linux/drivers/net/ethernet/intel/ice/ice_ptp.h

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/* SPDX-License-Identifier: GPL-2.0 */
/* Copyright (C) 2021, Intel Corporation. */
#ifndef _ICE_PTP_H_
#define _ICE_PTP_H_
#include <linux/ptp_clock_kernel.h>
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
#include <linux/kthread.h>
#include "ice_ptp_hw.h"
enum ice_ptp_pin {
GPIO_20 = 0,
GPIO_21,
GPIO_22,
GPIO_23,
NUM_ICE_PTP_PIN
};
struct ice_perout_channel {
bool ena;
u32 gpio_pin;
u64 period;
u64 start_time;
};
ice: enable transmit timestamps for E810 devices Add support for enabling Tx timestamp requests for outgoing packets on E810 devices. The ice hardware can support multiple outstanding Tx timestamp requests. When sending a descriptor to hardware, a Tx timestamp request is made by setting a request bit, and assigning an index that represents which Tx timestamp index to store the timestamp in. Hardware makes no effort to synchronize the index use, so it is up to software to ensure that Tx timestamp indexes are not re-used before the timestamp is reported back. To do this, introduce a Tx timestamp tracker which will keep track of currently in-use indexes. In the hot path, if a packet has a timestamp request, an index will be requested from the tracker. Unfortunately, this does require a lock as the indexes are shared across all queues on a PHY. There are not enough indexes to reliably assign only 1 to each queue. For the E810 devices, the timestamp indexes are not shared across PHYs, so each port can have its own tracking. Once hardware captures a timestamp, an interrupt is fired. In this interrupt, trigger a new work item that will figure out which timestamp was completed, and report the timestamp back to the stack. This function loops through the Tx timestamp indexes and checks whether there is now a valid timestamp. If so, it clears the PHY timestamp indication in the PHY memory, locks and removes the SKB and bit in the tracker, then reports the timestamp to the stack. It is possible in some cases that a timestamp request will be initiated but never completed. This might occur if the packet is dropped by software or hardware before it reaches the PHY. Add a task to the periodic work function that will check whether a timestamp request is more than a few seconds old. If so, the timestamp index is cleared in the PHY, and the SKB is released. Just as with Rx timestamps, the Tx timestamps are only 40 bits wide, and use the same overall logic for extending to 64 bits of nanoseconds. With this change, E810 devices should be able to perform basic PTP functionality. Future changes will extend the support to cover the E822-based devices. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:53 -07:00
/* The ice hardware captures Tx hardware timestamps in the PHY. The timestamp
* is stored in a buffer of registers. Depending on the specific hardware,
* this buffer might be shared across multiple PHY ports.
*
* On transmit of a packet to be timestamped, software is responsible for
* selecting an open index. Hardware makes no attempt to lock or prevent
* re-use of an index for multiple packets.
*
* To handle this, timestamp indexes must be tracked by software to ensure
* that an index is not re-used for multiple transmitted packets. The
* structures and functions declared in this file track the available Tx
* register indexes, as well as provide storage for the SKB pointers.
*
* To allow multiple ports to access the shared register block independently,
* the blocks are split up so that indexes are assigned to each port based on
* hardware logical port number.
*/
/**
* struct ice_tx_tstamp - Tracking for a single Tx timestamp
* @skb: pointer to the SKB for this timestamp request
* @start: jiffies when the timestamp was first requested
*
* This structure tracks a single timestamp request. The SKB pointer is
* provided when initiating a request. The start time is used to ensure that
* we discard old requests that were not fulfilled within a 2 second time
* window.
*/
struct ice_tx_tstamp {
struct sk_buff *skb;
unsigned long start;
};
/**
* struct ice_ptp_tx - Tracking structure for all Tx timestamp requests on a port
* @work: work function to handle processing of Tx timestamps
* @lock: lock to prevent concurrent write to in_use bitmap
* @tstamps: array of len to store outstanding requests
* @in_use: bitmap of len to indicate which slots are in use
* @quad: which quad the timestamps are captured in
* @quad_offset: offset into timestamp block of the quad to get the real index
* @len: length of the tstamps and in_use fields.
