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Single Machine Deterministic Models

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Presentation on theme: "Single Machine Deterministic Models"— Presentation transcript:

1 Single Machine Deterministic Models
Jobs: J1, J2, ..., Jn Assumptions: The machine is always available throughout the scheduling period. The machine cannot process more than one job at a time. Each job must spend on the machine a prescribed length of time.

2 S(t) 3 2 1 t J2 J3 J1 ...

3 Requirements that may restrict the feasibility of schedules:
precedence constraints no preemptions release dates deadlines Whether some feasible schedule exist? NP hard Objective function f is used to compare schedules. f(S) < f(S') whenever schedule S is considered to be better than S' problem of minimising f(S) over the set of feasible schedules.

4 1. Completion Time Models
Due date related objectives: 2. Lateness Models 3. Tardiness Models 4. Sequence-Dependent Setup Problems

5 Completion Time Models
Contents 1. An algorithm which gives an optimal schedule with the minimum total weighted completion time 1 || wjCj 2. An algorithm which gives an optimal schedule with the minimum total weighted completion time when the jobs are subject to precedence relationship that take the form of chains 1 | chain | wjCj

6 Literature: Scheduling, Theory, Algorithms, and Systems, Michael Pinedo, Prentice Hall, 1995, or new: Second Addition, 2002, Chapter 3.

7 1 || wjCj Theorem. The weighted shortest processing time first rule (WSPT) is optimal for 1 || wjCj WSPT: jobs are ordered in decreasing order of wj/pj The next follows trivially: The problem 1 || Cj is solved by a sequence S with jobs arranged in nondecreasing order of processing times.

8 Proof. By contradiction. S is a schedule, not WSPT, that is optimal.
j and k are two adjacent jobs such that which implies that wj pk < wk pj S: ... j k ... t t + pj + pk S’ ... ... k j t t + pj + pk S: (t+pj) wj + (t+pj+pk) wk = t wj + pj wj + t wk + pj wk pk wk S’: (t+pk) wk + (t+pk+pj) wj = t wk + pk wk + t wj + pk wj pj wj the completion time for S’ < completion time for S contradiction!

9 1 | chain | wjCj chain 1: 1  2  ...  k chain 2: k+1  k+2  ...  n Lemma. If the chain of jobs 1,...,k precedes the chain of jobs k+1,...,n. Let l* satisfy  factor of chain 1,...,k l* is the job that determines the  factor of the chain

10 Lemma. If job l. determines  (1,
Lemma. If job l* determines  (1,...,k) , then there exists an optimal sequence that processes jobs 1,...,l* one after another without interruption by jobs from other chains. Algorithm Whenever the machine is free, select among the remaining chains the one with the highest  factor. Process this chain up to and including the job l* that determines its  factor.

11 Example chain 1: 1  2  3  4 chain 2: 5  6  7  factor of chain 1 is determined by job 2: (6+18)/(3+6)=2.67  factor of chain 2 is determined by job 6: (8+17)/(4+8)=2.08 chain 1 is selected: jobs 1, 2  factor of the remaining part of chain 1 is determined by job 3: 12/6=2  factor of chain 2 is determined by job 6: 2.08 chain 2 is selected: jobs 5, 6

12  factor of the remaining part of chain 1 is determined by job 3: 2
chain 1 is selected: job 3  factor of the remaining part of chain 1 is determined by job 4: 8/5=1.6  factor of the remaining part of chain 2 is determined by job 7: 1.8 chain 2 is selected: job 7 job 4 is scheduled last the final schedule: 1, 2, 5, 6, 3, 7, 4

13 1 | prec | wjCj Polynomial time algorithms for the more complex precedence constraints than the simple chains are developed. The problems with arbitrary precedence relation are NP hard. 1 | rj, prmp | wjCj preemptive version of the WSPT rule does not always lead to an optimal solution, the problem is NP hard 1 | rj, prmp | Cj preemptive version of the SPT rule is optimal 1 | rj | Cj is NP hard

14 Summary 1 || wjCj WSPT rule
1 | chain | wjCj a polynomial time algorithm is given 1 | prec | wjCj with arbitrary precedence relation is NP hard 1 | rj, prmp | wjCj the problem is NP hard 1 | rj, prmp | Cj preemptive version of the SPT rule is optimal 1 | rj | Cj is NP hard

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