Credit Scheduler: Difference between revisions
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= Overview = |
= Overview = |
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Credit is a (weighted) proportional fair share virtual CPU scheduler. It was the first Xen scheduler thought from the beginning to be fully work conserving on SMP hosts. Each virtual machine is assigned a weight and a cap. A cap of 0 puts the VM in work-conserving mode. A non-zero cap means the vCPUs of the VM will not run above a certain amount of CPU time, even if the system is idle (non-work conserving mode). |
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It is ''quantum based'', and the timeslice is 30 ms. This (roughly) means that a vCPU can run for up to 30 ms before being preempted by another vCPU. That is nowadays a rather long interval of time, but: |
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* it was not that long at the time when Credit was designed and implemented, |
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* less frequent preemption is good for throughput of CPU bound workload. |
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Credit tries to compensate for its long timeslice by giving I/O intensive vCPU a ''priority boost''. Roughly speaking, this means that vCPUs that wakes up after having been waiting for I/O, will likely get to run immediately. |
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Credit is the '''default scheduler''' of Xen. It is providing satisfactory performance, for a lot of workloads. In case applications in need of low latancies (some class of networking applications, audio, etc.) suffers, a potential mitigation would be to change the timeslice (see below). |
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= Global Scheduler Parameters = |
= Global Scheduler Parameters = |
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⚫ | |||
== Schedule Rate Limiting (added in Xen 4.2) == |
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Timeslice (also known, in other contexts, as ''scheduling quantum'') is for how long a vCPU can run before the scheduler itself chimes in, and if a preemption should occur. And if yes, some other vCPU is put into execution. |
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Hui Lv over at Intel did some fascinating work analyzing the performance overhead of running SpecVirt inside of Xen. What he discovered was that under certain circumstances, some VMs were waking up, doing a few microseconds worth of work, and going back to sleep, only to be woken up microseconds later. The credit1 scheduler correctly identified that these were probably latency-sensitive applications and gave them priority to run whenever they needed to. The problem was that they were causing thousands of schedules per second — in some cases up to 15,000 schedules per second. This meant that there was a very significant amount of time actually spent in the scheduler switching back and forth between the two tasks, rather than doing the actual work. |
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A long timeslice is usually good for achieving high throughput of CPU intensive workloads, as it prevents context switches to happen too frequently, which may lead to trashing of CPU and cache(s). The best timeslice value, though, is highly workload dependant. Credit has, by default, a timeslice of 30ms, which can be considered a faiirly long. |
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The credit1 scheduler was giving these processes microsecond latency; but there are very few network-based workloads that require sub-millisecond latency. Hui worked with the Xen development community to introduce a simple mechanism that would be predictable and robust, and improve the performance for this workload without degrading the performance of other workloads. The result was ratelimit_us. The ratelimit is a value in microseconds. It is a minimum amount of time which a VM is allowed to run without being preempted. The default value is 1000 (that is, 1ms). So if a VM starts running, and another VM with higher priority wakes up, if the first VM has run for less than 1ms, it is allowed to continue to run until its 1ms is up; only after that will the higher-priority VM be allowed to run. |
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In Xen 4.2, we introduced the <code>tslice_ms</code> scheduler parameter. This can be set either using the Xen command-line option, sched_credit_tslice_ms, or, at run time, with <code>xl sched-credit</code>: |
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One millisecond is not generally too long for network-based workloads to wait; and the effect is to have more “batching”, so the whole system is used more effectively. This caused significant increase in SpecVirt performance in Hui’s tests. |
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Possible good values may be 10ms, 5ms, and 1ms, with smaller values allegedly being better suited for latency-sensitive workloads, but at the cost of increased the overhead from context, and reduced CPU cache effectiveness. |
