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""" |
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The European Clinical Case Corpus (E3C) project aims at collecting and \ |
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annotating a large corpus of clinical documents in five European languages (Spanish, \ |
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Basque, English, French and Italian), which will be freely distributed. Annotations \ |
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include temporal information, to allow temporal reasoning on chronologies, and \ |
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information about clinical entities based on medical taxonomies, to be used for semantic reasoning. |
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""" |
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import json |
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import os |
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import xml.etree.ElementTree as et |
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from typing import Dict, Iterator, List, Tuple |
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|
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import datasets |
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|
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from .bigbiohub import BigBioConfig, Tasks |
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_LOCAL = True |
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_CITATION = """\ |
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@report{Magnini2021, |
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author = {Bernardo Magnini and Begoña Altuna and Alberto Lavelli and Manuela Speranza |
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and Roberto Zanoli and Fondazione Bruno Kessler}, |
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keywords = {Clinical data,clinical enti-ties,corpus,multilingual,temporal information}, |
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title = {The E3C Project: |
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European Clinical Case Corpus El proyecto E3C: European Clinical Case Corpus}, |
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url = {https://uts.nlm.nih.gov/uts/umls/home}, |
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year = {2021}, |
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} |
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""" |
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_DATASETNAME = "e3c" |
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_DESCRIPTION = """\ |
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The European Clinical Case Corpus (E3C) project aims at collecting and \ |
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annotating a large corpus of clinical documents in five European languages (Spanish, \ |
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Basque, English, French and Italian), which will be freely distributed. Annotations \ |
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include temporal information, to allow temporal reasoning on chronologies, and \ |
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information about clinical entities based on medical taxonomies, to be used for semantic reasoning. |
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""" |
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_HOMEPAGE = "https://github.com/hltfbk/E3C-Corpus" |
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_LICENSE = "" |
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_URLS = { |
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_DATASETNAME: "https://github.com/hltfbk/E3C-Corpus/archive/refs/tags/v2.0.0.zip", |
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} |
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_SUPPORTED_TASKS = [Tasks.NAMED_ENTITY_RECOGNITION, Tasks.RELATION_EXTRACTION] |
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_SOURCE_VERSION = "2.0.0" |
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_BIGBIO_VERSION = "1.0.0" |
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class E3cDataset(datasets.GeneratorBasedBuilder): |
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"""The European Clinical Case Corpus (E3C) is a multilingual corpus of clinical documents. |
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The corpus is annotated with clinical entities and temporal information. |
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The corpus is available in five languages: Spanish, Basque, English, French and Italian. |
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""" |
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SOURCE_VERSION = datasets.Version(_SOURCE_VERSION) |
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BIGBIO_VERSION = datasets.Version(_BIGBIO_VERSION) |
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BUILDER_CONFIGS = [ |
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BigBioConfig( |
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name=f"{_DATASETNAME}_source", |
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version=SOURCE_VERSION, |
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description=f"{_DATASETNAME} source schema", |
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schema="source", |
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subset_id=_DATASETNAME, |
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), |
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] |
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DEFAULT_CONFIG_NAME = f"{_DATASETNAME}_source" |
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|
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def _info(self) -> datasets.DatasetInfo: |
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features = datasets.Features( |
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{ |
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"id": datasets.Value("string"), |
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"document_id": datasets.Value("int32"), |
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"text": datasets.Value("string"), |
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"passages": [ |
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{ |
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"id": datasets.Value("string"), |
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"text": datasets.Value("string"), |
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"offsets": [datasets.Value("int32")], |
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} |
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], |
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"entities": [ |
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{ |
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"id": datasets.Value("string"), |
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"type": datasets.Value("string"), |
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"text": datasets.Value("string"), |
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"offsets": [datasets.Value("int32")], |
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"semantic_type_id": datasets.Value("string"), |
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"role": datasets.Value("string"), |
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} |
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], |
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"relations": [ |
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{ |
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"id": datasets.Value("string"), |
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"type": datasets.Value("string"), |
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"contextualAspect": datasets.Value("string"), |
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"contextualModality": datasets.Value("string"), |
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"degree": datasets.Value("string"), |
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"docTimeRel": datasets.Value("string"), |
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"eventType": datasets.Value("string"), |
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"permanence": datasets.Value("string"), |
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"polarity": datasets.Value("string"), |
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"functionInDocument": datasets.Value("string"), |
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"timex3Class": datasets.Value("string"), |
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"value": datasets.Value("string"), |
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"concept_1": datasets.Value("string"), |
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"concept_2": datasets.Value("string"), |
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} |
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], |
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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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homepage=_HOMEPAGE, |
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license=_LICENSE, |
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citation=_CITATION, |
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) |
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def _split_generators(self, dl_manager) -> List[datasets.SplitGenerator]: |
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"""Returns SplitGenerators.""" |
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urls = _URLS[_DATASETNAME] |
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data_dir = dl_manager.download_and_extract(urls) |
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paths = { |
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"en.layer1": "data_annotation/English/layer1", |
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"en.layer2": "data_annotation/English/layer2", |
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"en.layer2.validation": "data_validation/English/layer2", |
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"en.layer3": "data_collection/English/layer3", |
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"es.layer1": "data_annotation/Spanish/layer1", |
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"es.layer2": "data_annotation/Spanish/layer2", |
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"es.layer2.validation": "data_validation/Spanish/layer2", |
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"es.layer3": "data_collection/Spanish/layer3", |
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"eu.layer1": "data_annotation/Basque/layer1", |
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"eu.layer2": "data_annotation/Basque/layer2", |
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"eu.layer2.validation": "data_validation/Basque/layer2", |
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"eu.layer3": "data_collection/Basque/layer3", |
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"fr.layer1": "data_annotation/French/layer1", |
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"fr.layer2": "data_annotation/French/layer2", |
