arXiv:2508.17631cs.LGcs.AI2025-08被引 1

用可控视频生成技术提升心超射血分数估算精度

ControlEchoSynth: Boosting Ejection Fraction Estimation Models via Controlled Video Diffusion

  • 基于真实心超图像生成可控的合成心超视频,聚焦射血分数估算
  • 合成数据增强后模型在射血分数估计上表现更优
  • 适合医学影像、生成模型与临床辅助诊断研究者

合成数据生成在机器学习中具有重要意义,尤其在数据获取困难的领域如超声心动图(echo)中。在床旁超声(POCUS)场景下,心功能评估所需的心超图像采集与标注受限于操作者经验差异及可用视图数量。本研究提出一种新方法,通过条件生成模型基于已有真实心超图像生成特定视角的合成心超视频,专注于射血分数(EF)的估算。该方法显著提升了EF估算的准确性,并与传统方法进行了对比分析。初步结果显示,使用合成数据增强训练集后,不仅提高了射血分数估算效果,还展现出推动更鲁棒、精准且具临床意义的机器学习模型发展的潜力。该方法有望推动合成数据在医学影像诊断中的进一步应用。

原文摘要 · Abstract (English)

Synthetic data generation represents a significant advancement in boosting the performance of machine learning (ML) models, particularly in fields where data acquisition is challenging, such as echocardiography. The acquisition and labeling of echocardiograms (echo) for heart assessment, crucial in point-of-care ultrasound (POCUS) settings, often encounter limitations due to the restricted number of echo views available, typically captured by operators with varying levels of experience. This study proposes a novel approach for enhancing clinical diagnosis accuracy by synthetically generating echo views. These views are conditioned on existing, real views of the heart, focusing specifically on the estimation of ejection fraction (EF), a critical parameter traditionally measured from biplane apical views. By integrating a conditional generative model, we demonstrate an improvement in EF estimation accuracy, providing a comparative analysis with traditional methods. Preliminary results indicate that our synthetic echoes, when used to augment existing datasets, not only enhance EF estimation but also show potential in advancing the development of more robust, accurate, and clinically relevant ML models. This approach is anticipated to catalyze further research in synthetic data applications, paving the way for innovative solutions in medical imaging diagnostics.

心超生成扩散模型医疗影像

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