Library prosa.analysis.facts.model.service_of_jobs

Lemmas about Service Received by Sets of Jobs

In this file, we establish basic facts about the service received by sets of jobs.
To begin with, we provide some basic properties of service of a set of jobs in case of a generic scheduling model.
Consider any type of tasks ...
  Context {Task : TaskType}.

... and any type of jobs associated with these tasks.
  Context {Job : JobType}.
  Context `{JobTask Job Task}.
  Context `{JobArrival Job}.
  Context `{JobCost Job}.

Consider any kind of processor state model, ...
  Context {PState : Type}.
  Context `{ProcessorState Job PState}.

... any job arrival sequence with consistent arrivals, ....
... and any schedule of this arrival sequence ...
  Variable sched : schedule PState.

... where jobs do not execute before their arrival or after completion.
Let P be any predicate over jobs.
  Variable P : Job bool.

Let's define some local names for clarity.
In this section, we prove that the service received by any set of jobs is upper-bounded by the corresponding workload.
Let jobs denote any (finite) set of jobs.
    Variable jobs : seq Job.

Assume that the processor model is a unit service model. I.e., no job ever receives more than one unit of service at any time.
Then, we prove that the service received by those jobs is no larger than their workload.
    Lemma service_of_jobs_le_workload:
       t1 t2,
        service_of_jobs sched P jobs t1 t2 workload_of_jobs P jobs.
    Proof.
      intros t1 t2.
      apply leq_sum; intros j _.
        by apply cumulative_service_le_job_cost.
    Qed.

  End ServiceBoundedByWorkload.

In this section we prove a few facts about splitting the total service of a set of jobs.
  Section ServiceCat.

We show that the total service of jobs released in a time interval [t1,t2)
during t1,t2) is equal to the sum of: (1) the total service of jobs released in time interval [t1, t) during time [t1, t) (2) the total service of jobs released in time interval [t1, t) during time [t, t2) and (3) the total service of jobs released in time interval [t, t2) during time [t, t2).
    Lemma service_of_jobs_cat_scheduling_interval :
       t1 t2 t,
        t1 t t2
        service_of_jobs sched P (arrivals_between t1 t2) t1 t2
        = service_of_jobs sched P (arrivals_between t1 t) t1 t
          + service_of_jobs sched P (arrivals_between t1 t) t t2
          + service_of_jobs sched P (arrivals_between t t2) t t2.
    Proof.
      movet1 t2 t /andP [GEt LEt].
      rewrite /arrivals_between (arrivals_between_cat _ _ t) //.
      rewrite {1}/service_of_jobs big_cat //=.
      rewrite exchange_big //= (@big_cat_nat _ _ _ t) //=;
              rewrite [in X in X + _ + _]exchange_big //= [in X in _ + X + _]exchange_big //=.
      apply/eqP; rewrite -!addnA eqn_add2l eqn_add2l.
      rewrite exchange_big //= (@big_cat_nat _ _ _ t) //= [in X in _ + X]exchange_big //=.
      rewrite -[service_of_jobs _ _ _ _ _]add0n /service_of_jobs eqn_add2r.
      rewrite big_nat_cond big1 //.
      movex /andP [/andP [GEi LTi] _].
      rewrite big_seq_cond big1 //.
      movej /andP [ARR Ps].
      apply service_before_job_arrival_zero with H0; auto.
      eapply in_arrivals_implies_arrived_between in ARR; eauto 2.
        by move: ARR ⇒ /andP [N1 N2]; apply leq_trans with t.
    Qed.

We show that the total service of jobs released in a time interval [t1,t2)
during t,t2) is equal to the sum of: (1) the total service of jobs released in a time interval [t1,t) during [t,t2) and (2) the total service of jobs released in a time interval [t,t2) during [t,t2).
    Lemma service_of_jobs_cat_arrival_interval :
       t1 t2 t,
        t1 t t2
        service_of_jobs sched P (arrivals_between t1 t2) t t2 =
        service_of_jobs sched P (arrivals_between t1 t) t t2 +
        service_of_jobs sched P (arrivals_between t t2) t t2.
    Proof.
      movet1 t2 t /andP [GEt LEt].
      apply/eqP;rewrite eq_sym; apply/eqP.
      rewrite /arrivals_between [in X in _ = X](arrivals_between_cat _ _ t) //.
        by rewrite {3}/service_of_jobs -big_cat //=.
    Qed.

  End ServiceCat.

End GenericModelLemmas.

In this section, we prove some properties about service of sets of jobs for ideal uni-processor model.
Section IdealModelLemmas.

Consider any type of tasks ...
  Context {Task : TaskType}.

... and any type of jobs associated with these tasks.
  Context {Job : JobType}.
  Context `{JobTask Job Task}.
  Context `{JobArrival Job}.
  Context `{JobCost Job}.

Consider any arrival sequence with consistent arrivals.
Next, consider any ideal uni-processor schedule of this arrival sequence ...
... where jobs do not execute before their arrival or after completion.
Let P be any predicate over jobs.
  Variable P : Job bool.

