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                    <title><![CDATA[Ohio State News]]></title>
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                    <pubDate>Wed, 25 Mar 2026 15:26:40 +0100</pubDate>
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                        <title>Using ‘imaginative’ AI to survey past and future earthquake damage</title>
                        <link>https://news.osu.edu/using-imaginative-ai-to-survey-past-and-future-earthquake-damage/</link>
                        <guid>https://news.osu.edu/using-imaginative-ai-to-survey-past-and-future-earthquake-damage/</guid><pp:caseid>740280</pp:caseid><pp:subtitle>Visualizing ground-level damage offers insight into next disaster, study finds</pp:subtitle><description><![CDATA[<p><span>Researchers have used artificial intelligence to develop a new tool for assessing earthquake damage, a leap that could ultimately help first responders in making critical rescue decisions, suggests a new study.&nbsp;</span></p>]]></description><content:encoded><![CDATA[<p dir="ltr"><span>Researchers have used artificial intelligence to develop a new tool for assessing earthquake damage, a leap that could ultimately help first responders in making critical rescue decisions, suggests a new study.&nbsp;</span></p><p dir="ltr"><span>The team’s AI, called the LoRA-Enhanced Ground-view Generation (LEGG) diffusion model, is trained on real aerial drone images that it uses to create highly photorealistic 3D reconstructions of the ground. Creating imagery detailed enough to fully capture a region’s physical characteristics distinguishes this synthetic model, enabling it to recognize complex visual patterns and predict where structures may be damaged, even in densely populated urban areas.&nbsp;&nbsp;</span></p><p dir="ltr"><span>“What our algorithm does is generate thousands of pairs of semi-realistic photos of what a building looks like on the top and from the ground,” said </span><a href="https://ceg.osu.edu/people/qin.324"><u>Rongjun Qin,</u></a><span> co-author of the study and a professor of </span><a href="https://ceg.osu.edu/"><u>civil, environmental and geodetic engineering at The Ohio State University.</u></a><span> “Having such data is vital, as drones gather important information from above, but people actually make emergency decisions from ground-level views.”<img class="image_resized image-style-align-right" style="width:200px;" src="https://content.presspage.com/uploads/2170/500_rongjunqin.jpg?x=1774443091303" alt="Rongjun Qin" width="200"></span></p><p dir="ltr"><span>Similar studies on the aftermath of devastating earthquakes relied on </span><a href="https://osuairport.org/community/uncrewed-aircraft-systems-drones"><u>UAV</u></a><span> or </span><a href="https://oceanservice.noaa.gov/facts/lidar.html"><u>lidar-based detection methods</u></a><span> to survey collapsed buildings and structures from above, but none had addressed how damage might have looked on the ground prior to prolonged rescue efforts. Moreover, depending on the severity of the earthquake, manual damage assessments can take days or weeks to fully complete, which isn’t ideal for rapid recovery missions.&nbsp;&nbsp;&nbsp;</span></p><p dir="ltr"><span>In this paper, Qin and his colleagues introduce a framework for bridging these gaps using AI-generated images, with the aim of laying the foundation for more accurate disaster assessment and better earthquake preparedness.&nbsp;</span></p><p dir="ltr"><span>“This simulation is essentially a map, but an experienced and well-trained AI could offer an additional supply of information that would be really helpful for emergency crews in making quick decisions about where to go when the clock is ticking,” said Qin.&nbsp;</span></p><p dir="ltr"><span>The study was published in the</span><i> </i><a href="https://www.tandfonline.com/doi/pdf/10.1080/01431161.2026.2628294"><i><u>International Journal of Remote Sensing.</u></i></a></p><p dir="ltr"><span>To test the applicability of their proposed algorithm, researchers conducted a case study on a real-world disaster, the </span><a href="https://earthquake.usgs.gov/storymap/index-turkey2023.html"><u>2023 Kahramanmaras, Turkey, earthquake</u></a><span>, a powerful 7.8 magnitude quake that destroyed 280,000 buildings and damaged at least 700,000 more. Comparing drone imagery from 2015 to photos taken in the days after the shake revealed dramatic changes in the local built environment, such as collapsed buildings and temporary shelters in open areas.&nbsp;</span></p><p dir="ltr"><span>After showing their AI a dataset of only 3,000 of these city structures, the model was able to create images that enhanced the recognition of a number of building issues, including façade cracks, building tilts and partial collapses, demonstrating that it could extract subtle cues from multiple sources to generate high-resolution, photorealistic street-level views.</span></p><p dir="ltr"><span>This advanced capability stems from the combination of drone and ground imagery that researchers injected it with to ensure the model had a strong starting point for understanding potential structural damage and its community effects, said Qin.&nbsp;</span></p><p dir="ltr"><span>“As long as you have good data, AI can serve as a very generous predictor of past and future outcomes,” he said. “It’s a tool that can be incredibly helpful.”</span></p><p dir="ltr"><span>In the future, applying the team’s framework to novel scenarios or areas could inspire governments and engineers to design more resilient infrastructures as well as reshape post-disaster assessment and emergency management policies.&nbsp;</span></p><p dir="ltr"><span>“This work presents a great opportunity for engineers and other decision makers to remotely assess the damage in structures soon after a disaster,” said </span><a href="https://ceg.osu.edu/people/sezen.1" target="_blank"><span>Halil Sezen</span></a><span>, co-author of the paper and a professor of structural engineering in </span><a href="https://ceg.osu.edu/"><u>civil, environmental and geodetic engineering at Ohio State.</u></a></p><p dir="ltr"><span>That said, their algorithm will likely be utilized in tandem with other emergency or resource planning tools, said Qin, noting that with more in-depth experiments, the model could help anticipate destruction levels in other earthquake-prone environments, like Japan or California.&nbsp;</span></p><p dir="ltr"><span>“There is still a lot of work to be done to bring in the kind of perspective AI offers,” said Qin. “But the more good quality data that we have, the faster we’re going to achieve our goals.”</span></p><p dir="ltr"><span>Co-authors include Ohio State’s Ningli Xu, Abdullah Türer, Abdulmajeed Batarfi, and Hessah Albanwan from Kuwait University. This work was supported by the Scientific and Technological Research Council of Türkiye, the Ministry of Environment, Urbanization, and Climate Change of the Republic of Türkiye as well as the Intelligence Advanced Research Projects Activity (IARPA) and the Office of Naval Research.&nbsp;</span></p>]]></content:encoded><category><![CDATA[Research science,News,Research News,Science,artificial intelligence,Construction,Earthquakes,Earth]]></category>
            <pubDate>Wed, 25 Mar 2026 08:47:00 -0400</pubDate>
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                        <title>Campus-area development at 15th and High hits milestone</title>
                        <link>https://news.osu.edu/campus-area-development-at-15th-and-high-hits-milestone/</link>
                        <guid>https://news.osu.edu/campus-area-development-at-15th-and-high-hits-milestone/</guid><pp:caseid>444310</pp:caseid><pp:subtitle>May opening planned for Building A</pp:subtitle><description><![CDATA[<p><span><span><span>One of the most dramatic development projects in the campus area is nearing the final stages. Campus Partners&rsquo; 15+HIGH project is now 60% complete.</span></span></span></p>
]]></description><content:encoded><![CDATA[<p><span><span><span>One of the most dramatic development projects in the campus area is nearing the final stages. <a href="https://www.campuspartners.org/15thandhigh">Campus Partners&rsquo; 15+HIGH</a> project is now 60% complete.</span></span></span></p><p><span><span><span>The project, which sits on 9 acres east of the Columbus campus of The Ohio State University, will have four main buildings and a public square, and will feature restaurants, bars and retail stores. It promises to be an exciting gathering space at Ohio State&rsquo;s front door.</span></span></span></p><p><span><span><span>&ldquo;15+HIGH was an attempt to bring the university across High Street for the first time and begin to really engage with the neighborhood in a direct and meaningful way,&rdquo; said Keith Myers,&nbsp;vice president of Planning, Architecture and Real Estate.</span></span></span></p><p><span><span><span>Some of the projects are nearing completion. Building A, opening in May, is mixed-use and serves as home to Ohio State&rsquo;s Office of Advancement. The building features office and retail space and an event center.</span></span></span>&nbsp;</p><p><span><span><span>Building B1, also mixed-use, began construction in December 2020 with a targeted project completion date of February 2022. In addition, WOSU Public Media&rsquo;s headquarters, located at 14th and Pearl, is scheduled to open this spring.&nbsp;A signature hotel and parking garage are also envisioned on the site, but a timeline is to be determined.</span></span></span></p><p><span><span><span>The project will transform Pearl Alley into a vibrant, safe, urban pedestrian alley. By reclaiming bricks and salvaging materials from old buildings, Campus Partners aims to create a home for new dynamic ventures. Architectural elements east of High Street will complement the construction at Ohio State, adding spaces for restaurants, bars and retail stores in the vibrant new neighborhood.</span></span></span></p>]]></content:encoded><category><![CDATA[Campus,News,staff,Construction,students,faculty]]></category>
            <pubDate>Mon, 22 Mar 2021 17:07:19 -0400</pubDate>
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                        <title>Cannon Drive construction nears finish line</title>
                        <link>https://news.osu.edu/cannon-drive-construction-nears-finish-line/</link>
                        <guid>https://news.osu.edu/cannon-drive-construction-nears-finish-line/</guid><pp:caseid>333880</pp:caseid><description><![CDATA[<p>A major construction project at The Ohio State University is closing in on completion.</p>

