{"id":69196,"date":"2025-07-02T15:33:33","date_gmt":"2025-07-02T14:33:33","guid":{"rendered":"https:\/\/aicongress.barcelona\/dadessintetic\/"},"modified":"2025-10-13T12:15:49","modified_gmt":"2025-10-13T11:15:49","slug":"dadessintetic","status":"publish","type":"post","link":"https:\/\/aicongress.barcelona\/en\/dadessintetic\/","title":{"rendered":"13.30h to 14.00h<br>THE REAL POTENTIAL OF SYNTHETIC DATA IN AI TODAY"},"content":{"rendered":"<div class=\"wpb-content-wrapper\"><p>[vc_section][vc_row css=&#8221;.vc_custom_1681910300131{padding-bottom: 30px !important;}&#8221;][vc_column]<div id=\"ultimate-heading-94466a82e64acd320\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-94466a82e64acd320 uvc-4482  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-94466a82e64acd320 h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;color:#0066EF;\">THE REAL POTENTIAL OF SYNTHETIC DATA IN AI TODAY<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><div class=\"uvc-sub-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-94466a82e64acd320 .uvc-sub-heading '  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}'  style=\"font-weight:normal;\"><\/p>\n<h3><strong>23 October 2025 | <\/strong>13.30h to 14.00h<\/h3>\n<p><\/div><\/div>[\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ededed&#8221; css=&#8221;.vc_custom_1681913912294{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner][vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>Synthetic data are becoming a key solution for training AI models when real data are scarce, sensitive or difficult to obtain. In this session, we will see how it is used in various fields (health, autonomous mobility, finance, generation of surrogate models for simulations and others). We will explore how it is generated, what it contributes and what impact it has on the quality of the models to achieve a more robust, secure and scalable AI.<\/h4>\n<h4>Presenter:<\/h4>\n<ul>\n<li>\n<h4>Rafael Redondo, Senior Researcher, Head of Image Group, Multimedia Technologies, Eurecat<\/h4>\n<\/li>\n<\/ul>\n<h4>Participate:<\/h4>\n<ul>\n<li>\n<h4>Dirk Hornung, CEO, Metascan<\/h4>\n<\/li>\n<li>\n<h4>Ivan Vollmer, Head of Thoracic Radiology Section, Radiodiagnostic Service, Vall d&#8217;Hebron Hospital. Associate Professor, Faculty of Medicine, Autonomous University of Barcelona and Carolina Migliorelli, Head of Research Line (Healthcare Artificial Intelligence), Eurecat<\/h4>\n<\/li>\n<\/ul>\n<p>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][\/vc_column][\/vc_row][vc_row][vc_column][vc_empty_space]<div id=\"ultimate-heading-47426a82e64acd3e6\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-47426a82e64acd3e6 uvc-6299  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-47426a82e64acd3e6 h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;color:#0066EF;\">Presenter<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><\/div>[\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ffffff&#8221; css=&#8221;.vc_custom_1683718841357{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;70243&#8243; img_size=&#8221;full&#8221; css=&#8221;&#8221;][vc_empty_space][vc_column_text css=&#8221;&#8221;]<\/p>\n<p style=\"text-align: center;\"><strong><a href=\"http:\/\/www.eurecat.org\/\" target=\"_blank\" rel=\"noopener\">Eurecat.org<\/a> | <a href=\"https:\/\/www.linkedin.com\/in\/rafaelredondotejedor\/?originalSubdomain=es\" target=\"_blank\" rel=\"noopener\">LinkedIn<\/a><\/strong><\/p>\n<p>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;]<div id=\"ultimate-heading-3736a82e64acd477\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-3736a82e64acd477 uvc-8987  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-3736a82e64acd477 h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;\">RAFAEL REDONDO<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><div class=\"uvc-sub-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-3736a82e64acd477 .uvc-sub-heading '  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}'  style=\"font-weight:normal;\"><\/p>\n<h4>Senior Researcher, Head of Image Group, Multimedia Technologies, Eurecat<\/h4>\n<p><\/div><\/div>[vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>Researcher at the Multimedia Technologies Unit of Eurecat. He received his PhD in computer vision