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Fusing synergistic information from multi-sensor images: An overview from implementation to performance assessment

机译:来自多传感器图像的融合协同信息:从实现到性能评估的概述

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摘要

Image fusion is capable of processing multiple heterogeneous images acquired by single or multi-sensor imaging systems for an improved interpretation of the targeted object or scene. A diversity of applications have benefited from the fusion of multi-sensor images through a more reliable and comprehensive fused result. Likewise, numerous approaches to fuse multi-sensor images have been proposed and published in literature. However, due to a lack of benchmark resources and commonly accepted assessment measures, it is hard to identify the significance of new image fusion algorithms and implementations. This paper reviews and categorizes recent algorithms for image fusion and performance assessment based on reported comparative results. We recommend using non-parametric statistical tests to verify the performance of the pixel-level fusion algorithms. Furthermore, a comprehensive evaluation of 40 fusion algorithms from recently published results is conducted to demonstrate the significance of these algorithms in terms of statistical analyses within their respective applications. Although the results of these performance tests are limited by available data sets, baseline algorithms, and selected assessment metrics; it is a critical step for comparative image fusion research. This paper aims to advance image fusion development by creating a complete inventory of state-of-the-art image fusion techniques and advocating statistical comparison tests to avoid unnecessary duplication of development efforts. Establishing a benchmark study for image fusion is critical for performance comparisons of contemporary methods.
机译:图像融合能够处理由单个或多传感器成像系统获取的多个异构图像,以改善对目标对象或场景的改进的解释。多样性的应用程序通过更可靠和全面的融合结果来源于多传感器图像的融合。同样,已经提出了许多用于熔断多传感器图像的方法并在文献中公布。然而,由于缺乏基准资源和常见的评估措施,很难确定新的图像融合算法和实现的重要性。本文根据报告的比较结果,本文评价最近的图像融合和性能评估算法。我们建议使用非参数统计测试来验证像素级融合算法的性能。此外,对最近公布的结果进行了40个融合算法的综合评估,以证明这些算法在其各自应用中的统计分析方面的重要性。虽然这些性能测试的结果受到可用数据集,基线算法和所选评估度量的限制;这是对比较图像融合研究的关键步骤。本文旨在通过创建完整的最先进的图像融合技术和倡导统计比较测试来推进图像融合开发,以避免不必要的开发工作重复。为图像融合建立基准研究对于当代方法的性能比较至关重要。

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