Automatic contact detection in side-scan sonar data

R. Quintal, J. Kiernan, J. Shannon, P. Dysart
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引用次数: 7

Abstract

Side-scan sonar is a proven tool for detection of underwater objects, particularly those objects that project above the seafloor. Rapid assessment of side-scan imagery for object detection is critical for port security needs. However, current side-scan data processing techniques are largely manual, highly time-consuming, and prone to operator error. Availability of well-trained analysts is also a challenge. This article describes a research and development effort at Science Applications International Corporation to automate side-scan sonar contact detection for safety of navigation surveys. Included in the development effort are innovative image processing and machine learning techniques designed to reduce the number of false alarms. These automated techniques are directly applicable to port security operations.
侧扫声纳数据中的自动接触检测
侧扫声纳是一种经过验证的水下物体探测工具,特别是那些突出在海底上方的物体。快速评估用于目标检测的侧扫图像对港口安全需求至关重要。然而,目前的侧扫数据处理技术主要是手动的,非常耗时,并且容易出现操作错误。能否找到训练有素的分析师也是一个挑战。本文描述了科学应用国际公司的一项研究和开发工作,用于自动侧扫声纳接触检测,以确保导航调查的安全。开发工作包括创新的图像处理和机器学习技术,旨在减少误报的数量。这些自动化技术直接适用于港口保安操作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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