS-1], muxi_tvalid[0:NPORTS-1];
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wire [NPORTS-1:0] swo_tready[0:NPORTS-1], muxi_tready[0:NPORTS-1];
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genvar n, i, j;
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generate
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for (n = 0; n < NPORTS; n = n + 1) begin: i_ports
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// For each input port, first check if we have a management packet
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// arriving. If it arrives, the top config commands are extrated, sent to the
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// routing table for configuration, and the rest of the packet is forwarded
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// down to the router.
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// the router.
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if (n < NPORTS_MGMT) begin
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chdr_mgmt_pkt_handler #(
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.PROTOVER(PROTOVER), .CHDR_W(CHDR_W), .MGMT_ONLY(0)
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) mgmt_ep_i (
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.clk (clk ),
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.rst (reset ),
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.node_info (chdr_mgmt_build_node_info(EXT_INFO, n, NODE_TYPE_XBAR, device_id)),
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.s_axis_chdr_tdata (s_axis_tdata [(n*CHDR_W)+:CHDR_W] ),
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.s_axis_chdr_tlast (s_axis_tlast [n] ),
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.s_axis_chdr_tvalid (s_axis_tvalid[n] ),
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.s_axis_chdr_tready (s_axis_tready[n] ),
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.s_axis_chdr_tuser ('d0 ),
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.m_axis_chdr_tdata (i_tdata [n] ),
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.m_axis_chdr_tdest (i_tdest [n] ),
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.m_axis_chdr_tid (i_tid [n] ),
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.m_axis_chdr_tlast (i_tlast [n] ),
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.m_axis_chdr_tvalid (i_tvalid [n] ),
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.m_axis_chdr_tready (i_tready [n] ),
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.ctrlport_req_wr (rtcfg_req_wr [n] ),
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.ctrlport_req_rd (/* unused */ ),
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.ctrlport_req_addr (rtcfg_req_addr[(n*16)+:16] ),
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.ctrlport_req_data (rtcfg_req_data[(n*32)+:32] ),
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.ctrlport_resp_ack (rtcfg_resp_ack[n] ),
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.ctrlport_resp_data (32'h0 /* unused */ ),
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.op_stb (/* unused */ ),
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.op_dst_epid (/* unused */ ),
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.op_src_epid (/* unused */ ),
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.op_data (/* unused */ )
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);
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end else begin
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assign i_tdata [n] = s_axis_tdata [(n*CHDR_W)+:CHDR_W];
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assign i_tid [n] = CHDR_MGMT_ROUTE_EPID;
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assign i_tdest [n] = 10'd0; // Unused
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assign i_tlast [n] = s_axis_tlast [n];
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assign i_tvalid [n] = s_axis_tvalid[n];
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assign s_axis_tready[n] = i_tready [n];
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assign rtcfg_req_wr [n] = 1'b0;
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assign rtcfg_req_addr[(n*16)+:16] = 16'h0;
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assign rtcfg_req_data[(n*32)+:32] = 32'h0;
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end
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// Ingress buffer module that does the following:
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// - Stores and gates an incoming packet
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// - Looks up destination in routing table and attaches a tdest for the packet
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chdr_xb_ingress_buff #(
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.WIDTH(CHDR_W), .MTU(MTU), .DEST_W(NPORTS_W), .NODE_ID(n)
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) buf_i (
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.clk (clk ),
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.reset (reset ),
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.s_axis_chdr_tdata (i_tdata [n] ),
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.s_axis_chdr_tdest (i_tdest [n][NPORTS_W-1:0] ),
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.s_axis_chdr_tid (i_tid [n] ),
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.s_axis_chdr_tlast (i_tlast [n] ),
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.s_axis_chdr_tvalid (i_tvalid [n] ),
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.s_axis_chdr_tready (i_tready [n] ),
