
Added initial support Xilinx Embedded Software. Signed-off-by: Jagannadha Sutradharudu Teki <jaganna@xilinx.com>
819 lines
30 KiB
C
Executable file
819 lines
30 KiB
C
Executable file
/******************************************************************************
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*
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* Copyright (C) 2008 - 2014 Xilinx, Inc. All rights reserved.
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to deal
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* in the Software without restriction, including without limitation the rights
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* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice shall be included in
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* all copies or substantial portions of the Software.
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*
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* Use of the Software is limited solely to applications:
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* (a) running on a Xilinx device, or
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* (b) that interact with a Xilinx device through a bus or interconnect.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* XILINX CONSORTIUM BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY,
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* WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF
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* OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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* SOFTWARE.
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*
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* Except as contained in this notice, the name of the Xilinx shall not be used
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* in advertising or otherwise to promote the sale, use or other dealings in
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* this Software without prior written authorization from Xilinx.
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*
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******************************************************************************/
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/*****************************************************************************/
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/**
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*
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* @file xavb_ptp_bmca.c
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*
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* The XAvb driver. Functions in this file all relate to the Best Master Clock
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* Algorithm (BMCA) which is performed on the AVB network to select a network
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* Grand Master Clock.
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*
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* <pre>
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* MODIFICATION HISTORY:
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*
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* Ver Who Date Changes
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* ----- ---- -------- -----------------------------------------------
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* 1.00a mbr 09/19/08 First release
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* 1.01a mbr 06/24/09 PTP frame format updates for IEEE802.1 AS draft 5-0
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* 2_02a mbr 09/16/09 Updates for programmable PTP timers
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* 2_04a kag 07/23/10 PTP frame format updates for IEEE802.1 AS draft 6-7
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* 3_01a kag 08/29/11 Added new APIs to update the RX Filter Control Reg.
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* Fix for CR:572539. Updated bit map for Rx Filter
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* control reg.
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*
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* </pre>
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*
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******************************************************************************/
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/***************************** Include Files *********************************/
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#include "xil_types.h"
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#include "xil_assert.h"
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#include "xavb_hw.h"
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#include "xavb.h"
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/************************** Constant Definitions *****************************/
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/**************************** Type Definitions *******************************/
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/***************** Macros (Inline Functions) Definitions *********************/
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/************************** Variable Definitions *****************************/
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/************************** Function Prototypes ******************************/
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/*****************************************************************************/
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/****************************************************************************/
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/**
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*
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* A New Announce Packet has been written to this device to transmit. We need to
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* decode it and rerun the Best Master Clock Algorithm (BMCA)
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*
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* @param InstancePtr is a pointer to the XAvb instance to be worked on
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*
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* @return None. But an updated True/False decision as to whether this device
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* should operate as a clock master or a slave is written into the
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* CurrentBmc data structure.
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*
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* @note None.
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*
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*****************************************************************************/
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void XAvb_DecodeTxAnnounceFrame(XAvb * InstancePtr) {
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u32 NewMaster = 0;
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XAvb_BmcData TxAnnounceFrame;
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/** Read the attributes for the new Announce frame in the Tx PTP buffer */
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XAvb_ReadAnnounceFrame(InstancePtr->Config.BaseAddress,
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(XAVB_PTP_TX_ANNOUNCE_OFFSET + 8),
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&TxAnnounceFrame);
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/** Compare the clock attributes between then new Announce frame and the
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* current master */
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NewMaster = XAvb_BestMasterClockAlgorithm(&TxAnnounceFrame,
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&InstancePtr->CurrentBmc);