Let's define some local names for clarity.
We prove that if the total service within some time interval [t1,t2)
is smaller than t2-t1, then there is an idle time instant t ∈ [t1,t2)].
  Lemma low_service_implies_existence_of_idle_time :
     t1 t2,
      service_of_jobs sched predT (arrivals_between 0 t2) t1 t2 < t2 - t1
       t, t1 t < t2 is_idle sched t.
  Proof.
    intros ? ? SERV.
    destruct (t1 t2) eqn:LE; last first.
    { move: LE ⇒ /negP/negP; rewrite -ltnNge.
      moveLT; apply ltnW in LT; rewrite -subn_eq0 in LT.
        by rewrite (eqbool_to_eqprop LT) ltn0 in SERV.
    }
    have EX: δ, t2 = t1 + δ.
    { by (t2 - t1); rewrite subnKC // ltnW. }
    move: EX ⇒ [δ EQ]; subst t2; clear LE.
    rewrite {3}[t1 + δ]addnC -addnBA // subnn addn0 in SERV.
    rewrite /service_of_jobs exchange_big //= in SERV.
    apply sum_le_summation_range in SERV.
    move: SERV ⇒ [x [/andP [GEx LEx] L]].
     x; split; first by apply/andP; split.
    apply/negPn; apply/negP; intros NIDLE.
    unfold is_idle in NIDLE.
    destruct(sched x) eqn:SCHED; last by done.
    move: SCHED ⇒ /eqP SCHED; clear NIDLE; rewrite -scheduled_at_def/= in SCHED.
    move: L ⇒ /eqP; rewrite -sum_nat_eq0_nat; move ⇒ /allP L.
    specialize (L s); feed L.
    { unfold arrivals_between.
      eapply arrived_between_implies_in_arrivals; eauto 2.
        by apply H_jobs_must_arrive_to_execute in SCHED; apply leq_ltn_trans with x.
    }
      by move: L; simpl;rewrite eqb0; move ⇒ /eqP EQ.
  Qed.

In this section, we prove that the service received by any set of jobs is upper-bounded by the corresponding interval length.
Let jobs denote any (finite) set of jobs.
    Variable jobs : seq Job.

Assume that the sequence of jobs is a set.
    Hypothesis H_no_duplicate_jobs : uniq jobs.

We prove that the overall service of jobs at a single time instant is at most 1.
    Lemma service_of_jobs_le_1:
       t, \sum_(j <- jobs | P j) service_at sched j t 1.
    Proof.
      intros t.
      case SCHED: (sched t) ⇒ [j | ]; simpl.
      { case ARR: (j \in jobs).
        { rewrite (big_rem j) //=; simpl.
          rewrite /service_at /scheduled_at SCHED; simpl.
          rewrite -[1]addn0 leq_add //.
          - by rewrite eq_refl; case (P j).
          - rewrite leqn0 big1_seq; first by done.
            movej' /andP [_ ARRj'].
            apply/eqP; rewrite eqb0.
            apply/negP; intros CONTR; move: CONTR ⇒ /eqP CONTR.
            inversion CONTR; subst j'; clear CONTR.
            rewrite rem_filter in ARRj'; last by done.
            move: ARRj'; rewrite mem_filter; move ⇒ /andP [/negP CONTR _].
              by apply: CONTR.
        }
        { apply leq_trans with 0; last by done.
          rewrite leqn0 big1_seq; first by done.
          movej' /andP [_ ARRj'].
          apply/eqP; rewrite eqb0.
          rewrite /scheduled_at SCHED.
          apply/negP; intros CONTR; move: CONTR ⇒ /eqP CONTR.
          inversion CONTR; clear CONTR.
            by subst j'; rewrite ARR in ARRj'.
        }
      }
      { apply leq_trans with 0; last by done.
        rewrite leqn0 big1_seq; first by done.
        movej' /andP [_ ARRj'].
          by rewrite /service_at /scheduled_at SCHED.
      }
    Qed.

Then, we prove that the service received by those jobs is no larger than their workload.
    Corollary service_of_jobs_le_length_of_interval:
       (t : instant) (Δ : duration),
        service_of_jobs sched P jobs t (t + Δ) Δ.
    Proof.
      intros.
      have EQ: \sum_(t x < t + Δ) 1 = Δ.
      { by rewrite big_const_nat iter_addn mul1n addn0 -{2}[t]addn0 subnDl subn0. }
      rewrite -{2}EQ {EQ}.
      rewrite /service_of_jobs/service_during/service_at exchange_big //=.
      rewrite leq_sum //.
      movet' _.
        by apply service_of_jobs_le_1.
    Qed.

Similar lemma holds for two instants.
    Corollary service_of_jobs_le_length_of_interval':
       (t1 t2 : instant),
        service_of_jobs sched P jobs t1 t2 t2 - t1.
    Proof.
      intros.
      have <-: \sum_(t1 x < t2) 1 = t2 - t1.
      { by rewrite big_const_nat iter_addn mul1n addn0. }
      rewrite /service_of_jobs exchange_big //=.
      rewrite leq_sum //.
      movet' _.
      have SE := service_of_jobs_le_1 t'.
      eapply leq_trans; last by eassumption.
        by rewrite leq_sum //.
    Qed.