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.m_axis_chdr_tdata (buf_tdata [n] ),
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.m_axis_chdr_tdest (buf_tdest_tmp[n] ),
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.m_axis_chdr_tkeep (buf_tkeep [n] ),
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.m_axis_chdr_tlast (buf_tlast [n] ),
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.m_axis_chdr_tvalid (buf_tvalid [n] ),
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.m_axis_chdr_tready (buf_tready [n] ),
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.m_axis_find_tdata (find_tdata [(n*EPID_W)+:EPID_W] ),
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.m_axis_find_tvalid (find_tvalid [n] ),
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.m_axis_find_tready (find_tready [n] ),
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.s_axis_result_tdata (result_tdata [(n*NPORTS_W)+:NPORTS_W]),
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.s_axis_result_tkeep (result_tkeep [n] ),
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.s_axis_result_tvalid(result_tvalid[n] ),
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.s_axis_result_tready(result_tready[n] )
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);
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assign buf_tdest[n] = buf_tkeep[n] ? buf_tdest_tmp[n] : DEFAULT_PORT[NPORTS_W-1:0];
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// Pipeline state
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axi_fifo #(
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.WIDTH(CHDR_W+1+NPORTS_W), .SIZE(1)
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) pipe_i (
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.clk (clk ),
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.reset (reset ),
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.clear (1'b0 ),
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.i_tdata ({buf_tlast[n], buf_tdest[n], buf_tdata[n]}),
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.i_tvalid (buf_tvalid[n] ),
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.i_tready (buf_tready[n] ),
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.o_tdata ({swi_tlast[n], swi_tdest[n], swi_tdata[n]}),
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.o_tvalid (swi_tvalid[n] ),
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.o_tready (swi_tready[n] ),
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.space (/* Unused */ ),
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.occupied (/* Unused */ )
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);
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// Ingress demux. Use the tdest field to determine packet destination
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axis_switch #(
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.DATA_W(CHDR_W), .DEST_W(1), .IN_PORTS(1), .OUT_PORTS(NPORTS), .PIPELINE(1)
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) demux_i (
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.clk (clk ),
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.reset (reset ),
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.s_axis_tdata (swi_tdata [n] ),
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.s_axis_tdest ({1'b0, swi_tdest [n]}),
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.s_axis_tlast (swi_tlast [n] ),
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.s_axis_tvalid (swi_tvalid[n] ),
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.s_axis_tready (swi_tready[n] ),
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.s_axis_alloc (1'b0 ),
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.m_axis_tdata (swo_tdata [n] ),
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.m_axis_tdest (/* Unused */ ),
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.m_axis_tlast (swo_tlast [n] ),
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.m_axis_tvalid (swo_tvalid[n] ),
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.m_axis_tready (swo_tready[n] )
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);
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end
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for (i = 0; i < NPORTS; i = i + 1) begin
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for (j = 0; j < NPORTS; j = j + 1) begin
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assign muxi_tdata [i][j*CHDR_W+:CHDR_W] = swo_tdata [j][i*CHDR_W+:CHDR_W];
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assign muxi_tlast [i][j] = swo_tlast [j][i];
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assign muxi_tvalid[i][j] = swo_tvalid [j][i];
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assign swo_tready [i][j] = muxi_tready[j][i];
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end
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end
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for (n = 0; n < NPORTS; n = n + 1) begin: o_ports
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if (OPTIMIZE == "PERFORMANCE") begin
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// Use the axis_switch module when optimizing for performance
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// This logic has some extra levels of logic to ensure
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// that the switch allocation happens in 0 clock cycles which
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// means that Fmax for this implementation will be lower.