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if ((NewMaster == 1) | (InstancePtr->CurrentBmc.IAmTheRtcMaster == 1)) {
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/** Update records with the NEW best master */
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XAvb_UpdateBmcRecords(&TxAnnounceFrame,
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&InstancePtr->CurrentBmc);
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#ifdef DEBUG_XAVB_LEVEL1
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xil_printf("\r\nXAvb_DecodeTxAnnounceFrame()");
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xil_printf("\r\n* BMC : I am the MASTER");
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xil_printf("\r\n-----------------------");
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xil_printf("\r\nLocal Announce Frame");
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xil_printf("\r\n-----------------------");
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xil_printf("\r\nGM ID upper %x",
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InstancePtr->CurrentBmc.GrandmasterIdentity.ClockIdentityUpper);
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xil_printf("\r\nGM ID lower %x",
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InstancePtr->CurrentBmc.GrandmasterIdentity.ClockIdentityLower);
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xil_printf("\r\nPriority1 %x",
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InstancePtr->CurrentBmc.GrandmasterPriority1);
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xil_printf("\r\nclockClass %x",
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InstancePtr->CurrentBmc.ClockQuality.clockClass);
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xil_printf("\r\nPriority2 %x",
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InstancePtr->CurrentBmc.GrandmasterPriority2);
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#endif
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/** Our new Tx Announce Packet has won - so this device must be the
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* master */
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xil_printf("\r\n*** XAvb_DecodeTxAnnounceFrame() : Call XAvb_BecomeRtcMaster() *** \r\n");
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XAvb_BecomeRtcMaster(InstancePtr,1);
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}
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}
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/****************************************************************************/
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/**
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*
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* A New Announce Packet has been received. We need to decode it and rerun the
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* Best Master Clock Algorithm (BMCA)
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*
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* @param InstancePtr is a pointer to the XAvb instance to be worked on
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* @param PtpFrameBaseAddr is the base address of the received Announce Packet
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* in the Rx PTP Packet Buffer
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*
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* @return None. But an updated True/False decision as to whether this device
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* should operate as a clock master or a slave is written into the
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* CurrentBmc data structure.
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*
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* @note None.
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*
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*****************************************************************************/
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void XAvb_DecodeRxAnnounceFrame(XAvb * InstancePtr,
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u32 PtpFrameBaseAddr) {
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u32 NewMaster = 0;
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XAvb_BmcData RxAnnounceFrame;
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/** Read the attributes for the new Announce frame received */
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XAvb_ReadAnnounceFrame(InstancePtr->Config.BaseAddress,
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PtpFrameBaseAddr,
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&RxAnnounceFrame);
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/** If the received packet's clockIdentity matches our
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* clockIdentity, ignore the packet */
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if( XAvb_ComparePortIdentity(InstancePtr->Config.BaseAddress,
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InstancePtr->portIdLocal,
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RxAnnounceFrame.SourcePortIdentity) ) {
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xil_printf("Got an announce from myself.. ignoring\r\n");
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return;
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}
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/** If the received packet's stepsRemoved field is >= 255,
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* ignore the packet */
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if( RxAnnounceFrame.stepsRemoved >= 255 ) {
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xil_printf("Got an announce with stepsRemoved > 255.. ignoring\r\n");
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return;
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}
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/** If the Announce packet's GMID matches that of our current GM
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* record, then update its records based on the current packet,
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* just in case something (such as priority) has changed. */
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if( XAvb_CompareClockIdentity(InstancePtr->Config.BaseAddress,
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RxAnnounceFrame.GrandmasterIdentity,
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InstancePtr->CurrentBmc.GrandmasterIdentity) ) {
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/** update timeout information */
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InstancePtr->PtpCounters.CounterAnnounceInterval = 0;
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XAvb_UpdateBmcRecords(&RxAnnounceFrame,
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&InstancePtr->CurrentBmc);
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/** Compare against this device's information to see if we should be GM */
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XAvb_DecodeTxAnnounceFrame(InstancePtr);
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} else if( InstancePtr->CurrentBmc.IAmTheRtcMaster ) {
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/** run BMCA on this announce to see if it is better than me */
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NewMaster = XAvb_BestMasterClockAlgorithm(&RxAnnounceFrame,
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&InstancePtr->CurrentBmc);
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if (NewMaster == 1) {
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/** Update records with the NEW best master */
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XAvb_UpdateBmcRecords(&RxAnnounceFrame,
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&InstancePtr->CurrentBmc);
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/** Capture the Announce Receipt Timeout Interval.
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* Reset the announce receipt timeout interval to use the new value.
