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February 5, 2026Scientific Reports0 citationsOpen Access

RT-GalaDet as a real-time model for screening surface-associated health abnormalities in fish

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XPXiaohong PengZXZhuohan XiaoYYYinghuai Yu

Key Points

  • The study aims to develop a real-time model for detecting surface health abnormalities in fish to improve disease management.
  • Proposed RT-GalaDet model based on the improved RT-DETR framework.
  • Incorporated State Space Modeling, Local Enhancement, and Lightweight Neck Compression.
  • Focus on achieving high accuracy with end-to-end real-time inference.
  • RT-GalaDet demonstrates effective real-time identification of health issues in fish.
  • Achieved significant precision and recall rates, providing reliable detection.
  • Tools enable aquaculture staff to receive timely alerts for health monitoring.

Abstract

Real-time screening of surface-associated health abnormalities in fish is crucial for controlling disease outbreaks in aquaculture and mitigating the economic losses caused by fish diseases. The active movement of fish schools and the generally fine-grained characteristics of fish body surface symptoms make it challenging for conventional methods to accurately monitor fish health without causing physical harm. In this paper, we propose RT-GalaDet, a real-time detection method for abnormal fish surface health features, based on an improved RT-DETR model. By incorporating a triple design of State Space Modeling, Local Enhancement, and Lightweight Neck Compression, the model achieves end-to-end real-time inference while maintaining high accuracy and is designed for computationally lightweight real-time processing. Experimental results show that RT-GalaDet achieves Precision, Recall, Formula: see text, Formula: see text and Formula: see text of Formula: see text, Formula: see text, Formula: see text, Formula: see text and 51.98, respectively. This work presents a fast, non-invasive real-time screening method for surface-associated health abnormalities in fish, providing aquaculture staff with reliable alerts and localized evidence to support further professional diagnosis and timely intervention.

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Cite This Study

Peng et al. (2026) studied this question.

synapsesocial.com/papers/6984345ff1d9ada3c1fb278bhttps://doi.org/10.1038/s41598-026-37288-2
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