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분야딥러닝딥러닝
계열Machine learningMachine learning
기원 연도2019–20202019–2020
창시자Community (Maynez, Atanasova et al.)Raffel et al. (T5); Lewis et al. (BART)
유형Explainable NLP pipelineTransfer learning applied to sequence-to-sequence summarization
원전Atanasova, P., Simonsen, J. G., Lioma, C., & Augenstein, I. (2020). A diagnostic study of explainability techniques for text classification. In Proceedings of the 2020 Conference on Empirical Methods in Natural Language Processing (EMNLP), 3256–3274. Association for Computational Linguistics. link ↗Raffel, C., Shazeer, N., Roberts, A., Lee, K., Narang, S., Matena, M., Zhou, Y., Li, W., & Liu, P. J. (2020). Exploring the limits of transfer learning with a unified text-to-text transformer. Journal of Machine Learning Research, 21(140), 1–67. link ↗
별칭XAI text summarization, interpretable summarization, transparent summarization, faithfulness-aware summarizationpretrained summarization model, fine-tuned summarization, TL-summarization, neural abstractive summarization via transfer learning
관련64
요약Explainable Text Summarization augments automatic summarization models — extractive or abstractive — with post-hoc or built-in explanation methods that reveal which source sentences, tokens, or attention patterns drove each output sentence. The goal is to audit faithfulness, detect hallucinations, and build trust in model outputs in high-stakes settings such as medical or legal document review.Transfer Learning with Text Summarization adapts a large language model pre-trained on broad text corpora — such as T5, BART, or PEGASUS — to the task of condensing documents into shorter, coherent summaries. By reusing learned linguistic knowledge and fine-tuning on domain-specific pairs of source documents and reference summaries, this approach achieves strong summarization quality with modest labeled data requirements.
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ScholarGate방법 비교: Explainable Text Summarization · Transfer Learning with Text Summarization. 2026-06-15에 다음에서 검색함: https://scholargate.app/ko/compare