Datasets:
Spatial Analysis Datasets
#5
by
srivarra
- opened
- ark_example.py +56 -11
- data/post_clustering.zip +3 -0
- data/spatial_analysis/spatial_lda.zip +3 -0
ark_example.py
CHANGED
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@@ -57,8 +57,6 @@ _LICENSE = "https://github.com/angelolab/ark-analysis/blob/main/LICENSE"
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# The HuggingFace Datasets library doesn't host the datasets but only points to the original files.
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# This can be an arbitrary nested dict/list of URLs (see below in `_split_generators` method)
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# _URL_REPO = "https://huggingface.co/datasets/angelolab/ark_example"
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-
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_URL_DATA = {
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"image_data": "./data/image_data.zip",
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@@ -66,6 +64,8 @@ _URL_DATA = {
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"deepcell_output": "./data/segmentation/deepcell_output.zip",
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"example_pixel_output_dir": "./data/pixie/example_pixel_output_dir.zip",
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"example_cell_output_dir": "./data/pixie/example_cell_output_dir.zip",
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}
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_URL_DATASET_CONFIGS = {
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@@ -87,6 +87,29 @@ _URL_DATASET_CONFIGS = {
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"deepcell_output": _URL_DATA["deepcell_output"],
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"example_cell_output_dir": _URL_DATA["example_cell_output_dir"],
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},
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}
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@@ -94,15 +117,7 @@ _URL_DATASET_CONFIGS = {
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class ArkExample(datasets.GeneratorBasedBuilder):
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"""The Dataset consists of 11 FOVs"""
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VERSION = datasets.Version("0.0.
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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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BUILDER_CONFIGS = [
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@@ -126,6 +141,31 @@ class ArkExample(datasets.GeneratorBasedBuilder):
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version=VERSION,
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description="This configuration contains data used by notebook 4 - Post Clustering.",
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),
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]
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def _info(self):
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@@ -135,6 +175,11 @@ class ArkExample(datasets.GeneratorBasedBuilder):
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"cluster_pixels",
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"cluster_cells",
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"post_clustering",
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]:
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features = datasets.Features(
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{f: datasets.Value("string") for f in _URL_DATASET_CONFIGS[self.config.name].keys()}
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# The HuggingFace Datasets library doesn't host the datasets but only points to the original files.
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# This can be an arbitrary nested dict/list of URLs (see below in `_split_generators` method)
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_URL_DATA = {
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"image_data": "./data/image_data.zip",
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"deepcell_output": "./data/segmentation/deepcell_output.zip",
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"example_pixel_output_dir": "./data/pixie/example_pixel_output_dir.zip",
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"example_cell_output_dir": "./data/pixie/example_cell_output_dir.zip",
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"spatial_lda": "./data/spatial_analysis/spatial_lda.zip",
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"post_clustering": "./data/post_clustering.zip"
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}
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_URL_DATASET_CONFIGS = {
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"deepcell_output": _URL_DATA["deepcell_output"],
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"example_cell_output_dir": _URL_DATA["example_cell_output_dir"],
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},
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"fiber_segmentation": {
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"image_data": _URL_DATA["image_data"],
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},
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"LDA_preprocessing": {
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"image_data": _URL_DATA["image_data"],
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"cell_table": _URL_DATA["cell_table"],
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},
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"LDA_training_inference": {
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"image_data": _URL_DATA["image_data"],
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"cell_table": _URL_DATA["cell_table"],
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"spatial_lda": _URL_DATA["spatial_lda"],
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},
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"neighborhood_analysis": {
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"image_data": _URL_DATA["image_data"],
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"cell_table": _URL_DATA["cell_table"],
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"deepcell_output": _URL_DATA["deepcell_output"],
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},
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"pairwise_spatial_enrichment": {
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"image_data": _URL_DATA["image_data"],
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"cell_table": _URL_DATA["cell_table"],
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"deepcell_output": _URL_DATA["deepcell_output"],
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"post_clustering": _URL_DATA["post_clustering"],
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}
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}
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class ArkExample(datasets.GeneratorBasedBuilder):
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"""The Dataset consists of 11 FOVs"""
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VERSION = datasets.Version("0.0.4")
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# You will be able to load one or the other configurations in the following list with
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BUILDER_CONFIGS = [
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version=VERSION,
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description="This configuration contains data used by notebook 4 - Post Clustering.",
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),
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datasets.BuilderConfig(
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name="fiber_segmentation",
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version=VERSION,
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description="This configuration contains data used by the Fiber Segmentation Notebook.",
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),
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datasets.BuilderConfig(
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name="LDA_preprocessing",
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version=VERSION,
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description="This configuration contains data used by the Spatial LDA - Preprocessing Notebook."
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),
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datasets.BuilderConfig(
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name="LDA_training_inference",
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version=VERSION,
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description="This configuration contains data used by the Spatial LDA - Training and Inference Notebook."
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),
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datasets.BuilderConfig(
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name="neighborhood_analysis",
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version=VERSION,
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description="This configuration contains data used by the Neighborhood Analysis Notebook."
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),
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datasets.BuilderConfig(
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name="pairwise_spatial_enrichment",
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version=VERSION,
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description="This configuration contains data used by the Pairwise Spatial Enrichment Notebook."
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)
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]
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def _info(self):
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"cluster_pixels",
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"cluster_cells",
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"post_clustering",
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"fiber_segmentation",
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"LDA_preprocessing",
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"LDA_training_inference",
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"neighborhood_analysis",
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"pairwise_spatial_enrichment",
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]:
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features = datasets.Features(
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{f: datasets.Value("string") for f in _URL_DATASET_CONFIGS[self.config.name].keys()}
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data/post_clustering.zip
ADDED
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@@ -0,0 +1,3 @@
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version https://git-lfs.github.com/spec/v1
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oid sha256:639326276833f53e4e831b72c835ea9b2376a964b04504f5d6629f4439a46883
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size 9719468
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data/spatial_analysis/spatial_lda.zip
ADDED
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@@ -0,0 +1,3 @@
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version https://git-lfs.github.com/spec/v1
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oid sha256:7028b6b132fa51eee9ebb99f9f79106e9a6f1505cd92604cc1a6dce6f99aee7a
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size 3486371
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