{"id":47471,"date":"2026-08-10T16:33:52","date_gmt":"2026-08-10T11:03:52","guid":{"rendered":"https:\/\/banitoday.com\/rohan-arni-17-used-deep-learning-to-study-mysterious-space-signals-with-98-accuracy-now-he-is-a-us-regeneron-sts-finalist\/"},"modified":"2026-08-10T16:33:52","modified_gmt":"2026-08-10T11:03:52","slug":"rohan-arni-17-used-deep-learning-to-study-mysterious-space-signals-with-98-accuracy-now-he-is-a-us-regeneron-sts-finalist","status":"publish","type":"post","link":"https:\/\/banitoday.com\/hi\/rohan-arni-17-used-deep-learning-to-study-mysterious-space-signals-with-98-accuracy-now-he-is-a-us-regeneron-sts-finalist\/","title":{"rendered":"Rohan Arni, 17, used deep learning to study mysterious space signals with 98% accuracy; now he is a US Regeneron STS finalist"},"content":{"rendered":"<p> <br \/>\n<\/p>\n<div>\n<div class=\"e9jwa\">\n<div class=\"vdo_embedd\">\n<div class=\"GfdvZ\">\n<section class=\"_bIDB  clearfix id-r-component leadmedia undefined undefined  E9tg9 \" style=\"top:0px\">\n<div class=\"_bIDB\" data-ua-type=\"1\" onclick=\"stpPgtnAndPrvntDefault(event)\">\n<div class=\"ypVvZ\">\n<div class=\"WGttI\"><img src=\"https:\/\/static.toiimg.com\/thumb\/msid-133090754,imgsize-183563,width-400,height-225,resizemode-4\/rohan-arni.jpg\" alt=\"Rohan Arni, 17, used deep learning to study mysterious space signals with 98% accuracy; now he is a US Regeneron STS finalist\" title=\"Rohan Arni used deep learning to study mysterious space signals; his model achieved 98% accuracy. (Photo: Society For Science)\" decoding=\"async\" fetchpriority=\"high\"\/><\/div>\n<\/div>\n<\/div>\n<div class=\"Ta7d_ img_cptn\"><span title=\"Rohan Arni used deep learning to study mysterious space signals; his model achieved 98% accuracy. (Photo: Society For Science)\">Rohan Arni used deep learning to study mysterious space signals; his model achieved 98% accuracy. (Photo: Society For Science)<\/span><\/div>\n<\/section>\n<\/div><\/div>\n<\/div>\n<p>At 17, Rohan Arni is exploring one of astronomy&#8217;s most intriguing mysteries: fast radio bursts, or FRBs, incredibly powerful flashes of radio waves that can travel across the universe and last for only milliseconds.<!-- --> A student at High Technology High School in Lincroft, New Jersey, Rohan developed a machine-learning model that classified repeating and non-repeating FRBs with 98% accuracy.<span class=\"id-r-component br\" data-pos=\"3\"\/>His research has earned him a place among the 40 finalists of the 2026 Regeneron Science Talent Search, one of the most prestigious science competitions for high school students in the United States. The finalists were selected from more than 2,600 entrants representing 826 high schools across 46 states, Washington, D.C., <!-- -->Puerto Rico, the Northern Mariana Islands and 16 countries.<span class=\"id-r-component br\" data-pos=\"8\"\/><\/p>\n<p><h2>A teenager investigating mysterious flashes from space<\/h2>\n<\/p>\n<p>Fast radio bursts are among the most puzzling phenomena observed by astronomers. These intense flashes of radio waves can travel enormous distances before reaching Earth, yet scientists still do not fully understand what produces them or why some FRBs repeat while others appear only once.<span class=\"id-r-component br\" data-pos=\"11\"\/>Rohan&#8217;s project, titled \u201cDeep Learning for Classification of Fast Radio Bursts,\u201d focuses on using artificial intelligence to study this mystery.<span class=\"id-r-component br\" data-pos=\"14\"\/>For his research, he used data collected by the Canadian Hydrogen Intensity Mapping Experiment (CHIME), a powerful radio telescope designed to map the sky and detect radio signals, including FRBs.<span class=\"id-r-component br\" data-pos=\"16\"\/>Instead of manually examining the enormous amount of data generated by such observations, Rohan developed a machine-learning model that could identify patterns and classify FRBs as either repeating or non-repeating.<span class=\"id-r-component br\" data-pos=\"19\"\/>The model achieved an impressive 98% accuracy, giving researchers a potentially useful tool for analysing both existing observations and new FRBs detected in the future.