* @init: if true, the tracker is initialized;
*/
struct ice_ptp_tx {
struct kthread_work work;
spinlock_t lock; /* lock protecting in_use bitmap */
struct ice_tx_tstamp *tstamps;
unsigned long *in_use;
u8 quad;
u8 quad_offset;
u8 len;
u8 init;
};
/* Quad and port information for initializing timestamp blocks */
#define INDEX_PER_QUAD 64
#define INDEX_PER_PORT (INDEX_PER_QUAD / ICE_PORTS_PER_QUAD)
/**
* struct ice_ptp_port - data used to initialize an external port for PTP
*
* This structure contains PTP data related to the external ports. Currently
* it is used for tracking the Tx timestamps of a port. In the future this
* structure will also hold information for the E822 port initialization
* logic.
*
* @tx: Tx timestamp tracking for this port
*/
struct ice_ptp_port {
struct ice_ptp_tx tx;
};
#define GLTSYN_TGT_H_IDX_MAX 4
/**
* struct ice_ptp - data used for integrating with CONFIG_PTP_1588_CLOCK
ice: enable transmit timestamps for E810 devices Add support for enabling Tx timestamp requests for outgoing packets on E810 devices. The ice hardware can support multiple outstanding Tx timestamp requests. When sending a descriptor to hardware, a Tx timestamp request is made by setting a request bit, and assigning an index that represents which Tx timestamp index to store the timestamp in. Hardware makes no effort to synchronize the index use, so it is up to software to ensure that Tx timestamp indexes are not re-used before the timestamp is reported back. To do this, introduce a Tx timestamp tracker which will keep track of currently in-use indexes. In the hot path, if a packet has a timestamp request, an index will be requested from the tracker. Unfortunately, this does require a lock as the indexes are shared across all queues on a PHY. There are not enough indexes to reliably assign only 1 to each queue. For the E810 devices, the timestamp indexes are not shared across PHYs, so each port can have its own tracking. Once hardware captures a timestamp, an interrupt is fired. In this interrupt, trigger a new work item that will figure out which timestamp was completed, and report the timestamp back to the stack. This function loops through the Tx timestamp indexes and checks whether there is now a valid timestamp. If so, it clears the PHY timestamp indication in the PHY memory, locks and removes the SKB and bit in the tracker, then reports the timestamp to the stack. It is possible in some cases that a timestamp request will be initiated but never completed. This might occur if the packet is dropped by software or hardware before it reaches the PHY. Add a task to the periodic work function that will check whether a timestamp request is more than a few seconds old. If so, the timestamp index is cleared in the PHY, and the SKB is released. Just as with Rx timestamps, the Tx timestamps are only 40 bits wide, and use the same overall logic for extending to 64 bits of nanoseconds. With this change, E810 devices should be able to perform basic PTP functionality. Future changes will extend the support to cover the E822-based devices. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:53 -07:00
* @port: data for the PHY port initialization procedure
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
* @work: delayed work function for periodic tasks
* @extts_work: work function for handling external Tx timestamps
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
* @cached_phc_time: a cached copy of the PHC time for timestamp extension
* @ext_ts_chan: the external timestamp channel in use
* @ext_ts_irq: the external timestamp IRQ in use
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
* @kworker: kwork thread for handling periodic work
* @perout_channels: periodic output data
* @info: structure defining PTP hardware capabilities
* @clock: pointer to registered PTP clock device
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
* @tstamp_config: hardware timestamping configuration
*/
struct ice_ptp {
ice: enable transmit timestamps for E810 devices Add support for enabling Tx timestamp requests for outgoing packets on E810 devices. The ice hardware can support multiple outstanding Tx timestamp requests. When sending a descriptor to hardware, a Tx timestamp request is made by setting a request bit, and assigning an index that represents which Tx timestamp index to store the timestamp in. Hardware makes no effort to synchronize the index use, so it is up to software to ensure that Tx timestamp indexes are not re-used before the timestamp is reported back. To do this, introduce a Tx timestamp tracker which will keep track of currently in-use indexes. In the hot path, if a packet has a timestamp request, an index will be