Super-efficient Echocardiography Video Segmentation via Proxy- and Kernel-Based Semi-supervised Learning
Huisi Wu, Jingyin Lin, Wende Xie, Jing Qin
摘要
Automatic segmentation of left ventricular endocardium in echocardiography videos is critical for assessing various cardiac functions and improving the diagnosis of cardiac diseases. It is yet a challenging task due to heavy speckle noise, significant shape variability of cardiac structure, and limited labeled data. Particularly, the real-time demand in clinical practice makes this task even harder. In this paper, we propose a novel proxy- and kernel-based semi-supervised segmentation network (PKEcho-Net) to comprehensively address these challenges. We first propose a multi-scale region proxy (MRP) mechanism to model the region-wise contexts, in which a learnable region proxy with an arbitrary shape is developed in each layer of the encoder, allowing the network to identify homogeneous semantics and hence alleviate the influence of speckle noise on segmentation. To sufficiently and efficiently exploit temporal consistency, different from traditional methods which only utilize the temporal contexts of two neighboring frames via feature warping or self-attention mechanism, we formulate the semi-supervised segmentation with a group of learnable kernels, which can naturally and uniformly encode the appearances of left ventricular endocardium, as well as extracting the inter-frame contexts across the whole video to resist the fast shape variability of cardiac structures. Extensive experiments have been conducted on two famous public echocardiography video datasets, EchoNet-Dynamic and CAMUS. Our model achieves the best performance-efficiency trade-off when compared with other state-of-the-art approaches, attaining comparative accuracy with a much faster speed. The code is available at https://github.com/JingyinLin/PKEcho-Net.
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引用它的顶会 Paper5
- GDKVM: Echocardiography Video Segmentation via Spatiotemporal Key-Value Memory with Gated Delta RuleRui Wang, Yimu Sun, Jingxing Guo, Huisi Wu 等ICCV 2025 · 被引用 1 次
- MemSAM: Taming Segment Anything Model for Echocardiography Video SegmentationXiaolong Deng, Huisi Wu, Runhao Zeng, Jing QinCVPR 2024
- Semi-supervised Echocardiography Video Segmentation via Anchor Semantic Awareness and Continuous Pseudo-label ReforgingYunpeng Fang, Yimu Sun, Jingxing Guo, Huisi Wu 等CVPR 2026
- E³SAM2: Entropy-Aware and Edge-Guided Adaptation of SAM2 for Echocardiography Video SegmentationLong Zheng, Zhi Li, Weidong Wang, Zhenyu Dai 等AAAI 2026
- Q-PART: Quasi-Periodic Adaptive Regression with Test-time Training for Pediatric Left Ventricular Ejection Fraction RegressionJie Liu, Tiexin Qin, Hui Liu, Yilei Shi 等CVPR 2025
它引用的顶会 Paper8
- K-Net: Towards Unified Image SegmentationWenwei Zhang, Jiangmiao Pang, Kai Chen, Chen Change LoyNeurIPS 2021 · 被引用 500 次
- Instances as QueriesYuxin Fang, Shusheng Yang, Xinggang Wang, Yu Li 等ICCV 2021 · 被引用 331 次
- Dynamic Multi-Scale Filters for Semantic SegmentationJunjun He, Zhongying Deng, Yu QiaoICCV 2019 · 被引用 287 次
- Revisiting Dynamic Convolution via Matrix DecompositionYunsheng Li, Yinpeng Chen, Xiyang Dai, Mengchen Liu 等ICLR 2021 · 被引用 82 次
- Deformable Kernels: Adapting Effective Receptive Fields for Object DeformationHang Gao, Xizhou Zhu, Stephen Lin, Jifeng DaiICLR 2020 · 被引用 72 次
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