<p>Crews are nearly finished with the construction for the relocation of <a href="https://fod.osu.edu/cannondrive">Cannon Drive</a>, with the road expected to open at the end of June.</p>

<p>&ldquo;We&rsquo;re about 85 percent complete with construction. Our last step is to open that last section between 12th Avenue and [John] Herrick Drive,&rdquo; said Tom Ekegren, senior project manager for the Office of Facilities Operations and Development. &ldquo;Once that&rsquo;s opened, the sum of the road will be done.&rdquo;</p>

<p>The project is part of&nbsp;<a href="https://pare.osu.edu/framework">Ohio State&rsquo;s Framework 2.0</a>&nbsp;master plan. The new Cannon Drive will help provide flood protection, create 12 acres of developable land and a north-south connection between King and Lane avenues, and will add green space in the Olentangy River corridor.</p>

<p>&ldquo;The move of Cannon Drive is really about protecting the university and, primarily, the health sciences district and the medical center from the 100- and 500-year flood events,&rdquo; said Mark Conselyea, associate vice president for FOD.</p>

<p>The project began Sept. 5, 2017, and the first phase of construction is expected to run through autumn 2019. Part of the project is a pump house powered by three massive pumps that can drive 27,000 gallons of water per minute away from the campus and back into the river.</p>

<p>&ldquo;By doing this project it raises the protection of the campus and removes the hospital from that floodplain,&rdquo; Ekegren said. &ldquo;Phase one is what we&rsquo;re doing now between King Avenue and John Herrick Drive. It takes that first step to take it out of that floodplain.&rdquo;</p>]]></description><category><![CDATA[News,video,Campus,Construction]]></category>
            <pubDate>Tue, 30 Apr 2019 16:21:27 -0400</pubDate>
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