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This feature can be disabled by setting the ratelimit to 0. One could imagine, on a computation-heavy workload, setting this to something higher, like 5ms or 10ms; or if you have a particularly latency-sensitive workload, bringing it down to 500us or even 100us. |
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The default value of 30ms is universally recognised as being anachronistically too high. There has been [https://lists.xenproject.org/archives/html/xen-devel/2014-03/msg00408.html an attempt to change ] it to something smaller, but, unfortunately, because of the intrinsic characteristics of the Credit algorithm, changing timeslice has some [https://lists.xenproject.org/archives/html/xen-devel/2014-03/msg00487.html not easily predictable side effects], so the change was pushed back. |
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This value can be set either on the Xen command-line using '''sched_ratelimit_us''' (Note no “credit” in this one — it’s meant to be consumed by other schedulers as well) or the xl command-line: |
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Therefore, using a different (smaller?) timeslice value may be potentially beneficial for a particular workflow, but that can only be assessed by experimentations. |
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== Context-Switch Rate Limiting == |
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There may be cases where interrupt intensive workloads (i.e., an interrupt wakes up a VM, which does a few microseconds work, and goes back to sleep), coupled with the boosting of vCPUs doing I/O enacted by Credit, causes thousands of scheduler invocation per second. [https://lists.xenproject.org/archives/html/xen-devel/2011-12/msg00897.html Measurements done by Intel] on the SpecVirt benchmark found out that there may be up to 15,000 schedules per second. |
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We therefore introduced context-switching rate limiting, configured via the <code>ratelimit_us</code> parameter. If different than zero, the ratelimit value (expressed in microseconds) is the minimum amount of time for which a VM is allowed to run without being preempted. The default value is 1000 (1ms). So if a VM starts running, even if another VM with higher priority wakes up, there will not be a preemption until the the first VM has run for 1ms. This caused significant increase in SpecVirt performance, according to above measurements. |
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This feature can be '''disabled''' by setting the ratelimit to 0. |
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The value of context switching rate-limiting can be set either from the Xen command-line, using <code>sched_ratelimit_us</code>, or from the xl command-line: |
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<pre> |
<pre> |
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# xl sched-credit -r [n] |
# xl sched-credit -r [n] |
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</pre> |
</pre> |
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Curent values |
Curent values can be viewed with: |
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<pre> |
<pre> |
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Domain-0 0 256 0 |
Domain-0 0 256 0 |
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</pre> |
</pre> |
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⚫ | |||
The timeslice for the credit1 scheduler by default is fixed at 30ms. This is actually a fairly long time — it’s great for computationally-intensive workloads, but not so good for latency-sensitive workloads, particularly ones involving network traffic or audio. |
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Xen 4.2 introduces the '''tslice_ms''' parameter, which sets the timeslice (in milliseconds) a VCPU receives before being preempted to run another. This can be set either using the Xen command-line option, sched_credit_tslice_ms, or by using the new scheduling parameter interface to xl sched-credit: |
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⚫ | |||
⚫ | |||
⚫ | |||
Interesting values you might give try are 10ms, 5ms, and 1ms. One millisecond might be a good choice for particularly latency-sensitive workloads; but beware that reducing the timeslice also increases the overhead from context switching and reduces the effectiveness of the CPU cache. Values of 5ms or 10ms give a good balance. The default, 30ms, is probably too long; but we’re going to do some more experimentation and probably switch the default in 4.3. If you try any values that turn out to be particularly good or bad, let us know. |
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= VM Scheduling Parameters = |
= VM Scheduling Parameters = |
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Each domain (including |
Each domain (including Domain0) is assigned a '''weight''' and a '''cap'''. |
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== Weight == |
== Weight == |
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== Cap == |
== Cap == |
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The cap |
