{"id":1184692,"date":"2021-04-06T17:47:05","date_gmt":"2021-04-07T00:47:05","guid":{"rendered":"https:\/\/www.esri.com\/arcgis-blog\/?post_type=blog&#038;p=1184692"},"modified":"2024-03-14T16:16:43","modified_gmt":"2024-03-14T23:16:43","slug":"spatial-data-science-at-the-2021-esri-developer-summit","status":"publish","type":"blog","link":"https:\/\/www.esri.com\/arcgis-blog\/products\/arcgis-pro\/analytics\/spatial-data-science-at-the-2021-esri-developer-summit","title":{"rendered":"Spatial Data Science at the 2021 Esri Developer Summit"},"author":55021,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"open","ping_status":"closed","template":"","format":"standard","meta":{"_acf_changed":false,"_searchwp_excluded":""},"categories":[23341],"tags":[31611,25571,759592,25581,759602],"industry":[],"product":[36561],"class_list":["post-1184692","blog","type-blog","status-publish","format-standard","hentry","category-analytics","tag-r-arcgis-bridge","tag-space-time-pattern-mining","tag-spatial-data-science","tag-spatial-statistics","tag-time-series-analysis","product-arcgis-pro"],"acf":{"short_description":"Join us at the 2021 Esri Developer Summit to discover and dive deep into latest development of Spatial Statistics and Space Time Pattern Mining.","flexible_content":[{"acf_fc_layout":"content","content":"<p><a href=\"https:\/\/www.esri.com\/en-us\/about\/events\/devsummit\/overview\">Esri Developer Summit<\/a> (DevSummit) 2021 virtual conference is here! The conference brings the ArcGIS developer community together to gain a deeper understanding of how to build cutting-edge GIS apps using advanced mapping technology. Attend the Plenary sessions to get inspired by powerful stories about how GIS is making a difference in applications that successful developers are building or choose from a vast offering of live workshops and on-demand technical sessions, Q&amp;A in the Ask Our Experts area, and more.<\/p>\n<p>This blog post provides a one-stop location for some of the Spatial Analysis and Data Science technical sessions being offered during the conference. The live sessions give you the opportunity to directly ask questions from the experts. There are various on-demand sessions that you can watch at your own pace. The following links to the sessions have been updated with YouTube links that are <strong>available for everyone<\/strong>!<\/p>\n<h2>Plenary sessions<\/h2>\n<p><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">In these four demos, see how ArcGIS <\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">integrate<\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">s<\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">\u00a0with external system<\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">s to bring <a href=\"https:\/\/www.esri.com\/en-us\/capabilities\/spatial-analytics-data-science\/analytics\">spatial data science<\/a> to life<\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">\u00a0with open and powerful experience<\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">s<\/span><\/span><span class=\"TextRun Highlight SCXW246827024 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW246827024 BCX0\">\u00a0for data scientists.<\/span><\/span><span class=\"EOP SCXW246827024 BCX0\" data-ccp-props=\"{\">\u00a0<\/span><\/p>\n<h3 class=\"title style-scope ytd-video-primary-info-renderer\"><a href=\"https:\/\/youtu.be\/Ht81zu6CQMs\">Overview of Spatial Data Science in ArcGIS and introduction to Data Engineering<\/a><\/h3>\n<p>Lauren Bennett, Group Product Engineering Lead, Spatial Analysis, and Data Science, discusses how data engineering can be the most difficult and time-consuming part of data analysis, and how new tools in ArcGIS Pro 2.8 will make these processes easier, to construct, format, clean, and integrate your data before it can be analyzed.