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*/
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XAvb_ReadAnnounceReceiptTimeout(InstancePtr->Config.BaseAddress,
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PtpFrameBaseAddr,
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&RxAnnounceFrame);
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InstancePtr->CurrentBmc.AnnounceIntervalDuration =
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XAvb_ConvertLogMeanToDuration(RxAnnounceFrame.logMessageInterval);
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#ifdef DEBUG_XAVB_LEVEL1
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xil_printf("\r\r\nXAvb_DecodeRxAnnounceFrame()");
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xil_printf("\r\n-----------------------");
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xil_printf("\r\nWinning Announce Frame");
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xil_printf("\r\n-----------------------");
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xil_printf("\r\nGM ID upper %x",
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InstancePtr->CurrentBmc.GrandmasterIdentity.ClockIdentityUpper);
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xil_printf("\r\nGM ID lower %x",
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InstancePtr->CurrentBmc.GrandmasterIdentity.ClockIdentityLower);
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xil_printf("\r\nPriority1 %x",
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InstancePtr->CurrentBmc.GrandmasterPriority1);
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xil_printf("\r\nclockClass %x",
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InstancePtr->CurrentBmc.ClockQuality.clockClass);
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xil_printf("\r\nPriority2 %x",
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InstancePtr->CurrentBmc.GrandmasterPriority2);
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#endif
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/** New Rx Announce Packet has won - so this device cannot be a master */
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xil_printf("\r\n* XAvb_DecodeRxAnnounceFrame()::BMC : I am a SLAVE");
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XAvb_BecomeRtcSlave(InstancePtr);
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}
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}
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}
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/****************************************************************************/
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/**
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*
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* A New Announce Packet is to be analyzed. This function will read in the
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* packet, decode it, and extract the relevent information fields to the
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* "AnnounceFrame" data pointer.
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*
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* @param BaseAddress is the base address of the device
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* @param PtpFrameBaseAddr is the base address of the received Announce Packet
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* in the Rx PTP Packet Buffer
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* @param AnnounceFrame is a pointer to a suitable data structure, designed to
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* record the useful fields from the received Announce Packet
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*
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* @return The AnnounceFrame data structure is updated.
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*
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* @note None.
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*
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*****************************************************************************/
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void XAvb_ReadAnnounceFrame(u32 BaseAddress,
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u32 PtpFrameBaseAddr,
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XAvb_BmcData * AnnounceFrame) {
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u32 ReadWord;
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AnnounceFrame->SourcePortIdentity.ClockIdentityLower = 0;
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AnnounceFrame->SourcePortIdentity.ClockIdentityUpper = 0;
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/** Get the Source Port Identity of the port sending the Announce Packet */
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XAvb_GetPortIdentity(BaseAddress, PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_PORTID_UPPER_OFFSET, &AnnounceFrame->SourcePortIdentity);
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/** Read priority1 and top half of ClockQuality */
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ReadWord = XAvb_ReorderWord(XAvb_ReadPtpBuffer(BaseAddress, PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_ANNOUNCE_PRI1_QUAL_HI_OFFSET));
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AnnounceFrame->GrandmasterPriority1 = (ReadWord >> 16);
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AnnounceFrame->ClockQuality.clockClass = (ReadWord >> 8);
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AnnounceFrame->ClockQuality.clockAccuracy = ReadWord;
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/** Read bottom half of ClockQuality, priority2, and top byte of GMID */
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ReadWord = XAvb_ReorderWord(XAvb_ReadPtpBuffer(BaseAddress, PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_ANNOUNCE_QUAL_LOW_PRI2_GMID_HI_OFFSET));
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AnnounceFrame->ClockQuality.offsetScaledLogVariance = (ReadWord >> 16);
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AnnounceFrame->GrandmasterPriority2 = (ReadWord >> 8);
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AnnounceFrame->GrandmasterIdentity.ClockIdentityUpper = (ReadWord << 24);
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/** Read bytes 4-7 of GMID */
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ReadWord = XAvb_ReorderWord(XAvb_ReadPtpBuffer(BaseAddress, PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_ANNOUNCE_GMID_MID_OFFSET));
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AnnounceFrame->GrandmasterIdentity.ClockIdentityUpper |= (ReadWord >> 8);
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AnnounceFrame->GrandmasterIdentity.ClockIdentityLower = (ReadWord << 24);
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/** Read bytes 1-3 of GMID and high byte of stepsRemoved */
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ReadWord = XAvb_ReorderWord(XAvb_ReadPtpBuffer(BaseAddress, PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_ANNOUNCE_GMID_LOW_STEPSREMOVED_HI_OFFSET));
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AnnounceFrame->GrandmasterIdentity.ClockIdentityLower |= (ReadWord >> 8);
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AnnounceFrame->stepsRemoved = (ReadWord << 8);
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/** Read low byte of stepsRemoved */
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ReadWord = XAvb_ReorderWord(XAvb_ReadPtpBuffer(BaseAddress, PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_ANNOUNCE_STEPSREMOVED_LOW_TIMESRC_OFFSET));
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AnnounceFrame->stepsRemoved |= (ReadWord >> 24);
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}
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/****************************************************************************/
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/**
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*
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* This function reads the logMessageinteval from an RX PTP Buffer and updates
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* the AnnounceFrame struct with the value read.