The cap, if set, fixes the maximum amount of CPU a domain will be able to consume, even if the host has idle CPU cycles. The cap is expressed in percentage of one physical CPUs: 100 is 1 physical CPU, 50 is half a CPU, 400 is 4 CPUs, etc. The default, 0, means there is no cap. |
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=== Interactions with Power Management === |
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NB: Many systems have features that will scale down the computing power of a CPU that is not 100% utilized. This can be in the operating system, but can also sometimes be below the operating system, in the BIOS. If you set a cap such that individual cores are running at less than 100%, this may have an impact on the performance of your workload over and above the impact of the cap. For example, if your processor runs at 2GHz, and you cap a vm at 50%, the power management system may also reduce the clock speed to 1GHz; the effect will be that your VM gets 25% of the available power (50% of 1GHz) rather than 50% (50% of 2GHz). If you are not getting the performance you expect, look at performance and cpufreq options in your operating system and your BIOS. |
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Many systems have features that will scale down the computing power of a CPU (or shuts down hardware blocks of the CPU itself, like [https://software.intel.com/en-us/articles/power-management-states-p-states-c-states-and-package-c-states Intel's C-States]) that is not 100% utilized. This can be in the operating system, in the hypervisor, or even below (e.g., in the BIOS). If you set a cap such that individual cores are running at less than 100%, this may have an impact on the performance of your workload over and above the impact of the cap. |
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For example, if your processor runs at 2GHz, and you cap a vm at 50%, the power management system may also reduce the clock speed to 1GHz; the effect will be that your VM gets 50% of 1GHz power, which means 25% (not 50%!) of 2GHz. If you are not getting the performance you expect, look at things like CPUfreq and/or C-States options in your operating system, hypervisor and BIOS. |
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= Usage = |
= Usage = |
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The |
The <code>xl sched-credit</code> command is used to tune a VM's scheduler parameters: |
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{| border="1" cellpadding="2" cellspacing="0" |
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<pre> |
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xl sched-credit -d [domain] |
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|- |
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xl sched-credit -d [domain] -w [weight] |
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⚫ | |||
|- |
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</pre> |
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⚫ | |||
|} |
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= Technical Details = |
= Technical Details = |
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== Algorithm == |
== Algorithm == |
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Each CPU manages a local run queue of runnable |
Each physical CPU manages a local run queue of runnable virtual CPUs. This queue is sorted by vCPU priority. A vCPU's priority can be one of two value: <code>OVER</code> or <code>UNDER</code> representing wether this vCPU has or hasn't yet exceeded its fair share of CPU resource in the ongoing accounting period. When inserting a vCPU in a run queue, it is put after all other vCPUs of the same priority. |
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As a VCPU runs, it consumes '''credits'''. Every so often, a system-wide accounting thread recomputes how many credits each active VM has earned and bumps the credits. Negative credits imply a priority of |
As a VCPU runs, it consumes '''credits'''. Every so often, a system-wide accounting thread recomputes how many credits each active VM has earned and bumps the credits. Negative credits imply a priority of <code>OVER</code>. Until a vCPU consumes its alloted credits, it priority is <code>UNDER</code>. |
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On each CPU, at every scheduling decision (when a |
On each CPU, at every scheduling decision (when a vCPU blocks, yields, completes its time slice, or is awaken), the next vCPU to run is picked off the head of the run queue. Originally, there was no accounting done in this code path (for the sake of keeping it quick). However, this has been found to be a security problem, and a vector for Denial-of-Service attacks (see [https://pdfs.semanticscholar.org/f297/b3605db130b629298a9ef049b628bc88f497.pdf Scheduler Vulnerabilities and Coordinated Attacks in Cloud Computing]). Therefore, since commit [http://xenbits.xen.org/gitweb/?p=xen.git;a=commit;h=78c9b2a64b38ee72cc4d3ea9e93a1a5d224ed822 Accurate accounting for credit scheduler], accounting is done precisely, with nanoseconds granularity timestamps. |
