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mapping_pr
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@ -2,7 +2,7 @@
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## Tooling
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## Tooling
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- Python 3.6
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- Python 3.5
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- [MyPy](http://www.mypy-lang.org/ ) für statische Typchecks
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- [MyPy](http://www.mypy-lang.org/ ) für statische Typchecks
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- [Pandoc](https://pandoc.org/ ) für die Dokumentation
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- [Pandoc](https://pandoc.org/ ) für die Dokumentation
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- Python Module: siehe [requirements.txt](https://pip.pypa.io/en/latest/user_guide/#requirements-files )
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- Python Module: siehe [requirements.txt](https://pip.pypa.io/en/latest/user_guide/#requirements-files )
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23
Readme.txt
23
Readme.txt
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README
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-----
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Für die Ausführung des Algorithmus wird Python 3 (empfohlene Version: 3.6.1) benötigt.
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Die Packages, die zusätzlich gebraucht werden, können der requirements.txt entnommen werden.
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(Installation kann hier einzeln oder über den Befehl: python -m pip install -r requirements.txt)
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Zur Ausführung bitte im Terminal in den Ordner src gehen und dort das Skript main.py starten.
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Parameter, die hierbei möglich sind:
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-h zeigt alle Optionen an
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-p aktiviert die Ausgabe über den Plotter als Diagramm
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-l wird benötigt falls die Eingabe eine Liste von Problemen ist (d.h. für jobshop1.txt)
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-i Index des Problems in der Liste (nur relevant bei -l)
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-t setzt die Starttemperatur des Simulated Annealings
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-s setzt die maximalen Umformungsschritte pro Generierung einer neuen Lösung
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-a setzt die Wahrscheinlichkeit, pro Umformungsschritt auch eine Lösung zu akzeptieren, obwohl
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noch nicht die maximalen Umformungsschritte erreicht sind
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-t -s und -a müssen nicht alle gesetzt sein, dann wird der jeweilige Defaultwert verwendet
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Defaultwerte: max_temp = 300, max_steps = 250, accept_prob = 0.01
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Beispielaufruf:
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python .\main.py -p -l -i 2 -t 50 ..\inputdata\jobshop1.txt
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36
doc.md
36
doc.md
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## scheduling problem defined by:
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1. $m$ specialized machines
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2. tasks $\tau$ of the form $(e, i)$ with $t \in \mathbb{N}$ the execution time and $i \in \{1,2,\dots,m\}$ the machine the task has to run on
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3. $n$ jobs $T_k$ with $\forall T_k:$ linear order of tasks, with $k \in \{1,2,\dots,n\}$
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4. Additionally, a multiset $\Omega$ of arbitrary but fixed size that contains wait states $\omega := (1, i)$ with $i \in \{1,2,\dots,m\}$ the blocked machine.
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The goal is to find the fastest feasible schedule $\sigma_{min}$.
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## evaluative function
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- minimize the execution time of $\sigma$
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- upper bound: largest processing time first
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- lower bound: max sum of execution times on one machine
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## solutions
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- list of tuples $(t, \tau)$ with $t \in \mathbb{N}$ the scheduled begin of $\tau$
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## operations
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- $\operatorname{ins}(\omega, t)$: block a machine at time $t$ for $w$ time steps.
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- $\operatorname{xchg}(\tau_1,\tau_2)$: exchange the position of two tasks.
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Both operations require that the start times are recomputed.
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## neighbourhood of solution
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- $\operatorname{neighbours}(\sigma) = \{x \in \Sigma | \delta(\sigma, x) \leq n\}$ with $\Sigma$ the set of all feasible schedules.
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- $\delta$: $\delta ( \sigma )=0$, $\delta ( \operatorname{op}(x)) = \delta (x) + 1$ (ass. ins has the same penalty xchg has), $x$ either op($y$) or $\sigma$
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## constraints
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- only schedule new $\tau$ if another $\tau$ is finished
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- only schedule $\tau \in T_k$ that has no unscheduled predecessor in $T_k$
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- only one task on a machine any given time
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## implementation in Python
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- translate problem into list of jobs, jobs into lists of tasks, ie problem = [$T_0, T_1,\dots,T_{k-1}$], $T_i$ = [$\tau_1,\tau_2,\dots$]
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- address tasks based on their indices, ie [0][1] is the second task of the first job.