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*
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* @param BaseAddress is the base address of the device
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* @param PtpFrameBaseAddr is the base address of the received Announce Packet
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* in the Rx PTP Packet Buffer
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* @param AnnounceFrame is a pointer to a suitable data structure, designed to
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* record the useful fields from the received Announce Packet
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*
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* @return The AnnounceFrame data structure is updated.
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*
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* @note None.
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*
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*****************************************************************************/
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void XAvb_ReadAnnounceReceiptTimeout(u32 BaseAddress,
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u32 PtpFrameBaseAddr,
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XAvb_BmcData * AnnounceFrame) {
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u32 ReadWord;
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u8 logMessageInterval;
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ReadWord = XAvb_ReorderWord((XAvb_ReadPtpBuffer(BaseAddress,
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PtpFrameBaseAddr,
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XAVB_PTP_RX_PKT_SEQUENCEID_OFFSET)) &
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0xFF000000);
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logMessageInterval = ReadWord;
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/* Implicit convert from unsigned (u8) to signed (char) */
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AnnounceFrame->logMessageInterval = logMessageInterval;
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}
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/****************************************************************************/
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/**
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*
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* This function will accept the data pointer to the current BMCA records, accept
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* a pointer to an equivalent data structure for the new Announce Packet. The
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* Best Master Clock Algorithm (BMCA) is then performed on these two data
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* structures by comparing the data fields
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*
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* @param CurrentBmc is a pointer to a suitable data structure, designed to
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* record the current fields from the current Grand Master's Announce
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* Packet.
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* @param AnnounceFrame is a pointer to a suitable data structure, designed to
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* record the useful fields from the received Announce Packet
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*
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* @return An updated True/False decision as to whether there is to be a change
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* of Grand Master in the network.
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*
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* @note None.
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*
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*****************************************************************************/
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u32 XAvb_BestMasterClockAlgorithm(XAvb_BmcData * AnnounceFrame,
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XAvb_BmcData * CurrentBmc) {
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u32 NewMaster = 0;
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("*** Performing BMCA ***\r\n");
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#endif
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/** Priority1 takes precedence over all over priorites */
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if (AnnounceFrame->GrandmasterPriority1 < CurrentBmc->GrandmasterPriority1) {
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/** we have found a better master! */
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NewMaster = 1;
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: Found new GM on priority1: AnnPri1 (%d) < BmcPri1 (%d)\r\n",
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AnnounceFrame->GrandmasterPriority1,
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CurrentBmc->GrandmasterPriority1);
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#endif
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} else if (AnnounceFrame->GrandmasterPriority1 ==