requested from the tracker. Unfortunately, this does require a lock as the indexes are shared across all queues on a PHY. There are not enough indexes to reliably assign only 1 to each queue. For the E810 devices, the timestamp indexes are not shared across PHYs, so each port can have its own tracking. Once hardware captures a timestamp, an interrupt is fired. In this interrupt, trigger a new work item that will figure out which timestamp was completed, and report the timestamp back to the stack. This function loops through the Tx timestamp indexes and checks whether there is now a valid timestamp. If so, it clears the PHY timestamp indication in the PHY memory, locks and removes the SKB and bit in the tracker, then reports the timestamp to the stack. It is possible in some cases that a timestamp request will be initiated but never completed. This might occur if the packet is dropped by software or hardware before it reaches the PHY. Add a task to the periodic work function that will check whether a timestamp request is more than a few seconds old. If so, the timestamp index is cleared in the PHY, and the SKB is released. Just as with Rx timestamps, the Tx timestamps are only 40 bits wide, and use the same overall logic for extending to 64 bits of nanoseconds. With this change, E810 devices should be able to perform basic PTP functionality. Future changes will extend the support to cover the E822-based devices. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:53 -07:00
struct ice_ptp_port port;
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
struct kthread_delayed_work work;
struct kthread_work extts_work;
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
u64 cached_phc_time;
u8 ext_ts_chan;
u8 ext_ts_irq;
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
struct kthread_worker *kworker;
struct ice_perout_channel perout_channels[GLTSYN_TGT_H_IDX_MAX];
struct ptp_clock_info info;
struct ptp_clock *clock;
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
struct hwtstamp_config tstamp_config;
};
ice: enable transmit timestamps for E810 devices Add support for enabling Tx timestamp requests for outgoing packets on E810 devices. The ice hardware can support multiple outstanding Tx timestamp requests. When sending a descriptor to hardware, a Tx timestamp request is made by setting a request bit, and assigning an index that represents which Tx timestamp index to store the timestamp in. Hardware makes no effort to synchronize the index use, so it is up to software to ensure that Tx timestamp indexes are not re-used before the timestamp is reported back. To do this, introduce a Tx timestamp tracker which will keep track of currently in-use indexes. In the hot path, if a packet has a timestamp request, an index will be requested from the tracker. Unfortunately, this does require a lock as the indexes are shared across all queues on a PHY. There are not enough indexes to reliably assign only 1 to each queue. For the E810 devices, the timestamp indexes are not shared across PHYs, so each port can have its own tracking. Once hardware captures a timestamp, an interrupt is fired. In this interrupt, trigger a new work item that will figure out which timestamp was completed, and report the timestamp back to the stack. This function loops through the Tx timestamp indexes and checks whether there is now a valid timestamp. If so, it clears the PHY timestamp indication in the PHY memory, locks and removes the SKB and bit in the tracker, then reports the timestamp to the stack. It is possible in some cases that a timestamp request will be initiated but never completed. This might occur if the packet is dropped by software or hardware before it reaches the PHY. Add a task to the periodic work function that will check whether a timestamp request is more than a few seconds old. If so, the timestamp index is cleared in the PHY, and the SKB is released. Just as with Rx timestamps, the Tx timestamps are only 40 bits wide, and use the same overall logic for extending to 64 bits of nanoseconds. With this change, E810 devices should be able to perform basic PTP functionality. Future changes will extend the support to cover the E822-based devices. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:53 -07:00
#define __ptp_port_to_ptp(p) \
container_of((p), struct ice_ptp, port)
#define ptp_port_to_pf(p) \
container_of(__ptp_port_to_ptp((p)), struct ice_pf, ptp)
#define __ptp_info_to_ptp(i) \
container_of((i), struct ice_ptp, info)
#define ptp_info_to_pf(i) \
container_of(__ptp_info_to_ptp((i)), struct ice_pf, ptp)
#define PTP_SHARED_CLK_IDX_VALID BIT(31)
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
#define ICE_PTP_TS_VALID BIT(0)
