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GithubIn marine ecological conservation and scientific research monitoring, the real-time identification of various underwater organisms (such as starfish, sea urchins, corals, etc.) is crucial for studying biodiversity and changes in water quality environments.
傳統人手潛水觀察受環境因素限制,效率低且準確度不足。
為此,該海洋生態監測企業引入了SingTown的OpenMV智能相機識別技術,利用AI機器視覺及圖像識別算法,實現水下多目標自動識別與分類。
This system can be applied in scenarios such as marine life census, habitat monitoring, and ecological anomaly detection, significantly enhancing the efficiency and accuracy of marine ecological data acquisition.

Marine Ecological Monitoring Enterprise utilises SingTown Technology's OpenMV intelligent camera recognition technology to achieve automatic identification and classification labelling of various marine organisms.
The system deploys visual monitoring modules underwater, utilising high-definition cameras to capture real-time seabed images and identify various aquatic organisms such as starfish, sea urchins, and shellfish.
The system utilises a deep convolutional neural network (CNN) algorithm, trained on thousands of labelled samples, enabling it to distinguish objects based on their morphology, colour, and edge texture. Even in complex scenarios such as underwater lighting variations, bubble disturbances, or minor drifts, the system maintains stable recognition performance.
During operation, the camera utilises target detection, feature matching, and region classification algorithms to automatically generate coloured rectangular boxes for each target in the frame, annotating them with category names and confidence levels (e.g., starfish 0.83, echinus 0.88).
The detection results are computed in real-time by the edge AI chip of the OpenMV smart camera, which can independently perform recognition, annotation, and data encapsulation underwater. The results are then output to the ground monitoring terminal via serial port or wireless network for ecological statistics or pollution analysis.
This solution achieves automatic detection, classification, counting, and visual annotation of multiple biological targets, providing an efficient, reliable, and locally deployable machine vision solution for marine ecological protection, scientific research surveys, and underwater environmental assessment.
透過SingTown科技嘅OpenMV智能相機識別技術,海洋生態監測企業實現咗由人手觀察到AI視覺識別同數據驅動分析嘅智能化升級。

AI Sentinel Based on OpenMV: Automatic Alert for Unattended Key Locations
Automatically detects whether the door of a key location remains open for an extended period and issues a timely alert.

Personnel crossing boundary triggers an alarm; OpenMV interprets the “sense of security boundary”
Detecting personnel or equipment crossing virtual perimeter lines.

“AI Urban Management Officer” is Here: An Automated Street Vending Detection System Built on OpenMV
Automatically identifies illegal street vending activities to support daily urban governance.

Improper placement of gas cylinders? Use OpenMV to automatically trigger hazard alerts
Automatically identifies non-compliant placement positions of gas cylinders to proactively detect potential gas safety hazards.

Did you perform live-line work without wearing insulating gloves? OpenMV will immediately issue an alert!
Automatically identifies whether workers are wearing insulating gloves to assist in safe operations.

Utilising the OpenMV smart camera to identify surface defects on aluminium plates in real time
Online identification of defects on aluminium plate surfaces, such as scratches and dents, to support quality control.