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The Credit scheduler uses '''30ms''' time slices for CPU allocation. A VM (VCPU) receives 30 ms before being preempted to run another VM. Once every 30ms, the priorities (credits) of all runnable VMs are recalculated. |
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⚫ | When a CPU doesn't find a |
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== SMP load balancing == |
== SMP load balancing == |
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The credit scheduler automatically load balances guest VCPUs across all available physical CPUs on an SMP host. The administrator does not need to manually pin |
The credit scheduler automatically load balances guest VCPUs across all available physical CPUs on an SMP host. The administrator does not need to manually pin vCPUs to load balance the system. However, she can restrict which CPUs a particular vCPU may run on using the generic <code>vcpu-pin</code> interface. |
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⚫ | When a CPU doesn't find a vCPU of priority <code>UNDER</code> on its local run queue, it will look on other CPUs for one. This helps making sure that each VM receives its fair share of CPU time. Before a CPU goes idle, it will look on other CPUs to find any runnable vCPU. This guarantees that the scheduler act as a [https://en.wikipedia.org/wiki/Work-conserving_scheduler work-conserving] one. |
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[[Category:Xen]] |
[[Category:Xen]] |
Latest revision as of 05:33, 28 June 2018
Overview
Credit is a (weighted) proportional fair share virtual CPU scheduler. It was the first Xen scheduler thought from the beginning to be fully work conserving on SMP hosts. Each virtual machine is assigned a weight and a cap. A cap of 0 puts the VM in work-conserving mode. A non-zero cap means the vCPUs of the VM will not run above a certain amount of CPU time, even if the system is idle (non-work conserving mode).
It is quantum based, and the timeslice is 30 ms. This (roughly) means that a vCPU can run for up to 30 ms before being preempted by another vCPU. That is nowadays a rather long interval of time, but:
- it was not that long at the time when Credit was designed and implemented,
- less frequent preemption is good for throughput of CPU bound workload.
Credit tries to compensate for its long timeslice by giving I/O intensive vCPU a priority boost. Roughly speaking, this means that vCPUs that wakes up after having been waiting for I/O, will likely get to run immediately.
Credit is the default scheduler of Xen. It is providing satisfactory performance, for a lot of workloads. In case applications in need of low latancies (some class of networking applications, audio, etc.) suffers, a potential mitigation would be to change the timeslice (see below).
Global Scheduler Parameters
Timeslice
Timeslice (also known, in other contexts, as scheduling quantum) is for how long a vCPU can run before the scheduler itself chimes in, and if a preemption should occur. And if yes, some other vCPU is put into execution.
A long timeslice is usually good for achieving high throughput of CPU intensive workloads, as it prevents context switches to happen too frequently, which may lead to trashing of CPU and cache(s). The best timeslice value, though, is highly workload dependant. Credit has, by default, a timeslice of 30ms, which can be considered a faiirly long.
In Xen 4.2, we introduced the tslice_ms
scheduler parameter. This can be set either using the Xen command-line option, sched_credit_tslice_ms, or, at run time, with xl sched-credit
:
# xl sched-credit -t [n]
Possible good values may be 10ms, 5ms, and 1ms, with smaller values allegedly being better suited for latency-sensitive workloads, but at the cost of increased the overhead from context, and reduced CPU cache effectiveness.
The default value of 30ms is universally recognised as being anachronistically too high. There has been an attempt to change it to something smaller, but, unfortunately, because of the intrinsic characteristics of the Credit algorithm, changing timeslice has some not easily predictable side effects, so the change was pushed back.
Therefore, using a different (smaller?) timeslice value may be potentially beneficial for a particular workflow, but that can only be assessed by experimentations.
Context-Switch Rate Limiting
There may be cases where interrupt intensive workloads (i.e., an interrupt wakes up a VM, which does a few microseconds work, and goes back to sleep), coupled with the boosting of vCPUs doing I/O enacted by Credit, causes thousands of scheduler invocation per second. Measurements done by Intel on the SpecVirt benchmark found out that there may be up to 15,000 schedules per second.
We therefore introduced context-switching rate limiting, configured via the ratelimit_us
parameter. If different than zero, the ratelimit value (expressed in microseconds) is the minimum amount of time for which a VM is allowed to run without being preempted. The default value is 1000 (1ms). So if a VM starts running, even if another VM with higher priority wakes up, there will not be a preemption until the the first VM has run for 1ms. This caused significant increase in SpecVirt performance, according to above measurements.