/* Per-channel register definitions */
#define GLTSYN_AUX_OUT(_chan, _idx) (GLTSYN_AUX_OUT_0(_idx) + ((_chan) * 8))
#define GLTSYN_AUX_IN(_chan, _idx) (GLTSYN_AUX_IN_0(_idx) + ((_chan) * 8))
#define GLTSYN_CLKO(_chan, _idx) (GLTSYN_CLKO_0(_idx) + ((_chan) * 8))
#define GLTSYN_TGT_L(_chan, _idx) (GLTSYN_TGT_L_0(_idx) + ((_chan) * 16))
#define GLTSYN_TGT_H(_chan, _idx) (GLTSYN_TGT_H_0(_idx) + ((_chan) * 16))
#define GLTSYN_EVNT_L(_chan, _idx) (GLTSYN_EVNT_L_0(_idx) + ((_chan) * 16))
#define GLTSYN_EVNT_H(_chan, _idx) (GLTSYN_EVNT_H_0(_idx) + ((_chan) * 16))
#define GLTSYN_EVNT_H_IDX_MAX 3
/* Pin definitions for PTP PPS out */
#define PPS_CLK_GEN_CHAN 3
#define PPS_CLK_SRC_CHAN 2
#define PPS_PIN_INDEX 5
#define TIME_SYNC_PIN_INDEX 4
#define E810_N_EXT_TS 3
#define E810_N_PER_OUT 4
#if IS_ENABLED(CONFIG_PTP_1588_CLOCK)
struct ice_pf;
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
int ice_ptp_set_ts_config(struct ice_pf *pf, struct ifreq *ifr);
int ice_ptp_get_ts_config(struct ice_pf *pf, struct ifreq *ifr);
int ice_get_ptp_clock_index(struct ice_pf *pf);
ice: enable transmit timestamps for E810 devices Add support for enabling Tx timestamp requests for outgoing packets on E810 devices. The ice hardware can support multiple outstanding Tx timestamp requests. When sending a descriptor to hardware, a Tx timestamp request is made by setting a request bit, and assigning an index that represents which Tx timestamp index to store the timestamp in. Hardware makes no effort to synchronize the index use, so it is up to software to ensure that Tx timestamp indexes are not re-used before the timestamp is reported back. To do this, introduce a Tx timestamp tracker which will keep track of currently in-use indexes. In the hot path, if a packet has a timestamp request, an index will be requested from the tracker. Unfortunately, this does require a lock as the indexes are shared across all queues on a PHY. There are not enough indexes to reliably assign only 1 to each queue. For the E810 devices, the timestamp indexes are not shared across PHYs, so each port can have its own tracking. Once hardware captures a timestamp, an interrupt is fired. In this interrupt, trigger a new work item that will figure out which timestamp was completed, and report the timestamp back to the stack. This function loops through the Tx timestamp indexes and checks whether there is now a valid timestamp. If so, it clears the PHY timestamp indication in the PHY memory, locks and removes the SKB and bit in the tracker, then reports the timestamp to the stack. It is possible in some cases that a timestamp request will be initiated but never completed. This might occur if the packet is dropped by software or hardware before it reaches the PHY. Add a task to the periodic work function that will check whether a timestamp request is more than a few seconds old. If so, the timestamp index is cleared in the PHY, and the SKB is released. Just as with Rx timestamps, the Tx timestamps are only 40 bits wide, and use the same overall logic for extending to 64 bits of nanoseconds. With this change, E810 devices should be able to perform basic PTP functionality. Future changes will extend the support to cover the E822-based devices. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:53 -07:00
s8 ice_ptp_request_ts(struct ice_ptp_tx *tx, struct sk_buff *skb);
void ice_ptp_process_ts(struct ice_pf *pf);
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
void
ice_ptp_rx_hwtstamp(struct ice_ring *rx_ring,
union ice_32b_rx_flex_desc *rx_desc, struct sk_buff *skb);
void ice_ptp_init(struct ice_pf *pf);
void ice_ptp_release(struct ice_pf *pf);
#else /* IS_ENABLED(CONFIG_PTP_1588_CLOCK) */
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
static inline int ice_ptp_set_ts_config(struct ice_pf *pf, struct ifreq *ifr)
{
return -EOPNOTSUPP;
}
static inline int ice_ptp_get_ts_config(struct ice_pf *pf, struct ifreq *ifr)
{
return -EOPNOTSUPP;
}
static inline int ice_get_ptp_clock_index(struct ice_pf *pf)
{
return -1;
}
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
static inline s8
