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Haptics-Enabled Surgical Training System with Guidance Using Deep Learning

机译:支持触觉的外科手术培训系统,使用深​​度学习指导

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In this paper, we present a haptics-enabled surgical training system integrated with deep learning for characterization of particular procedures of experienced surgeons to guide medical residents-in-training with quantifiable patterns. The prototype of virtual reality surgical system is built for open-heart surgery with specific steps and biopsy operation. Two abstract surgical scenarios are designed to emulate incision and biopsy surgical procedures. Using deep learning algorithm (autoencoder), the two surgical procedures were trained and characterized. Results show that a vector with 30 real-valued components can quantify both surgical patterns. These values can be used to compare how a resident- in-training performs differently as opposed to an experienced surgeon so that quantifiable corrective training guidance can be provided.
机译:在本文中,我们提供了一种触觉的外科培训系统,其集成了深入的学习,以表征有经验的外科医生的特定程序,以指导医疗居民与量化模式的培训。虚拟现实外科系统的原型是为具有具体步骤和活组织检查操作的开放式手术构建。两种抽象外科场景旨在模拟切口和活检外科手术。使用深度学习算法(AutoEncoder),培训并表征了两种外科手术。结果表明,具有30个实值组件的向量可以量化手术模式。这些值可用于比较居民培训如何与经验丰富的外科医生不同,以便可以提供可量化的纠正培训指导。

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