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- compute only one possible next solution, rate, drop/accept. $\delta$ is computed iteratively during generation
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3 3
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0 4 1 6 2 1
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1 3 0 13 2 4
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1 2 2 5 0 3
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2
notes.md
2
notes.md
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- $S = \left\{(o_j,t) | o_j \in O \cup \left\{w_n | n \in \mathbb{N} \wedge w_n \text{ v.d.F. } (1, m) \right\} \wedge o_j \text{ v.d.F. } (d, m, j) \wedge t \in T \forall o \in O : \exists (o,t) \in S\right\}$
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- $S = \left\{(o_j,t) | o_j \in O \cup \left\{w_n | n \in \mathbb{N} \wedge w_n \text{ v.d.F. } (1, m) \right\} \wedge o_j \text{ v.d.F. } (d, m, j) \wedge t \in T \forall o \in O : \exists (o,t) \in S\right\}$
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- indirekt lässt sich durch laufende Operation und Zeitpunkt auch Belegung einer Maschine zu einem Zeitpunkt ermitteln
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- indirekt lässt sich durch laufende Operation und Zeitpunkt auch Belegung einer Maschine zu einem Zeitpunkt ermitteln
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- Optimierung: sparse speichern
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- Optimierung: sparse speichern
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1. Liste von (T, $o_j$) mit $T \in \mathbb{N}$ (Time), $o_j \in O$ (Tasks), j bezeichnet den Job
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1. Liste von (T, $o_j$) mit $T \in \mathbb{N}$ (Time), $o_j \in O$ (Tasks)
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- Operationen:
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- Operationen:
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- Vertauschen von 2 Jobs auf einer Maschine, selbstinvers
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- Vertauschen von 2 Jobs auf einer Maschine, selbstinvers
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- Verzögern von Operationen (keine expliziten Wartezustände nötig)
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- Verzögern von Operationen (keine expliziten Wartezustände nötig)
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mypy
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mypy
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arpeggio
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Arpeggio
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matplotlib
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numpy
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tkinter
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with import <nixpkgs> {};
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(python3.withPackages (ps: [ps.numpy (ps.matplotlib.override {enableQt=true;}) ps.mypy ps.arpeggio])).env
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from Parser import JobShopProblem as Problem
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import random
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def pull_fwd(solution):
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"""
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Pull a task from a pseudo-random position to the position of
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a random task forward. If the task directly in front is part
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of the same job, pull that instead. The first task can never
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be pulled forward. Will not rectify solutions.
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Returns the modified solution and the tasks index.
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"""
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old_idx = random.randint(1, len(solution)-1)
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#print("old_idx" + str(old_idx))
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while(solution[old_idx][1][0] == solution[old_idx-1][1][0]):
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old_idx -= 1
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#Catch case of the op to be pulled being 0
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#print("old_idx: " + str(old_idx))
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if(old_idx == 0):
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return pull_fwd(solution)
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new_idx = random.randint(0, old_idx-1)
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for task in solution[new_idx:old_idx]:
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if(task[1][0] == solution[old_idx][1][0]):
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#break
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return pull_fwd(solution)
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#else:
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task = solution[old_idx]
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solution.remove(task)
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solution.insert(new_idx, task)
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return rectify(solution, new_idx)
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def accept(solution):
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"""
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Accept the current generated solution and evaluate it.
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Maybe skip this during the first step to generate a more
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random solution.
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"""
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return tighten(solution)
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#return solution
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def tighten(solution):
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"""
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Try to remove any holes in the schedule.
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"""
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global problem
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bound = len(solution)
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for i in range(0,bound):
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jobs = ( task for task in solution[i-1:bound:-1] if task[1][0] == solution[i][1][0] )
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machs = ( task for task in solution[i-1:bound:-1] if problem[task[1]][1] == problem[solution[i][1]][1] )
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job = next(jobs,None)
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mach = next(machs,None)
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times = []
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if job:
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times += [job[0] + problem[job[1]][0]]
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if mach:
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times += [mach[0] + problem[job[1]][0]]
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if times:
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solution[i] = (max(times), solution[i][1])
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solution.sort()
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return solution
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def rectify(solution, idx):
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"""
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Transform solution by adapting the begin times and delaying
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tasks on the same machine if affected.
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"""
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solution[idx] = (solution[idx+1][0],) + solution[idx][1:]
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update_begin(solution, idx)
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correct_indices(solution, idx)
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for i in range(idx, len(solution)-1):
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#print("i: " + str(i))
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correct_machine(solution, i)
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#print(solution)
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correct_precedence(solution, i)
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#print(solution)
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return solution
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def update_begin(solution, idx):
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"""
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Update the start time of the given task wrt machine and job.
