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Design Example: Measuring Distance Between Two Points with Obstructions01:10

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When measuring distances in areas with physical obstructions, such as a lake in a field, surveyors must employ techniques to calculate accurate lengths without direct line measurements. One effective method is the offset technique, which allows for precise distance estimation over inaccessible stretches.In this scenario, a surveyor must measure a side of an area that crosses a lake. Since the measuring tape cannot span the lake, the surveyor begins by establishing a baseline that aligns with...
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    Feature drift, caused by dynamic coupling, degrades underwater detector performance. A new Spatial Residual (SR) block with SkipCut optimizes feature stability and network performance, achieving state-of-the-art results.

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    Area of Science:

    • Computer Vision
    • Deep Learning
    • Image Processing

    Background:

    • Feature drift, arising from target features and degradation factors, diminishes underwater object detector performance.
    • Existing methods struggle with the dynamic instability of target features under boundary constraints.

    Purpose of the Study:

    • To redefine feature drift within the context of partial differential equations (PDEs).
    • To introduce a novel Spatial Residual (SR) block to mitigate feature drift and enhance detector performance.

    Main Methods:

    • Proposed the Spatial Residual (SR) block, utilizing SkipCut for network-wide constraints and optimization.
    • Implemented the SR block as a 5-layer backbone (BSR5) for complex feature extraction.
    • Integrated BSR5 into DETR and YOLO architectures for performance evaluation.

    Main Results:

    • BSR5-integrated DETRs and YOLOs achieved state-of-the-art results on the RUOD dataset.
    • BSR5-DETR demonstrated improved AP (1.3% and 2.7%) over RT-DETR with ResNet-101, while reducing parameters.
    • BSR5 showed strong convergence and robustness, particularly in training from scratch.

    Conclusions:

    • The proposed SR block effectively addresses feature drift in underwater object detection.
    • BSR5 offers a general-purpose backbone suitable for data-scarce, resource-constrained, and real-time applications.
    • The SkipCut mechanism optimizes information flow and gradient allocation, accelerating training and enhancing performance.