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Tulip Saikia

Biomedical Engineering
North Eastern Hill University · India
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Research keywords

Medical ImagingNeural EngineeringTissue EngineeringBiomechanicsProstheticsData scienceArtificial intelligenceQuantum computingNanotechnology

Publications

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Data science: Healing with algorithms

Innovation and Emerging Technologies · 2025

Mining data, saving lives. As articulated by Nate Silver, “The most pivotal competency for any data scientist is comprehending the essence of the data,” a tenet that holds particular significance in the healthcare domain. Complementing this, Andrew Ng’s declaration that “Data is the new oil” underscores its critical role in propelling data-driven paradigms, while DJ Patil’s assertion that “Data is the new currency” amplifies its escalating significance in enhancing patient outcomes. The advancement of business intelligence (BI) tools has constituted a robust framework for sophisticated analytics; however, conventional systems frequently falter in extracting actionable intelligence from the burgeoning complexity and voluminous nature of healthcare data. Innovative methodologies in healthcare data science are emerging, encompassing predictive analytics models that utilize historical patient data to prognosticate health trajectories alongside natural language processing (NLP) techniques designed to distill salient insights from unstructured clinical narratives. Moreover, machine learning algorithms, including decision trees and neural networks, are fundamentally transforming diagnostic precision by unearthing intricate patterns embedded within patient datasets. As of 2021, the United States dominated the big data and business analytics (BDA) landscape, commanding 51% of the global market share—an indicator of the sector’s strategic prioritization of data governance and analytics. This trajectory accentuates the indispensable nature of data science in sculpting the future of healthcare, enhancing operational efficacy, optimizing clinical workflows, and cultivating patient-centric care. As the healthcare sector perpetually generates vast data reservoirs, incorporating advanced analytics is not merely advantageous but essential for catalyzing sustainable innovation, advancing population health management, and ensuring superior patient outcomes.

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