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"""
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global problem
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task = solution[idx]
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if(idx == 0):
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solution[idx] = (0,) + solution[idx][1:]
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return
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#find the next task with condition=true, if exists
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machine = ( x for x in solution[idx-1::-1] if problem[x[1]][1] == problem[task[1]][1] )
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prev_mach = next(machine, None) #returns the task or None
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job = ( x for x in solution[idx-1::-1] if task[1][0] == x[1][0] )
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prev_job = next(job, None)
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end_mach = 0
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end_job = 0
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if prev_mach:
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end_mach = problem[prev_mach[1]][0] + prev_mach[0]
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if prev_job:
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end_job = problem[prev_job[1]][0] + prev_job[0]
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solution[idx] = (max(end_mach, end_job, task[0]),) + solution[idx][1:]
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def correct_indices(solution, idx):
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"""
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Adapt solution to reestablish ascending order of execution times.
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"""
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task = solution[idx]
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tasks = [ x for x in solution[idx:] if x[0] < task[0]]
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if tasks:
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solution.remove(task)
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solution.insert(idx + len(tasks), task)
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#[1,3,2] -> idx = 1, len([2])=1
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def correct_machine(solution, idx):
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"""
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Check conflicts on machines and correct if needed.
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"""
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task = solution[idx]
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end = problem[task[1]][0] + task[0]
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possible_conf = ( x for x in solution[idx+1:] if problem[x[1]][1] == problem[task[1]][1])
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conflict = next(( x for x in possible_conf if x[0] < end ), None)
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if(conflict):
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idx = solution.index(conflict)
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solution[idx] = (end,) + solution[idx][1:]
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correct_indices(solution,idx)
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def correct_precedence(solution, idx):
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"""
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Check precedence relation and correct if needed.
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"""
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task = solution[idx]
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end = problem[task[1]][0] + task[0]
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possible_conf = ( x for x in solution[idx+1:] if x[1][0] == task[1][0] )
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conflict = next(( x for x in possible_conf if x[0] < end or x[1][1] < task[1][1]), None)
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if(conflict):
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idx = solution.index(conflict)
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#print("idx->" + str(idx))
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if(conflict[0] < end):
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solution[idx] = (end,) + solution[idx][1:]
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correct_indices(solution,idx)
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if(conflict[1][1] < task[1][1]):
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new_start = solution[idx][0] + solution[idx][1][1]
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#print("new_start: " + str(new_start))
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solution.remove(task)
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task = (new_start,) + task[1:]
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solution.insert(idx, task)
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def generate(old_solution, steps, p=0.01):
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"""
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Generate a new solution from an existing solution with a
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specified number of max steps.
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"""
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import sys
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print("Max steps: " + str(steps))
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print("Accept probability: " + str(p))
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sys.stdout.write("Start generation... ")
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solution = old_solution[:]
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option = pull_fwd #do at least one pull
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for i in range(0, steps):
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solution = option(solution)
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if(option == accept):
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break
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option = pull_fwd if p < random.random() else accept
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if ((i * 100) % steps == 0):
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sys.stdout.write(str(i*100/steps) + "%... ")
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sys.stdout.flush()
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sys.stdout.write("Done\n")
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if option != accept:
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accept(solution)
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return solution
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def mock():
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"""
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Reads a mock problem and creates the corresponding enumerated
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solution. Should clean up the namespace afterwards.
