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ZENODO
Dataset . 2023
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Monthly aggregated Water Vapor MODIS MCD19A2 (1 km): Monthly time-series (2015-2017)

Authors: Leandro Parente; Rolf Simoes; Tomislav Hengl;

Monthly aggregated Water Vapor MODIS MCD19A2 (1 km): Monthly time-series (2015-2017)

Abstract

This data is part of the Monthly aggregated Water Vapor MODIS MCD19A2 (1 km) dataset. Check the related identifiers section on the Zenodo side panel to access other parts of the dataset.General DescriptionThe monthly aggregated water vapor dataset is derived from MCD19A2 v061. The Water Vapor data measures the column above ground retrieved from MODIS near-IR bands at 0.94μm. The dataset time spans from 2000 to 2022 and provides data that covers the entire globe. The dataset can be used in many applications like water cycle modeling, vegetation mapping, and soil mapping. This dataset includes:Monthly time-series:Derived from MCD19A2 v061, this data provides a monthly aggregated mean and standard deviation of daily water vapor time-series data from 2000 to 2022. Only positive non-cloudy pixels were considered valid observations to derive the mean and the standard deviation. The remaining no-data values were filled using the TMWM algorithm. This dataset also includes smoothed mean and standard deviation values using the Whittaker method. The quality assessment layers and the number of valid observations for each month can provide an indication of the reliability of the monthly mean and standard deviation values.Yearly time-series:Derived from monthly time-series, this data provides a yearly time-series aggregated statistics of the monthly time-series data.Long-term data (2000-2022):Derived from monthly time-series, this data provides long-term aggregated statistics for the whole series of monthly observations.Data DetailsTime period: 2015–2017Type of data: Water vapor column above the ground (0.001cm)How the data was collected or derived: Derived from MCD19A2 v061 using Google Earth Engine. Cloudy pixels were removed and only positive values of water vapor were considered to compute the statistics. The time-series gap-filling and time-series smoothing were computed using the Scikit-map Python package.Statistical methods used: Four statistics were derived: mean, standard deviation, smoothed mean, smoothed standard deviation.Limitations or exclusions in the data: The dataset does not include data for Antarctica.Coordinate reference system: EPSG:4326Bounding box (Xmin, Ymin, Xmax, Ymax): (-180.00000, -62.00081, 179.99994, 87.37000)Spatial resolution: 1/120 d.d. = 0.008333333 (1km)Image size: 43,200 x 17,924File format: Cloud Optimized Geotiff (COG) format.SupportIf you discover a bug, artifact, or inconsistency, or if you have a question please use some of the following channels:Technical issues and questions about the code: GitLab IssuesGeneral questions and comments: LandGIS ForumName conventionTo ensure consistency and ease of use across and within the projects, we follow the standard Open-Earth-Monitor file-naming convention. The convention works with 10 fields that describes important properties of the data. In this way users can search files, prepare data analysis etc, without needing to open files. The fields are:generic variable name: wv = Water vaporvariable procedure combination: mcd19a2v061.seasconv = MCD19A2 v061 with gap-filling algorithmPosition in the probability distribution / variable type: m = mean | sd = standard deviation | n = number of observations | qa = quality assessmentSpatial support: 1kmDepth reference: s = surfaceTime reference begin time: 20150101 = 2015-01-01Time reference end time: 20171231 = 2017-12-31Bounding box: go = global (without Antarctica)EPSG code: epsg.4326 = EPSG:4326Version code: v20230619 = 2023-06-19 (creation date)

Keywords

Water Vapor, MODIS, OEMC, global

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This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
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