xref: /dpdk/doc/guides/prog_guide/power_man.rst (revision f53fe635c116c17f30f9b2a1ab8c68c05600ed6c)
15630257fSFerruh Yigit..  SPDX-License-Identifier: BSD-3-Clause
25630257fSFerruh Yigit    Copyright(c) 2010-2014 Intel Corporation.
3fc1f2750SBernard Iremonger
4fc1f2750SBernard IremongerPower Management
5fc1f2750SBernard Iremonger================
6fc1f2750SBernard Iremonger
748624fd9SSiobhan ButlerThe DPDK Power Management feature allows users space applications to save power
8fc1f2750SBernard Iremongerby dynamically adjusting CPU frequency or entering into different C-States.
9fc1f2750SBernard Iremonger
10fc1f2750SBernard Iremonger*   Adjusting the CPU frequency dynamically according to the utilization of RX queue.
11fc1f2750SBernard Iremonger
12fc1f2750SBernard Iremonger*   Entering into different deeper C-States according to the adaptive algorithms to speculate
13fc1f2750SBernard Iremonger    brief periods of time suspending the application if no packets are received.
14fc1f2750SBernard Iremonger
15fc1f2750SBernard IremongerThe interfaces for adjusting the operating CPU frequency are in the power management library.
16fc1f2750SBernard IremongerC-State control is implemented in applications according to the different use cases.
17fc1f2750SBernard Iremonger
18fc1f2750SBernard IremongerCPU Frequency Scaling
19fc1f2750SBernard Iremonger---------------------
20fc1f2750SBernard Iremonger
21fc1f2750SBernard IremongerThe Linux kernel provides a cpufreq module for CPU frequency scaling for each lcore.
22fc1f2750SBernard IremongerFor example, for cpuX, /sys/devices/system/cpu/cpuX/cpufreq/ has the following sys files for frequency scaling:
23fc1f2750SBernard Iremonger
24fc1f2750SBernard Iremonger*   affected_cpus
25fc1f2750SBernard Iremonger
26fc1f2750SBernard Iremonger*   bios_limit
27fc1f2750SBernard Iremonger
28fc1f2750SBernard Iremonger*   cpuinfo_cur_freq
29fc1f2750SBernard Iremonger
30fc1f2750SBernard Iremonger*   cpuinfo_max_freq
31fc1f2750SBernard Iremonger
32fc1f2750SBernard Iremonger*   cpuinfo_min_freq
33fc1f2750SBernard Iremonger
34fc1f2750SBernard Iremonger*   cpuinfo_transition_latency
35fc1f2750SBernard Iremonger
36fc1f2750SBernard Iremonger*   related_cpus
37fc1f2750SBernard Iremonger
38fc1f2750SBernard Iremonger*   scaling_available_frequencies
39fc1f2750SBernard Iremonger
40fc1f2750SBernard Iremonger*   scaling_available_governors
41fc1f2750SBernard Iremonger
42fc1f2750SBernard Iremonger*   scaling_cur_freq
43fc1f2750SBernard Iremonger
44fc1f2750SBernard Iremonger*   scaling_driver
45fc1f2750SBernard Iremonger
46fc1f2750SBernard Iremonger*   scaling_governor
47fc1f2750SBernard Iremonger
48fc1f2750SBernard Iremonger*   scaling_max_freq
49fc1f2750SBernard Iremonger
50fc1f2750SBernard Iremonger*   scaling_min_freq
51fc1f2750SBernard Iremonger
52fc1f2750SBernard Iremonger*   scaling_setspeed
53fc1f2750SBernard Iremonger
5448624fd9SSiobhan ButlerIn the DPDK, scaling_governor is configured in user space.
55fc1f2750SBernard IremongerThen, a user space application can prompt the kernel by writing scaling_setspeed to adjust the CPU frequency
56fc1f2750SBernard Iremongeraccording to the strategies defined by the user space application.
57fc1f2750SBernard Iremonger
58fc1f2750SBernard IremongerCore-load Throttling through C-States
59fc1f2750SBernard Iremonger-------------------------------------
60fc1f2750SBernard Iremonger
61fc1f2750SBernard IremongerCore state can be altered by speculative sleeps whenever the specified lcore has nothing to do.
6248624fd9SSiobhan ButlerIn the DPDK, if no packet is received after polling,
63fc1f2750SBernard Iremongerspeculative sleeps can be triggered according the strategies defined by the user space application.
