model update
Browse files- README.md +158 -0
- config.json +1 -1
- eval/metric.first.answer.paragraph.questions_answers.lmqg_qag_jaquad.default.json +1 -0
- eval/samples.test.hyp.paragraph.questions_answers.lmqg_qag_jaquad.default.txt +0 -0
- eval/samples.validation.hyp.paragraph.questions_answers.lmqg_qag_jaquad.default.txt +0 -0
- pytorch_model.bin +2 -2
- tokenizer_config.json +1 -1
- trainer_config.json +1 -0
README.md
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---
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license: cc-by-4.0
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metrics:
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- bleu4
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- meteor
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- rouge-l
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- bertscore
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- moverscore
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language: ja
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datasets:
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- lmqg/qag_jaquad
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pipeline_tag: text2text-generation
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tags:
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- questions and answers generation
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widget:
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- text: "ゾフィーは貴族出身ではあったが王族出身ではなく、ハプスブルク家の皇位継承者であるフランツ・フェルディナントとの結婚は貴賤結婚となった。皇帝フランツ・ヨーゼフは、2人の間に生まれた子孫が皇位を継がないことを条件として結婚を承認していた。視察が予定されている6月28日は2人の14回目の結婚記念日であった。"
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example_title: "Questions & Answers Generation Example 1"
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model-index:
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- name: lmqg/mbart-large-cc25-jaquad-qag
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results:
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- task:
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name: Text2text Generation
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type: text2text-generation
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dataset:
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name: lmqg/qag_jaquad
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type: default
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args: default
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metrics:
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- name: BLEU4 (Question & Answer Generation)
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type: bleu4_question_answer_generation
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value: 11.63
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- name: ROUGE-L (Question & Answer Generation)
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type: rouge_l_question_answer_generation
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value: 32.09
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- name: METEOR (Question & Answer Generation)
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type: meteor_question_answer_generation
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value: 24.5
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- name: BERTScore (Question & Answer Generation)
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type: bertscore_question_answer_generation
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value: 68.71
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- name: MoverScore (Question & Answer Generation)
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type: moverscore_question_answer_generation
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value: 52.42
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- name: QAAlignedF1Score-BERTScore (Question & Answer Generation)
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type: qa_aligned_f1_score_bertscore_question_answer_generation
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value: 72.68
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- name: QAAlignedRecall-BERTScore (Question & Answer Generation)
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type: qa_aligned_recall_bertscore_question_answer_generation
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value: 73.79
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- name: QAAlignedPrecision-BERTScore (Question & Answer Generation)
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type: qa_aligned_precision_bertscore_question_answer_generation
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value: 71.67
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- name: QAAlignedF1Score-MoverScore (Question & Answer Generation)
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type: qa_aligned_f1_score_moverscore_question_answer_generation
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value: 51.93
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- name: QAAlignedRecall-MoverScore (Question & Answer Generation)
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type: qa_aligned_recall_moverscore_question_answer_generation
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value: 52.62
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- name: QAAlignedPrecision-MoverScore (Question & Answer Generation)
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type: qa_aligned_precision_moverscore_question_answer_generation
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value: 51.31
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---
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# Model Card of `lmqg/mbart-large-cc25-jaquad-qag`
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This model is fine-tuned version of [facebook/mbart-large-cc25](https://huggingface.co/facebook/mbart-large-cc25) for question & answer pair generation task on the [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) (dataset_name: default) via [`lmqg`](https://github.com/asahi417/lm-question-generation).
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### Overview
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- **Language model:** [facebook/mbart-large-cc25](https://huggingface.co/facebook/mbart-large-cc25)
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- **Language:** ja
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- **Training data:** [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) (default)
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- **Online Demo:** [https://autoqg.net/](https://autoqg.net/)
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- **Repository:** [https://github.com/asahi417/lm-question-generation](https://github.com/asahi417/lm-question-generation)
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- **Paper:** [https://arxiv.org/abs/2210.03992](https://arxiv.org/abs/2210.03992)
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### Usage
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- With [`lmqg`](https://github.com/asahi417/lm-question-generation#lmqg-language-model-for-question-generation-)
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```python
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from lmqg import TransformersQG
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# initialize model
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model = TransformersQG(language="ja", model="lmqg/mbart-large-cc25-jaquad-qag")
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# model prediction
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question_answer_pairs = model.generate_qa("フェルメールの作品では、17世紀のオランダの画家、ヨハネス・フェルメールの作品について記述する。フェルメールの作品は、疑問作も含め30数点しか現存しない。現存作品はすべて油彩画で、版画、下絵、素描などは残っていない。")
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```
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- With `transformers`
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```python
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from transformers import pipeline
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pipe = pipeline("text2text-generation", "lmqg/mbart-large-cc25-jaquad-qag")
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output = pipe("ゾフィーは貴族出身ではあったが王族出身ではなく、ハプスブルク家の皇位継承者であるフランツ・フェルディナントとの結婚は貴賤結婚となった。皇帝フランツ・ヨーゼフは、2人の間に生まれた子孫が皇位を継がないことを条件として結婚を承認していた。視察が予定されている6月28日は2人の14回目の結婚記念日であった。")
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```
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## Evaluation
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- ***Metric (Question & Answer Generation)***: [raw metric file](https://huggingface.co/lmqg/mbart-large-cc25-jaquad-qag/raw/main/eval/metric.first.answer.paragraph.questions_answers.lmqg_qag_jaquad.default.json)
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| | Score | Type | Dataset |
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|:--------------------------------|--------:|:--------|:-------------------------------------------------------------------|
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| BERTScore | 68.71 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| Bleu_1 | 24.36 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| Bleu_2 | 18.51 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| Bleu_3 | 14.55 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| Bleu_4 | 11.63 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| METEOR | 24.5 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| MoverScore | 52.42 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| QAAlignedF1Score (BERTScore) | 72.68 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| QAAlignedF1Score (MoverScore) | 51.93 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| QAAlignedPrecision (BERTScore) | 71.67 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| QAAlignedPrecision (MoverScore) | 51.31 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| QAAlignedRecall (BERTScore) | 73.79 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| QAAlignedRecall (MoverScore) | 52.62 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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| ROUGE_L | 32.09 | default | [lmqg/qag_jaquad](https://huggingface.co/datasets/lmqg/qag_jaquad) |
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## Training hyperparameters
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The following hyperparameters were used during fine-tuning:
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- dataset_path: lmqg/qag_jaquad
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- dataset_name: default
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- input_types: ['paragraph']
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- output_types: ['questions_answers']
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- prefix_types: None
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- model: facebook/mbart-large-cc25
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- max_length: 512
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- max_length_output: 256
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- epoch: 11
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- batch: 8
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- lr: 0.0001
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- fp16: False
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- random_seed: 1
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- gradient_accumulation_steps: 8
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- label_smoothing: 0.0
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The full configuration can be found at [fine-tuning config file](https://huggingface.co/lmqg/mbart-large-cc25-jaquad-qag/raw/main/trainer_config.json).
