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Lakshmi Narayana

Publications and source records attributed to Lakshmi Narayana.

2 recordsLinked to original sources

A Federated Learning Framework for Privacy-Preserving Oral Cancer Screening on Smartphones

Data are the cornerstone of robust AI models. However, in the medical domain, access to reliable data is constrained by regulatory requirements and patient privacy, and clinical oral images are particularly difficult to obtain. Federated learning (FL) mitigates these constraints by enabling collaborative model development across decentralized datasets without centralizing or sharing patient data. This work presents a practical FL framework that supports geographically distributed collaboration among AI healthcare researchers and facilitates the development of robust models for oral cancer screening. Client devices were interconnected via Tailscale to provide secure networking and real-time communication. We implemented the FL workflow using the Flower framework for server-side aggregation, while client deployment and orchestration were configured manually; no enterprise FL platforms were used. To support a smartphone-based screening application, we evaluated lightweight, mobile-friendly architectures including MobileNetV2, MobileNetV3Large, and MobileNetV4-Conv-Small (MNv4-Conv-S). Across the global lightweight models aggregated using FedAvg, the MNv4-Conv-S based global model (GM-V4) achieved the best performance, reaching an AUC of 0.929 and an accuracy of 87%

cs.CR↗

Notes on "An Effective ECC based User Access Control Scheme with Attribute based Encryption for WSN"

The rapid growth of networking and communication technologies results in amalgamation of 'Internet of Things' and 'Wireless sensor networks' to form WSNIT. WSNIT facilitates the WSN to connect dynamically to Internet and exchange the data with the external world. The critical data stored in sensor nodes related to patient health, environment can be accessed by attackers via insecure internet. To counterattack this, there is a demand for data integrity and controlled data access by incorporating a highly secure and light weight authentication schemes. In this context, Santanu et al had proposed an attribute based authentication framework for WSN and discussed on its security strengths. In this paper, we do a thorough analysis on Santanu et al scheme, to show that their scheme is susceptible to privileged insider attack and node capture attack. We also demonstrate that Santanu et al scheme consists of major inconsistencies which restrict the protocol execution.

cs.CR↗