{"id":111331,"date":"2021-03-02T16:02:54","date_gmt":"2021-03-02T15:02:54","guid":{"rendered":"https:\/\/eurecat.org\/?post_type=avada_portfolio&#038;p=111331"},"modified":"2022-04-20T11:52:12","modified_gmt":"2022-04-20T10:52:12","slug":"proceed","status":"publish","type":"avada_portfolio","link":"https:\/\/eurecat.org\/en\/portfolio-items\/proceed\/","title":{"rendered":"PROCEED"},"content":{"rendered":"<div class=\"fusion-fullwidth fullwidth-box fusion-builder-row-1 hundred-percent-fullwidth non-hundred-percent-height-scrolling\" style=\"--awb-border-radius-top-left:0px;--awb-border-radius-top-right:0px;--awb-border-radius-bottom-right:0px;--awb-border-radius-bottom-left:0px;--awb-overflow:visible;--awb-flex-wrap:wrap;\" ><div class=\"fusion-builder-row fusion-row\"><div class=\"fusion-layout-column fusion_builder_column fusion-builder-column-0 fusion_builder_column_2_3 2_3 fusion-two-third fusion-column-first\" style=\"--awb-bg-size:cover;width:65.3333%; margin-right: 4%;\"><div class=\"fusion-column-wrapper fusion-flex-column-wrapper-legacy\"><div class=\"fusion-text fusion-text-1\"><p><img decoding=\"async\" class=\"aligncenter size-full wp-image-111339\" src=\"https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px.jpg\" alt=\"PROCEED EURECAT\" width=\"850\" height=\"447\" srcset=\"https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px-200x105.jpg 200w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px-300x158.jpg 300w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px-400x210.jpg 400w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px-600x316.jpg 600w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px-768x404.jpg 768w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px-800x421.jpg 800w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_850x447px.jpg 850w\" sizes=\"(max-width: 850px) 100vw, 850px\" \/><\/p>\n<\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-separator fusion-full-width-sep\" style=\"margin-left: auto;margin-right: auto;width:100%;\"><\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-title title fusion-title-1 fusion-title-text fusion-title-size-three\" style=\"--awb-margin-top-small:0px;--awb-margin-right-small:0px;--awb-margin-bottom-small:20px;--awb-margin-left-small:0px;\"><h3 class=\"fusion-title-heading title-heading-left\" style=\"margin:0;\"><\/h3><span class=\"awb-title-spacer\"><\/span><div class=\"title-sep-container\"><div class=\"title-sep sep-double sep-solid\" style=\"border-color:#e0dede;\"><\/div><\/div><\/div><div class=\"fusion-text fusion-text-2\" style=\"--awb-text-transform:none;\"><p>Prediction and support system for the comprehensive management of the evolution and use of resources in pandemics situations.<\/p>\n<p>The <strong>PROCEED<\/strong> project aims to create an <strong>augmented epidemiological model<\/strong> to support decision-making through the collection, integration, and analysis of heterogeneous data sources (health, mobility, environment, wastewater and social).<\/p>\n<p>Within the framework of the project, a <strong>new system for predicting and supporting the comprehensive management of pandemics<\/strong> is developed and deployed, defined as a personalised infrastructure and offering tools that allow managers, clinical professionals and patients to access data, results, indicators, predictions and recommendation throughout the various stages of the epidemic cycle.<\/p>\n<p>The new system developed by PROCEED will make it possible to <strong>anticipate the detection of the pandemic and optimise the response through predictive management, reducing the risks of to the most vulnerable groups and optimising the use of resources<\/strong> by allocating them to those services, sectors and populations that require greater attention.<\/p>\n<p>On the other hand, the <strong>convergence of data analysis, optimisation, simulation, and artificial intelligence technologies, together with the knowledge of health experts, will allow the co-generation of models for monitoring and studying the pandemic<\/strong>. These models will be used to assess the clinical course of the disease, evaluate infection sources, study and predict the geographical evolution of the epidemic, establish infection rates by geographical areas, as well as environmental factors that affect the biology of the virus and its epidemic cycle.<\/p>\n<p>The project, which has a budget of 579,779 euros (of which 463,816 are from the CDTI grant), is being carried out in Barcelona, \u200b\u200b\u200b\u200bReus, Tarragona, Cerdanyola and Lleida, in the period from July 1, 2020 to September 30, 2021.<\/p>\n<p>The PROCEED project is formed by Eurecat through its <a href=\"https:\/\/eurecat.org\/en\/field-of-knowledge\/digital-health\/\">Digital Health Unit<\/a>, the <a href=\"https:\/\/eurecat.org\/en\/field-of-knowledge\/applied-artificial-intelligence\/\">Applied Artificial Intelligence Unit<\/a>, the <a href=\"https:\/\/eurecat.org\/en\/field-of-knowledge\/water-air-soil\/\">Water, Air and Soil (WAS) Unit<\/a>, the <a href=\"https:\/\/eurecat.org\/en\/field-of-knowledge\/omic-sciences\/\">Omic Sciences Unit<\/a> and the <a href=\"https:\/\/eurecat.org\/en\/field-of-knowledge\/big-data-data-science\/\">Big Data &amp; Data Science Unit<\/a>.