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Neural network based medical decision making using wearable technology

机译:基于神经网络的使用可穿戴技术的医学决策

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The process of making suitable decision as well as the ability to independently manage medical conditions for patient is very important for medical students (residents and fellows). A shared decision-making using artificial neural network (NN) is used in this study to optimize decision process. This method will also help medical resident to achieve competence and increase their performance. NN is probably the best model to simulate human brain decision making process. In this study, each input neuron used in the network will represent a decision output of a real physician biological neural network. Numerical values assigned to each neuron in the input layer represent measurable decisions made by each subject matter participants (resident students, fellows and physicians). The output layer represents an aided real time decision which incorporates all processed input values. Several hidden neural layers are also used to process and measure all the data in the network. In traditional schools, high learning performance is usually achieved by reducing the number of students or increasing the number of teachers in class. This proposed method will mimic or create a virtual class where the teachers will outnumber students. Wearable Technology (WT), namely “Google Glass” is used in this process to transmit live video stream via Wi-Fi which could be received by participant's tablet, smart phone or personal computer. This proposed “learning by sharing decision” model may prove effective to medical student outcomes.
机译:制定合适的决定以及独立管理患者医疗条件的能力对医学生(居民和员工)非常重要。在本研究中使用使用人工神经网络(NN)进行共享决策以优化决策过程。这种方法还将有助于医疗居民实现能力并提高其性能。 NN可能是模拟人脑决策过程的最佳模型。在本研究中,网络中使用的每个输入神经元将代表真正的医生生物网络的决策输出。分配给输入层中的每个神经元的数值代表每个主题参与者(居民学生,研究员和医生)所制作的可衡量决定。输出层表示一个辅助的实时决策,其包含所有处理的输入值。几个隐藏的神经层也用于处理和测量网络中的所有数据。在传统学校,通常通过减少学生人数或增加课堂教师人数来实现高学习表现。这种提出的方​​法将模仿或创建一个虚拟课程,教师将超过学生。可穿戴技术(WT),即“Google Glass”在此过程中使用,通过Wi-Fi传输实时视频流,可以由参与者的平板电脑,智能手机或个人计算机接收。这提出了“通过分享决定学习”模型可能对医学学生结果有效。

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