64fc1f2750SBernard Iremonger
6594608a0fSDavid HuntPer-core Turbo Boost
6694608a0fSDavid Hunt--------------------
6794608a0fSDavid Hunt
6894608a0fSDavid HuntIndividual cores can be allowed to enter a Turbo Boost state on a per-core
6994608a0fSDavid Huntbasis. This is achieved by enabling Turbo Boost Technology in the BIOS, then
7094608a0fSDavid Huntlooping through the relevant cores and enabling/disabling Turbo Boost on each
7194608a0fSDavid Huntcore.
7294608a0fSDavid Hunt
73d9e71f52SDavid HuntUse of Power Library in a Hyper-Threaded Environment
74d9e71f52SDavid Hunt----------------------------------------------------
75d9e71f52SDavid Hunt
76d9e71f52SDavid HuntIn the case where the power library is in use on a system with Hyper-Threading enabled,
77d9e71f52SDavid Huntthe frequency on the physical core is set to the highest frequency of the Hyper-Thread siblings.
78d9e71f52SDavid HuntSo even though an application may request a scale down, the core frequency will
79d9e71f52SDavid Huntremain at the highest frequency until all Hyper-Threads on that core request a scale down.
80d9e71f52SDavid Hunt
81fc1f2750SBernard IremongerAPI Overview of the Power Library
82fc1f2750SBernard Iremonger---------------------------------
83fc1f2750SBernard Iremonger
84fc1f2750SBernard IremongerThe main methods exported by power library are for CPU frequency scaling and include the following:
85fc1f2750SBernard Iremonger
86fc1f2750SBernard Iremonger*   **Freq up**: Prompt the kernel to scale up the frequency of the specific lcore.
87fc1f2750SBernard Iremonger
88fc1f2750SBernard Iremonger*   **Freq down**: Prompt the kernel to scale down the frequency of the specific lcore.
89fc1f2750SBernard Iremonger
90fc1f2750SBernard Iremonger*   **Freq max**: Prompt the kernel to scale up the frequency of the specific lcore to the maximum.
91fc1f2750SBernard Iremonger
92fc1f2750SBernard Iremonger*   **Freq min**: Prompt the kernel to scale down the frequency of the specific lcore to the minimum.
93fc1f2750SBernard Iremonger
94fc1f2750SBernard Iremonger*   **Get available freqs**: Read the available frequencies of the specific lcore from the sys file.
95fc1f2750SBernard Iremonger
96fc1f2750SBernard Iremonger*   **Freq get**: Get the current frequency of the specific lcore.
97fc1f2750SBernard Iremonger
98fc1f2750SBernard Iremonger*   **Freq set**: Prompt the kernel to set the frequency for the specific lcore.
99fc1f2750SBernard Iremonger
10094608a0fSDavid Hunt*   **Enable turbo**: Prompt the kernel to enable Turbo Boost for the specific lcore.
10194608a0fSDavid Hunt
10294608a0fSDavid Hunt*   **Disable turbo**: Prompt the kernel to disable Turbo Boost for the specific lcore.
10394608a0fSDavid Hunt
104fc1f2750SBernard IremongerUser Cases
105fc1f2750SBernard Iremonger----------
106fc1f2750SBernard Iremonger
107fc1f2750SBernard IremongerThe power management mechanism is used to save power when performing L3 forwarding.
108fc1f2750SBernard Iremonger
109450f0791SLiang Ma
110450f0791SLiang MaEmpty Poll API
111450f0791SLiang Ma--------------
112450f0791SLiang Ma
113450f0791SLiang MaAbstract
114450f0791SLiang Ma~~~~~~~~
115450f0791SLiang Ma
116450f0791SLiang MaFor packet processing workloads such as DPDK polling is continuous.
117450f0791SLiang MaThis means CPU cores always show 100% busy independent of how much work
118450f0791SLiang Mathose cores are doing. It is critical to accurately determine how busy
119450f0791SLiang Maa core is hugely important for the following reasons:
120450f0791SLiang Ma
121450f0791SLiang Ma        * No indication of overload conditions
122450f0791SLiang Ma        * User does not know how much real load is on a system, resulting
123450f0791SLiang Ma          in wasted energy as no power management is utilized
124450f0791SLiang Ma
125450f0791SLiang MaCompared to the original l3fwd-power design, instead of going to sleep
126450f0791SLiang Maafter detecting an empty poll, the new mechanism just lowers the core frequency.
127450f0791SLiang MaAs a result, the application does not stop polling the device, which leads
128450f0791SLiang Mato improved handling of bursts of traffic.
129450f0791SLiang Ma
130450f0791SLiang MaWhen the system become busy, the empty poll mechanism can also increase the core
131450f0791SLiang Mafrequency (including turbo) to do best effort for intensive traffic. This gives
132450f0791SLiang Maus more flexible and balanced traffic awareness over the standard l3fwd-power
133450f0791SLiang Maapplication.