from the Institute of Optics (CSIC) and the School of Telecommunications (ETSIT) of the Polytechnic University of Madrid (UPM) in 2007. He has subsequently participated in international European projects on volumetric-3D medical image visualization, camera contrast enhancement, autofocus system evaluation, and automatic pollen recognition. He also obtained a master&#8217;s degree in Sonology from the Pompeu Fabra University (UPF). His research fields include biological models of human vision, image coding and compression, time-frequency representations, and pattern recognition. In the field of interactive systems, he has worked as a freelancer on projects for Cosmocaixa (Top Ci\u00e8ncia) or La Fura dels Baus (MURS). In recent years at Eurecat he has worked with deep neural models (Deep Learning) in projects as diverse as natural-matting effects for film post-production or depth estimation in 360 virtual reality. He currently works on applied research on multimodal generative models and 3D reconstruction in cultural heritage. He has 17 publications in international journals and over 20 at international conferences.<\/h4>\n<p>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][\/vc_column][\/vc_row][vc_row][vc_column][vc_empty_space]<div id=\"ultimate-heading-54006a82e64acd500\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-54006a82e64acd500 uvc-2119  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-54006a82e64acd500 h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;color:#0066EF;\">Speakers<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><\/div>[\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ffffff&#8221; css=&#8221;.vc_custom_1683718841357{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;70501&#8243; img_size=&#8221;full&#8221; css=&#8221;&#8221;][vc_empty_space][vc_column_text css=&#8221;&#8221;]<\/p>\n<p style=\"text-align: center;\"><a href=\"https:\/\/metascan.es\/\" target=\"_blank\" rel=\"noopener\"><strong>metascan.es<\/strong><\/a><strong>\u00a0|\u00a0<a href=\"https:\/\/linkedin.com\/in\/drdirk\" target=\"_blank\" rel=\"noopener\">LinkedIN<\/a><\/strong><\/p>\n<p>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;]<div id=\"ultimate-heading-87506a82e64acd58a\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-87506a82e64acd58a uvc-371  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-87506a82e64acd58a h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;\">DIRK HORNUNG<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><div class=\"uvc-sub-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-87506a82e64acd58a .uvc-sub-heading '  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}'  style=\"font-weight:normal;\"><\/p>\n<h4>CEO, Metascan<\/h4>\n<p><\/div><\/div>[vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>Dirk Hornung, holding a PhD in Particle Physics, transitioned into software engineering at Google, where he focused on implementing human-centric AI models. His expertise further expanded as a GPU compiler engineer, optimizing Large Language Models (LLMs) on Nvidia GPUs using the XLA compiler. Dirk is now driving innovation as the founder of Metascan, a startup dedicated to digital humans and the development and training of human foundational models.<\/h4>\n<p>[\/vc_column_text][vc_empty_space]<div id=\"ultimate-heading-94196a82e64acd60a\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-94196a82e64acd60a uvc-7099  uvc-heading-default-font-sizes\" data-hspacer=\"no_spacer\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-heading-spacer no_spacer\" style=\"top\"><\/div><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-94196a82e64acd60a h4'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h4 style=\"--font-weight:theme;color:#0066EF;\">Human-Centric Synthetic Data: Unlocking AI's True Potential Today<\/h4><\/div><\/div>[vc_empty_space][vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>Discover how human-centric synthetic data is revolutionizing AI development. We&#8217;ll explore why traditional data sources often fall short due to privacy concerns, bias, and scarcity. Learn how generating high-quality, privacy-preserving synthetic data allows for robust AI training, accelerates innovation, and minimizes ethical risks. This session will illuminate the practical applications and immense potential of synthetic data in building more equitable and effective AI systems right now.