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"""
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global problem
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from Parser.js2_style import parse_file as mockload
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from SchedulingAlgorithms.enumerate import enumerate as mockenum
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problem = mockload('../inputdata/sample')
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solution = mockenum(problem)
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del mockload
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del mockenum
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return solution
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def init(in_problem):
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global problem
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problem = in_problem
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@ -1,32 +0,0 @@
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from matplotlib import pyplot as plt
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from matplotlib import colors
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from matplotlib import patches
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import numpy as np
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from SchedulingAlgorithms.simanneal import rate
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import random
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def create_plot(problem, solution):
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end = rate(solution)
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with plt.xkcd():
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fig,ax = plt.subplots()
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col = colors.XKCD_COLORS
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del col['xkcd:white']
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colorlist = list(col.values())
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random.shuffle(colorlist)
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for m in range(0, problem.machines):
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mach_ops = [ x for x in solution if problem.problem_data[x[1][0]][x[1][1]][1] == m ]
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xranges = [ (x[0], problem.problem_data[x[1][0]][x[1][1]][0]) for x in mach_ops ]
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ax.broken_barh(xranges, ((problem.machines - m)*10, 9),
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facecolors=[colorlist[x[1][0]] for x in mach_ops])
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ax.set_ylim(5, 5 + (problem.machines+1)*10)
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ax.set_xlim(0, 1.25 * end)
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ax.set_yticks([15 + m * 10 for m in range(0, problem.machines)])
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ax.set_yticklabels([ problem.machines - 1 - m for m in range(0, problem.machines)] )
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handlecolors = colorlist[0:problem.jobs]
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handles = [ patches.Patch(color = handlecolors[j], label = "Job "+str(j)) for j in range(0,problem.jobs) ]
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labels = ["Job "+str(j) for j in range(0,problem.jobs)]
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ax.legend(handles, labels)
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plt.show()
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|
@ -6,33 +6,33 @@ from collections.abc import Mapping
|
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__all__ = ["js1_style", "js2_style"]
|
__all__ = ["js1_style", "js2_style"]
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grammar = """
|
grammar = """
|
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// starting point for jobshop1 input file
|
# starting point for jobshop1 input file
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job_shop1 = skip_preface
|
job_shop1 = skip_preface
|
||||||
// eat away lines of preface, until first problem_instance is
|
# eat away lines of preface, until first problem_instance is
|
||||||
// encountered; then the list of instances start
|
# encountered; then the list of instances start
|
||||||
skip_preface = (!problem_instance r"[^\n]+" skip_preface) / (eol skip_preface) / instance_list
|
skip_preface = (!problem_instance r"[^\n]+" skip_preface) / (eol skip_preface) / instance_list
|
||||||
instance_list = problem_instance (sep_line trim_ws eol problem_instance eol?)* eof_sep
|
instance_list = problem_instance (sep_line trim_ws eol problem_instance eol?)* eof_sep
|
||||||
problem_instance = trim_ws "instance" ' ' instance_name trim_ws eol trim_ws eol sep_line description eol problem_data
|
problem_instance = trim_ws "instance" ' ' instance_name trim_ws eol trim_ws eol sep_line description eol problem_data
|
||||||
description = r"[^\n]*"
|
description = r"[^\n]*"
|
||||||
instance_name = r"\w+"
|
instance_name = r"\w+"
|
||||||
sep_line = trim_ws plus_line trim_ws eol
|
sep_line = trim_ws plus_line trim_ws eol
|
||||||
// lines out of multiple + signs
|
# lines out of multiple + signs
|
||||||
plus_line = r"\+\+\++"
|
plus_line = r"\+\+\++"
|
||||||
// EOF is a builtin rule matching end of file
|
# EOF is a builtin rule matching end of file
|