<\/p>\n<p>Lakeisha Coleman, Solution Engineer, describes ArcGIS Pro&#8217;s new <a href=\"https:\/\/www.esri.com\/en-us\/arcgis\/products\/spatial-analytics-data-science\/capabilities\/data-engineering\">Data Engineering tools<\/a> to explore food insecurity trends. Check out <a href=\"https:\/\/www.esri.com\/arcgis-blog\/products\/arcgis-pro\/analytics\/data-engineering-in-arcgis-pro\/\">this blog post<\/a> for more details.<\/p>\n<h3 class=\"title style-scope ytd-video-primary-info-renderer\"><a href=\"https:\/\/youtu.be\/tkSdayK5zbQ\">Advancements in Spatial Analytics, Time-Series Forecasting<\/a><\/h3>\n<p>Jie Liu, Product Engineer on the Spatial Statistics team, demonstrates a workflow of integrating <a href=\"https:\/\/pro.arcgis.com\/en\/pro-app\/latest\/tool-reference\/spatial-statistics\/localbivariaterelationships.htm\">Local Bivariate Relationships<\/a> tool and <a href=\"https:\/\/pro.arcgis.com\/en\/pro-app\/latest\/tool-reference\/space-time-pattern-mining\/an-overview-of-the-time-series-forecasting-toolset.htm\">Time Series Forecasting toolset<\/a> for analyzing the correlation between air pollution and the population of communities of color. Check out <a href=\"https:\/\/storymaps.arcgis.com\/stories\/da0df1524c704b488d79bb3e656addb3\">this story map<\/a> of where this demo origins from and <a href=\"https:\/\/www.esri.com\/arcgis-blog\/products\/arcgis-pro\/analytics\/dev-summit-2021-integrate-spatial-approach-and-time-series-analysis\/\">this blog post<\/a> for a detailed analysis and workflow.<\/p>\n<h3 class=\"title style-scope ytd-video-primary-info-renderer\"><a href=\"https:\/\/www.youtube.com\/watch?v=dkstCatSwl0&amp;list=PLaPDDLTCmy4bl7t6OOCoNX23nrwJIdWnW&amp;index=26\">Using R Notebooks with R-ArcGIS Bridge<\/a><\/h3>\n<p>Nicholas Giner, Product Manager &#8211; Analytics and Data Science, <span class=\"TextRun Highlight SCXW167522216 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW167522216 BCX0\" data-ccp-charstyle=\"normaltextrun\">highlights some exciting new enhancements in the\u00a0<\/span><\/span><a class=\"Hyperlink SCXW167522216 BCX0\" href=\"https:\/\/www.esri.com\/en-us\/arcgis\/products\/r-arcgis-bridge\/overview\" target=\"_blank\" rel=\"noreferrer noopener\"><span class=\"TextRun Highlight Underlined SCXW167522216 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW167522216 BCX0\" data-ccp-charstyle=\"Hyperlink\">R-ArcGIS Bridge<\/span><\/span><\/a><span class=\"TextRun Highlight SCXW167522216 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW167522216 BCX0\" data-ccp-charstyle=\"normaltextrun\">\u00a0through a case study on ecoregion mapping in the United States.<\/span><\/span><span class=\"EOP SCXW167522216 BCX0\" data-ccp-props=\"{\"> Check out <a href=\"https:\/\/www.esri.com\/arcgis-blog\/products\/arcgis-pro\/analytics\/the-r-arcgis-bridge-in-2021-esri-developer-summit-plenary\/\">this blog post<\/a> for more details.<\/span><\/p>\n<h3><a href=\"https:\/\/youtu.be\/qK_uDO6j6uY\">Introduction to SAS-ArcGIS Bridge<\/a><\/h3>\n<p>Alberto Nieto, Product Engineer on the Spatial Statistics team, demonstrates the use of <a href=\"https:\/\/www.esri.com\/en-us\/lg\/partners\/esri-and-sas\">SAS\u00ae-ArcGIS Bridge<\/a> and ArcGIS Notebooks to study the relationship between voter ID laws and voter turnout and determine whether some communities are disproportionately impacted. <span class=\"EOP SCXW167522216 BCX0\" data-ccp-props=\"{\">Check out <a href=\"https:\/\/www.esri.com\/arcgis-blog\/products\/arcgis-pro\/analytics\/introducing-the-sas-arcgis-bridge\/\">this blog post<\/a> for more details.