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Can Automatic Facial Expression Analysis Be Used for Treatment Outcome Estimation in Schizophrenia?

机译:自动面部表情分析可用于精神分裂症的治疗结果评估吗?

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Negative symptoms of schizophrenia include expressive deficits that are marked by a reduction in patients' behaviour. Analysing automatically non-verbal behaviour and exploiting the results for estimating symptom severity has drawn attention recently. However, those approaches are not accurate enough to be used for monitoring the changes in patient's symptom level during treatment interventions (i.e. the treatment outcome). In this paper, we propose a method that directly addresses the problem of Treatment Outcome Estimation (TOE) in schizophrenia - more specifically, is aimed at determining whether specific symptoms have improved or not by analysing jointly two videos of the same patient, one before and one after the treatment. The proposed architecture builds on Recurrent Neural Networks (RNNs) that learn differences in the patient behaviour before and after treatment. We validate the method in videotaped interviews for symptom assessment for 74 patients. Experimental results show that the proposed architecture achieves promising results for TOE in two different symptom assessment scales.
机译:精神分裂症的阴性症状包括以患者行为减少为特征的表达缺陷。自动分析非语言行为并利用结果来估计症状严重程度最近引起了人们的注意。但是,这些方法不够精确,不足以用于监测治疗干预期间患者症状水平的变化(即治疗结果)。在本文中,我们提出了一种直接解决精神分裂症患者的治疗结果估计(TOE)问题的方法-更具体地说,旨在通过共同分析同一位患者的两个视频(一个在之前和之后)共同确定特定症状是否有所改善。一经治疗。所提出的体系结构建立在递归神经网络(RNN)的基础上,该神经网络了解治疗前后患者行为的差异。我们在录像采访中验证了该方法对74例患者的症状评估。实验结果表明,所提出的体系结构在两种不同的症状评估量表中均能达到TOE的预期效果。

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