||||||
eof_sep = trim_ws plus_line " EOF " plus_line trim_ws eol* EOF
|
eof_sep = trim_ws plus_line " EOF " plus_line trim_ws eol* EOF
|
||||||
// entry point for jobshop2 input files
|
# entry point for jobshop2 input files
|
||||||
job_shop2 = problem_data EOF
|
job_shop2 = problem_data EOF
|
||||||
problem_data = trim_ws num_jobs ' ' num_machines eol job_data+
|
problem_data = trim_ws num_jobs ' ' num_machines eol job_data+
|
||||||
// used for skipping arbitrary number of non-breaking whitespace
|
# used for skipping arbitrary number of non-breaking whitespace
|
||||||
trim_ws = r'[ \t]*'
|
trim_ws = r'[ \t]*'
|
||||||
// git may change line-endings on windows, so we have to match on both
|
# git may change line-endings on windows, so we have to match on both
|
||||||
eol = "\n" / "\r\n"
|
eol = "\n" / "\r\n"
|
||||||
nonneg_num = r'\d+'
|
nonneg_num = r'\d+'
|
||||||
num_jobs = nonneg_num
|
num_jobs = nonneg_num
|
||||||
num_machines = nonneg_num
|
num_machines = nonneg_num
|
||||||
machine = nonneg_num
|
machine = nonneg_num
|
||||||
duration = nonneg_num
|
duration = nonneg_num
|
||||||
// task data for 1 job
|
# task data for 1 job
|
||||||
job_data = ' '* machine ' '+ duration (' '+ machine ' '+ duration)* trim_ws eol
|
job_data = ' '* machine ' '+ duration (' '+ machine ' '+ duration)* trim_ws eol
|
||||||
"""
|
"""
|
||||||
|
|
||||||
|
|
|
@ -1,10 +0,0 @@
|
||||||
from Parser import JobShopProblem as Problem
|
|
||||||
|
|
||||||
def enumerate(problem):
|
|
||||||
schedule = ( (job, task) for job in range(0, problem.jobs) for task in range(0, len(problem.get_tasks_by_job(job))) )
|
|
||||||
begin = 0
|
|
||||||
solution = []
|
|
||||||
for task in schedule:
|
|
||||||
solution.append((begin, task))
|
|
||||||
begin += problem[task][0]
|
|
||||||
return solution
|
|
|
@ -1,36 +0,0 @@
|
||||||
from Generator.generator import generate
|
|
||||||
from Generator.generator import init as gen_init
|
|
||||||
from SchedulingAlgorithms.enumerate import enumerate as enum
|
|
||||||
from math import e
|
|
||||||
from random import random
|
|
||||||
|
|
||||||
def anneal(max_temp = 300, max_steps = 250, accept_prob=0.01):
|
|
||||||
global problem
|
|
||||||
gen_init(problem)
|
|
||||||
temp = max_temp
|
|
||||||
initial = enum(problem)
|
|
||||||
current = generate(initial, problem.machines * problem.jobs * 10, 0) #Complete the iteration once fully.
|
|
||||||
del initial
|
|
||||||
for step in range(0, max_steps):
|
|
||||||
new = generate(current, problem.machines * problem.jobs, accept_prob)
|
|
||||||
new_end = rate(new)
|
|
||||||
curr_end = rate(current)
|
|
||||||
p = 1 / ( 1 + (e ** ((curr_end - new_end)/temp)))
|
|
||||||
if (new_end < curr_end) or (p < random()):
|
|
||||||
current = new
|
|
||||||
print("Old: " + str(curr_end) + " New: " + str(new_end))
|
|
||||||
temp = ((max_temp-1)/(max_steps**2))*(step-max_steps)**2+1
|
|
||||||
print("Iteration: "+ str(step) + " Temperature: " + str(temp))
|
|
||||||
return current
|
|
||||||
|
|
||||||
def rate(solution):
|
|
||||||
global problem
|
|
||||||
last_tasks = []
|
|
||||||
for i in range(0,problem.jobs):
|
|
||||||
last_tasks += [next(( x for x in solution[::-1] if x[1][0] == i), [])]
|
|
||||||
end_times = [ problem[x[1]][0] + x[0] for x in last_tasks]
|
|
||||||
return max(end_times)
|
|
||||||
|
|
||||||
def init(in_problem):
|
|
||||||
global problem
|
|
||||||
problem = in_problem
|
|
|
@ -1,10 +1,7 @@
|
||||||
import Parser.js1_style as p
|
INSTANCES = [(5, 5)]
|
||||||
#import Parser.js2_style as p
|
TASKS = [[(1, 21), (0, 53), (4, 95), (3, 55), (2, 35)],
|
||||||
from SchedulingAlgorithms import simanneal as sim
|
[(0, 21), (3, 52), (4, 16), (2, 26), (1, 71)],
|
||||||
from Output import output as o
|
[(3, 39), (4, 98), (1, 42), (2, 31), (0, 12)],
|
||||||
|
[(1, 77), (0, 55), (4, 79), (2, 66), (3, 77)],
|
||||||
|
[(0, 83), (3, 34), (2, 64), (1, 19), (4, 37)]]
|
||||||
|
|
||||||
problem = p.parse_file("../inputdata/jobshop1.txt")[0]
|
|
||||||
#problem = p.parse_file("../inputdata/sample")
|
|
||||||
sim.init(problem)
|
|
||||||
solution = sim.anneal()
|
|
||||||
o.create_plot(problem, solution)
|
|
97
src/main.py
97
src/main.py
|
@ -1,97 +1,6 @@
|
||||||
#! /usr/bin/env python
|
#! /usr/bin/env python
|
||||||
|
def main() -> None:
|
||||||
|
pass
|
||||||
|
|
||||||
import sys
|
if "__name__" == "__main__":
|
||||||
import getopt
|
|
||||||
from SchedulingAlgorithms import simanneal as sim
|
|
||||||
from Output import output as o
|
|
||||||
|
|
||||||
|
|
||||||
def usage():
|
|
||||||
s= """
|
|
||||||
Command line options:
|
|
||||||
-h show this help
|
|
||||||
-p activate pretty output (requires tkinter)
|
|
||||||
-l assume that a file contains multiple problems, default is only 1
|
|
||||||
-i index of the problem you want solved. has no effect without l
|
|
||||||
-t set parameter max_temp of simulated annealing
|
|
||||||
-s set parameter max_steps of simulated annealing
|
|
||||||
-a set parameter accept_prob of simulated annealing
|
|
||||||
|
|
||||||
Invocation:
|
|
||||||
python [-hlp] file
|
|
||||||
"""
|
|
||||||
return s
|
|
||||||
|
|
||||||
|
|
||||||
def main():
|
|
||||||
js1 = False
|
|
||||||
plot = False
|
|
||||||
try:
|
|
||||||
opts, args = getopt.getopt(sys.argv[1:], 'hpli:t:s:a:')
|
|
||||||
except getopt.GetoptError as err:
|
|
||||||
print(err)
|
|
||||||
sys.exit()
|
|
||||||
if ('-h', '') in opts:
|
|
||||||
print(usage())
|
|
||||||
if ('-p', '') in opts:
|
|
||||||
print("Plotting enabled.")
