Commit
•
0a0f653
0
Parent(s):
Update files from the datasets library (from 1.2.0)
Browse filesRelease notes: https://github.com/huggingface/datasets/releases/tag/1.2.0
- .gitattributes +27 -0
- README.md +144 -0
- amttl.py +146 -0
- dataset_infos.json +1 -0
- dummy/amttl/1.0.0/dummy_data.zip +3 -0
.gitattributes
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*.7z filter=lfs diff=lfs merge=lfs -text
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README.md
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---
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annotations_creators:
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- crowdsourced
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language_creators:
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- found
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languages:
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- zh
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licenses:
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- mit
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multilinguality:
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- monolingual
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size_categories:
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- 1K<n<10K
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source_datasets:
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- original
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task_categories:
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- structure-prediction
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task_ids:
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- parsing
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---
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# Dataset Card for AMTTL
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## Table of Contents
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- [Dataset Description](#dataset-description)
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- [Dataset Summary](#dataset-summary)
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- [Supported Tasks](#supported-tasks-and-leaderboards)
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- [Languages](#languages)
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- [Dataset Structure](#dataset-structure)
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- [Data Instances](#data-instances)
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- [Data Fields](#data-instances)
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- [Data Splits](#data-instances)
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- [Dataset Creation](#dataset-creation)
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- [Curation Rationale](#curation-rationale)
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- [Source Data](#source-data)
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- [Annotations](#annotations)
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- [Personal and Sensitive Information](#personal-and-sensitive-information)
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- [Considerations for Using the Data](#considerations-for-using-the-data)
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- [Social Impact of Dataset](#social-impact-of-dataset)
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- [Discussion of Biases](#discussion-of-biases)
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41 |
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- [Other Known Limitations](#other-known-limitations)
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42 |
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- [Additional Information](#additional-information)
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43 |
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- [Dataset Curators](#dataset-curators)
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- [Licensing Information](#licensing-information)
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- [Citation Information](#citation-information)
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## Dataset Description
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- **Homepage:** [Github](https://github.com/adapt-sjtu/AMTTL/tree/master/medical_data)
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- **Repository:** [Github](https://github.com/adapt-sjtu/AMTTL/tree/master/medical_data)
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- **Paper:** [Aclweb](http://aclweb.org/anthology/C18-1307)
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- **Leaderboard:**
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- **Point of Contact:**
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### Dataset Summary
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[More Information Needed]
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### Supported Tasks and Leaderboards
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[More Information Needed]
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### Languages
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[More Information Needed]
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## Dataset Structure
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### Data Instances
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[More Information Needed]
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### Data Fields
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[More Information Needed]
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### Data Splits
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[More Information Needed]
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## Dataset Creation
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### Curation Rationale
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[More Information Needed]
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### Source Data
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#### Initial Data Collection and Normalization
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[More Information Needed]
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#### Who are the source language producers?
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[More Information Needed]
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### Annotations
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#### Annotation process
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[More Information Needed]
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#### Who are the annotators?
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[More Information Needed]
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### Personal and Sensitive Information
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[More Information Needed]
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## Considerations for Using the Data
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112 |
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### Social Impact of Dataset
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[More Information Needed]
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### Discussion of Biases
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[More Information Needed]
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120 |
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### Other Known Limitations
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[More Information Needed]
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## Additional Information
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### Dataset Curators
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[More Information Needed]
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### Licensing Information
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[More Information Needed]
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### Citation Information
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```bibtex
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@inproceedings{xing2018adaptive,
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title={Adaptive multi-task transfer learning for Chinese word segmentation in medical text},
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author={Xing, Junjie and Zhu, Kenny and Zhang, Shaodian},
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booktitle={Proceedings of the 27th International Conference on Computational Linguistics},
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pages={3619--3630},
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year={2018}
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}
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```
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amttl.py
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# coding=utf-8
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# Copyright 2020 HuggingFace Datasets Authors.
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#
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4 |
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# Licensed under the Apache License, Version 2.0 (the "License");
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5 |
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# you may not use this file except in compliance with the License.
