论文标题

为个性化幽默识别的联合学习

Federated Learning for Personalized Humor Recognition

论文作者

Guo, Xu, Yu, Han, Li, Boyang, Wang, Hao, Xing, Pengwei, Feng, Siwei, Nie, Zaiqing, Miao, Chunyan

论文摘要

在创造性的语言理解和建模下,对幽默的计算理解是一个重要的话题。它可以在复杂的人类互动中发挥关键作用。这里的挑战是人类对幽默内容的看法是高度主观的。同一笑话可能会获得不同读者的不同趣味性评分。这使得在实际场景中实现个性化的幽默识别模型非常具有挑战性。现有方法通常是基于以下假设来设计的:用户对给定文本是否幽默有共识。因此,他们不能很好地处理多样化的幽默偏好。在本文中,我们提出了通过联邦学习(FL)以个性化方式识别幽默内容的Fedhumor方法。 Fedhumor扩展了预训练的语言模型,通过考虑从个人的幽默偏好分布来指导微调过程。它将多样性适应策略纳入FL范式中,以训练个性化的幽默识别模型。据我们所知,Fedhumor是通过联合学习的第一个基于文本的个性化幽默识别模型。与九种最先进的幽默识别方法相比,Fedhumor在识别幽默文本方面的优势表明,具有卓越的能力来处理具有多样化偏好的用户产生的幽默标签的能力。

Computational understanding of humor is an important topic under creative language understanding and modeling. It can play a key role in complex human-AI interactions. The challenge here is that human perception of humorous content is highly subjective. The same joke may receive different funniness ratings from different readers. This makes it highly challenging for humor recognition models to achieve personalization in practical scenarios. Existing approaches are generally designed based on the assumption that users have a consensus on whether a given text is humorous or not. Thus, they cannot handle diverse humor preferences well. In this paper, we propose the FedHumor approach for the recognition of humorous content in a personalized manner through Federated Learning (FL). Extending a pre-trained language model, FedHumor guides the fine-tuning process by considering diverse distributions of humor preferences from individuals. It incorporates a diversity adaptation strategy into the FL paradigm to train a personalized humor recognition model. To the best of our knowledge, FedHumor is the first text-based personalized humor recognition model through federated learning. Extensive experiments demonstrate the advantage of FedHumor in recognizing humorous texts compared to nine state-of-the-art humor recognition approaches with superior capability for handling the diversity in humor labels produced by users with diverse preferences.

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