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Multimodal Humor Dataset: Predicting Laughter tracks for Sitcoms

机译:多模式幽默数据集:预测情景喜剧的笑声轨道

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A great number of situational comedies (sitcoms) are being regularly made and the task of adding laughter tracks to these is a critical task. Providing an ability to be able to predict whether something will be humorous to the audience is also crucial. In this project, we aim to automate this task. Towards doing so, we annotate an existing sitcom (`Big Bang Theory') and use the laughter cues present to obtain a manual annotation for this show. We provide detailed analysis for the dataset design and further evaluate various state of the art baselines for solving this task. We observe that existing LSTM and BERT based networks on the text alone do not perform as well as joint text and video or only video-based networks. Moreover, it is challenging to ascertain that the words attended to while predicting laughter are indeed humorous. Our dataset and analysis provided through this paper is a valuable resource towards solving this interesting semantic and practical task. As an additional contribution, we have developed a novel model for solving this task that is a multi-modal self-attention based model that outperforms currently prevalent models for solving this task. The project page for our paper is https://delta-lab-iitk.github.io/Multimodal-Humor-Dataset/.
机译:经常制定大量情境喜剧(SItcoms),并为这些笑声轨道添加笑声轨道的任务是一个关键任务。提供能够预测某些东西对观众幽默的能力也至关重要。在这个项目中,我们的目标是自动执行这项任务。为此为此,我们注释了一个现有的情景喜剧(`Big Bang理论')并使用现有的笑声提示来获得此展示的手动注释。我们为数据集设计提供了详细的分析,并进一步评估了各种最先进的基线,以解决此任务。我们观察到,仅本文的现有LSTM和基于BERT的网络不执行以及联合文本和视频或基于视频网络。此外,确定在预测笑声的同时参加的单词确实幽默是挑战。我们通过本文提供的数据集和分析是解决这一有趣的语义和实用任务的宝贵资源。作为一种额外贡献,我们开发了一种解决此任务的新型模型,这是一种基于多模态自我关注的模型,其胜过目前普遍的模型来解决此任务。我们论文的项目页面是https://delta-lab-iitk.github.io/multimodal-humor-dataset/。

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