<span class=\"id-r-component br\" data-pos=\"21\"\/><\/p>\n<p><h2>What his AI model discovered about fast radio bursts<\/h2>\n<\/p>\n<p>Rohan&#8217;s research went beyond simply classifying the mysterious signals.<span class=\"id-r-component br\" data-pos=\"24\"\/>After identifying repeating and non-repeating FRBs, he examined the data to look for hidden characteristics that could distinguish the two groups.<span class=\"id-r-component br\" data-pos=\"26\"\/>His analysis suggested that repeating FRBs tend to be closer to Earth and have smaller frequency ranges than non-repeating FRBs.<span class=\"id-r-component br\" data-pos=\"29\"\/>This finding could be important because one of the biggest questions surrounding FRBs is whether repeating and non-repeating bursts originate from the same types of cosmic objects or arise through different physical processes.<span class=\"id-r-component br\" data-pos=\"31\"\/>Rohan&#8217;s results suggest that the two categories may come from different places in the universe.<span class=\"id-r-component br\" data-pos=\"33\"\/>Scientists are still investigating the origins of FRBs, and researchers have proposed several possible explanations involving extreme cosmic objects such as neutron stars and magnetars. <!-- -->However, the precise mechanisms responsible for all observed FRBs remain an open question.<span class=\"id-r-component br\" data-pos=\"37\"\/>By providing a machine-learning approach to classify and analyse these signals, Rohan&#8217;s research could help astronomers handle growing amounts of FRB data and identify patterns that might otherwise be difficult to detect.<span class=\"id-r-component br\" data-pos=\"39\"\/><\/p>\n<p><h2>From machine learning to physics research<\/h2>\n<\/p>\n<p>Rohan&#8217;s interest in scientific computing extends beyond his FRB project.<span class=\"id-r-component br\" data-pos=\"42\"\/>According to the Society for Science profile, he worked with researchers at Harvard University on the development of NeuroDiffEq, a library for physics-informed neural networks used by researchers around the world.<span class=\"id-r-component br\" data-pos=\"45\"\/>Physics-informed neural networks combine machine learning with the mathematical equations that describe physical systems. Such approaches can help researchers solve or approximate complex scientific problems while incorporating established laws of physics into computational models.<span class=\"id-r-component br\" data-pos=\"47\"\/>This experience reflects Rohan&#8217;s broader interest in bringing together artificial intelligence, mathematics and scientific research.<span class=\"id-r-component br\" data-pos=\"50\"\/>His FRB project similarly combines astronomy with machine learning, showing how computational methods can help researchers analyse increasingly large volumes of scientific data.<span class=\"id-r-component br\" data-pos=\"52\"\/><\/p>\n<p><h2>A finalist among America&#8217;s top young scientists<\/h2>\n<\/p>\n<p>Rohan is one of just 40 finalists selected for the 2026 Regeneron Science Talent Search, a programme of Society for Science that recognises outstanding high school research.<span class=\"id-r-component br\" data-pos=\"55\"\/>The finalists come from 35 schools across 15 states. Together, they are competing for $1.8 million in awards and were invited to attend the Regeneron Science Talent Institute.<span class=\"id-r-component br\" data-pos=\"58\"\/>The competition recognises research based not only on scientific quality but also on its potential to contribute to important questions facing science and society.<span class=\"id-r-component br\" data-pos=\"60\"\/>For Rohan, that question lies far beyond Earth.<span class=\"id-r-component br\" data-pos=\"62\"\/>FRBs may last only milliseconds, but the information contained in those brief flashes could provide clues about some of the most extreme environments in the universe. Developing better ways to identify and classify them could therefore become increasingly important as astronomers discover more of these signals.<span class=\"id-r-component br\" data-pos=\"65\"\/><\/p>\n<p><h2>Beyond the science project<\/h2>\n<\/p>\n<p>Rohan&#8217;s interests are not limited to research and coding.