首页> 外文会议>Asian conference on remote sensingACRS >EVALUATION OF MEDIAN FILTERING IMPACT ON SATELLITE-BASED SUBMERGED SEAGRASS MAPPING ACCURACY IN TROPICAL COASTAL WATER
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EVALUATION OF MEDIAN FILTERING IMPACT ON SATELLITE-BASED SUBMERGED SEAGRASS MAPPING ACCURACY IN TROPICAL COASTAL WATER

机译:评价热带沿海水中卫星淹没海草测绘精度的中位滤波影响

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Numerous undesired information called as 'noise' present on digital image often reduces the reliability of desiring output obtained after processing stage. This paper highlights the evaluation on the impact of median filtering process after implementation of water column correction model known as bottom-reflectance-index (BRI) on fine spatial resolution digital satellite image namely Worldview-2 (WV-2) on short visible bands for submerge seagrass detection and mapping. The evaluation of median filter as a non-linear digital filtering technique was carried out in the type-Ⅱ coastal water with moderate water clarity in Merambong shoal; the most extensive seagrass beds in Malaysia. Using different window size such as 3×3, 5×5 and 7×7, the variability of the impact on seagrass detection on satellite image will be analyzed according to the changes from unfiltered BRI value of the whole scene to filtered pixel on digital images. This filtering scheme and the different size of kernel for filtering process are found significantly sensitive to subtle changes among bottom substrates. The filtering process by median scheme discovered its capability to maximize signal-to-noise (SNR) ratio and minimize variation of coefficient (VC) before digital image classification was carried out for seagrass mapping. Results of this study indicated seagrass map generated using BRI of WV-2 visible bands reported good agreement with in-situ verifications after filtering process, with an overall accuracy of >80%, 0.7263 of Kappa statistic, 72.11%,93.81% producer's and users accuracy, respectively. In addition, the improvement extent after the implementation of median filtering process to the submerged seagrass detection was also being examined. Such analysis is vital in reporting constraints of water turbidity for submerge seagrass in tropical coastal water; thereby allow improvisation of the BRI in turbid waters for submerge seagrass mapping.
机译:许多不期望的信息称为数字图像上存在的“噪声”通常会降低处理阶段之后获得的所获得的所需的可靠性。本文突出了在微空间分辨率数字卫星图像上称为底部反射率(BRI)的水柱校正模型实施后中值过滤过程的影响的评价,即在短的可见带上的WorldView-2(WV-2)淹没海草检测和映射。在Merambong Shoal中的Ⅱ型沿海水中进行了对非线性数字滤波技术的评估,在Ⅱ型沿海水中进行了中度水清晰;马来西亚最广泛的海草床。使用不同的窗口尺寸,如3×3,5×5和7×7,将根据整个场景未过滤的BRI值的变化对卫星图像对卫星图像的影响的变化进行分析,以在数字图像上过滤像素。这种过滤方案和用于过滤过程的不同大小的内核对于底部基板之间的微妙变化显着敏感。通过中值方案的过滤过程发现其能力最大化信号 - 噪声(SNR)比率,并在为海草映射进行数字图像分类之前最小化系数(VC)的变化。该研究的结果表明,使用WV-2可见乐队的BRI产生的海草图报告了过滤过程后的原位验证的良好协议,总精度> 80%,Kappa统计数据,72.11%,93.81%的生产者和用户准确性分别。此外,还研究了在将中位过滤过程实施到浸没式海草检测后的改善程度。这种分析对于报告热带沿海水中淹没海草的水浊度的限制至关重要;因此,允许改进浑浊水中的Bri,用于浸没海草映射。

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