Update CityLearn.py
Browse files- CityLearn.py +3 -22
CityLearn.py
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@@ -14,20 +14,9 @@ _URLS = {
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class DecisionTransformerCityLearnDataset(datasets.GeneratorBasedBuilder):
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# This is an example of a dataset with multiple configurations.
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# If you don't want/need to define several sub-sets in your dataset,
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# just remove the BUILDER_CONFIG_CLASS and the BUILDER_CONFIGS attributes.
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# If you need to make complex sub-parts in the datasets with configurable options
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# You can create your own builder configuration class to store attribute, inheriting from datasets.BuilderConfig
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# BUILDER_CONFIG_CLASS = MyBuilderConfig
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# You will be able to load one or the other configurations in the following list with
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# data = datasets.load_dataset('my_dataset', 'first_domain')
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# data = datasets.load_dataset('my_dataset', 'second_domain')
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BUILDER_CONFIGS = [
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datasets.BuilderConfig(
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name="s_test",
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@@ -51,20 +40,12 @@ class DecisionTransformerCityLearnDataset(datasets.GeneratorBasedBuilder):
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"actions": datasets.Sequence(datasets.Sequence(datasets.Value("float32"))),
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"rewards": datasets.Sequence(datasets.Value("float32")),
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"dones": datasets.Sequence(datasets.Value("bool")),
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# These are the features of your dataset like images, labels ...
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}
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)
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return datasets.DatasetInfo(
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# This is the description that will appear on the datasets page.
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description=_DESCRIPTION,
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# This defines the different columns of the dataset and their types
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# Here we define them above because they are different between the two configurations
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features=features,
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# If there's a common (input, target) tuple from the features, uncomment supervised_keys line below and
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# specify them. They'll be used if as_supervised=True in builder.as_dataset.
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# supervised_keys=("sentence", "label"),
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# Homepage of the dataset for documentation
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)
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def _split_generators(self, dl_manager):
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class DecisionTransformerCityLearnDataset(datasets.GeneratorBasedBuilder):
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# You will be able to load one configuration in the following list with
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# data = datasets.load_dataset('TobiTob/CityLearn', 'data_name')
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BUILDER_CONFIGS = [
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datasets.BuilderConfig(
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name="s_test",
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"actions": datasets.Sequence(datasets.Sequence(datasets.Value("float32"))),
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"rewards": datasets.Sequence(datasets.Value("float32")),
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"dones": datasets.Sequence(datasets.Value("bool")),
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}
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)
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return datasets.DatasetInfo(
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description=_DESCRIPTION,
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features=features,
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)
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def _split_generators(self, dl_manager):
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