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Pain Assessment From Facial Expression: Neonatal Convolutional Neural Network (N-CNN)

机译:从面部表情进行疼痛评估:新生儿卷积神经网络(N-CNN)

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The current standard for assessing neonatal pain is discontinuous and suffers from inter-observer variations, which can result in delayed intervention and inconsistent treatment of pain. Therefore, it is critical to address the shortcomings of the current standard and develop continuous and less subjective pain assessment tools. Convolutional Neural Networks have gained much popularity in the last decades due to the wide range of its successful applications in medical image analysis, object recognition, and emotion recognition. In this paper, we propose a Neonatal Convolutional Neural Network, designed and trained end-to-end to detect neonatal pain. We evaluated the proposed network in two data sets of neonates and compared its performance to the performance of ResNet architecture in the same data sets. Our proposed method outperformed ResNet in recognizing neonates’ pain and achieved around 91.00% accuracy. While further research is needed, our preliminary results suggest that the presented network can be used for automatic pain assessment, and possibly similar applications. It also suggests that the automatic recognition of neonatal pain provides a viable and more efficient alternative to the current standard of pain assessment.
机译:当前评估新生儿疼痛的标准是不连续的,并且存在观察者之间的差异,这可能导致延迟的干预和疼痛的不一致治疗。因此,解决当前标准的缺陷并开发连续且主观性较差的疼痛评估工具至关重要。由于卷积神经网络在医学图像分析,对象识别和情感识别方面的成功应用广泛,因此在过去的几十年中,卷积神经网络获得了广泛的普及。在本文中,我们提出了一个新生儿卷积神经网络,它经过端到端设计和培训以检测新生儿疼痛。我们在两个新生儿数据集中评估了拟议的网络,并将其性能与相同数据集中的ResNet体系结构的性能进行了比较。我们提出的方法在识别新生儿的疼痛方面胜过ResNet,并达到了91.00%的准确率。尽管需要进一步的研究,但我们的初步结果表明,所提出的网络可用于自动疼痛评估,并且可能用于类似的应用。它还表明,新生儿疼痛的自动识别为当前的疼痛评估标准提供了一种可行且更有效的替代方法。

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