<\/p>\n<\/div><div class=\"fusion-clearfix\"><\/div><\/div><\/div><div class=\"fusion-layout-column fusion_builder_column fusion-builder-column-1 fusion_builder_column_1_3 1_3 fusion-one-third fusion-column-last\" style=\"--awb-bg-size:cover;width:30.6666%;\"><div class=\"fusion-column-wrapper fusion-flex-column-wrapper-legacy\"><div class=\"fusion-image-element fusion-image-align-center in-legacy-container\" style=\"text-align:center;--awb-caption-title-font-family:var(--h2_typography-font-family);--awb-caption-title-font-weight:var(--h2_typography-font-weight);--awb-caption-title-font-style:var(--h2_typography-font-style);--awb-caption-title-size:var(--h2_typography-font-size);--awb-caption-title-transform:var(--h2_typography-text-transform);--awb-caption-title-line-height:var(--h2_typography-line-height);--awb-caption-title-letter-spacing:var(--h2_typography-letter-spacing);\"><div class=\"imageframe-align-center\"><span class=\" fusion-imageframe imageframe-none imageframe-1 hover-type-none\"><img decoding=\"async\" width=\"400\" height=\"180\" alt=\"PROCEED LOGO EURECAT\" title=\"PROCEED_LOGO_ES\" src=\"https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1-400x180.png\" class=\"img-responsive wp-image-111348\" srcset=\"https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1-200x90.png 200w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1-400x180.png 400w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1-600x270.png 600w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1-800x360.png 800w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1-1200x540.png 1200w, https:\/\/eurecat.org\/wp-content\/uploads\/2021\/03\/PROCEED_LOGO_ES-1.png 1210w\" sizes=\"(max-width: 800px) 100vw, 600px\" \/><\/span><\/div><\/div><div class=\"fusion-title title fusion-title-2 fusion-title-text fusion-title-size-three\" style=\"--awb-margin-top-small:0px;--awb-margin-right-small:0px;--awb-margin-bottom-small:20px;--awb-margin-left-small:0px;\"><h3 class=\"fusion-title-heading title-heading-left\" style=\"margin:0;\">General details<\/h3><span class=\"awb-title-spacer\"><\/span><div class=\"title-sep-container\"><div class=\"title-sep sep-double sep-solid\" style=\"border-color:#e0dede;\"><\/div><\/div><\/div><div class=\"fusion-text fusion-text-3\"><p><strong>Project\u00a0<\/strong><\/p>\n<p>PROCEED \u2013 Cross-sectional epidemiological prediction for managing the evolution and use of resources in pandemics<\/p>\n<h3><\/h3>\n<h3><\/h3>\n<\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-separator fusion-full-width-sep\" style=\"margin-left: auto;margin-right: auto;margin-top:0px;margin-bottom:10px;width:100%;\"><div class=\"fusion-separator-border sep-single sep-solid\" style=\"--awb-height:20px;--awb-amount:20px;border-color:#e0dede;border-top-width:1px;\"><\/div><\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-text fusion-text-4\"><p><strong>Project reference<\/strong><\/p>\n<p>COI-20201289<\/p>\n<h3><\/h3>\n<h3><\/h3>\n<\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-separator fusion-full-width-sep\" style=\"margin-left: auto;margin-right: auto;margin-top:0px;margin-bottom:10px;width:100%;\"><div class=\"fusion-separator-border sep-single sep-solid\" style=\"--awb-height:20px;--awb-amount:20px;border-color:#e0dede;border-top-width:1px;\"><\/div><\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-text fusion-text-5\" style=\"--awb-text-transform:none;\"><p><strong>Programme and call for tender<\/strong><\/p>\n<p>Project funded by the Centre for Industrial Technological Development (CDTI) and the European Regional Development Fund (ERDF) within the call for subsidies for projects to face the health emergency declared by Covid-19, in the modality of R&amp;D project in the field of tools for the collection, analysis and processing of utility in the control of the disease.<\/p>\n<\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-separator fusion-full-width-sep\" style=\"margin-left: auto;margin-right: auto;margin-top:0px;margin-bottom:10px;width:100%;\"><div class=\"fusion-separator-border sep-single sep-solid\" style=\"--awb-height:20px;--awb-amount:20px;border-color:#e0dede;border-top-width:1px;\"><\/div><\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-separator fusion-full-width-sep\" style=\"margin-left: auto;margin-right: auto;margin-top:10px;margin-bottom:10px;width:100%;\"><\/div><div class=\"fusion-sep-clear\"><\/div><div class=\"fusion-image-element fusion-image-align-center in-legacy-container\" style=\"text-align:center;--awb-caption-title-font-family:var(--h2_typography-font-family);--awb-caption-title-font-weight:var(--h2_typography-font-weight);--awb-caption-title-font-style:var(--h2_typography-font-style);--awb-caption-title-size:var(--h2_typography-font-size);--awb-caption-title-transform:var(--h2_typography-text-transform);--awb-caption-title-line-height:var(--h2_typography-line-height);--awb-caption-title-letter-spacing:var(--h2_typography-letter-spacing);\"><div 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class=\"fusion-clearfix\"><\/div><\/div><\/div><\/div><\/div>\n","protected":false},"excerpt":{"rendered":"","protected":false},"author":30,"featured_media":111336,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","format":"standard","meta":{"footnotes":""},"portfolio_category":[1533,1521,1525,1442,1522,2071],"portfolio_skills":[2200],"portfolio_tags":[],"class_list":["post-111331","avada_portfolio","type-avada_portfolio","status-publish","format-standard","has-post-thumbnail","hentry","portfolio_category-applied-artificial-intellligence","portfolio_category-big-data-en","portfolio_category-e-health-en","portfolio_category-national-projects","portfolio_category-omic-sciences","portfolio_category-was-en","portfolio_skills-cdti-3"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.6 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>PROCEED - Cross-sectional epidemiological prediction system<\/title>\n<meta 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