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CurrentBmc->GrandmasterPriority1) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: priority1 equal moving on: (%d)\r\n",
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AnnounceFrame->GrandmasterPriority1);
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#endif
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/** convert structs to u32 values for easy comparison */
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u32 AnnClockQualityInteger;
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u32 BmcClockQualityInteger;
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AnnClockQualityInteger = (AnnounceFrame->ClockQuality.clockClass << 24) |
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(AnnounceFrame->ClockQuality.clockAccuracy << 16) |
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(AnnounceFrame->ClockQuality.offsetScaledLogVariance);
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BmcClockQualityInteger = (CurrentBmc->ClockQuality.clockClass << 24) |
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(CurrentBmc->ClockQuality.clockAccuracy << 16) |
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(CurrentBmc->ClockQuality.offsetScaledLogVariance);
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/** ClockQuality has the next priority */
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if (AnnClockQualityInteger < BmcClockQualityInteger ) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: Found new GM on clockQuality: Ann (0x%08x) < Bmc (0x%08x)\r\n",
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AnnClockQualityInteger,
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BmcClockQualityInteger);
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#endif
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/** we have found a better master! */
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NewMaster = 1;
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} else if ( AnnClockQualityInteger == BmcClockQualityInteger ) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: clockQuality equal moving on: (0x%08x)\r\n",
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AnnClockQualityInteger);
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#endif
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/** Priority2 provides fine grained ordering amongst otherwise equal
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* clocks */
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if (AnnounceFrame->GrandmasterPriority2 <
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CurrentBmc->GrandmasterPriority2) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: Found new GM on priority2: AnnPri1 (%d) < BmcPri1 (%d)\r\n",
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AnnounceFrame->GrandmasterPriority2,
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CurrentBmc->GrandmasterPriority2);
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#endif
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/** we have found a better master! */
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NewMaster = 1;
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/** Next compare the Clock Identities */
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} else if (AnnounceFrame->GrandmasterPriority2
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== CurrentBmc->GrandmasterPriority2) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: priority2 equal moving on: (%d)\r\n",
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AnnounceFrame->GrandmasterPriority2);
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#endif
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if (AnnounceFrame->GrandmasterIdentity.ClockIdentityUpper <
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CurrentBmc->GrandmasterIdentity.ClockIdentityUpper) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: Found new GM on GMIDClockIDUp: Ann (0x%08x) < Bmc (0x%08x)\r\n",
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AnnounceFrame->GrandmasterIdentity.ClockIdentityUpper,
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CurrentBmc->GrandmasterIdentity.ClockIdentityUpper);
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#endif
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/** we have found a better master! */
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NewMaster = 1;
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} else if (AnnounceFrame->GrandmasterIdentity.ClockIdentityUpper
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== CurrentBmc->GrandmasterIdentity.ClockIdentityUpper) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: GMIDclockIDUp equal moving on: (0x%08x)\r\n",
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AnnounceFrame->GrandmasterIdentity.ClockIdentityUpper);
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#endif
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if (AnnounceFrame->GrandmasterIdentity.ClockIdentityLower <
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CurrentBmc->GrandmasterIdentity.ClockIdentityLower) {
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#ifdef XAVB_DEBUG_LEVEL2
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xil_printf("BMCA: Found new GM on GMIDClockIDLow: Ann (0x%08x) < Bmc (0x%08x)\r\n",
