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临床试验/NCT07360145
NCT07360145进行中(未招募)不适用

Intelligent Support for Radiological Reporting of Lung Neoplasms - SPOILERS Study

Azienda Ospedaliera SS. Antonio e Biagio e Cesare Arrigo di Alessandria0 个研究点目标入组 329 人开始时间: 2024年3月23日最近更新:

试验速览

阶段
不适用
状态
进行中(未招募)
发起方
入组人数
329

研究概览

简要总结

Lung cancer is one of the most common cancers and has one of the worst prognoses, mainly due to the difficulty of early diagnosis. In Italy, there are an estimated 41,000 new cases each year, and in 2021, the disease was responsible for approximately 34,000 deaths. The social impact is significant, as the disease is often diagnosed at an advanced stage, when the chances of survival are reduced: the 5-year survival rate is around 18% in advanced stages, while it can reach 90% if diagnosed at an early stage.

Early-stage lung cancer mainly manifests itself in the form of pulmonary nodules, which can be detected by computed tomography (CT). However, the diagnosis of these nodules often requires invasive procedures, such as bronchoscopy, CT-guided needle biopsy, or surgical biopsies, which affect patients' quality of life and healthcare costs. For this reason, the ability to accurately distinguish between benign and malignant nodules is a central theme in clinical research.

In recent years, artificial intelligence, particularly deep learning techniques, has shown considerable potential in supporting CT screening. Results show that AI can achieve performance superior to that of individual radiologists and comparable to that of a multidisciplinary team, using histological reports as a diagnostic reference. This confirms the value of AI as a tool to support clinical decision-making.

Considering the multimodal nature of clinical data (images, text reports, diagnostic tests), there is growing interest in models capable of integrating multiple sources of information. In this context, the research project aims to develop a system capable of automatically recognizing pulmonary nodules and generating natural language text descriptions of the findings.

研究设计

研究类型
Observational
观察模型
Cohort
时间视角
Other

入排标准

年龄范围
18 Years 至 —(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • Age ≥18 years
  • Evidence of pulmonary nodule documented radiologically by chest CT scan
  • Presence of CT scan report
  • Presence of histological report (pulmonary nodule biopsy)
  • Presence of written informed consent, signed

排除标准

  • Previous cancer
  • Previous lung surgery
  • Previous radiation therapy and/or chemotherapy

研究者

发起方
Azienda Ospedaliera SS. Antonio e Biagio e Cesare Arrigo di Alessandria
申办方类型
Other
责任方
Sponsor

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