Regularizing Korean Conversational Model by Applying Denoising Mechanism 


Vol. 45,  No. 6, pp. 572-581, Jun.  2018
10.5626/JOK.2018.45.6.572


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  Abstract

A conversation system is a system that responds appropriately to input utterances. Recently, the sequence-to-sequence framework has been widely used as a conversation-learning model. However, the conversation model learned in such a way often generates a safe and dull response that does not provide appropriate information or sophisticated meaning. In addition, this model is also useless for input utterances appearing in various forms, such as with changed ending words or changed word order. To solve these problems, we propose a denoising response generation model applying a denoising mechanism. By injecting noise into original input, the proposed method creates a model that will stochastically experience new input made up of items that were not included in the original data during the training process. This data augmentation effect regularizes the model and allows the realization of a robust model. We evaluate our model using 90k input utterances-responses from Korean conversation pair data. The proposed model achieves better results compared to a baseline model on both ROUGE F1 score and qualitative evaluations by human annotators.


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  Cite this article

[IEEE Style]

T. Kim, Y. Noh, S. Park, S. Park, "Regularizing Korean Conversational Model by Applying Denoising Mechanism," Journal of KIISE, JOK, vol. 45, no. 6, pp. 572-581, 2018. DOI: 10.5626/JOK.2018.45.6.572.


[ACM Style]

Tae-Hyeong Kim, Yunseok Noh, Seong-Bae Park, and Se-Yeong Park. 2018. Regularizing Korean Conversational Model by Applying Denoising Mechanism. Journal of KIISE, JOK, 45, 6, (2018), 572-581. DOI: 10.5626/JOK.2018.45.6.572.


[KCI Style]

김태형, 노윤석, 박성배, 박세영, "디노이징 메커니즘을 통한 한국어 대화 모델 정규화," 한국정보과학회 논문지, 제45권, 제6호, 572~581쪽, 2018. DOI: 10.5626/JOK.2018.45.6.572.


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