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6 |
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# You may obtain a copy of the License at
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7 |
+
#
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8 |
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# http://www.apache.org/licenses/LICENSE-2.0
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9 |
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#
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10 |
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# Unless required by applicable law or agreed to in writing, software
|
11 |
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# distributed under the License is distributed on an "AS IS" BASIS,
|
12 |
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
|
13 |
+
# See the License for the specific language governing permissions and
|
14 |
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# limitations under the License.
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15 |
+
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# Lint as: python3
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17 |
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"""Introduction to AMTTL CWS Dataset"""
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18 |
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import logging
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20 |
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import datasets
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22 |
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_CITATION = """\
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25 |
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@inproceedings{xing2018adaptive,
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26 |
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title={Adaptive multi-task transfer learning for Chinese word segmentation in medical text},
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27 |
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author={Xing, Junjie and Zhu, Kenny and Zhang, Shaodian},
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28 |
+
booktitle={Proceedings of the 27th International Conference on Computational Linguistics},
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29 |
+
pages={3619--3630},
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30 |
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year={2018}
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31 |
+
}
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32 |
+
"""
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33 |
+
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_DESCRIPTION = """\
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35 |
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Chinese word segmentation (CWS) trained from open source corpus faces dramatic performance drop
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36 |
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when dealing with domain text, especially for a domain with lots of special terms and diverse
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37 |
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writing styles, such as the biomedical domain. However, building domain-specific CWS requires
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38 |
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extremely high annotation cost. In this paper, we propose an approach by exploiting domain-invariant
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knowledge from high resource to low resource domains. Extensive experiments show that our mode
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achieves consistently higher accuracy than the single-task CWS and other transfer learning
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41 |
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baselines, especially when there is a large disparity between source and target domains.
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42 |
+
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This dataset is the accompanied medical Chinese word segmentation (CWS) dataset.
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The tags are in BIES scheme.
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45 |
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For more details see https://www.aclweb.org/anthology/C18-1307/
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"""
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_URL = "https://raw.githubusercontent.com/adapt-sjtu/AMTTL/master/medical_data/"
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_TRAINING_FILE = "forum_train.txt"
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_DEV_FILE = "forum_dev.txt"
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_TEST_FILE = "forum_test.txt"
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class AmttlConfig(datasets.BuilderConfig):
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"""BuilderConfig for AMTTL"""
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def __init__(self, **kwargs):
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"""BuilderConfig for AMTTL.
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Args:
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62 |
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**kwargs: keyword arguments forwarded to super.
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"""
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super(AmttlConfig, self).__init__(**kwargs)
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class Amttl(datasets.GeneratorBasedBuilder):
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68 |
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"""AMTTL Chinese Word Segmentation dataset."""
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69 |
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BUILDER_CONFIGS = [
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71 |
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AmttlConfig(
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72 |
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name="amttl",
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73 |
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version=datasets.Version("1.0.0"),
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74 |
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description="AMTTL medical Chinese word segmentation dataset",
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75 |
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),
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76 |
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]
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77 |
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78 |
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def _info(self):
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79 |
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return datasets.DatasetInfo(
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80 |
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description=_DESCRIPTION,
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81 |
+
features=datasets.Features(
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82 |
+
{
|
83 |
+
"id": datasets.Value("string"),
|
84 |
+
"tokens": datasets.Sequence(datasets.Value("string")),
|
85 |
+
"tags": datasets.Sequence(
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86 |
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datasets.features.ClassLabel(
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87 |
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names=[
|
88 |
+
"B",
|
89 |
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"I",
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90 |
+
"E",
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91 |
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"S",
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92 |
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]
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93 |
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)
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),
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95 |
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}
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),
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97 |
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supervised_keys=None,
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98 |
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homepage="https://www.aclweb.org/anthology/C18-1307/",
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99 |
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citation=_CITATION,
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)
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def _split_generators(self, dl_manager):
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"""Returns SplitGenerators."""
