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Multimodal Perception of Histological Images for Persons Who Are Blind or Visually Impaired

机译:盲人或视力障碍者对组织学图像的多模态感知

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摘要

Lack of suitable substitute assistive technology is a roadblock for students and scientists who are blind or visually impaired (BVI) from advancing in careers in science, technology, engineering, and mathematics (STEM) fields. It is challenging for persons who are BVI to interpret real-time visual scientific data which is commonly generated during lab experimentation, such as performing light microscopy, spectrometry, and observing chemical reactions. To address this problem, a real-time multimodal image perception system was developed to allow standard laboratory blood smear images to be perceived by BVI individuals by employing a combination of auditory, haptic, and vibrotactile feedback. These sensory feedback modalities were used to convey visual information through alternative perceptual channels, thus creating a palette of multimodal, sensory information. Two sets of image features of interest (primary and peripheral features) were applied to characterize images. A Bayesian network was applied to construct causal relations between these two groups of features. In order to match primary features with sensor modalities, two methods were conceived. Experimental results confirmed that this real-time approach produced higher accuracy in recognizing and analyzing objects within images compared to conventional tactile images.
机译:缺乏合适的替代辅助技术为盲人或视力障碍(BVI)的学生和科学家在科学,技术,工程和数学(STEM)领域的职业发展提供了障碍。对于BVI人士来说,要解释通常在实验室实验中通常生成的实时视觉科学数据(例如进行光学显微镜,光谱学和观察化学反应)具有挑战性。为了解决这个问题,开发了一种实时多模式图像感知系统,以允许BVI个人通过结合听觉,触觉和触觉反馈来感知标准的实验室血液涂片图像。这些感官反馈模态用于通过替代的感知通道传达视觉信息,从而创建了多模态感官信息的调色板。应用了两组感兴趣的图像特征(主要特征和外围特征)来表征图像。贝叶斯网络被用于构建这两组特征之间的因果关系。为了使主要特征与传感器模态匹配,构思了两种方法。实验结果证实,与传统的触觉图像相比,这种实时方法在识别和分析图像中的对象方面产生了更高的准确性。

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