134450f0791SLiang Ma
135450f0791SLiang Ma
136450f0791SLiang MaProposed Solution
137450f0791SLiang Ma~~~~~~~~~~~~~~~~~
138450f0791SLiang MaThe proposed solution focuses on how many times empty polls are executed.
139450f0791SLiang MaThe less the number of empty polls, means current core is busy with processing
140450f0791SLiang Maworkload, therefore, the higher frequency is needed. The high empty poll number
141450f0791SLiang Maindicates the current core not doing any real work therefore, we can lower the
142450f0791SLiang Mafrequency to safe power.
143450f0791SLiang Ma
144450f0791SLiang MaIn the current implementation, each core has 1 empty-poll counter which assume
145450f0791SLiang Ma1 core is dedicated to 1 queue. This will need to be expanded in the future to
146450f0791SLiang Masupport multiple queues per core.
147450f0791SLiang Ma
148450f0791SLiang MaPower state definition:
149450f0791SLiang Ma^^^^^^^^^^^^^^^^^^^^^^^
150450f0791SLiang Ma
151450f0791SLiang Ma* LOW:  Not currently used, reserved for future use.
152450f0791SLiang Ma
153450f0791SLiang Ma* MED:  the frequency is used to process modest traffic workload.
154450f0791SLiang Ma
155450f0791SLiang Ma* HIGH: the frequency is used to process busy traffic workload.
156450f0791SLiang Ma
157450f0791SLiang MaThere are two phases to establish the power management system:
158450f0791SLiang Ma^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
159450f0791SLiang Ma* Training phase. This phase is used to measure the optimal frequency
160450f0791SLiang Ma  change thresholds for a given system. The thresholds will differ from
161450f0791SLiang Ma  system to system due to differences in processor micro-architecture,
162450f0791SLiang Ma  cache and device configurations.
163450f0791SLiang Ma  In this phase, the user must ensure that no traffic can enter the
164450f0791SLiang Ma  system so that counts can be measured for empty polls at low, medium
165450f0791SLiang Ma  and high frequencies. Each frequency is measured for two seconds.
166450f0791SLiang Ma  Once the training phase is complete, the threshold numbers are
167450f0791SLiang Ma  displayed, and normal mode resumes, and traffic can be allowed into
168450f0791SLiang Ma  the system. These threshold number can be used on the command line
169450f0791SLiang Ma  when starting the application in normal mode to avoid re-training
170450f0791SLiang Ma  every time.
171450f0791SLiang Ma
172450f0791SLiang Ma* Normal phase. Every 10ms the run-time counters are compared
173450f0791SLiang Ma  to the supplied threshold values, and the decision will be made
174450f0791SLiang Ma  whether to move to a different power state (by adjusting the
175450f0791SLiang Ma  frequency).
176450f0791SLiang Ma
177450f0791SLiang MaAPI Overview for Empty Poll Power Management
178450f0791SLiang Ma~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
179450f0791SLiang Ma* **State Init**: initialize the power management system.
180450f0791SLiang Ma
181450f0791SLiang Ma* **State Free**: free the resource hold by power management system.
182450f0791SLiang Ma
183450f0791SLiang Ma* **Update Empty Poll Counter**: update the empty poll counter.
184450f0791SLiang Ma
185450f0791SLiang Ma* **Update Valid Poll Counter**: update the valid poll counter.
186450f0791SLiang Ma
18750360349SYong Wang* **Set the Frequency Index**: update the power state/frequency mapping.
188450f0791SLiang Ma
189450f0791SLiang Ma* **Detect empty poll state change**: empty poll state change detection algorithm then take action.
190450f0791SLiang Ma
191450f0791SLiang MaUser Cases
192450f0791SLiang Ma----------
193450f0791SLiang MaThe mechanism can applied to any device which is based on polling. e.g. NIC, FPGA.
194450f0791SLiang Ma
195682a6454SLiang MaEthernet PMD Power Management API
196682a6454SLiang Ma---------------------------------
197682a6454SLiang Ma
198682a6454SLiang MaAbstract
199682a6454SLiang Ma~~~~~~~~
200682a6454SLiang Ma
2015dff9a72SAnatoly BurakovExisting power management mechanisms require developers to change application
2025dff9a72SAnatoly Burakovdesign or change code to make use of it. The PMD power management API provides a
2035dff9a72SAnatoly Burakovconvenient alternative by utilizing Ethernet PMD RX callbacks, and triggering
2045dff9a72SAnatoly Burakovpower saving whenever empty poll count reaches a certain number.