  End ServiceOfJobsIsBoundedByLength.

In this section, we introduce a connection between the cumulative service, cumulative workload, and completion of jobs.
Consider an arbitrary time interval [t1, t2).
    Variables t1 t2 : instant.

Let jobs be a set of all jobs arrived during [t1, t2).
    Let jobs := arrivals_between t1 t2.

Next, we consider some time instant t_compl.
    Variable t_compl : instant.

And state the proposition that all jobs are completed by time t_compl. Next we show that this proposition is equivalent to the fact that workload of jobs = service of jobs.
    Let all_jobs_completed_by t_compl :=
       j, j \in jobs P j completed_by j t_compl.

First, we prove that if the workload of jobs is equal to the service of jobs, then any job in jobs is completed by time t_compl.
    Lemma workload_eq_service_impl_all_jobs_have_completed:
      workload_of_jobs P jobs =
      service_of_jobs sched P jobs t1 t_compl
      all_jobs_completed_by t_compl.
    Proof.
      unfold jobs; intros EQ j ARR Pj; move: (ARR) ⇒ ARR2.
      apply in_arrivals_implies_arrived_between in ARR; last by done.
      move: ARR ⇒ /andP [T1 T2].
      have F1: a b, (a < b) || (a b).
      { by intros; destruct (a < b) eqn:EQU; apply/orP;
          [by left |right]; apply negbT in EQU; rewrite leqNgt. }
      move: (F1 t_compl t1) ⇒ /orP [LT | GT].
      { rewrite /service_of_jobs /service_during in EQ.
        rewrite exchange_big big_geq //= in EQ; last by rewrite ltnW.
        rewrite /workload_of_jobs in EQ.
        rewrite (big_rem j) ?Pj //= in EQ.
        move: EQ ⇒ /eqP; rewrite addn_eq0; move ⇒ /andP [CZ _].
        unfold completed_by, service.completed_by.
          by move: CZ ⇒ /eqP CZ; rewrite CZ.
      }
      { unfold workload_of_jobs, service_of_jobs in EQ; unfold completed_by, service.completed_by.
        rewrite /service -(service_during_cat _ _ _ t1); last by apply/andP; split.
        rewrite cumulative_service_before_job_arrival_zero // add0n.
        rewrite <- sum_majorant_eqn with (F1 := fun jservice_during sched j t1 t_compl)
                                        (xs := arrivals_between t1 t2) (P := P); try done.
        intros; apply cumulative_service_le_job_cost; auto using ideal_proc_model_provides_unit_service.
      }
    Qed.

And vice versa, the fact that any job in jobs is completed by time t_compl implies that the workload of jobs is equal to the service of jobs.
    Lemma all_jobs_have_completed_impl_workload_eq_service:
      all_jobs_completed_by t_compl
      workload_of_jobs P jobs =
      service_of_jobs sched P jobs t1 t_compl.
    Proof.
      unfold jobs; intros COMPL.
      have F: j t, t t1 j \in arrivals_between t1 t2 service_during sched j 0 t = 0.
      { intros j t LE ARR.
        eapply in_arrivals_implies_arrived_between in ARR; eauto 2; move: ARR ⇒ /andP [GE LT].
        eapply cumulative_service_before_job_arrival_zero; eauto 2.
          by apply leq_trans with t1. }
      destruct (t_compl t1) eqn:EQ.
      { unfold service_of_jobs. unfold service_during.
        rewrite exchange_big //=.
        rewrite big_geq; last by done.
        rewrite /workload_of_jobs big1_seq //.
        movej /andP [Pj ARR].
        specialize (COMPL _ ARR Pj).
        rewrite <- F with (j := j) (t := t_compl); try done.
        apply/eqP; rewrite eqn_leq; apply/andP; split.
        - by apply COMPL.
        - by apply service_at_most_cost; auto using ideal_proc_model_provides_unit_service.
      }
      apply/eqP; rewrite eqn_leq; apply/andP; split; first last.
      { by apply service_of_jobs_le_workload; auto using ideal_proc_model_provides_unit_service. }
      { unfold workload_of_jobs, service_of_jobs.
        rewrite big_seq_cond [X in _ X]big_seq_cond.
        rewrite leq_sum //.
        movej /andP [ARR Pj].
        specialize (COMPL _ ARR Pj).
        rewrite -[service_during _ _ _ _ ]add0n.
        rewrite -(F j t1); try done.
        rewrite -(big_cat_nat) //=; last first.
        move: EQ =>/negP /negP; rewrite -ltnNge; moveEQ.
          by apply ltnW.
      }
    Qed.

Using the lemmas above, we prove equivalence.
    Corollary all_jobs_have_completed_equiv_workload_eq_service:
      all_jobs_completed_by t_compl
      workload_of_jobs P jobs =
      service_of_jobs sched P jobs t1 t_compl.
    Proof.
      split.
      - by apply all_jobs_have_completed_impl_workload_eq_service.
      - by apply workload_eq_service_impl_all_jobs_have_completed.
    Qed.

  End WorkloadServiceAndCompletion.

End IdealModelLemmas.