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Interactive Learning of Spoken Words and Their Meanings Through an Audio-Visual Interface

机译:通过视听界面交互式学习口语单词及其含义

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This paper presents a new interactive learning method for spoken word acquisition through human-machine audio-visual interfaces. During the course of learning, the machine makes a decision about whether an orally input word is a word in the lexicon the machine has learned, using both speech and visual cues. Learning is carried out on-line, incrementally, based on a combination of active and unsupervised learning principles. If the machine judges with a high degree of confidence that its decision is correct, it learns the statistical models of the word and a corresponding image category as its meaning in an unsupervised way. Otherwise, it asks the user a question in an active way. The function used to estimate the degree of confidence is also learned adaptively on-line. Experimental results show that the combination of active and unsupervised learning principles enables the machine and the user to adapt to each other, which makes the learning process more efficient.
机译:本文提出了一种新的交互式学习方法,用于通过人机视听界面获取口语单词。在学习过程中,机器会使用语音和视觉提示来决定口头输入的单词是否是机器已学习的词典中的单词。基于主动和无监督学习原理的组合,在线增量学习。如果机器高度自信地判断其决定是正确的,则它将以无监督的方式学习单词及其对应图像类别的统计模型。否则,它会主动向用户询问问题。用于估计置信度的函数也可以在线自适应地学习。实验结果表明,主动和无监督学习原理的结合使机器和用户能够相互适应,从而使学习过程更加高效。

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