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Management of Pancreatic Cystic Lesions Using Artificial Intelligence Based on EUS and Multimodal Data

RECRUITINGSponsored by Huazhong University of Science and Technology
Actively Recruiting
SponsorHuazhong University of Science and Technology
Started2025-01-01
Est. completion2026-04
Eligibility
Age18 Years+
Healthy vol.Accepted

Summary

The primary objective is to construct a multimodal AI model (Cyst-AI) based on EUS images and clinical data such as imaging features(CT or MRI) and laboratory tests to assist endoscopists in the diagnosis of pancreatic cystic lesions(PCLs), mainly differentiating mucinous from non-mucinous lesions. The secondary objective is to evaluate the model's effectiveness in risk stratification and clinical management for patients with PCLs.

Eligibility

Age: 18 Years+Healthy volunteers accepted
Inclusion criteria:

* Patients whose EUS results indicates pancreatic cystic or cystoid lesions;
* Mucinous lesions: including mucinous cystic neoplasm (MCN), intraductal papillary mucinous neoplasm (IPMN);
* Non-mucinous lesions: including pancreatic pseudocyst, serous cystic neoplasm (SCN), cystic neuroendocrine tumor (cNET).

Exclusion criteria:

* Patients whose age is less than 18 years old;
* Patients who have undergone pancreatic surgery before the EUS examination;
* Patients who have received chemotherapy and radiotherapy for pancreatic tumors before the EUS examination;
* Pathological results indicate that pancreatic lesions are metastatic lesions from other sites;
* Patients whose EUS images or reports are missing;
* EUS image quality does not meet the requirements for review, such as blurry imaging or containing artifacts, biopsy needles, measuring scales, or other additional annotations that are not part of the original EUS image;
* Patients whose final diagnosis is unclear.

Conditions7

CancerIntraductal Papillary Mucinous Neoplasm of PancreasMucinous Cystadenoma of PancreasNeuroendocrine Tumors (NET)Pancreatic Cystic LesionPseudocyst PancreasSerous Cystadenoma

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