205682a6454SLiang Ma
2065dff9a72SAnatoly Burakov* Monitor
2075dff9a72SAnatoly Burakov   This power saving scheme will put the CPU into optimized power state and
2085dff9a72SAnatoly Burakov   monitor the Ethernet PMD RX descriptor address, waking the CPU up whenever
2095dff9a72SAnatoly Burakov   there's new traffic. Support for this scheme may not be available on all
2105dff9a72SAnatoly Burakov   platforms, and further limitations may apply (see below).
211682a6454SLiang Ma
2125dff9a72SAnatoly Burakov* Pause
2135dff9a72SAnatoly Burakov   This power saving scheme will avoid busy polling by either entering
2145dff9a72SAnatoly Burakov   power-optimized sleep state with ``rte_power_pause()`` function, or, if it's
2155dff9a72SAnatoly Burakov   not supported by the underlying platform, use ``rte_pause()``.
216682a6454SLiang Ma
2175dff9a72SAnatoly Burakov* Frequency scaling
2185dff9a72SAnatoly Burakov   This power saving scheme will use ``librte_power`` library functionality to
2195dff9a72SAnatoly Burakov   scale the core frequency up/down depending on traffic volume.
220682a6454SLiang Ma
2215dff9a72SAnatoly BurakovThe "monitor" mode is only supported in the following configurations and scenarios:
222682a6454SLiang Ma
2235dff9a72SAnatoly Burakov* On Linux* x86_64, `rte_power_monitor()` requires WAITPKG instruction set being
224*f53fe635SAnatoly Burakov  supported by the CPU, while `rte_power_monitor_multi()` requires WAITPKG and
225*f53fe635SAnatoly Burakov  RTM instruction sets being supported by the CPU. RTM instruction set may also
226*f53fe635SAnatoly Burakov  require booting the Linux with `tsx=on` command line parameter. Please refer
227*f53fe635SAnatoly Burakov  to your platform documentation for further information.
2285dff9a72SAnatoly Burakov
2295dff9a72SAnatoly Burakov* If ``rte_cpu_get_intrinsics_support()`` function indicates that
230*f53fe635SAnatoly Burakov  ``rte_power_monitor_multi()`` function is supported by the platform, then
231*f53fe635SAnatoly Burakov  monitoring multiple Ethernet Rx queues for traffic will be supported.
232*f53fe635SAnatoly Burakov
233*f53fe635SAnatoly Burakov* If ``rte_cpu_get_intrinsics_support()`` function indicates that only
2345dff9a72SAnatoly Burakov  ``rte_power_monitor()`` is supported by the platform, then monitoring will be
2355dff9a72SAnatoly Burakov  limited to a mapping of 1 core 1 queue (thus, each Rx queue will have to be
2365dff9a72SAnatoly Burakov  monitored from a different lcore).
2375dff9a72SAnatoly Burakov
238*f53fe635SAnatoly Burakov* If ``rte_cpu_get_intrinsics_support()`` function indicates that neither of the
239*f53fe635SAnatoly Burakov  two monitoring functions are supported, then monitor mode will not be supported.
2405dff9a72SAnatoly Burakov
2415dff9a72SAnatoly Burakov* Not all Ethernet drivers support monitoring, even if the underlying
2425dff9a72SAnatoly Burakov  platform may support the necessary CPU instructions. Please refer to
2435dff9a72SAnatoly Burakov  :doc:`../nics/overview` for more information.
2445dff9a72SAnatoly Burakov
245682a6454SLiang Ma
246682a6454SLiang MaAPI Overview for Ethernet PMD Power Management
247682a6454SLiang Ma~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
248682a6454SLiang Ma
249682a6454SLiang Ma* **Queue Enable**: Enable specific power scheme for certain queue/port/core.
250682a6454SLiang Ma
251682a6454SLiang Ma* **Queue Disable**: Disable power scheme for certain queue/port/core.
252682a6454SLiang Ma
253fc1f2750SBernard IremongerReferences
254fc1f2750SBernard Iremonger----------
255fc1f2750SBernard Iremonger
256fa77f80fSDavid Hunt*   The :doc:`../sample_app_ug/l3_forward_power_man`
257fa77f80fSDavid Hunt    chapter in the :doc:`../sample_app_ug/index` section.
258fc1f2750SBernard Iremonger
259fa77f80fSDavid Hunt*   The :doc:`../sample_app_ug/vm_power_management`
260fa77f80fSDavid Hunt    chapter in the :doc:`../sample_app_ug/index` section.
2615dff9a72SAnatoly Burakov
2625dff9a72SAnatoly Burakov*   The :doc:`../nics/overview` chapter in the :doc:`../nics/index` section
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