<\/span><\/p>\n<h2>Technical workshops<\/h2>\n<h3><a href=\"https:\/\/www.youtube.com\/watch?v=BNaw78sjoBU\">ArcGIS Pro: Your Spatial Data Science Workstation<\/a><\/h3>\n<ul>\n<li>Level: Beginner<\/li>\n<li>Keywords: Data Science, Statistics, Analysis, Python, Integration<\/li>\n<\/ul>\n<p>Combining exploratory data analysis, visualization, ArcPy, &#8216;arcgis&#8217;, machine learning, deep learning, and Notebooks, ArcGIS Pro is a holistic system to solve data science problems. Learn how to build workflows that rely on a hybrid approach of leveraging the deep Python data science ecosystem in rich geoprocessing tools to access both local and enterprise data. See how adding Notebooks to your Pro projects allows you to fully utilize your local resources for interactive analysis results, and build tools in Pro to be deployed into your enterprise environment.<\/p>\n<h3><a href=\"https:\/\/www.youtube.com\/watch?v=237XOy8zckY\">Spatial Data Science with Notebooks in ArcGIS Pro<\/a><\/h3>\n<ul>\n<li>Level: Beginner<\/li>\n<li>Keywords: Notebooks, Python, Data Science, Scripting<\/li>\n<\/ul>\n<p>This session will focus on exploring how notebooks in ArcGIS Pro support spatial data science workflows. You will learn how to get started with existing notebook samples and see how prototyping in notebook cells helps analysis and automation workflows. The session will also cover updates to support data visualization using ArcGIS Pro charts, HTML messaging of geoprocessing results, and best practices for sharing projects that include ArcGIS Notebooks. The workshop provides resources and contributes to your use of ArcGIS Pro as a comprehensive spatial data science workstation.<\/p>\n<h3><a href=\"https:\/\/www.youtube.com\/watch?v=oFu4e6-9_Sc\">Harnessing the Power of R in ArcGIS with R-ArcGIS Bridge<\/a><\/h3>\n<ul>\n<li>Level: Intermediate<\/li>\n<li>Keywords: R, Integration, Jupyter Notebooks, Data science, Open-Source<\/li>\n<li>Additional materials: Download <a href=\"https:\/\/s-a-g4.maps.arcgis.com\/home\/item.html?id=5162a0c7afb94880968894eab15c6d40\">R markdown notebooks<\/a> in the demo<\/li>\n<\/ul>\n<p>The R-ArcGIS Bridge is the R integration for ArcGIS Pro that enriches your spatial data science workflows with rich analysis capabilities of the R language. This technical workshop will introduce new developments in the R-ArcGIS Bridge, including the new Conda support for R and enhancements to the data I\/O capabilities for leveraging the analysis power of ArcGIS Pro and R, jointly. In this in-depth tour of R-ArcGIS Bridge, the presenters will walk you through getting set up with R notebooks, working with remote and local data sources, and utilizing Esri R leaflets for interactive mapping.<\/p>\n<h3><a href=\"https:\/\/www.youtube.com\/watch?v=yAYKByLxhI8\">Spatial Data Science in ArcGIS: Making the Most of the Ecosystem<\/a><\/h3>\n<ul>\n<li>Level: Intermediate<\/li>\n<li>Keywords: Data Science, Statistics, Scientific, Python, Integration<\/li>\n<\/ul>\n<p>ArcGIS developers build rich tools and applications that solve real-world problems. Explore how to ingest, analyze and integrate scientific data into your applications, and apply statistical methods to gain deeper insight. This session will focus on how you can leverage the data science tools available in Pro to solve challenging problems from within ArcGIS, and build hybrid applications that capitalize on the strengths of ArcGIS and the Python ecosystem. Using real-world case studies, explore best practices and programming patterns for leveraging scientific Python and statistics.<\/p>\n<h3><a href=\"https:\/\/www.youtube.com\/watch?v=ZJNSqhEz-bs\">Spatial Machine Learning Explained: Time Series Forecasting<\/a><\/h3>\n<ul>\n<li>Level: Beginner<\/li>\n<li>Keywords: Machine learning, Time series, Forecasting, Data Science, Statistics<\/li>\n<li>Additional materials: Download <a href=\"https:\/\/github.com\/esridevsummit\/12418-spatial-machine-learning-explained-time-series-analysis\">ArcGIS notebook<\/a> in the demo<\/li>\n<\/ul>\n<p>This session will focus on unpacking the \u2018black box\u2019 of some of the most widely adopted Machine Learning and statistical methods used for time series forecasting. The session will illustrate how the algorithms work, how to interpret the results, and how to apply them to solve the complex problems you face. We\u2019ll go beyond the basics and equip you with the knowledge necessary to do great analysis.