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Huffman and Linear Scanning Methods with Statistical Language Models

机译:统计语言模型的霍夫曼和线性扫描方法

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摘要

Current scanning access methods for text generation in AAC devices are limited to relatively few options, most notably row/column variations within a matrix. We present Huffman scanning, a new method for applying statistical language models to binary-switch, static-grid typing AAC interfaces, and compare it to other scanning options under a variety of conditions. We present results for 16 adults without disabilities and one 36-year-old man with locked-in syndrome who presents with complex communication needs and uses AAC scanning devices for writing. Huffman scanning with a statistical language model yielded significant typing speedups for the 16 participants without disabilities versus any of the other methods tested, including two row/column scanning methods. A similar pattern of results was found with the individual with locked-in syndrome. Interestingly, faster typing speeds were obtained with Huffman scanning using a more leisurely scan rate than relatively fast individually calibrated scan rates. Overall, the results reported here demonstrate great promise for the usability of Huffman scanning as a faster alternative to row/column scanning.
机译:当前用于AAC设备中的文本生成的扫描访问方法仅限于相对较少的选项,最明显的是矩阵中的行/列变化。我们介绍霍夫曼扫描,这是一种将统计语言模型应用于二进制交换,静态网格类型AAC接口的新方法,并将其与各种条件下的其他扫描选项进行比较。我们为16名无障碍成年人和1名36岁的锁定综合征患者提供了研究结果,他们表现出复杂的沟通需求并使用AAC扫描设备进行书写。与其他任何测试方法(包括两种行/列扫描方法)相比,采用统计语言模型进行的霍夫曼扫描可为16名无障碍参与者提供显着的打字速度。患有锁定综合征的个体也发现了类似的结果。有趣的是,使用霍夫曼扫描获得的打字速度要快于相对较快的单独校准的扫描速度,而扫描速度则更为轻松。总体而言,此处报告的结果证明霍夫曼扫描作为行/列扫描的更快替代品的可用性很有希望。

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