The full dataset viewer is not available (click to read why). Only showing a preview of the rows.
Error code: DatasetGenerationError
Exception: UnpicklingError
Message: Weights only load failed. This file can still be loaded, to do so you have two options, [1mdo those steps only if you trust the source of the checkpoint[0m.
(1) In PyTorch 2.6, we changed the default value of the `weights_only` argument in `torch.load` from `False` to `True`. Re-running `torch.load` with `weights_only` set to `False` will likely succeed, but it can result in arbitrary code execution. Do it only if you got the file from a trusted source.
(2) Alternatively, to load with `weights_only=True` please check the recommended steps in the following error message.
WeightsUnpickler error: Unsupported global: GLOBAL __main__.SiameseNet was not an allowed global by default. Please use `torch.serialization.add_safe_globals([__main__.SiameseNet])` or the `torch.serialization.safe_globals([__main__.SiameseNet])` context manager to allowlist this global if you trust this class/function.
Check the documentation of torch.load to learn more about types accepted by default with weights_only https://pytorch.org/docs/stable/generated/torch.load.html.
Traceback: Traceback (most recent call last):
File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 1568, in _prepare_split_single
for key, record in generator:
^^^^^^^^^
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 609, in wrapped
for item in generator(*args, **kwargs):
^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.12/site-packages/datasets/packaged_modules/webdataset/webdataset.py", line 118, in _generate_examples
for example_idx, example in enumerate(self._get_pipeline_from_tar(tar_path, tar_iterator)):
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.12/site-packages/datasets/packaged_modules/webdataset/webdataset.py", line 55, in _get_pipeline_from_tar
current_example[field_name] = cls.DECODERS[data_extension](current_example[field_name])
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.12/site-packages/datasets/packaged_modules/webdataset/webdataset.py", line 315, in torch_loads
return torch.load(io.BytesIO(data), weights_only=True)
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.12/site-packages/torch/serialization.py", line 1529, in load
raise pickle.UnpicklingError(_get_wo_message(str(e))) from None
_pickle.UnpicklingError: Weights only load failed. This file can still be loaded, to do so you have two options, [1mdo those steps only if you trust the source of the checkpoint[0m.
(1) In PyTorch 2.6, we changed the default value of the `weights_only` argument in `torch.load` from `False` to `True`. Re-running `torch.load` with `weights_only` set to `False` will likely succeed, but it can result in arbitrary code execution. Do it only if you got the file from a trusted source.
(2) Alternatively, to load with `weights_only=True` please check the recommended steps in the following error message.
WeightsUnpickler error: Unsupported global: GLOBAL __main__.SiameseNet was not an allowed global by default. Please use `torch.serialization.add_safe_globals([__main__.SiameseNet])` or the `torch.serialization.safe_globals([__main__.SiameseNet])` context manager to allowlist this global if you trust this class/function.
Check the documentation of torch.load to learn more about types accepted by default with weights_only https://pytorch.org/docs/stable/generated/torch.load.html.
The above exception was the direct cause of the following exception:
Traceback (most recent call last):
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 1334, in compute_config_parquet_and_info_response
parquet_operations, partial, estimated_dataset_info = stream_convert_to_parquet(
^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 911, in stream_convert_to_parquet
builder._prepare_split(
File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 1447, in _prepare_split
for job_id, done, content in self._prepare_split_single(
^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 1604, in _prepare_split_single
raise DatasetGenerationError("An error occurred while generating the dataset") from e
datasets.exceptions.DatasetGenerationError: An error occurred while generating the datasetNeed help to make the dataset viewer work? Make sure to review how to configure the dataset viewer, and open a discussion for direct support.
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image | __key__
string | __url__
string |
|---|---|---|
./Output_5
|
hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
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./Output_1
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
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./Output_3
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
|
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./Output_7
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
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./Output_4
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
|
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./Output_2
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
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./Output_6
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
|
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./Output_8
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_complex_Tp3.tar
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./Output_5
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_1
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_3
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_7
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_4
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_2
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_6
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Output_8
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_intermediate_Tp3.tar
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./Input_7
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_2
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_1
|
hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_6
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_3
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_5
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_4
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Input_8
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_ModelTesting_seed.tar
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./Output_5_12_80224
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_8048
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_35134
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_174265
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_66213
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_109058
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_383176
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_81209
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_34035
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_63151
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_47111
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_184178
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_83208
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_14_238188
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_257022
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_15_299279
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_23183
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_14_215233
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_348097
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_334039
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_306061
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_238159
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_72274
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_303191
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_15_273255
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_15_186270
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_47096
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_400028
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_143261
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_167156
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_239025
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_202121
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_120053
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_187020
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_248104
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_15_321240
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_58175
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_40273
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_14_257248
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_14_383227
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_89058
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_12_208209
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_13_198163
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_174165
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_11_163287
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_103060
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_249018
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_14_332231
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_175015
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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./Output_5_10_147039
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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hf://datasets/HotshotGoku/Simulation_templated_pattern_prediction@982537139e9d288543c3b6f3ce76726811db8eac/seed_to_sim_deterministic/Sim_050924_complex_Tp3.tar
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The files in the dataset are organized as follows:
- seed_to_sim_determinisitic
- sim_to_exp_diffusion
These two folders represent the 2 major pipelines in the manuscript: Physics constrained photorealistic prediction of bacterial colony patterns (Insert link later). First folder is for the determinisitic ResNet model and second folder is for the diffusion model.
