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Identity Verification Using Face Recognition for Artificial-Intelligence Electronic Forms with Speech Interaction

机译:使用语音互动的人工智能电子表格的面部识别的身份验证

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Concern over the decline in Japan's manufacturing competitiveness has increased in recent years. In particular, falsification of inspection data is a social problem that could undermine Japan's manufacturing industry, which is founded on a dedication to high quality. Falsification could be prevented by ensuring transparency of the inspection process by visualizing the process. End-to-end visualization facilitates early detection and prevention of various law infractions. In the workplace, visualization requires an efficient low-cost identity-verification method that ensures ease of visual confirmability for product traceability. We previously developed AI-forms, i.e., artificial-intelligence electronic forms, that provides a speech interface as a means of improving the standard work process in workplaces by making operations more efficient and visualizing processes. Al-forms improves production efficiency and visualizes the collected operation records by enhancing the readability and writability of records and handover operations that are not sufficiently supported by traditional electronic forms. To prevent falsification of inspections, it is necessary to use a widely deployed device and verification method in the workplace. We propose an identity-verification method for applying face recognition to AI-forms and developed a smartphone app for Al-forms. Preliminary feasibility testing involving 11 workers in an actual workplace confirmed that identity verification is possible when face recognition is carried out with frontal images of workers who are not wearing face masks. The face-recognition process completed within 0.4 s, enabling workers to seamlessly begin work with AI-forms. Recording both collation photos and worker names during identity verification also made it possible for a human to visually confirm a worker's identity. Discussion with workers and supervisors after the feasibility tests provided findings for improving our face-recognition app for closer integration of AI-forms and our identity-verification method at arbitrary times.
机译:近年来,对日本制造竞争力下降的关注。特别是,检查数据的伪造是一个可能破坏日本制造业的社会问题,该行业建立在高质量的奉献精神。通过可视化过程来确保检查过程的透明度,可以防止伪造。端到端可视化促进了早期检测和预防各种法律违规。在工作场所,可视化需要一种有效的低成本标识验证方法,可确保易于可视可确认性以进行产品可追溯性。我们以前开发的AI-形式,即人工智能电子表格,提供了一个语音接口为提高通过使运营效率和可视化过程中的工作场所标准的工作进程的手段。 AL-FORMS通过提高传统电子形式不充分支持的记录和切换操作的可读性和可写性来提高生产效率,并可视化收集的操作记录。为防止检查伪造,有必要在工作场所中使用广泛部署的设备和验证方法。我们提出了一种验证方法,用于将人脸识别应用于AI形式,并为AL形式开发了智能手机应用程序。涉及11名工人在实际工作场所的初步可行性测试证实,当与不穿面部面具的工人的正面图像进行面部识别时,可以进行身份​​验证。面部识别过程在0.4秒内完成,使工人能够与AI形式无缝开始。在身份验证期间记录整理照片和工人名称也使人类能够在视觉上确认工人的身份。讨论与工人和主管的可行性测试后,我们改善面部识别应用为AI-形式和我们在任意时刻身份验证方法更紧密的整合提供了调查结果。

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