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Merge pull request #1257 from mohi9282/release_201_updates
Added new samples to items_metadata
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items_metadata.yaml

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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Site Suitability", "Raster Analysis"]
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# - title: Lunar Craters Detection using Deep Learning
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# url: https://www.arcgis.com/home/item.html?id=a1406e406ec746f4b33fcf0aba55e980
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# path: ./samples/04_gis_analysts_data_scientists/lunar_craters_detection_from_dem_using_deep_learning.ipynb
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# thumbnail: ./static/thumbnails/default.png
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# snippet: This notebook will demonstrate how the ArcGIS API for Python can be used to train a deep learning crater detection model using a Digital Elevation Model (DEM), which can then be deployed in ArcGIS Pro or ArcGIS Enterprise.
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# description: This notebook will demonstrate how the ArcGIS API for Python can be used to train a deep learning crater detection model using a Digital Elevation Model (DEM), which can then be deployed in ArcGIS Pro or ArcGIS Enterprise.
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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Raster Analysis"]
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# - title: Training a wind turbine detection model using large volumes of training data
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# url: https://www.arcgis.com/home/item.html?id=d127b9f7cfb54283bec551d9e9911b33
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# path: ./samples/04_gis_analysts_data_scientists/training_a_wind_turbine_detection_model_using_large_volume_of_training_data.ipynb
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# thumbnail: ./static/thumbnails/default.png
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# snippet: This notebook trains a wind turbine detection model using large volumes of training data.
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# description: This notebook trains a wind turbine detection model using large volumes of training data.
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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Raster Analysis"]
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# - title: Landsat 8 to Sentinel-2 using Pix2Pix
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# url: https://www.arcgis.com/home/item.html?id=3576325e2d4c4dbfa56a4217882134f9
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# path: ./samples/04_gis_analysts_data_scientists/landsat8_to_sentinel2_pix2pix.ipynb
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# thumbnail: ./static/thumbnails/default.png
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# snippet: In this notebook, we use the Pix2Pix model to convert 30 meter resolution Landsat 8 imagery to 10 meter resolution Sentinel-2 imagery.
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# description: In this notebook, we use the Pix2Pix model to convert 30 meter resolution Landsat 8 imagery to 10 meter resolution Sentinel-2 imagery.
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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Raster Analysis"]
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# - title: Image scene classification using FeatureClassifier
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# url: https://www.arcgis.com/home/item.html?id=6ea5821a4a864b3990bb13ea1c77887f
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# path: ./samples/04_gis_analysts_data_scientists/image_scene_classification_using_feature_classifier.ipynb
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# thumbnail: ./static/thumbnails/default.png
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# snippet: In this notebook, we will train an object classification model on image data from an external source and use that model for inferencing in ArcGIS Pro.
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# description: In this notebook, we will train an object classification model on image data from an external source and use that model for inferencing in ArcGIS Pro.
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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Raster Analysis"]
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# - title: Covid case forecasting Using TimeSeriesModel from arcgis.learn
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# url: https://www.arcgis.com/home/item.html?id=b0748b483e104389b6ac51dbacb48e8a
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# path: ./samples/04_gis_analysts_data_scientists/covid_case_forecasting_for_alabama_state_using_timeseriesmodel_from_arcgis_learn.ipynb
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# thumbnail: ./static/thumbnails/default.png
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# snippet: This notebook uses the deep learning TimeSeriesModel from arcgis.learn to analyze confirmed cases for all counties in Alabama.
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# description: This notebook uses the deep learning TimeSeriesModel from arcgis.learn to analyze confirmed cases for all counties in Alabama.
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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Raster Analysis"]
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# - title: Image Captioning Using Deep Learning
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# url: https://www.arcgis.com/home/item.html?id=e43047eb5ae7407ab651a1324e1ba529
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# path: ./samples/04_gis_analysts_data_scientists/image_captioning_using_deep_learning.ipynb
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# thumbnail: ./static/thumbnails/default.png
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# snippet: This sample shows how ArcGIS API for Python can be used to train ImageCaptioner model using Remote Sensing Image Captioning Dataset.
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# description: This sample shows how ArcGIS API for Python can be used to train ImageCaptioner model using Remote Sensing Image Captioning Dataset.
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# licenseInfo: ""
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# runtime: advanced
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# tags: ["Data Science", "GIS", "Raster Analysis"]
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guides: []
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labs:

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