论文标题

通过在多任务域中利用辅助任务来学习提升

Learning Boost by Exploiting the Auxiliary Task in Multi-task Domain

论文作者

Yim, Jonghwa, Kim, Sang Hwan

论文摘要

在单个共享功能中学习两个任务有一些好处。首先,通过从第二个任务中获取信息,共享功能利用了在第一个任务中本来可以忽略或低估的有用信息。其次,它有助于概括可以使用两个任务的通常适用信息来学习的功能。为了充分享受这些好处,多任务学习(MTL)长期以来一直在各个领域进行研究,例如计算机视觉,语言理解和语音综合。尽管MTL受益于从多个任务中信息传递的积极传输,但在实际环境中,任务不可避免地会在学习阶段之间发生冲突,称为负转移。负转移篮的功能可实现最佳性并降低性能。为了解决任务冲突的问题,以前的作品仅提出了不是基本的部分解决方案,而是临时解决方案。一种常见的方法是使用加权损失总和。调整权重以诱导正转移。矛盾的是,这种解决方案确认了负转移的问题,除非任务的重量设置为零,否则无法将其删除。因此,这些先前的方法的成功有限。在本文中,我们引入了一种新颖的方法,可以通过利用班级的体重来驱动正转移和抑制负转移。权重作为基本信息单位的仲裁员,以确定其对主要任务的正面或负面状态。

Learning two tasks in a single shared function has some benefits. Firstly by acquiring information from the second task, the shared function leverages useful information that could have been neglected or underestimated in the first task. Secondly, it helps to generalize the function that can be learned using generally applicable information for both tasks. To fully enjoy these benefits, Multi-task Learning (MTL) has long been researched in various domains such as computer vision, language understanding, and speech synthesis. While MTL benefits from the positive transfer of information from multiple tasks, in a real environment, tasks inevitably have a conflict between them during the learning phase, called negative transfer. The negative transfer hampers function from achieving the optimality and degrades the performance. To solve the problem of the task conflict, previous works only suggested partial solutions that are not fundamental, but ad-hoc. A common approach is using a weighted sum of losses. The weights are adjusted to induce positive transfer. Paradoxically, this kind of solution acknowledges the problem of negative transfer and cannot remove it unless the weight of the task is set to zero. Therefore, these previous methods had limited success. In this paper, we introduce a novel approach that can drive positive transfer and suppress negative transfer by leveraging class-wise weights in the learning process. The weights act as an arbitrator of the fundamental unit of information to determine its positive or negative status to the main task.

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