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urls_to_download = {
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105 |
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"train": f"{_URL}{_TRAINING_FILE}",
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106 |
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"dev": f"{_URL}{_DEV_FILE}",
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107 |
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"test": f"{_URL}{_TEST_FILE}",
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}
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109 |
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downloaded_files = dl_manager.download_and_extract(urls_to_download)
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110 |
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return [
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112 |
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datasets.SplitGenerator(name=datasets.Split.TRAIN, gen_kwargs={"filepath": downloaded_files["train"]}),
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113 |
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datasets.SplitGenerator(name=datasets.Split.VALIDATION, gen_kwargs={"filepath": downloaded_files["dev"]}),
|
114 |
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datasets.SplitGenerator(name=datasets.Split.TEST, gen_kwargs={"filepath": downloaded_files["test"]}),
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+
]
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+
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def _generate_examples(self, filepath):
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logging.info("⏳ Generating examples from = %s", filepath)
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with open(filepath, encoding="utf-8") as f:
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guid = 0
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121 |
+
tokens = []
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122 |
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tags = []
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123 |
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for line in f:
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124 |
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line_stripped = line.strip()
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125 |
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if line_stripped == "":
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126 |
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if tokens:
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yield guid, {
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"id": str(guid),
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"tokens": tokens,
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"tags": tags,
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131 |
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}
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guid += 1
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133 |
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tokens = []
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tags = []
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else:
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136 |
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splits = line_stripped.split("\t")
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137 |
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if len(splits) == 1:
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splits.append("O")
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tokens.append(splits[0])
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tags.append(splits[1])
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# last example
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yield guid, {
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"id": str(guid),
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"tokens": tokens,
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"tags": tags,
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}
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dataset_infos.json
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{"amttl": {"description": "Chinese word segmentation (CWS) trained from open source corpus faces dramatic performance drop\nwhen dealing with domain text, especially for a domain with lots of special terms and diverse\nwriting styles, such as the biomedical domain. However, building domain-specific CWS requires\nextremely high annotation cost. In this paper, we propose an approach by exploiting domain-invariant\nknowledge from high resource to low resource domains. Extensive experiments show that our mode\nachieves consistently higher accuracy than the single-task CWS and other transfer learning\nbaselines, especially when there is a large disparity between source and target domains.\n\nThis dataset is the accompanied medical Chinese word segmentation (CWS) dataset.\nThe tags are in BIES scheme.\n\nFor more details see https://www.aclweb.org/anthology/C18-1307/\n", "citation": "@inproceedings{xing2018adaptive,\n title={Adaptive multi-task transfer learning for Chinese word segmentation in medical text},\n author={Xing, Junjie and Zhu, Kenny and Zhang, Shaodian},\n booktitle={Proceedings of the 27th International Conference on Computational Linguistics},\n pages={3619--3630},\n year={2018}\n}\n", "homepage": "https://www.aclweb.org/anthology/C18-1307/", "license": "", "features": {"id": {"dtype": "string", "id": null, "_type": "Value"}, "tokens": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "tags": {"feature": {"num_classes": 4, "names": ["B", "I", "E", "S"], "names_file": null, "id": null, "_type": "ClassLabel"}, "length": -1, "id": null, "_type": "Sequence"}}, "post_processed": null, "supervised_keys": null, "builder_name": "amttl", "config_name": "amttl", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 1132212, "num_examples": 3063, "dataset_name": "amttl"}, "validation": {"name": "validation", "num_bytes": 324374, "num_examples": 822, "dataset_name": "amttl"}, "test": {"name": "test", "num_bytes": 328525, "num_examples": 908, "dataset_name": "amttl"}}, "download_checksums": {"https://raw.githubusercontent.com/adapt-sjtu/AMTTL/master/medical_data/forum_train.txt": {"num_bytes": 434357, "checksum": "9819373963ea04d1d28844d5bc83b6b0332fad8b5f2e73092bcfc58dc6d6292a"}, "https://raw.githubusercontent.com/adapt-sjtu/AMTTL/master/medical_data/forum_dev.txt": {"num_bytes": 124973, "checksum": "1a2eb461b98d2a9160baad7f76d003cc0917b998e8283bcffa52b71224dd9d17"}, "https://raw.githubusercontent.com/adapt-sjtu/AMTTL/master/medical_data/forum_test.txt": {"num_bytes": 126204, "checksum": "aea1a8cf244cd565e94bd193a1eef7a10b16eeb0b6fbb6ed1d2fefbd55360dd6"}}, "download_size": 685534, "post_processing_size": null, "dataset_size": 1785111, "size_in_bytes": 2470645}}
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