<\/h4>\n<p>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ffffff&#8221; css=&#8221;.vc_custom_1683718841357{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;70382&#8243; img_size=&#8221;full&#8221; css=&#8221;&#8221;][vc_empty_space][vc_column_text css=&#8221;&#8221;]<\/p>\n<p style=\"text-align: center;\"><strong><a href=\"http:\/\/www.vallhebron.com\/\" target=\"_blank\" rel=\"noopener\">www.vallhebron.com<\/a>\u00a0|\u00a0<a href=\"https:\/\/x.com\/ivanvollmert?lang=es\" target=\"_blank\" rel=\"noopener\">@ivanvollmert<\/a><\/strong><\/p>\n<p>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;]<div id=\"ultimate-heading-48576a82e64acd688\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-48576a82e64acd688 uvc-1435  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-48576a82e64acd688 h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;\">IVAN VOLLMER<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><div class=\"uvc-sub-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-48576a82e64acd688 .uvc-sub-heading '  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}'  style=\"font-weight:normal;\"><\/p>\n<h4>Head of Thoracic Radiology Section, Radiodiagnostic Service, Vall d&#8217;Hebron Hospital. Associate Professor, Faculty of Medicine, Autonomous University of Barcelona<\/h4>\n<p><\/div><\/div>[vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>Ivan Vollmer holds a degree in Medicine and Surgery from the University of Barcelona (UB) (1993-1999), a specialist in Radiodiagnosis (2000-2004) and a PhD in Medicine (2023) from the UB. He is currently Head of the Thoracic Radiology Section at Vall d&#8217;Hebron Hospital and a researcher in chest imaging at VHIR. He has extensive experience, of more than 20 years, in care, teaching and research in Thoracic Radiology. Previously, he was Assistant of Radiology and Deputy Coordinator of the Lung Cancer Functional Unit at Hospital del Mar (2004-2014) and Radiology Consultant and Resident Tutor at Hospital Cl\u00ednic (2015-2024).<\/h4>\n<p>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ffffff&#8221; css=&#8221;.vc_custom_1683718841357{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner width=&#8221;1\/4&#8243;][vc_single_image image=&#8221;70346&#8243; img_size=&#8221;full&#8221; css=&#8221;&#8221;][vc_empty_space][vc_column_text css=&#8221;&#8221;]<\/p>\n<p style=\"text-align: center;\"><strong><a href=\"https:\/\/eurecat.org\/\" target=\"_blank\" rel=\"noopener\">eurecat.org<\/a>\u00a0|\u00a0<\/strong><strong><a href=\"https:\/\/twitter.com\/Eurecat_news\" target=\"_blank\" rel=\"noopener\">@Eurecat_news\u00a0<\/a>|\u00a0<a href=\"https:\/\/www.instagram.com\/eurecat_org\/#\" target=\"_blank\" rel=\"noopener\">Instagram<\/a><\/strong><\/p>\n<p>[\/vc_column_text][\/vc_column_inner][vc_column_inner width=&#8221;3\/4&#8243;]<div id=\"ultimate-heading-77226a82e64acd704\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-77226a82e64acd704 uvc-1123  uvc-heading-default-font-sizes\" data-hspacer=\"line_only\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-77226a82e64acd704 h2'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h2 style=\"--font-weight:theme;\">CAROLINA MIGLIORELLI<\/h2><\/div><div class=\"uvc-heading-spacer line_only\" style=\"topheight:1px;\"><span class=\"uvc-headings-line\" style=\"border-style:solid;border-bottom-width:1px;border-color:#0066EF;width:100px;\"><\/span><\/div><div class=\"uvc-sub-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-77226a82e64acd704 .uvc-sub-heading '  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}'  style=\"font-weight:normal;\"><\/p>\n<h4>Head of Research Line (Healthcare Artificial Intelligence), Eurecat<\/h4>\n<p><\/div><\/div>[vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>Dr. Carolina Migliorelli Falcone is the head of the research line on Trustworthy Artificial Intelligence for Healthcare within the Digital Health Unit at Eurecat. Her research career began with a doctoral thesis at the Center for Biomedical Engineering Research (CREB \u2013 UPC), followed by a postdoctoral fellowship at the Network Center for Biomedical Research (CIBER-BBN).