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Low-power Ship Detection in Satellite Images Using Neuromorphic Hardware

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arxiv 2406.11319 v1 pith:M6RRHDKQ submitted 2024-06-17 cs.CV

Low-power Ship Detection in Satellite Images Using Neuromorphic Hardware

classification cs.CV
keywords shipsdetectionimagesdatashipstagesystemconsumption
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Transmitting Earth observation image data from satellites to ground stations incurs significant costs in terms of power and bandwidth. For maritime ship detection, on-board data processing can identify ships and reduce the amount of data sent to the ground. However, most images captured on board contain only bodies of water or land, with the Airbus Ship Detection dataset showing only 22.1\% of images containing ships. We designed a low-power, two-stage system to optimize performance instead of relying on a single complex model. The first stage is a lightweight binary classifier that acts as a gating mechanism to detect the presence of ships. This stage runs on Brainchip's Akida 1.0, which leverages activation sparsity to minimize dynamic power consumption. The second stage employs a YOLOv5 object detection model to identify the location and size of ships. This approach achieves a mean Average Precision (mAP) of 76.9\%, which increases to 79.3\% when evaluated solely on images containing ships, by reducing false positives. Additionally, we calculated that evaluating the full validation set on a NVIDIA Jetson Nano device requires 111.4 kJ of energy. Our two-stage system reduces this energy consumption to 27.3 kJ, which is less than a fourth, demonstrating the efficiency of a heterogeneous computing system.

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Cited by 1 Pith paper

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  1. Efficient Onboard Spacecraft Pose Estimation with Event Cameras and Neuromorphic Hardware

    cs.RO 2026-04 unverdicted novelty 4.0

    Event-camera inputs processed by quantized MobileNet-style networks on Akida neuromorphic chips deliver real-time 6-DoF spacecraft pose estimates with low power draw.