<\/p>\n<h3><a href=\"https:\/\/www.youtube.com\/watch?v=1f0Q4kbKaZE\">Spatial Machine Learning Explained: Density-Based Clustering and Outlier Detection<\/a><\/h3>\n<ul>\n<li>Level: Beginner<\/li>\n<li>Keywords: Machine learning, Clustering, Outliers, Data Science, Statistics<\/li>\n<\/ul>\n<p>This session will focus on unpacking the \u2018black box\u2019 of some of the most widely adopted Machine Learning methods used for detecting clusters and outliers using a density-based approach. The session will illustrate how the algorithms work, how to interpret the results, and how to apply them to solve the complex problems you face. We\u2019ll go beyond the basics and equip you with the knowledge necessary to do great analysis.<\/p>\n<p>We hope this helps to refresh your knowledge about Spatial Analysis and Data Science from DevSummit 2021. Let us know how you think about the sessions and what to add next year by leaving a comment here in the blog post! See you next year!<\/p>\n"}],"authors":[{"ID":55021,"user_firstname":"Jie","user_lastname":"Liu","nickname":"Jie","user_nicename":"j-liu","display_name":"Jie Liu","user_email":"j.liu@esri.com","user_url":"","user_registered":"2020-06-24 22:18:34","user_description":"Jie Liu is a senior product engineer on the Spatial Statistics team. Jie earned her bachelor\u2019s degree in Urban Planning and minored in Economics at Peking University, and earned dual degrees in Master of City Planning and Master of Urban and Spatial Analytics in School of Design, University of Pennsylvania. She dives deep into spatial statistics algorithms but is also design- and user-focused. She loves applying spatial data science to solve transportation planning and socio-economic problems. In her free time, Jie enjoys snowboarding, hiking, backpacking, cooking, and playing the ukulele.","user_avatar":"<img data-del=\"avatar\" src='https:\/\/www.esri.com\/arcgis-blog\/app\/uploads\/2020\/07\/jie-liu-1536x1536.jpg' class='avatar pp-user-avatar avatar-96 photo ' height='96' width='96'\/>"},{"ID":9862,"user_firstname":"Ankita","user_lastname":"Bakshi","nickname":"Ankita Bakshi","user_nicename":"abakshi","display_name":"Ankita Bakshi","user_email":"ABakshi@esri.com","user_url":"https:\/\/spatialstats.github.io\/","user_registered":"2019-08-13 18:45:44","user_description":"Ankita Bakshi is a Product Owner and a Senior Product Engineer on the Spatial Statistics Team at Esri. With a background in environmental engineering and computer science, she is passionate about solving social, economic, and environmental problems with Spatial Analysis and Data Science. In her role, Ankita enjoys researching, finding solutions to build software, and loves creating video and written content to make the software tools more approachable and applicable to real world challenges. Outside of work Ankita enjoys going on hikes and dancing to Bollywood music.","user_avatar":"<img data-del=\"avatar\" src='https:\/\/www.esri.com\/arcgis-blog\/app\/uploads\/2019\/12\/Ankita_Bakshi-e1577730248180-259x261.jpg' class='avatar pp-user-avatar avatar-96 photo ' height='96' width='96'\/>"}],"related_articles":"","card_image":"https:\/\/www.esri.com\/arcgis-blog\/app\/uploads\/2021\/04\/devsummit-826x465-1.jpg","wide_image":"https:\/\/www.esri.com\/arcgis-blog\/app\/uploads\/2021\/04\/devsummit-1920x1080-1.jpg"},"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v25.9 (Yoast SEO v25.9) - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Spatial Data Science at the 2021 Esri Developer Summit<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" 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