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Automatic Height Measurement of Central Serous Chorioretinopathy Lesion Using a Deep Learning and Adaptive Gradient Threshold Based Cascading Strategy

Computers in Biology and Medicine(2024)SCI 3区SCI 2区

College of Mechanical & Electrical Engineering | The Affiliated Eye Hospital of Nanjing Medical University | College of Electronic and Information Engineering

Cited 0|Views25
Abstract
Accurately quantifying the height of central serous chorioretinopathy (CSCR) lesion is of great significance for assisting ophthalmologists in diagnosing CSCR and evaluating treatment efficacy. The manual measurement results dominated by single optical coherence tomography (OCT) B-scan image in clinical practice face the dilemma of weak reference, poor reproducibility, and experience dependence. In this context, this paper constructs two schemes: Scheme Ⅰ draws on the idea of ensemble learning, namely, integrating multiple models for locating starting key point in the height direction of lesion in the inference stage, which appropriately improves the performance of a single model. Scheme Ⅱ designs an adaptive gradient threshold (AGT) technique, followed by the construction of cascading strategy, which involves preliminary location of starting key point through deep learning, and then employs AGT for precise adjustment. This strategy not only achieves effective location for starting key point, but also significantly reduces the large appetite of deep learning model for training samples. Subsequently, AGT continues to play a crucial role in locating the terminal key point in the height direction of lesion, further demonstrating its feasibility and effectiveness. Quantitative and qualitative key point location experiments in the height direction of lesion on 1152 samples, as well as the final height measurement display, consistently conveys the superiority of the constructed schemes, especially the cascading strategy, expanding another potential tool for the comprehensive analysis of CSCR.
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Key words
Central serous chorioretinopathy,Optical coherence tomography,Integrated model,Adaptive gradient threshold,Cascading strategy
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要点】:本文提出了一种基于深度学习和自适应梯度阈值(AGT)的级联策略,用于自动测量中央浆液性脉络膜视网膜病变(CSCR)病变的高度,提高了测量的准确性和效率。

方法】:通过集成学习思想构建了两种方案:方案Ⅰ利用多个模型集成定位病变高度起始关键点,方案Ⅱ设计了AGT技术,并构建了级联策略,先通过深度学习初步定位起始关键点,再使用AGT进行精确调整。

实验】:在1152个样本上进行了定量和定性的关键点定位实验,实验结果表明所构建的方案,尤其是级联策略,在测量CSCR病变高度方面具有优越性。