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- page_blocks.py +119 -0
README.md
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---
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-
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---
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---
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language:
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- en
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tags:
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- page_blocks
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- tabular_classification
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- binary_classification
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- multiclass_classification
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pretty_name: Page Blocks
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size_categories:
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- 1K<n<10K
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task_categories: # Full list at https://github.com/huggingface/hub-docs/blob/main/js/src/lib/interfaces/Types.ts
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- tabular-classification
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configs:
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- page_blocks
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- page_blocks_binary
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---
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# PageBlocks
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The [PageBlocks dataset](https://archive-beta.ics.uci.edu/dataset/76/page_blocks) from the [UCI repository](https://archive-beta.ics.uci.edu/).
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How many transitions does the page block have?
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# Configurations and tasks
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| **Configuration** | **Task** |
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|-------------------|---------------------------|
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| page_blocks | Multiclass classification |
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| page_blocks_binary| Binary classification |
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page_blocks.data
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page_blocks.py
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"""PageBlocks Dataset"""
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from typing import List
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from functools import partial
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import datasets
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import pandas
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VERSION = datasets.Version("1.0.0")
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_ENCODING_DICS = {
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"is_family_financially_stable": {
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"convenient": True,
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"inconvenient": False
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}
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}
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DESCRIPTION = "PageBlocks dataset."
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_HOMEPAGE = "https://archive-beta.ics.uci.edu/dataset/78/page+blocks+classification"
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_URLS = ("https://archive-beta.ics.uci.edu/dataset/78/page+blocks+classification")
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_CITATION = """
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@misc{misc_page_blocks_classification_78,
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author = {Malerba,Donato},
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title = {{Page Blocks Classification}},
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year = {1995},
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howpublished = {UCI Machine Learning Repository},
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note = {{DOI}: \\url{10.24432/C5J590}}
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}
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"""
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# Dataset info
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urls_per_split = {
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"train": "https://huggingface.co/datasets/mstz/page_blocks/raw/main/page_blocks.data"
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}
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features_types_per_config = {
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"page_blocks": {
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"height": datasets.Value("float64"),
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"lenght": datasets.Value("float64"),
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"area": datasets.Value("float64"),
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"eccentricity": datasets.Value("float64"),
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"percentage_black_pixels": datasets.Value("float64"),
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"percentage_black_pixels_after_rlsa_and": datasets.Value("float64"),
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"mean_numer_of_transitions": datasets.Value("float64"),
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"number_of_black_pixels": datasets.Value("float64"),
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"number_of_black_pixels_after_rlsa": datasets.Value("float64"),
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"number_of_transitions": datasets.Value("int8")
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},
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"page_blocks_binary": {
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"height": datasets.Value("float64"),
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"lenght": datasets.Value("float64"),
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"area": datasets.Value("float64"),
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"eccentricity": datasets.Value("float64"),
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"percentage_black_pixels": datasets.Value("float64"),
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"percentage_black_pixels_after_rlsa_and": datasets.Value("float64"),
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"mean_numer_of_transitions": datasets.Value("float64"),
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"number_of_black_pixels": datasets.Value("float64"),
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"number_of_black_pixels_after_rlsa": datasets.Value("float64"),
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"has_multiple_transitions": datasets.ClassLabelS(num_classes=2)
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}
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}
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features_per_config = {k: datasets.Features(features_types_per_config[k]) for k in features_types_per_config}
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class PageBlocksConfig(datasets.BuilderConfig):
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def __init__(self, **kwargs):
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super(PageBlocksConfig, self).__init__(version=VERSION, **kwargs)
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self.features = features_per_config[kwargs["name"]]
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class PageBlocks(datasets.GeneratorBasedBuilder):
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# dataset versions
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DEFAULT_CONFIG = "page_blocks"
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BUILDER_CONFIGS = [
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PageBlocksConfig(name="page_blocks",
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description="PageBlocks for regression."),
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PageBlocksConfig(name="page_blocks_binary",
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description="PageBlocks for binary classification.")
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]
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def _info(self):
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info = datasets.DatasetInfo(description=DESCRIPTION, citation=_CITATION, homepage=_HOMEPAGE,
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features=features_per_config[self.config.name])
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return info
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def _split_generators(self, dl_manager: datasets.DownloadManager) -> List[datasets.SplitGenerator]:
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downloads = dl_manager.download_and_extract(urls_per_split)
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return [
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datasets.SplitGenerator(name=datasets.Split.TRAIN, gen_kwargs={"filepath": downloads["train"]}),
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]
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def _generate_examples(self, filepath: str):
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data = pandas.read_csv(filepath)
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data = self.preprocess(data)
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for row_id, row in data.iterrows():
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data_row = dict(row)
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yield row_id, data_row
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def preprocess(self, data: pandas.DataFrame) -> pandas.DataFrame:
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if self.config.name == "page_blocks_binary":
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data["number_of_transitions"] = data["number_of_transitions"].apply(lambda x: 1 if x > 1 else 0)
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data = data.rename(columns={"number_of_transitions": "has_multiple_transitions"})
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for feature in _ENCODING_DICS:
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encoding_function = partial(self.encode, feature)
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data.loc[:, feature] = data[feature].apply(encoding_function)
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return data[list(features_types_per_config[self.config.name].keys())]
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def encode(self, feature, value):
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if feature in _ENCODING_DICS:
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return _ENCODING_DICS[feature][value]
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raise ValueError(f"Unknown feature: {feature}")
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