ice: enable transmit timestamps for E810 devices Add support for enabling Tx timestamp requests for outgoing packets on E810 devices. The ice hardware can support multiple outstanding Tx timestamp requests. When sending a descriptor to hardware, a Tx timestamp request is made by setting a request bit, and assigning an index that represents which Tx timestamp index to store the timestamp in. Hardware makes no effort to synchronize the index use, so it is up to software to ensure that Tx timestamp indexes are not re-used before the timestamp is reported back. To do this, introduce a Tx timestamp tracker which will keep track of currently in-use indexes. In the hot path, if a packet has a timestamp request, an index will be requested from the tracker. Unfortunately, this does require a lock as the indexes are shared across all queues on a PHY. There are not enough indexes to reliably assign only 1 to each queue. For the E810 devices, the timestamp indexes are not shared across PHYs, so each port can have its own tracking. Once hardware captures a timestamp, an interrupt is fired. In this interrupt, trigger a new work item that will figure out which timestamp was completed, and report the timestamp back to the stack. This function loops through the Tx timestamp indexes and checks whether there is now a valid timestamp. If so, it clears the PHY timestamp indication in the PHY memory, locks and removes the SKB and bit in the tracker, then reports the timestamp to the stack. It is possible in some cases that a timestamp request will be initiated but never completed. This might occur if the packet is dropped by software or hardware before it reaches the PHY. Add a task to the periodic work function that will check whether a timestamp request is more than a few seconds old. If so, the timestamp index is cleared in the PHY, and the SKB is released. Just as with Rx timestamps, the Tx timestamps are only 40 bits wide, and use the same overall logic for extending to 64 bits of nanoseconds. With this change, E810 devices should be able to perform basic PTP functionality. Future changes will extend the support to cover the E822-based devices. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:53 -07:00
ice_ptp_request_ts(struct ice_ptp_tx *tx, struct sk_buff *skb)
{
return -1;
}
static inline void ice_ptp_process_ts(struct ice_pf *pf) { }
ice: enable receive hardware timestamping Add SIOCGHWTSTAMP and SIOCSHWTSTAMP ioctl handlers to respond to requests to enable timestamping support. If the request is for enabling Rx timestamps, set a bit in the Rx descriptors to indicate that receive timestamps should be reported. Hardware captures receive timestamps in the PHY which only captures part of the timer, and reports only 40 bits into the Rx descriptor. The upper 32 bits represent the contents of GLTSYN_TIME_L at the point of packet reception, while the lower 8 bits represent the upper 8 bits of GLTSYN_TIME_0. The networking and PTP stack expect 64 bit timestamps in nanoseconds. To support this, implement some logic to extend the timestamps by using the full PHC time. If the Rx timestamp was captured prior to the PHC time, then the real timestamp is PHC - (lower_32_bits(PHC) - timestamp) If the Rx timestamp was captured after the PHC time, then the real timestamp is PHC + (timestamp - lower_32_bits(PHC)) These calculations are correct as long as neither the PHC timestamp nor the Rx timestamps are more than 2^32-1 nanseconds old. Further, we can detect when the Rx timestamp is before or after the PHC as long as the PHC timestamp is no more than 2^31-1 nanoseconds old. In that case, we calculate the delta between the lower 32 bits of the PHC and the Rx timestamp. If it's larger than 2^31-1 then the Rx timestamp must have been captured in the past. If it's smaller, then the Rx timestamp must have been captured after PHC time. Add an ice_ptp_extend_32b_ts function that relies on a cached copy of the PHC time and implements this algorithm to calculate the proper upper 32bits of the Rx timestamps. Cache the PHC time periodically in all of the Rx rings. This enables each Rx ring to simply call the extension function with a recent copy of the PHC time. By ensuring that the PHC time is kept up to date periodically, we ensure this algorithm doesn't use stale data and produce incorrect results. To cache the time, introduce a kworker and a kwork item to periodically store the Rx time. It might seem like we should use the .do_aux_work interface of the PTP clock. This doesn't work because all PFs must cache this time, but only one PF owns the PTP clock device. Thus, the ice driver will manage its own kthread instead of relying on the PTP do_aux_work handler. With this change, the driver can now report Rx timestamps on all incoming packets. Signed-off-by: Jacob Keller <jacob.e.keller@intel.com> Tested-by: Tony Brelinski <tonyx.brelinski@intel.com> Signed-off-by: Tony Nguyen <anthony.l.nguyen@intel.com>
2021-06-09 09:39:52 -07:00
static inline void
ice_ptp_rx_hwtstamp(struct ice_ring *rx_ring,
union ice_32b_rx_flex_desc *rx_desc, struct sk_buff *skb) { }
static inline void ice_ptp_init(struct ice_pf *pf) { }
static inline void ice_ptp_release(struct ice_pf *pf) { }
#endif /* IS_ENABLED(CONFIG_PTP_1588_CLOCK) */
#endif /* _ICE_PTP_H_ */