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首页> 外文期刊>JMLR: Workshop and Conference Proceedings >Simultaneous Measurement Imputation and Outcome Prediction for Achilles Tendon Rupture Rehabilitation
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Simultaneous Measurement Imputation and Outcome Prediction for Achilles Tendon Rupture Rehabilitation

机译:同时测量避难和成果预测腱腱破裂康复

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Achilles Tendon Rupture (ATR) is one of the typical soft tissue injuries. Rehabilitation after such a musculoskeletal injury remains a prolonged process with a very variable outcome. Accurately predicting rehabilitation outcome is crucial for treatment decision support. However, it is challenging to train an automatic method for predicting the ATR rehabilitation outcome from treatment data, due to a massive amount of missing entries in the data recorded from ATR patients, as well as complex nonlinear relations between measurements and outcomes. In this work, we design an end-to-end probabilistic framework to impute missing data entries and predict rehabilitation outcomes simultaneously. We evaluate our model on a real-life ATR clinical cohort, comparing with various baselines. The proposed method demonstrates its clear superiority over traditional methods which typically perform imputation and prediction in two separate stages.
机译:Achilles肌腱破裂(ATR)是典型的软组织损伤之一。这种肌肉骨骼损伤后的康复仍然是具有非常可变的结果的延长过程。准确预测康复结果对于治疗决策支持至关重要。然而,由于从ATR患者记录的数据中的大量缺失条目以及测量和结果之间的复杂非线性关系,训练从治疗数据预测从治疗数据的自动恢复结果进行预测到治疗数据的自动化方法有挑战性。在这项工作中,我们设计了一个端到端的概率框架,以赋予丢失的数据条目并同时预测康复结果。我们在现实生活中评估我们的模型,与各种基线相比。所提出的方法证明了其在通常在两个单独阶段中进行估算和预测的传统方法的清晰优势。

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