Updated some stuff
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This is pdfTeX, Version 3.141592653-2.6-1.40.25 (TeX Live 2023) (preloaded format=pdflatex 2023.9.17) 20 MAR 2024 22:13
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This is pdfTeX, Version 3.141592653-2.6-1.40.25 (TeX Live 2023) (preloaded format=pdflatex 2023.9.17) 20 MAR 2024 22:16
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entering extended mode
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restricted \write18 enabled.
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file:line:error style messages enabled.
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@@ -198,8 +198,24 @@ Tabellen die we gaan bespreken -> updaten met nieuwe data dan
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!!!!! Fix the test set (maybe save pickle)
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Plot profits per year (maybe with charge cycles) for the different models and baselines.
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Spread plotten van difference between charge and discharge thresholds
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RESULTATEN FIXEN
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Nog eens 3e meeting opbrengen voor 2e deel maart.
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Baseline -> thresholds bepalen training data, penalty aanpassen na evaluatie op test
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Schaal van plotjes aan zelfde
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NRV generaties plotten
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Profit during training
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Beste diffusion and best GRU model -> plotjes van profits during training
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# !!!! Baseline + Non autoregressive !!!!!!!!!!!!!!!
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# profit evaluation done day by day. Start with fresh battery. Maybe electritiy bought but not sold -> negative profits? What to do with this?
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3
Result-Reports/Profit.md
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3
Result-Reports/Profit.md
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| Experiment | Model Type | Input Parameters | Profit | Charge Cycles |
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|------------|------------|------------------|--------|----------------|
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| [Link](https://clearml.victormylle.be/projects/2e46d4af6f1e4c399cf9f5aa30bc8795/experiments/432396923e354d579494048656228c32/info-output/metrics/scalar) | Diffusion Model |
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@@ -114,17 +114,6 @@ trainer = AutoRegressiveQuantileTrainer(
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debug=False,
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)
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# trainer = NonAutoRegressiveQuantileRegression(
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# model,
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# inputDim,
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# optimizer,
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# data_processor,
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# quantiles,
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# "cuda",
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# policy_evaluator=policy_evaluator,
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# debug=False,
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# )
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trainer.add_metrics_to_track(
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[PinballLoss(quantiles), MSELoss(), L1Loss(), CRPSLoss(quantiles)]
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)
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@@ -18,6 +18,7 @@ from src.policies.PolicyEvaluator import PolicyEvaluator
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#### Data Processor ####
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data_config = DataConfig()
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data_config.NRV_HISTORY = True
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data_config.LOAD_HISTORY = False
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data_config.LOAD_FORECAST = False
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