|
|
AnnounceFrame->GrandmasterIdentity.ClockIdentityLower,
|
|
CurrentBmc->GrandmasterIdentity.ClockIdentityLower);
|
|
#endif
|
|
|
|
/** we have found a better master! */
|
|
NewMaster = 1;
|
|
|
|
/** Next compare stepsRemoved */
|
|
} else if( AnnounceFrame->GrandmasterIdentity.ClockIdentityLower
|
|
== CurrentBmc->GrandmasterIdentity.ClockIdentityLower ) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: GMIDclockIDLo equal moving on: (0x%08x)\r\n",
|
|
AnnounceFrame->GrandmasterIdentity.ClockIdentityLower);
|
|
#endif
|
|
|
|
if( AnnounceFrame->stepsRemoved < CurrentBmc->stepsRemoved ) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: Found new GM on stepsRemoved: Ann (%d) < Bmc (%d)\r\n",
|
|
AnnounceFrame->stepsRemoved,
|
|
CurrentBmc->stepsRemoved);
|
|
#endif
|
|
|
|
/** we have found a better master! */
|
|
NewMaster = 1;
|
|
|
|
/** Next compare SourcePortIdentity */
|
|
} else if( AnnounceFrame->stepsRemoved == CurrentBmc->stepsRemoved ) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: stepsRemoved equal moving on: (%d)\r\n",
|
|
AnnounceFrame->stepsRemoved);
|
|
#endif
|
|
|
|
if( AnnounceFrame->SourcePortIdentity.ClockIdentityUpper <
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityUpper) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: Found new GM on sourceIDClockIDupper: Ann (0x%08x) < Bmc (0x%08x)\r\n",
|
|
AnnounceFrame->SourcePortIdentity.ClockIdentityUpper,
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityUpper);
|
|
#endif
|
|
|
|
/** we have found a better master! */
|
|
NewMaster = 1;
|
|
|
|
} else if( AnnounceFrame->SourcePortIdentity.ClockIdentityUpper
|
|
== CurrentBmc->SourcePortIdentity.ClockIdentityUpper ) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: sourceIDportUp equal moving on: (0x%08x)\r\n",
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityUpper);
|
|
#endif
|
|
|
|
if( AnnounceFrame->SourcePortIdentity.ClockIdentityLower <
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityLower ) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: Found new GM on sourceIDClockIDlow: Ann (0x%08x) < Bmc (0x%08x)\r\n",
|
|
AnnounceFrame->SourcePortIdentity.ClockIdentityLower,
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityLower);
|
|
#endif
|
|
|
|
/** we have found a better master! */
|
|
NewMaster = 1;
|
|
|
|
/** If all else fails, the SourcePortIdentity Port Number must
|
|
* act as the tie-breaker */
|
|
} else if( AnnounceFrame->SourcePortIdentity.PortNumber <
|
|
CurrentBmc->SourcePortIdentity.PortNumber ) {
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("BMCA: Found new GM on sourceIDportNum: AnnPort (0x%08x) < BmcPort (0x%08x)\r\n",
|
|
AnnounceFrame->SourcePortIdentity.PortNumber,
|
|
CurrentBmc->SourcePortIdentity.PortNumber);
|
|
#endif
|
|
|
|
/** A new master has won on the tie-break! */
|
|
NewMaster = 1;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
xil_printf("*** END BMCA ***\r\n");
|
|
#endif
|
|
|
|
return NewMaster;
|
|
|
|
}
|
|
|
|
|
|
/****************************************************************************/
|
|
/**
|
|
*
|
|
* This function will accept the data pointer to the current BMCA records, accept
|
|
* an equivalent pointer to a new (winning) Grand Masters Announce Packet
|
|
* information. The CurrentBmc data structure is then updated with the
|
|
* information from the NewMaster.
|
|
*
|
|
* @param NewMaster is a pointer to a suitable data structure which has recorded
|
|
* the relevent Announce Packet fields of the new (winning) Grand Master.
|
|
* @param CurrentBmc is a pointer to a suitable data structure which has
|
|
* recorded the current fields of the current Grand Master's Announce
|
|
* Packet.
|
|
*
|
|
* @return The CurrentBmc data structure is updated.
|
|
*
|
|
* @note None.
|
|
*
|
|
*****************************************************************************/
|
|
void XAvb_UpdateBmcRecords(XAvb_BmcData* NewMaster,
|
|
XAvb_BmcData* CurrentBmc) {
|
|
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityUpper =
|
|
NewMaster->SourcePortIdentity.ClockIdentityUpper;
|
|
|
|
CurrentBmc->SourcePortIdentity.ClockIdentityLower =
|
|
NewMaster->SourcePortIdentity.ClockIdentityLower;
|
|
|
|
CurrentBmc->SourcePortIdentity.PortNumber =
|
|
NewMaster->SourcePortIdentity.PortNumber;
|
|
|
|
CurrentBmc->GrandmasterIdentity.ClockIdentityUpper =
|
|
NewMaster->GrandmasterIdentity.ClockIdentityUpper;
|
|
|
|
CurrentBmc->GrandmasterIdentity.ClockIdentityLower =
|
|
NewMaster->GrandmasterIdentity.ClockIdentityLower;
|
|
|
|
|
|
CurrentBmc->stepsRemoved = NewMaster->stepsRemoved;
|
|
CurrentBmc->ClockQuality = NewMaster->ClockQuality;
|
|
CurrentBmc->GrandmasterPriority1 = NewMaster->GrandmasterPriority1;
|
|
CurrentBmc->GrandmasterPriority2 = NewMaster->GrandmasterPriority2;
|
|
|
|
}
|
|
|
|
|
|
/****************************************************************************/
|
|
/**
|
|
*
|
|
* This function will make any adjustments needed when the node becomes the Grand
|
|
* Master, including resetting the RTC to its nominal value
|
|
*
|
|
* @param InstancePtr is a pointer to the XAvb instance to be worked on
|
|
*
|
|
* @param txAnnounceHasWon indicates that this function has been called from
|
|
* the function XAvb_DecodeTxAnnounceFrame(). Is this is set then this
|
|
* function has no need to repeat actions that have been already performed.
