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The Importance of Modeling Social Factors of Language: Theory and Practice

机译:建模语言社会因素的重要性:理论与实践

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Natural language processing (NLP) applications are now more powerful and ubiquitous than ever before. With rapidly developing (neural) models and ever-more available data, current NLP models have access to more information than any human speaker during their life. Still, it would be hard to argue that NLP models have reached human-level capacity. In this position paper, we argue that the reason for the current limitations is a focus on information content while ignoring language's social factors. We show that current NLP systems systematically break down when faced with interpreting the social factors of language. This limits applications to a subset of information-related tasks and prevents NLP from reaching human-level performance. At the same time, systems that incorporate even a minimum of social factors already show remarkable improvements. We formalize a taxonomy of seven social factors based on linguistic theory and exemplify current failures and emerging successes for each of them. We suggest that the NLP community address social factors to get closer to the goal of humanlike language understanding.
机译:自然语言处理(NLP)应用现在比以往任何时候都更强大和无处不在。随着快速发展(神经)模型和更具可用数据,当前的NLP模型可以访问更多的信息,而不是他们寿命中的任何人类扬声器。尽管如此,难以争辩说NLP模型已达到人级能力。在这个位置文件中,我们认为当前限制的原因是忽略信息内容,同时忽略语言的社会因素。我们表明当前的NLP系统在面对解释语言的社会因素时系统地分解。这将应用限制为信息相关任务的子集,并防止NLP达到人级性能。与此同时,甚至包含最少社会因素的系统已经表现出显着的改进。我们基于语言理论形式化七个社会因素的分类,并举例说明当前的失败以及每个人的新兴成功。我们建议NLP社区解决社会因素,以更接近人类语言理解的目标。

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