<span class=\"id-r-component br\" data-pos=\"68\"\/>He serves as the president of his school&#8217;s robotics and coding club and has coached more than 100 younger students in STEM fundamentals.<span class=\"id-r-component br\" data-pos=\"70\"\/>His involvement also extends beyond science. He volunteers as a tour guide with the Monmouth County Historical Association, combining his technical interests with an interest in sharing knowledge with others.<span class=\"id-r-component br\" data-pos=\"72\"\/>There is also a simple personal habit that reflects his attention to small details. <!-- -->Rohan makes it a point to return shopping carts instead of leaving them in the middle of a parking lot because, as he puts it, the small gesture might make someone else&#8217;s life easier.<span class=\"id-r-component br\" data-pos=\"76\"\/>From helping younger students learn STEM to developing AI tools for studying signals from distant galaxies, Rohan&#8217;s work demonstrates how scientific curiosity can extend well beyond the classroom.<span class=\"id-r-component br\" data-pos=\"78\"\/><\/p>\n<p><h2>Using AI to look deeper into the universe<\/h2>\n<\/p>\n<p>The universe is filled with signals that humans are only beginning to understand. <!-- -->Fast radio bursts are particularly intriguing because of their extraordinary intensity, short duration and mysterious origins.<span class=\"id-r-component br\" data-pos=\"83\"\/>Rohan Arni&#8217;s research does not claim to solve the mystery of FRBs. Instead, it offers something potentially just as valuable for future research: a computational tool capable of rapidly identifying patterns within a growing body of astronomical data.<span class=\"id-r-component br\" data-pos=\"86\"\/>His 98% accurate model and analysis of repeating and non-repeating FRBs could help researchers ask better questions about where these signals originate and whether different types of FRBs have different cosmic origins.<span class=\"id-r-component br\" data-pos=\"89\"\/>For a 17-year-old high school student, turning mysterious flashes from billions of light-years away into a machine-learning problem is an extraordinary example of how young researchers are using modern technology to explore some of science&#8217;s biggest unanswered questions.<span class=\"id-r-component br\" data-pos=\"91\"\/><span class=\"strong em\" data-ua-type=\"1\" onclick=\"stpPgtnAndPrvntDefault(event)\">Disclaimer: <\/span><span class=\"em\" data-ua-type=\"1\" onclick=\"stpPgtnAndPrvntDefault(event)\">The scientific findings and observations mentioned are based on the student&#8217;s research and information provided by Society for Science and have not been independently verified by <\/span><span class=\"strong em\" data-ua-type=\"1\" onclick=\"stpPgtnAndPrvntDefault(event)\">The Times of India<\/span><span class=\"em\" data-ua-type=\"1\" onclick=\"stpPgtnAndPrvntDefault(event)\">.<\/span><\/div>\n<p><br \/>\n<br \/><a href=\"https:\/\/timesofindia.indiatimes.com\/education\/news\/rohan-arni-17-used-deep-learning-to-study-mysterious-space-signals-with-98-accuracy-now-he-is-a-us-regeneron-sts-finalist\/articleshow\/133090462.cms\">Source link <\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Rohan Arni used deep learning to study mysterious space signals; his model achieved 98% accuracy. (Photo: Society For Science) At 17, Rohan Arni is exploring one of astronomy&#8217;s most intriguing mysteries: fast radio bursts, or FRBs, incredibly powerful flashes of radio waves that can travel across the universe and last for only milliseconds. A student [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":47472,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[264],"tags":[],"class_list":["post-47471","post","type-post","status-publish","format-standard","has-post-thumbnail","category-education"],"aioseo_notices":[],"aioseo_head":"\n\t\t<!-- All in One SEO 4.9.10 - aioseo.com -->\n\t<meta name=\"description\" content=\"Rohan Arni used deep learning to study mysterious space signals; his model achieved 98% accuracy. 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