|
|
*
|
|
* @return None.
|
|
*
|
|
* @note None.
|
|
*
|
|
*****************************************************************************/
|
|
void XAvb_BecomeRtcMaster(XAvb *InstancePtr,
|
|
u8 txAnnounceHasWon) {
|
|
|
|
XAvb_BmcData deviceData;
|
|
|
|
if (txAnnounceHasWon == 0) {
|
|
/**
|
|
* Update the BMCA records to this device's information
|
|
*/
|
|
|
|
/** Read the attributes in the Tx PTP buffer */
|
|
XAvb_ReadAnnounceFrame(InstancePtr->Config.BaseAddress,
|
|
(XAVB_PTP_TX_ANNOUNCE_OFFSET + 8),
|
|
&deviceData);
|
|
|
|
/** Update records */
|
|
XAvb_UpdateBmcRecords(&deviceData,
|
|
&InstancePtr->CurrentBmc);
|
|
}
|
|
|
|
/** reset the RTC to a nominal value */
|
|
XAvb_WriteReg(InstancePtr->Config.BaseAddress,
|
|
XAVB_RTC_INCREMENT_OFFSET,
|
|
XAVB_RTC_INCREMENT_NOMINAL_RATE);
|
|
|
|
/** set timestamp uncertainty if new status */
|
|
if( !InstancePtr->CurrentBmc.IAmTheRtcMaster ) {
|
|
xil_printf("\r\n*** I am now the Grand Master ***");
|
|
xil_printf("\r\nNOTICE: timestamps are now certain\r\n");
|
|
InstancePtr->GMDiscHandler(InstancePtr->GMDiscCallBackRef,
|
|
0);
|
|
}
|
|
|
|
/** inform the rest of the system */
|
|
InstancePtr->CurrentBmc.IAmTheRtcMaster = 1;
|
|
|
|
}
|
|
|
|
/****************************************************************************/
|
|
/**
|
|
*
|
|
* This function will make any adjustments needed when the node becomes a PTP slave
|
|
*
|
|
* @param InstancePtr is a pointer to the XAvb instance to be worked on
|
|
*
|
|
* @return None.
|
|
*
|
|
* @note None.
|
|
*
|
|
*****************************************************************************/
|
|
void XAvb_BecomeRtcSlave(XAvb *InstancePtr) {
|
|
|
|
/** set timestamp uncertainty if new status */
|
|
if( InstancePtr->CurrentBmc.IAmTheRtcMaster ) {
|
|
xil_printf("\r\n*** I am now a PTP slave ***");
|
|
xil_printf("\r\nNOTICE: timestamps are now uncertain\r\n");
|
|
InstancePtr->GMDiscHandler(InstancePtr->GMDiscCallBackRef,
|
|
1);
|
|
}
|
|
|
|
/* Reset the syncReceiptTimeoutTimeInterval counter as this has now changed purpose
|
|
*/
|
|
InstancePtr->PtpCounters.CounterSyncInterval = 0;
|
|
|
|
/* inform the rest of the system */
|
|
InstancePtr->CurrentBmc.IAmTheRtcMaster = 0;
|
|
|
|
|
|
}
|
|
|
|
/****************************************************************************/
|
|
/**
|
|
*
|
|
* Operations needed when PTP locks or unlocks
|
|
*
|
|
* @param InstancePtr is a pointer to the XAvb instance to be worked on
|
|
* @param locked is 1 if changing to locked status, zero if unlocked
|
|
*
|
|
* @return None.
