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Browse files- README.md +30 -0
- imdb.py +42 -29
- requirements.txt +1 -0
README.md
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# PIE Dataset Card for "imdb"
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This is a [PyTorch-IE](https://github.com/ChristophAlt/pytorch-ie) wrapper for the
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[imdb Huggingface dataset loading script](https://huggingface.co/datasets/imdb).
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## Data Schema
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The document type for this dataset is `ImdbDocument` which defines the following data fields:
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- `text` (str)
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- `id` (str, optional)
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- `metadata` (dictionary, optional)
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and the following annotation layers:
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- `label` (annotation type: `Label`, target: `None`)
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See [here](https://github.com/ArneBinder/pie-modules/blob/main/src/pie_modules/annotations.py) and
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[here](https://github.com/ChristophAlt/pytorch-ie/blob/main/src/pytorch_ie/annotations.py) for the annotation
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type definitions.
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## Document Converters
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The dataset provides predefined document converters for the following target document types:
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- `pie_modules.documents.ExtractiveQADocument` (simple cast without any conversion)
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See [here](https://github.com/ArneBinder/pie-modules/blob/main/src/pie_modules/documents.py) and
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[here](https://github.com/ChristophAlt/pytorch-ie/blob/main/src/pytorch_ie/documents.py) for the document type
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definitions.
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imdb.py
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from dataclasses import dataclass
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import
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from pytorch_ie.annotations import Label
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from pytorch_ie.
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from pytorch_ie.documents import TextDocument
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import
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def __init__(self, **kwargs):
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"""BuilderConfig for IMDB.
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Args:
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**kwargs: keyword arguments forwarded to super.
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"""
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super().__init__(**kwargs)
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label
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DOCUMENT_TYPE = ImdbDocument
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BASE_DATASET_PATH = "imdb"
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BUILDER_CONFIGS = [
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name="plain_text",
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version=datasets.Version("1.0.0"),
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description="IMDB sentiment classification dataset",
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),
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]
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return {"int2str": dataset.features["label"].int2str}
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def
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label_id = example["label"]
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if label_id < 0:
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return document
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document.label.append(label_annotation)
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from dataclasses import dataclass
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from typing import Any, Dict
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import datasets
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from pytorch_ie.annotations import Label
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from pytorch_ie.documents import TextDocumentWithLabel
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from pie_datasets import GeneratorBasedBuilder
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@dataclass
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class ImdbDocument(TextDocumentWithLabel):
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pass
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def example_to_document(example: Dict[str, Any], labels: datasets.ClassLabel) -> ImdbDocument:
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text = example["text"]
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document = ImdbDocument(text=text)
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label_id = example["label"]
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if label_id < 0:
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return document
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label = labels.int2str(label_id)
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label_annotation = Label(label=label)
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document.label.append(label_annotation)
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return document
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def document_to_example(document: ImdbDocument, labels: datasets.ClassLabel) -> Dict[str, Any]:
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if len(document.label) > 0:
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label_id = labels.str2int(document.label[0].label)
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else:
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label_id = -1
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return {
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"text": document.text,
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"label": label_id,
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}
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class Imdb(GeneratorBasedBuilder):
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DOCUMENT_TYPE = ImdbDocument
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BASE_DATASET_PATH = "imdb"
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BASE_DATASET_REVISION = "9c6ede893febf99215a29cc7b72992bb1138b06b"
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BUILDER_CONFIGS = [
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datasets.BuilderConfig(
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name="plain_text",
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version=datasets.Version("1.0.0"),
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description="IMDB sentiment classification dataset",
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),
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]
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DOCUMENT_CONVERTERS = {TextDocumentWithLabel: {}}
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def _generate_document_kwargs(self, dataset) -> Dict[str, Any]:
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return {"labels": dataset.features["label"]}
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def _generate_document(self, example, **kwargs) -> ImdbDocument:
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return example_to_document(example, **kwargs)
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def _generate_example_kwargs(self, dataset) -> Dict[str, Any]:
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return {"labels": dataset.features["label"]}
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def _generate_example(self, document: ImdbDocument, **kwargs) -> Dict[str, Any]:
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return document_to_example(document, **kwargs)
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requirements.txt
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pie-datasets>=0.8.1,<0.9.0
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