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首页> 外文期刊>International journal of remote sensing >Interpreting image-based methods for estimating the signal-to-noise ratio
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Interpreting image-based methods for estimating the signal-to-noise ratio

机译:解释基于图像的估计信噪比的方法

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摘要

The signal-to-noise ratio (SNR) of remotely sensed imagery has been estimated directly using a variety of image-based methods such as the Homogeneous Area (HA) and Geostatistical (GS) methods. However, previous research has shown that such estimates may be dependent on land cover type. We examine this dependence on land cover type using Compact Airborne Spectrographic Imager (CASI) imagery of an agricultural region in Falmouth, Cornwall. The SNR was estimated using the GS method for six different land covers and a range of wavelengths. Large differences in the SNR existed between land cover types. It follows that single estimates of SNR (e.g. for one land cover) should not be associated with an image (as a whole). It is recommended that either (ⅰ) each statistic is reported per land cover type per wavelength or (ⅱ) that an image of local statistics is reported per wavelength. The regression of noise on signal can be used to separate independent noise (intercept) from signal-dependent noise (slope). Variation in the noise and SNR estimates can be used to (ⅰ) allow more accurate prediction of the SNR and (ⅱ) provide information on uncertainty.
机译:遥感图像的信噪比(SNR)已直接使用各种基于图像的方法(例如同质面积(HA)和地统计(GS)方法)进行了估算。但是,先前的研究表明,这种估算可能取决于土地覆盖类型。我们使用康沃尔郡法尔茅斯农业地区的小型机载光谱成像仪(CASI)图像来检查这种对土地覆盖类型的依赖性。使用GS方法针对六个不同的土地覆盖范围和一定波长范围估计SNR。土地覆盖类型之间存在很大的SNR差异。随之而来的是,SNR的单个估计值(例如,一个土地的覆盖率)不应与图像(整体上)相关联。建议要么(ⅰ)每个波长每种土地覆盖类型报告每个统计数据,要么(ⅱ)每个波长报告局部统计图像。信号噪声的回归可用于将独立噪声(截距)与信号相关噪声(斜率)分开。噪声和SNR估计的变化可用于(ⅰ)允许对SNR进行更准确的预测,以及(ⅱ)提供有关不确定性的信息。

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