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wire mux_ready = |muxi_tready[n]; // Max 1 bit should be high
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wire mux_valid = |muxi_tvalid[n];
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wire mux_last = |(muxi_tvalid[n] & muxi_tlast[n]);
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// Track the input packet state
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reg [0:0] pkt_state = PKT_ST_HEAD;
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always @(posedge clk) begin
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|
if (reset) begin
|
|
pkt_state <= PKT_ST_HEAD;
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|
end else if (mux_valid & mux_ready) begin
|
|
pkt_state <= mux_last ? PKT_ST_HEAD : PKT_ST_BODY;
|
|
end
|
|
end
|
|
|
|
// The switch requires the allocation to stay valid until the
|
|
// end of the packet. We also might need to keep the previous
|
|
// packet's allocation to compute the current one
|
|
reg [NPORTS_W-1:0] prev_sw_alloc = {NPORTS_W{1'b0}};
|
|
reg [NPORTS_W-1:0] pkt_sw_alloc = {NPORTS_W{1'b0}};
|
|
wire [NPORTS_W-1:0] muxi_sw_alloc = (mux_valid && pkt_state == PKT_ST_HEAD) ?
|
|
compute_mux_alloc(muxi_tvalid[n], prev_sw_alloc) : pkt_sw_alloc;
|
|
|
|
always @(posedge clk) begin
|
|
if (reset) begin
|
|
prev_sw_alloc <= {NPORTS_W{1'b0}};
|
|
pkt_sw_alloc <= {NPORTS_W{1'b0}};
|
|
end else if (mux_valid & mux_ready) begin
|
|
if (pkt_state == PKT_ST_HEAD)
|
|
pkt_sw_alloc <= muxi_sw_alloc;
|
|
if (mux_last)
|
|
prev_sw_alloc <= muxi_sw_alloc;
|
|
end
|
|
end
|
|
|
|
axis_switch #(
|
|
.DATA_W(CHDR_W), .DEST_W(1), .IN_PORTS(NPORTS), .OUT_PORTS(1),
|
|
.PIPELINE(0)
|
|
) mux_i (
|
|
.clk (clk ),
|
|
.reset (reset ),
|
|
.s_axis_tdata (muxi_tdata [n] ),
|
|
.s_axis_tdest ({NPORTS{1'b0}} /* Unused */ ),
|
|
.s_axis_tlast (muxi_tlast [n] ),
|
|
.s_axis_tvalid (muxi_tvalid[n] ),
|
|
.s_axis_tready (muxi_tready[n] ),
|
|
.s_axis_alloc (muxi_sw_alloc ),
|
|
.m_axis_tdata (m_axis_tdata [(n*CHDR_W)+:CHDR_W]),
|
|
.m_axis_tdest (/* Unused */ ),
|
|
.m_axis_tlast (m_axis_tlast [n] ),
|
|
.m_axis_tvalid (m_axis_tvalid[n] ),
|
|
.m_axis_tready (m_axis_tready[n] )
|
|
);
|
|
end else begin
|
|
// axi_mux has an additional bubble cycle but the logic
|
|
// to allocate an input port has fewer levels and takes
|
|
// up fewer resources.
|
|
axi_mux #(
|
|
.PRIO(MUX_ALLOC == "PRIO"), .WIDTH(CHDR_W), .SIZE(NPORTS),
|
|
.PRE_FIFO_SIZE(OPTIMIZE == "TIMING" ? 1 : 0), .POST_FIFO_SIZE(1)
|
|
) mux_i (
|
|
.clk (clk ),
|
|
.reset (reset ),
|
|
.clear (1'b0 ),
|
|
.i_tdata (muxi_tdata [n] ),
|
|
.i_tlast (muxi_tlast [n] ),
|
|
.i_tvalid (muxi_tvalid [n] ),
|
|
.i_tready (muxi_tready [n] ),
|
|
.o_tdata (m_axis_tdata [(n*CHDR_W)+:CHDR_W]),
|
|
.o_tlast (m_axis_tlast [n] ),
|
|
.o_tvalid (m_axis_tvalid[n] ),
|
|
.o_tready (m_axis_tready[n] )
|
|
);
|
|
end
|
|
end
|
|
endgenerate
|
|
|
|
|
|
endmodule
|