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NASA NTRS · 20205000309

Cloud Optimized Data Formats

Abstract

Cloud computing offers the promise of being able to analyze Big Data earth Observations at scale, by allowing scientists to deploy many nodes at once to analyze the data. However, in order to take full advantage of cloud scalability, it is often necessary to reorganize and reformat the data to enable fine-grained, parallel access to the data in Web Object Storage. NASA recently conducted a study of several formats that are optimized for analysis in the cloud: Parquet, zarr, HDF (Hierarchical Data Format) in the Cloud, and Cloud-Optimized GeoTIFF (Tagged Image File Format). They were compared against non-cloud-optimized formats, netCDF (network Common Data Form) and GeoTIFF, with criteria based both on stewardship and analysis performance.

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BibTeXRIS

Christopher Lynnes, Patrick Michael Quinn, Chris Durbin, Dana Leigh Shum. Cloud Optimized Data Formats. https://ntrs.nasa.gov/citations/20205000309

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