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Raj Shah

Publications and source records attributed to Raj Shah.

8 recordsLinked to original sources

The Role of Artificial Intelligence Combined With Digital Cholangioscopy for Indeterminant and Malignant Biliary Strictures: A Systematic Review and Meta-analysis.

BACKGROUND: Current endoscopic retrograde cholangiopancreatography (ERCP) and cholangioscopic-based diagnostic sampling for indeterminant biliary strictures remain suboptimal. Artificial intelligence (AI)-based algorithms by means of computer vision in machine learning have been applied to cholangioscopy in an effort to improve diagnostic yield. The aim of this study was to perform a systematic review and meta-analysis to evaluate the diagnostic performance of AI-based diagnostic performance of AI-associated cholangioscopic diagnosis of indeterminant or malignant biliary strictures. METHODS: Individualized searches were developed in accordance with PRISMA and MOOSE guidelines, and meta-analysis according to Cochrane Diagnostic Test Accuracy working group methodology. A bivariate model was used to compute pooled sensitivity and specificity, likelihood ratio, diagnostic odds ratio, and summary receiver operating characteristics curve (SROC). RESULTS: Five studies (n=675 lesions; a total of 2,685,674 cholangioscopic images) were included. All but one study analyzed a deep learning AI-based system using a convoluted neural network (CNN) with an average image processing speed of 30 to 60 frames per second. The pooled sensitivity and specificity were 95% (95% CI: 85-98) and 88% (95% CI: 76-94), with a diagnostic accuracy (SROC) of 97% (95% CI: 95-98). Sensitivity analysis of CNN studies (4 studies, 538 patients) demonstrated a pooled sensitivity, specificity, and accuracy (SROC) of 95% (95% CI: 82-99), 88% (95% CI: 72-95), and 97% (95% CI: 95-98), respectively. CONCLUSIONS: Artificial intelligence-based machine learning of cholangioscopy images appears to be a promising modality for the diagnosis of indeterminant and malignant biliary strictures.

Humans↗

Enteral stents.

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Current Procedural Terminology↗

PneumoADIP: an example of translational research to accelerate pneumococcal vaccination in developing countries.

Historically, the introduction of new vaccines in developing countries has been delayed due to lack of a coordinated effort to address both demand and supply issues. The introduction of vaccines in developing countries has been plagued by a vicious cycle of uncertain demand leading to limited supply, which keeps prices relatively high and, in turn, further increases the uncertainty of demand. The Pneumococcal Vaccines Accelerated Development and Introduction Plan (PneumoADIP) is an innovative approach designed to overcome this vicious cycle and to help assure an affordable, sustainable supply of new pneumococcal vaccines for developing countries. Translational research will play an important role in achieving the goals of PneumoADIP by establishing the burden of pneumococcal disease and the value of pneumococcal vaccines at global and country levels. If successful, PneumoADIP will reduce the uncertainty of demand, allow appropriate planning of supply, and achieve adequate and affordable availability of product for the introduction of pneumococcal vaccines. This model may provide a useful example and valuable lessons for how a successful public-private partnership can improve global health.

Developing Countries↗