Library prosa.results.ovh.edf.limited_preemptive
Require Export prosa.model.job.properties.
Require Export prosa.model.composite.valid_task_arrival_sequence.
Require Export prosa.analysis.facts.readiness.sequential.
Require Export prosa.analysis.facts.model.overheads.schedule.
Require Export prosa.analysis.facts.preemption.rtc_threshold.limited.
Require Export prosa.analysis.abstract.restricted_supply.task_intra_interference_bound.
Require Export prosa.analysis.abstract.restricted_supply.bounded_bi.edf.
Require Export prosa.analysis.abstract.restricted_supply.search_space.edf.
Require Export prosa.analysis.facts.model.task_cost.
Require Export prosa.analysis.facts.priority.edf.
Require Export prosa.analysis.facts.blocking_bound.edf.
Require Export prosa.analysis.facts.workload.edf_athep_bound.
Require Export prosa.analysis.facts.model.overheads.sbf.jlfp.
Require Export prosa.model.composite.valid_task_arrival_sequence.
Require Export prosa.analysis.facts.readiness.sequential.
Require Export prosa.analysis.facts.model.overheads.schedule.
Require Export prosa.analysis.facts.preemption.rtc_threshold.limited.
Require Export prosa.analysis.abstract.restricted_supply.task_intra_interference_bound.
Require Export prosa.analysis.abstract.restricted_supply.bounded_bi.edf.
Require Export prosa.analysis.abstract.restricted_supply.search_space.edf.
Require Export prosa.analysis.facts.model.task_cost.
Require Export prosa.analysis.facts.priority.edf.
Require Export prosa.analysis.facts.blocking_bound.edf.
Require Export prosa.analysis.facts.workload.edf_athep_bound.
Require Export prosa.analysis.facts.model.overheads.sbf.jlfp.
RTA for EDF Scheduling with Fixed Preemption Points on Uniprocessors with Overheads
Defining the System Model
- the processor model,
- tasks, jobs, and their parameters,
- the task set and the task under analysis,
- the sequence of job arrivals,
- the absence of self-suspensions,
- an arbitrary schedule of the task set, and finally,
- an upper bound on overhead-induced delays.
Processor Model
Tasks and Jobs
Context {Task : TaskType} `{TaskCost Task} `{TaskDeadline Task}
`{MaxArrivals Task} `{TaskPreemptionPoints Task}.
`{MaxArrivals Task} `{TaskPreemptionPoints Task}.
... and their associated jobs, where each job has a corresponding task
job_task, an execution time job_cost, an arrival time job_arrival,
and a list of job's preemption points job_preemptive_points.
Context {Job : JobType} `{JobTask Job Task} `{JobCost Job} `{JobArrival Job}
`{JobPreemptionPoints Job}.
`{JobPreemptionPoints Job}.
We assume that jobs are limited-preemptive.
The Job Arrival Sequence
Variable arr_seq : arrival_sequence Job.
Hypothesis H_valid_task_arrival_sequence : valid_task_arrival_sequence ts arr_seq.
Hypothesis H_valid_task_arrival_sequence : valid_task_arrival_sequence ts arr_seq.
We assume a model with fixed preemption points. I.e., each task is divided
into a number of non-preemptive segments by inserting statically
predefined preemption points.
Hypothesis H_valid_model_with_fixed_preemption_points :
valid_fixed_preemption_points_model arr_seq ts.
valid_fixed_preemption_points_model arr_seq ts.
Additionally, we assume that all jobs in arr_seq have positive execution
costs. This requirement is not fundamental to the analysis approach itself
but reflects an artifact of the current proof structure specific to upper
bounds on the total duration of overheads.
Absence of Self-Suspensions
The Schedule
Variable sched : schedule (overheads.processor_state Job).
Hypothesis H_valid_schedule : valid_schedule sched arr_seq.
Hypothesis H_work_conserving : work_conserving arr_seq sched.
Hypothesis H_schedule_with_limited_preemptions :
schedule_respects_preemption_model arr_seq sched.
Hypothesis H_valid_schedule : valid_schedule sched arr_seq.
Hypothesis H_work_conserving : work_conserving arr_seq sched.
Hypothesis H_schedule_with_limited_preemptions :
schedule_respects_preemption_model arr_seq sched.
We assume that the schedule respects the given EDF scheduling policy.
Furthermore, we require that the schedule has no superfluous preemptions;
that is, preemptions occur only when strictly required by the scheduling
policy (specifically, a job is never preempted by another job of equal
priority).
Bounding the Total Overhead Duration
Variable DB CSB CRPDB : duration.
Hypothesis H_valid_overheads_model : overhead_resource_model sched DB CSB CRPDB.
Hypothesis H_valid_overheads_model : overhead_resource_model sched DB CSB CRPDB.
To conservatively account for the maximum cumulative delay that task tsk
may experience due to scheduling overheads, we introduce an overhead
bound. This term upper-bounds the maximum cumulative duration during
which processor cycles are "lost" to dispatch, context-switch, and
preemption-related delays in a given interval.
For EDF scheduling, we use a generic JLFP bound, where the bound in an
interval of length Δ is determined by the total number of arrivals in
the system. In this case, up to n such arrivals can lead to at most 1 +
2n segments without a schedule change, each potentially incurring
dispatch, context-switch, and preemption-related overhead.
Maximum Length of a Busy Interval
Definition busy_window_recurrence_solution (L : duration) :=
L > 0
∧ L ≥ overhead_bound L + total_request_bound_function ts L
∧ L ≥ overhead_bound L + longest_busy_interval_with_pi ts tsk.
L > 0
∧ L ≥ overhead_bound L + total_request_bound_function ts L
∧ L ≥ overhead_bound L + longest_busy_interval_with_pi ts tsk.
Response-Time Bound
Definition rta_recurrence_solution L R :=
∀ (A : duration),
is_in_search_space ts tsk L A →
∃ (F : duration),
F ≥ overhead_bound F
+ blocking_bound ts tsk A
+ (task_request_bound_function tsk (A + ε) - (task_last_nonpr_segment tsk - ε))
+ bound_on_athep_workload ts tsk A F
∧ A + R ≥ F + (overhead_bound (A + R) - overhead_bound F)
+ (task_last_nonpr_segment tsk - ε).
∀ (A : duration),
is_in_search_space ts tsk L A →
∃ (F : duration),
F ≥ overhead_bound F
+ blocking_bound ts tsk A
+ (task_request_bound_function tsk (A + ε) - (task_last_nonpr_segment tsk - ε))
+ bound_on_athep_workload ts tsk A F
∧ A + R ≥ F + (overhead_bound (A + R) - overhead_bound F)
+ (task_last_nonpr_segment tsk - ε).
Finally, using the sequential variant of abstract restricted-supply
analysis, we establish that, given a bound on the maximum busy-window
length L, any such R is indeed a sound response-time bound for task
tsk under EDF scheduling with limited preemptions on a unit-speed
uniprocessor subject to scheduling overheads.