<\/h4>\n<h4>Her work focuses on the development of artificial intelligence systems for healthcare, with a particular emphasis on trust, explainability, and security. She leads projects aimed at creating advanced machine learning algorithms that support clinical decision-making, facilitate patient classification and stratification, and promote data-driven, personalized interventions. She also works on solutions that empower individuals to manage their health and improve their lifestyle through reliable and user-friendly digital technologies.<\/h4>\n<h4>She has extensive experience in biomedical data processing and analysis, as well as in integrating clinical data in complex environments. She holds a PhD in Biomedical Engineering (UPC), a Master\u2019s degree in Biomedical Engineering (UB-UPC), and a Bachelor\u2019s degree in Telecommunications Engineering with a specialization in Electronic Systems (UPC).<\/h4>\n<p>[\/vc_column_text][vc_empty_space]<div id=\"ultimate-heading-30126a82e64acd77f\" class=\"uvc-heading ult-adjust-bottom-margin ultimate-heading-30126a82e64acd77f uvc-8943  uvc-heading-default-font-sizes\" data-hspacer=\"no_spacer\"  data-halign=\"left\" style=\"text-align:left\"><div class=\"uvc-heading-spacer no_spacer\" style=\"top\"><\/div><div class=\"uvc-main-heading ult-responsive\"  data-ultimate-target='.uvc-heading.ultimate-heading-30126a82e64acd77f h4'  data-responsive-json-new='{\"font-size\":\"\",\"line-height\":\"\"}' ><h4 style=\"--font-weight:theme;color:#0066EF;\">Synthetic CT images in lung cancer: new avenues to generate data and drive clinical innovation<\/h4><\/div><\/div>[vc_empty_space][vc_column_text css=&#8221;&#8221;]<\/p>\n<h4>The development of AI models for lung cancer diagnosis requires large CT databases, with accurate annotations of nodules (location, size, morphology) and associated clinical information. Their acquisition is slow, expensive and limited by the sensitivity of the data and the imbalance between benign and malignant cases, which reduces the robustness of the classifiers. Synthetic images generated with AI offer a solution to expand and balance cohorts and train more robust models. The presentation will show the generation process, its clinical relevance and the need for rigorous expert validation.<\/h4>\n<p>[\/vc_column_text][\/vc_column_inner][\/vc_row_inner][\/vc_column][\/vc_row][\/vc_section]<\/p>\n<\/div>","protected":false},"excerpt":{"rendered":"<p>[vc_section][vc_row css=&#8221;.vc_custom_1681910300131{padding-bottom: 30px !important;}&#8221;][vc_column][\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ededed&#8221; css=&#8221;.vc_custom_1681913912294{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner][vc_column_text css=&#8221;&#8221;] Synthetic data are becoming a key solution for training AI models when real data are scarce, sensitive or difficult to obtain. In this session, we will see how it is used in various fields (health, autonomous mobility, finance, generation of surrogate models&hellip;<\/p>\n","protected":false},"author":4,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[522],"tags":[],"class_list":["post-69196","post","type-post","status-publish","format-standard","hentry","category-uncategorized","category-522","description-off"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.2 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>13.30h to 14.00hTHE REAL POTENTIAL OF SYNTHETIC DATA IN AI TODAY - AI Congress<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/aicongress.barcelona\/en\/dadessintetic\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"13.30h to 14.00hTHE REAL POTENTIAL OF SYNTHETIC DATA IN AI TODAY - AI Congress\" \/>\n<meta property=\"og:description\" content=\"[vc_section][vc_row css=&#8221;.vc_custom_1681910300131{padding-bottom: 30px !important;}&#8221;][vc_column][\/vc_column][\/vc_row][vc_row full_width=&#8221;stretch_row&#8221; bg_type=&#8221;bg_color&#8221; bg_color_value=&#8221;#ededed&#8221; css=&#8221;.vc_custom_1681913912294{padding-top: 30px !important;padding-bottom: 30px !important;}&#8221;][vc_column][vc_row_inner][vc_column_inner][vc_column_text css=&#8221;&#8221;] Synthetic data are becoming a key solution for training AI models when real data are scarce, sensitive or difficult to obtain. 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