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"fr.layer2.validation": "data_validation/French/layer2", |
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"fr.layer3": "data_collection/French/layer3", |
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"it.layer1": "data_annotation/Italian/layer1", |
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"it.layer2": "data_annotation/Italian/layer2", |
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"it.layer2.validation": "data_validation/Italian/layer2", |
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"it.layer3": "data_collection/Italian/layer3", |
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} |
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return [ |
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datasets.SplitGenerator( |
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name=split, |
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gen_kwargs={ |
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"filepath": os.path.join(data_dir, "E3C-Corpus-2.0.0", path), |
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"split": "train", |
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}, |
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) |
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for split, path in paths.items() |
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] |
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def _generate_examples(self, filepath, split: str) -> Iterator[Tuple[int, Dict]]: |
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"""Yields examples as (key, example) tuples.""" |
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guid = 0 |
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for folder, _, files in os.walk(filepath): |
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for file in files: |
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with open(f"{folder}/{file}") as document: |
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if "layer3" not in folder: |
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root = et.fromstring(document.read()) |
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annotations: dict = {} |
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for child in root: |
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annotations.setdefault(child.tag, []).append( |
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child.attrib | {"type": child.tag.split("}")[1]} |
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) |
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text = annotations["{http:///uima/cas.ecore}Sofa"][0]["sofaString"] |
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links = { |
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link["{http://www.omg.org/XMI}id"]: link |
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for link in [ |
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*annotations.get( |
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"{http:///webanno/custom.ecore}EVENTTLINKLink", [] |
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), |
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*annotations.get( |
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"{http:///webanno/custom.ecore}RMLPERTAINSTOLink", [] |
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), |
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*annotations.get( |
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"{http:///webanno/custom.ecore}TIMEX3TimexLinkLink", [] |
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), |
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] |
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} |
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joined_relations = [] |
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for relation in [ |
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*annotations.get("{http:///webanno/custom.ecore}EVENT", []), |
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*annotations.get("{http:///webanno/custom.ecore}TIMEX3", []), |
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*annotations.get("{http:///webanno/custom.ecore}RML", []), |
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]: |
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link_ids = [] |
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if "TLINK" in relation.keys(): |
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link_ids = relation["TLINK"].split(" ") |
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elif "PERTAINSTO" in relation.keys(): |
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link_ids = relation["PERTAINSTO"].split(" ") |
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elif "timexLink" in relation.keys(): |
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link_ids = relation["timexLink"].split(" ") |
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elif not link_ids: |
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joined_relations.append( |
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relation | {"source": relation["{http://www.omg.org/XMI}id"]} |
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) |
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if link_ids != [""]: |
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for link_id in link_ids: |
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joined_relations.append( |
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relation |
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| links[link_id] |
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| {"source": relation["{http://www.omg.org/XMI}id"]} |
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) |
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yield guid, { |
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"id": "e3c", |
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"document_id": guid, |
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"text": text, |
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"passages": [ |
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{ |
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"text": text[int(sentence["begin"]) : int(sentence["end"])], |
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"id": sentence["{http://www.omg.org/XMI}id"], |
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"offsets": [int(sentence["begin"]), int(sentence["end"])], |
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} |
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for sentence in annotations[ |
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"{http:///de/tudarmstadt/ukp/dkpro/core" |
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"/api/segmentation/type.ecore}Sentence" |
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] |
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], |
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"entities": [ |
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{ |
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"text": text[int(annotation["begin"]) : int(annotation["end"])], |
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"offsets": [int(annotation["begin"]), int(annotation["end"])], |
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"id": annotation["{http://www.omg.org/XMI}id"], |
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"semantic_type_id": annotation.get("entityID", ""), |
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"role": annotation.get("role", ""), |
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"type": annotation.get("type"), |
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} |
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for annotation in [ |
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*annotations.get("{http:///webanno/custom.ecore}EVENT", []), |
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*annotations.get( |
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"{http:///webanno/custom.ecore}CLINENTITY", [] |
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), |
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*annotations.get("{http:///webanno/custom.ecore}BODYPART", []), |
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*annotations.get("{http:///webanno/custom.ecore}ACTOR", []), |
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*annotations.get("{http:///webanno/custom.ecore}RML", []), |
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*annotations.get("{http:///webanno/custom.ecore}TIMEX3", []), |
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] |
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], |
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"relations": [ |
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{ |
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"id": relation["{http://www.omg.org/XMI}id"], |
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"type": relation.get("type"), |
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"contextualAspect": relation.get("contextualAspect", ""), |
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"contextualModality": relation.get("contextualModality", ""), |
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"degree": relation.get("degree", ""), |
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"docTimeRel": relation.get("docTimeRel", ""), |
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"eventType": relation.get("eventType", ""), |
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"permanence": relation.get("permanence", ""), |
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"polarity": relation.get("polarity", ""), |
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"functionInDocument": relation.get("functionInDocument", ""), |
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"timex3Class": relation.get("timex3Class", ""), |
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"value": relation.get("value", ""), |
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"concept_1": relation.get("source"), |
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"concept_2": relation.get("target", ""), |
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} |
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for relation in joined_relations |
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], |
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} |
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else: |
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unannotated_text = json.load(document) |
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yield guid, { |
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"id": "e3c", |
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"document_id": guid, |
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"text": unannotated_text["text"], |
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"passages": [], |
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"entities": [], |
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"relations": [], |
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} |
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guid += 1 |
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|