2020
DOI: 10.14569/ijacsa.2020.0111289
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A Big Data Framework for Satellite Images Processing using Apache Hadoop and RasterFrames: A Case Study of Surface Water Extraction in Phu Tho, Viet Nam

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Cited by 3 publications
(1 citation statement)
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“…We store large-scale remote sensing image data in HDFS to achieve distributed storage and ensure data reliability and high fault tolerance in the data storage layer. In the data loading layer, we use the interfaces in RasterFrames [43] and PyHDFS to interact with HDFS to realize data reading and writing of conventional remote sensing image formats such as tif, png, and jpeg.…”
Section: B Distributed Inference Framework For Object Detection In La...mentioning
confidence: 99%
“…We store large-scale remote sensing image data in HDFS to achieve distributed storage and ensure data reliability and high fault tolerance in the data storage layer. In the data loading layer, we use the interfaces in RasterFrames [43] and PyHDFS to interact with HDFS to realize data reading and writing of conventional remote sensing image formats such as tif, png, and jpeg.…”
Section: B Distributed Inference Framework For Object Detection In La...mentioning
confidence: 99%