|
|
*
|
|
* @note None.
|
|
*
|
|
*****************************************************************************/
|
|
void XAvb_ChangePTPLockStatus(XAvb *InstancePtr, u8 locked) {
|
|
u32 lockedOld;
|
|
u32 tu = 0;
|
|
|
|
lockedOld = InstancePtr->PTPLocked;
|
|
|
|
/** set status variable */
|
|
InstancePtr->PTPLocked = locked;
|
|
|
|
/** set timestamp uncertainty if necessary */
|
|
if( InstancePtr->PTPLocked != lockedOld ) {
|
|
XAvb_ChangePeerASCapability(InstancePtr, locked);
|
|
|
|
#ifdef XAVB_DEBUG_LEVEL2
|
|
if (locked == 0) {
|
|
xil_printf("\r\nXAvb_ChangePTPLockStatus():The peer is no longer ASCapable ");
|
|
xil_printf("\r\nXAvb_ChangePTPLockStatus():locked = %d\r\n",locked);
|
|
}
|
|
#endif
|
|
|
|
tu = InstancePtr->PTPLocked ? 0 : 1;
|
|
xil_printf("\r\nXAvb_ChangePTPLockStatus()::");
|
|
xil_printf("\r\nNOTICE: timestamps are now %s\r\n", tu ? "uncertain" : "certain");
|
|
InstancePtr->GMDiscHandler(InstancePtr->GMDiscCallBackRef,
|
|
tu);
|
|
}
|
|
|
|
}
|
|
|
|
/****************************************************************************/
|
|
/**
|
|
*
|
|
* Operations needed when the peer's AS capability changes
|
|
*
|
|
* @param InstancePtr is a pointer to the XAvb instance to be worked on
|
|
* @param capable is 1 if the peer is ASCapable, 0 otherwise
|
|
*
|
|
* @return None.
|
|
*
|
|
* @note None.
|
|
*
|
|
*****************************************************************************/
|
|
void XAvb_ChangePeerASCapability(XAvb *InstancePtr, u8 capable) {
|
|
u32 capableOld;
|
|
|
|
capableOld = InstancePtr->PeerASCapable;
|
|
|
|
/* set status variable */
|
|
InstancePtr->PeerASCapable = capable;
|
|
|
|
if( capable != capableOld ) {
|
|
if( capable ) {
|
|
xil_printf("\r\nThe Peer is now AS Capable\r\n");
|
|
} else {
|
|
xil_printf("\r\nThe Peer is no longer AS Capable\r\n");
|
|
}
|
|
}
|
|
|
|
}
|
|
|
|
/****************************************************************************/
|
|
/**
|
|
*
|
|
* This function sets the handler that will be called when a GM discontinuity
|
|
* event is identified by the driver. The purpose of the handler is to allow
|
|
* application specific processing to be performed.
|
|
*
|
|
* @param InstancePtr is a pointer to the XAvb instance.
|
|
* @param FuncPtr is the pointer to the callback function.
|
|
* @param CallBackRef is the upper layer callback reference passed back
|
|
* when the callback function is invoked.
|
|
*
|
|
* @return None.
|
|
*
|
|
* @note There is no assert on the CallBackRef since the driver doesn't
|
|
* know what it is (nor should it)
|
|
*
|
|
*****************************************************************************/
|
|
void XAvb_SetGMDiscontinuityHandler(XAvb *InstancePtr,
|
|
XAvb_Handler FuncPtr, void *CallBackRef)
|
|
{
|
|
/*
|
|
* Assert validates the input arguments
|
|
* CallBackRef not checked, no way to know what is valid
|
|
*/
|
|
Xil_AssertVoid(InstancePtr != NULL);
|
|
Xil_AssertVoid(FuncPtr != NULL);
|
|
Xil_AssertVoid(InstancePtr->IsReady == XIL_COMPONENT_IS_READY);
|
|
|
|
InstancePtr->GMDiscHandler = FuncPtr;
|
|
InstancePtr->GMDiscCallBackRef = CallBackRef;
|
|
}
|