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## Citation
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```
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@inproceedings{ushio-etal-2022-generative,
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title = "{G}enerative {L}anguage {M}odels for {P}aragraph-{L}evel {Q}uestion {G}eneration",
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author = "Ushio, Asahi and
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Alva-Manchego, Fernando and
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Camacho-Collados, Jose",
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booktitle = "Proceedings of the 2022 Conference on Empirical Methods in Natural Language Processing",
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month = dec,
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year = "2022",
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address = "Abu Dhabi, U.A.E.",
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publisher = "Association for Computational Linguistics",
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}
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```
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config.json
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{
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"_name_or_path": "lmqg_output/mbart-large-cc25-jaquad-qag/
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"_num_labels": 3,
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"activation_dropout": 0.0,
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"activation_function": "gelu",
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{
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"_name_or_path": "lmqg_output/mbart-large-cc25-jaquad-qag/model_ydlknu/epoch_5",
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"_num_labels": 3,
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"activation_dropout": 0.0,
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"activation_function": "gelu",
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eval/metric.first.answer.paragraph.questions_answers.lmqg_qag_jaquad.default.json
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{"validation": {"Bleu_1": 0.442425707446017, "Bleu_2": 0.34062893462177907, "Bleu_3": 0.27324593851993145, "Bleu_4": 0.22277827358204308, "METEOR": 0.25514187814910827, "ROUGE_L": 0.353652061262317, "BERTScore": 0.7325376251375317, "MoverScore": 0.5409912970264227, "QAAlignedF1Score (BERTScore)": 0.7306552396522141, "QAAlignedRecall (BERTScore)": 0.7272063496921992, "QAAlignedPrecision (BERTScore)": 0.7349615001495196, "QAAlignedF1Score (MoverScore)": 0.5246417485149184, "QAAlignedRecall (MoverScore)": 0.520391255222933, "QAAlignedPrecision (MoverScore)": 0.5297114583004668}, "test": {"Bleu_1": 0.24361536503944461, "Bleu_2": 0.18514842538799742, "Bleu_3": 0.1454816801738468, "Bleu_4": 0.11625217922996045, "METEOR": 0.24501471846078107, "ROUGE_L": 0.3208797270874647, "BERTScore": 0.6871284615211799, "MoverScore": 0.5242115426392946, "QAAlignedF1Score (BERTScore)": 0.7268055902636072, "QAAlignedRecall (BERTScore)": 0.7379401674085392, "QAAlignedPrecision (BERTScore)": 0.7166540428393525, "QAAlignedF1Score (MoverScore)": 0.519264226027171, "QAAlignedRecall (MoverScore)": 0.5262232772896484, "QAAlignedPrecision (MoverScore)": 0.513072398320057}}
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eval/samples.test.hyp.paragraph.questions_answers.lmqg_qag_jaquad.default.txt
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eval/samples.validation.hyp.paragraph.questions_answers.lmqg_qag_jaquad.default.txt
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pytorch_model.bin
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version https://git-lfs.github.com/spec/v1
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oid sha256:
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tokenizer_config.json
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"single_word": false
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},
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"model_max_length": 1024,
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"name_or_path": "lmqg_output/mbart-large-cc25-jaquad-qag/
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"pad_token": "<pad>",
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"sep_token": "</s>",
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"special_tokens_map_file": null,
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"single_word": false
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},
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"model_max_length": 1024,
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"name_or_path": "lmqg_output/mbart-large-cc25-jaquad-qag/model_ydlknu/epoch_5",
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"pad_token": "<pad>",
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"sep_token": "</s>",
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trainer_config.json
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{"dataset_path": "lmqg/qag_jaquad", "dataset_name": "default", "input_types": ["paragraph"], "output_types": ["questions_answers"], "prefix_types": null, "model": "facebook/mbart-large-cc25", "max_length": 512, "max_length_output": 256, "epoch": 11, "batch": 8, "lr": 0.0001, "fp16": false, "random_seed": 1, "gradient_accumulation_steps": 8, "label_smoothing": 0.0}
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