- seed_to_sim_determinisitic
Sim_050924_seed.taris the input seed dataset,Sim_050924_intermediate_Tp3.taris the output, default end-point patterns andSim_050924_complex_Tp3.taris the end-point patterns with different parameters- thinner but denser branching.Sim_050924_ModelTesting_seed.taris the input seed test dataset,Sim_050924_ModelTesting_intermediate.taris the default patterns for the test set, andSim_050924_ModelTesting_complex.taris the thinner but denser branches test set.saved_models.tarcontains all saved trained models that are used in the manuscript.i)
Pixel_32x32x3to32x32x4_dilRESNET_30k_graypatterns_seedtointermediate_v101_4-1759366230_best.ptis the model used in Fig 2 for mapping between seed to simulation.ii)
Pixel_32x32x3to32x32x4_dilRESNET_graypatterns_intermediatetocomplex_Model_30000_v101_Cluster_GPU_tfData-1759363890_best.ptis the model used in Fig 3 to map between one simulation to another.iii)
models_Fig4contain all models that were used in Fig4a and b- testing the model performance as a function of training data size. The number following intermediatetocomplex and preceeding _v1015 represents the training data size.iv)
models_dataagumentation_Fig4contains all models that were used in Fig4c and d- testing the model performance as a function of unique training data size. The number following intermediatetocomplex and preceeding _v1015 represents the unique training data size(Total training size used for all images was 40k, different images represents different amounts of augmentation accordingly)
- sim_to_exp_diffusion
Exp.tarcontains the raw experimental images that are used in the model training.Exp_SimcorrtoExp_seed.tarcontains the seeding configurations of the experimental images in the training set.SimcorrtoExp.tarcontains the paired simulation images corresponding to the experimental dataset.Exp_testset.tarcontains the experimental images that are used in the model inference as ground truthsExp_SimcorrtoExp_testset_seed.tarcontains the seeding configurations corresponding to the experimental and simulation images in the test set.SimcorrtoExp_testset.tarcontain the paired simulatoin images that are used in the model inference as spatial inputs.checkpoint_simtoexp.taris the trained ControlNet model checkpoint used in Fig 5 to map from simulation to experiments.checkpoint_seedtoexp.taris the trained ControlNet model checkpoint used in Supplementary Fig 17 to map from seed to experiments.Dissimilarity_scoring.tarcontains the images used in Supplementary Figures 17 and 18, and the trained contrastive learning model.inference_folders.tarcontains various results from the trained ControlNet model on the test set.i)
v2025926_1251_simtoexp_v3contains the results of the base ControlNet model used in Fig 5.ii)
v20251011_841_seedtoexp_swapped_v3contains the results of the ControlNet trained on seeding configurations as spatial input in Supp Fig 17. The rest of the images are from the ablation study shown in Supp Fig 18.iii)
v20251023_1458_no_guess: Guess mode= Trueiv)
v20251023_1753_no_negative: Blank negative promptv)
v20251023_1756_plus_positive: Added positive promptvi)
v20251023_1758_low_strength_point85: Lower conditioning controlvii)
v20251023_1758_high_strength_1point25: Higher conditioning controlviii)
v20251023_1759_higher_DDIM_steps_100: Higher DDIM steps(100)ix)
v20251023_181_lower_guidance_9point0: Lower guidance scale of 9.0 used in model training
Note:
The datasets in the manuscript are augmented using rotations to increase the training size for model training. All the datasets here are non-augmented. Instructions on how to augment the dataset are outlined in the github repo.
Supplementary Figure 13 in the manuscipt involves the use of experimental images. To run this model, the appropriate images can be downloaded from the sim_to_exp_diffusion dataset.
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