This feature can be disabled by setting the ratelimit to 0.
The value of context switching rate-limiting can be set either from the Xen command-line, using sched_ratelimit_us
, or from the xl command-line:
# xl sched-credit -r [n]
Curent values can be viewed with:
# xl sched-credit Cpupool Pool-0: tslice=30ms ratelimit=1000us Name ID Weight Cap Domain-0 0 256 0
VM Scheduling Parameters
Each domain (including Domain0) is assigned a weight and a cap.
Weight
A domain with a weight of 512 will get twice as much CPU as a domain with a weight of 256 on a contended host. Legal weights range from 1 to 65535 and the default is 256.
Cap
The cap, if set, fixes the maximum amount of CPU a domain will be able to consume, even if the host has idle CPU cycles. The cap is expressed in percentage of one physical CPUs: 100 is 1 physical CPU, 50 is half a CPU, 400 is 4 CPUs, etc. The default, 0, means there is no cap.
Interactions with Power Management
Many systems have features that will scale down the computing power of a CPU (or shuts down hardware blocks of the CPU itself, like Intel's C-States) that is not 100% utilized. This can be in the operating system, in the hypervisor, or even below (e.g., in the BIOS). If you set a cap such that individual cores are running at less than 100%, this may have an impact on the performance of your workload over and above the impact of the cap.
For example, if your processor runs at 2GHz, and you cap a vm at 50%, the power management system may also reduce the clock speed to 1GHz; the effect will be that your VM gets 50% of 1GHz power, which means 25% (not 50%!) of 2GHz. If you are not getting the performance you expect, look at things like CPUfreq and/or C-States options in your operating system, hypervisor and BIOS.
Usage
The xl sched-credit
command is used to tune a VM's scheduler parameters:
xl sched-credit -d [domain] xl sched-credit -d [domain] -w [weight] xl sched-credit -d [domain] -c [cap]
Technical Details
Algorithm
Each physical CPU manages a local run queue of runnable virtual CPUs. This queue is sorted by vCPU priority. A vCPU's priority can be one of two value: OVER
or UNDER
representing wether this vCPU has or hasn't yet exceeded its fair share of CPU resource in the ongoing accounting period. When inserting a vCPU in a run queue, it is put after all other vCPUs of the same priority.
As a VCPU runs, it consumes credits. Every so often, a system-wide accounting thread recomputes how many credits each active VM has earned and bumps the credits. Negative credits imply a priority of OVER
. Until a vCPU consumes its alloted credits, it priority is UNDER
.
On each CPU, at every scheduling decision (when a vCPU blocks, yields, completes its time slice, or is awaken), the next vCPU to run is picked off the head of the run queue. Originally, there was no accounting done in this code path (for the sake of keeping it quick). However, this has been found to be a security problem, and a vector for Denial-of-Service attacks (see Scheduler Vulnerabilities and Coordinated Attacks in Cloud Computing). Therefore, since commit Accurate accounting for credit scheduler, accounting is done precisely, with nanoseconds granularity timestamps.
The Credit scheduler uses 30ms time slices for CPU allocation. A VM (VCPU) receives 30 ms before being preempted to run another VM. Once every 30ms, the priorities (credits) of all runnable VMs are recalculated.
SMP load balancing
The credit scheduler automatically load balances guest VCPUs across all available physical CPUs on an SMP host. The administrator does not need to manually pin vCPUs to load balance the system. However, she can restrict which CPUs a particular vCPU may run on using the generic vcpu-pin
interface.
When a CPU doesn't find a vCPU of priority UNDER
on its local run queue, it will look on other CPUs for one. This helps making sure that each VM receives its fair share of CPU time. Before a CPU goes idle, it will look on other CPUs to find any runnable vCPU. This guarantees that the scheduler act as a work-conserving one.