Model Card of
research-backup/bart-large-squad-qg-no-answer
This model is fine-tuned version of
facebook/bart-large
for question generation task on the
lmqg/qg_squad
(dataset_name: default) via
lmqg
.
This model is fine-tuned without answer information, i.e. generate a question only given a paragraph (note that normal model is fine-tuned to generate a question given a pargraph and an associated answer in the paragraph).
from lmqg import TransformersQG
# initialize model
model = TransformersQG(language="en", model="research-backup/bart-large-squad-qg-no-answer")
# model prediction
questions = model.generate_q(list_context="William Turner was an English painter who specialised in watercolour landscapes", list_answer="William Turner")
With
transformers
from transformers import pipeline
pipe = pipeline("text2text-generation", "research-backup/bart-large-squad-qg-no-answer")
output = pipe("<hl> Beyonce further expanded her acting career, starring as blues singer Etta James in the 2008 musical biopic, Cadillac Records. <hl>")
@inproceedings{ushio-etal-2022-generative,
title = "{G}enerative {L}anguage {M}odels for {P}aragraph-{L}evel {Q}uestion {G}eneration",
author = "Ushio, Asahi and
Alva-Manchego, Fernando and
Camacho-Collados, Jose",
booktitle = "Proceedings of the 2022 Conference on Empirical Methods in Natural Language Processing",
month = dec,
year = "2022",
address = "Abu Dhabi, U.A.E.",
publisher = "Association for Computational Linguistics",
}
Runs of research-backup bart-large-squad-qg-no-answer on huggingface.co
19
Total runs
-1
24-hour runs
-1
3-day runs
-6
7-day runs
6
30-day runs
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