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Prabha Kumaresan

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Review Open access Jul 2026

Cloud-Based Smart Health Assistant with Predictive Analytics and Chatbot Support

The swift development of digital health technologies has changed the way healthcare services are provided and now allows more accessible, efficient, and patient-centric solutions to be provided. Chronic illnesses like cardiovascular disease, diabetes, and chronic kidney disease need to be identified at an early stage and monitored, and interventions are necessary; yet contemporary healthcare systems are largely reactive and based on face to face visit. This paper describes the design and creation of a Cloud-Based Smart Health Assistant, which combines predictive analytics with a chatbot-based conversational interface to enable early detection of machine learning risk factors of disease. The suggested system will make use of machine learning and deep learning designs to analyze the health data provided by users and create predictions of disease risks with various chronic conditions. The input is collected with a conversational chatbot interface and used to explain the consequences of predictions and give general health advice in a simplified way. The system is deployed in a cloud based environment so that it can be scaled and be modular and efficient in its processing of data. The user survey was a questionnaire-based survey aimed at assessing the user acceptance, usability expectation, and trust of the AI-based health risk assessment. The results show that predictive analytics, chatbot interaction, and cloud-based healthcare platforms have great user support. Prototyping and functional testing prove the fact that the integrated system will be able to provide interpretable prediction outcomes and enhance the level of interaction. The paper brings on board an actual application implementation of predictive analytics and conversational agents in a common smart healthcare system. The given system suggests the opportunities of AI-based health assistants to increase the level of primary risk awareness, accessibility, and preventative health care services.

Prabha Kumaresan, Yubbhashana Danesh · 0 citations
Open access Jul 2026

Brain Tumor Detection Using MRI Images

The study adds a rigorous benchmarking mechanism and empirical evidence for adopting ResNet50 as a robust model for multi-class brain tumour diagnosis and highlights the power of deep residual learning for solving some of the difficulties in classifying brain MRI, such as inter-class similarity and feature heterogeneity.

Prabha Kumaresan, Xin Tian Lim · 0 citations