The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data

Laser return intensity (LRI) information obtained from airborne laser scanning (ALS) data has been used to classify land cover types and to reveal canopy physiological features. However, the sensor-related and environmental parameters may introduce noise. In this study, we developed a local median f...

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Main Authors: Bingxiao Wu, Guang Zheng, Weimin Ju
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Remote Sensing
Subjects:
Online Access:https://www.mdpi.com/2072-4292/12/10/1681
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spelling doaj-6e330bcdc65a4169b04f1554ba51763a2020-11-25T02:57:39ZengMDPI AGRemote Sensing2072-42922020-05-01121681168110.3390/rs12101681The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning DataBingxiao Wu0Guang Zheng1Weimin Ju2International Institute for Earth System Science, Nanjing University, Nanjing 210023, ChinaInternational Institute for Earth System Science, Nanjing University, Nanjing 210023, ChinaInternational Institute for Earth System Science, Nanjing University, Nanjing 210023, ChinaLaser return intensity (LRI) information obtained from airborne laser scanning (ALS) data has been used to classify land cover types and to reveal canopy physiological features. However, the sensor-related and environmental parameters may introduce noise. In this study, we developed a local median filtering (LMF) method to point-by-point correct the LRI information. For each point, we deduced the reference variation range for its LRI. Then, we replaced the outliers of LRI with their local median values. To evaluate the LMF method, we assessed the discrepancy of LRI information from the same and diverse land cover types. Moreover, we used the corrected LRI to distinguish points from grass, road, and bare land, which were classified as ground type in ALS data. The results show that using the LMF method could increase the similarity of pointwise LRI from the same land cover type and the discrepancy of those from different kinds of targets. Using the LMF-corrected LRI could improve the overall classification accuracy of three land cover types by about 3% (all over 81%, <i>κ</i> ≥ 0.73, <i>p</i> < 0.05), compared to those using the original and range-normalized LRI. The sensor-related metrics brought more noise to the original LRI information than the environmental factors. Using the LMF method could effectively correct LRI information from historical ALS datasets.https://www.mdpi.com/2072-4292/12/10/1681intensity correctionlaser radiation effectairborne laser scanningradar equation
collection DOAJ
language English
format Article
sources DOAJ
author Bingxiao Wu
Guang Zheng
Weimin Ju
spellingShingle Bingxiao Wu
Guang Zheng
Weimin Ju
The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data
Remote Sensing
intensity correction
laser radiation effect
airborne laser scanning
radar equation
author_facet Bingxiao Wu
Guang Zheng
Weimin Ju
author_sort Bingxiao Wu
title The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data
title_short The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data
title_full The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data
title_fullStr The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data
title_full_unstemmed The Local Median Filtering Method for Correcting the Laser Return Intensity Information from Discrete Airborne Laser Scanning Data
title_sort local median filtering method for correcting the laser return intensity information from discrete airborne laser scanning data
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2020-05-01
description Laser return intensity (LRI) information obtained from airborne laser scanning (ALS) data has been used to classify land cover types and to reveal canopy physiological features. However, the sensor-related and environmental parameters may introduce noise. In this study, we developed a local median filtering (LMF) method to point-by-point correct the LRI information. For each point, we deduced the reference variation range for its LRI. Then, we replaced the outliers of LRI with their local median values. To evaluate the LMF method, we assessed the discrepancy of LRI information from the same and diverse land cover types. Moreover, we used the corrected LRI to distinguish points from grass, road, and bare land, which were classified as ground type in ALS data. The results show that using the LMF method could increase the similarity of pointwise LRI from the same land cover type and the discrepancy of those from different kinds of targets. Using the LMF-corrected LRI could improve the overall classification accuracy of three land cover types by about 3% (all over 81%, <i>κ</i> ≥ 0.73, <i>p</i> < 0.05), compared to those using the original and range-normalized LRI. The sensor-related metrics brought more noise to the original LRI information than the environmental factors. Using the LMF method could effectively correct LRI information from historical ALS datasets.
topic intensity correction
laser radiation effect
airborne laser scanning
radar equation
url https://www.mdpi.com/2072-4292/12/10/1681
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