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Integration of Enhanced Background Filtering and Wavelet Fusion for High Visibility and Detection Rate of Deep Sea Underwater Image of Underwater Vehicle

机译:增强背景滤波和小波融合相结合,可实现水下航行器深海水下图像的高可见度和检测率

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摘要

This paper presents an enhanced technique for contrast and visibility improvement for deep sea underwater image which is normally used for underwater robot. The proposed technique uses an integration approach of enhanced background filtering and wavelet fusion methods (EBFWF). The novelty lies in this case in its methodology and capability of the proposed approach to minimize negative underwater effects such as blue and green color casts, low contrast, and low visibility in comparison with other state-of-the-art methods. The proposed method consists of a few steps that aims to eliminate negative effects and thus improving the contrast and visibility of underwater image. This purpose is carried out to provide a better platform for object detection and recognition processes. The input image is first sharpen before the low frequency background is removed. This minimizes the probability of image data to be regarded as noise in the consequences processes’ steps. Image histograms are then mapped based on the intermediate color channel to reduce the gap between the inferior and dominant color channels. Wavelet fusion is applied followed by adaptive local histogram specification process. Based on the conduced tests, the proposed EBFWF technique, computationally, more effective and significant in improving the overall underwater image quality. The resultant images processed through the proposed approach could be further used for detection and recognition to extract moreudvaluable information.
机译:本文提出了一种增强的技术,用于通常用于水下机器人的深海水下图像的对比度和可见度改进。所提出的技术使用增强背景滤波和小波融合方法(EBFWF)的集成方法。在这种情况下,新颖之处在于其方法和拟议方法的能力,与其他最新方法相比,该方法可最大程度地减少负面的水下影响,如蓝色和绿色的偏色,低对比度和低可见度。所提出的方法包括旨在消除负面影响并因此改善水下图像的对比度和可见性的几个步骤。执行此目的是为了为对象检测和识别过程提供更好的平台。在去除低频背景之前,首先对输入图像进行锐化。这样可以将后果处理步骤中图像数据被视为噪声的可能性降到最低。然后,根据中间颜色通道映射图像直方图,以减少下颜色通道和主要颜色通道之间的间隙。应用小波融合,然后进行自适应局部直方图指定过程。在进行的测试的基础上,提出的EBFWF技术在提高整体水下图像质量方面在计算上更有效,更有意义。通过提出的方法处理的结果图像可以进一步用于检测和识别,以提取更多可评估的信息。

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