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xiaoman-zhang committed Jul 28, 2024
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Expand Up @@ -76,27 +76,6 @@ <h2>Research</h2>
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<img src="image/RaTEScore.png" width="320" height="120" style="border-style: none">
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<a href="https://www.medrxiv.org/content/medrxiv/early/2024/06/24/2024.06.24.24309405.full.pdf">
<papertitle>RaTEScore: A Metric for Radiology Report Generation</papertitle>
</a>
<br>
<a>Weike Zhao</a>,
<a>Chaoyi Wu</a>,
<strong>Xiaoman Zhang</strong>,
<a href="https://mediabrain.sjtu.edu.cn/yazhang/">Ya Zhang</a>,
<a href="https://mediabrain.sjtu.edu.cn/members/">Yanfeng Wang</a>,
<a href="https://weidixie.github.io/">Weidi Xie</a>,
<br>
<em>Technical Report, 2024.</em><br>
In this paper, we introduce a novel, entity-aware metric, termed as Radiological Report (Text) Evaluation (RaTEScore), to assess the quality of medical reports generated by AI models.
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<img src="image/RadGenome_ChestCT.png" width="320" height="180" style="border-style: none">
Expand All @@ -118,7 +97,28 @@ <h2>Research</h2>
In this paper, we introduce RadGenome-Chest CT, a comprehensive, large-scale, region-guided 3D chest CT interpretation dataset based on CT-RATE. It includes: Organ-level segmentation for 197 categories; 665K multi-granularity grounded reports; 1.3M grounded VQA pairs.
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<tr onmouseout="ld_stop()" onmouseover="ld_start()">
<td style="padding:0px;width:25%;vertical-align:middle">
<img src="image/RaTEScore.png" width="320" height="120" style="border-style: none">
</td>
<td style="padding:10px;width:75%;vertical-align:middle">
<a href="https://www.medrxiv.org/content/medrxiv/early/2024/06/24/2024.06.24.24309405.full.pdf">
<papertitle>RaTEScore: A Metric for Radiology Report Generation</papertitle>
</a>
<br>
<a>Weike Zhao</a>,
<a>Chaoyi Wu</a>,
<strong>Xiaoman Zhang</strong>,
<a href="https://mediabrain.sjtu.edu.cn/yazhang/">Ya Zhang</a>,
<a href="https://mediabrain.sjtu.edu.cn/members/">Yanfeng Wang</a>,
<a href="https://weidixie.github.io/">Weidi Xie</a>,
<br>
<em>Technical Report, 2024.</em><br>
In this paper, we introduce a novel, entity-aware metric, termed as Radiological Report (Text) Evaluation (RaTEScore), to assess the quality of medical reports generated by AI models. We developed a comprehensive medical NER dataset, RaTE-NER, and trained an NER model specifically for crucial medical entities.
purpose
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<img src="image/KEP.png" width="320" height="120" style="border-style: none">
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