|
|
||||||
from Output import output as o
|
|
||||||
plot = True
|
|
||||||
if('-l', '') in opts:
|
|
||||||
js1 = True
|
|
||||||
idx = [int(x[1]) for x in opts if x[0]=='-i']
|
|
||||||
idx = idx[0] if idx else -1
|
|
||||||
max_temp = [int(x[1]) for x in opts if x[0]=='-t']
|
|
||||||
max_temp = max_temp[0] if max_temp else -1
|
|
||||||
max_steps = [int(x[1]) for x in opts if x[0]=='-s']
|
|
||||||
max_steps = max_steps[0] if max_steps else -1
|
|
||||||
accept_prob = [int(x[1]) for x in opts if x[0]=='-a']
|
|
||||||
accept_prob = accept_prob[0] if accept_prob else -1
|
|
||||||
if not args:
|
|
||||||
print("No file given.")
|
|
||||||
sys.exit()
|
|
||||||
else:
|
|
||||||
infile = args[0]
|
|
||||||
if js1:
|
|
||||||
from Parser import js1_style as parser
|
|
||||||
else:
|
|
||||||
from Parser import js2_style as parser
|
|
||||||
print("Parsing file: " + infile)
|
|
||||||
problem = parser.parse_file(infile)
|
|
||||||
if js1:
|
|
||||||
print("File contains " + str(len(problem)) + " problems.")
|
|
||||||
if idx == -1:
|
|
||||||
idx = int(input("Which problem do you want so solve? [0-" + str(len(problem)-1) + "] "))
|
|
||||||
problem = problem[idx]
|
|
||||||
print(problem)
|
|
||||||
sim.init(problem)
|
|
||||||
if not max_temp == -1:
|
|
||||||
if not max_steps == -1:
|
|
||||||
if not accept_prob == -1:
|
|
||||||
solution = sim.anneal(max_temp, max_steps, accept_prob)
|
|
||||||
else:
|
|
||||||
solution = sim.anneal(max_temp = max_temp, max_steps = max_steps)
|
|
||||||
else:
|
|
||||||
if not accept_prob == -1:
|
|
||||||
solution = sim.anneal(max_temp = max_temp, accept_prob = accept_prob)
|
|
||||||
else:
|
|
||||||
solution = sim.anneal(max_temp = max_temp)
|
|
||||||
else:
|
|
||||||
if not max_steps == -1:
|
|
||||||
if not accept_prob == -1:
|
|
||||||
solution = sim.anneal(max_steps = max_steps, accept_prob = accept_prob)
|
|
||||||
else:
|
|
||||||
solution = sim.anneal(max_steps = max_steps)
|
|
||||||
else:
|
|
||||||
if not accept_prob == -1:
|
|
||||||
solution = sim.anneal(accept_prob = accept_prob)
|
|
||||||
else:
|
|
||||||
solution = sim.anneal()
|
|
||||||
print(solution)
|
|
||||||
print(sim.rate(solution))
|
|
||||||
if plot:
|
|
||||||
o.create_plot(problem, solution)
|
|
||||||
|
|
||||||
if __name__ == "__main__":
|
|
||||||
main()
|
main()
|
||||||
|
|
||||||
|
|
Loading…
Reference in a new issue