Empirical analysis of deep learning techniques for enhancing patient treatment facilities in healthcare sector

Chetan Jagannath Shelke, K. Suresh Kumar, Girija Rani Karetla, M. N. Shahenaaz Sulthana, Rasika Beohar, Kumud Pant

Research output: Chapter in Book / Conference PaperConference Paperpeer-review

1 Citation (Scopus)

Abstract

![CDATA[The study investigates with Machine learning (ML), which is a type of neural network (AI) that empowers software programmers to start increasing prediction without being done with full to do so. Because data is so valuable, improving strategies for intelligently having to manage the now-ubiquitous content infrastructures is a necessary part of the process toward completely autonomous agents. In a nutshell, deep learning is a subset of machine learning that solves problems that machine learning alone cannot. Deep learning use neural networks to boost computing labour while delivering accurate results. NLP, speech recognition, and facial recognition are just a few of the fantastic uses of deep learning. For example, when you submit a photo of yourself and a buddy to Facebook, Facebook dynamically tags your colleague and proposes a name for you to use. To recognise a face, Facebook employs deep learning algorithms. Deep learning techniques comprehend spoken human languages and transform them to text. Deep learning, in tandem with IoT, might lead to a slew of game-changing advancements in the future. Monitoring cardiac rhythms, as well as glucose levels, may be challenging, and even those who are represented at medical institutions. Intermittent heart rate assessments cannot protect against sudden changes in vital signs, and standard techniques of heart rhythm surveillance used in hospitals require patients to be permanently attached to wired apparatus, limiting their mobility.]]
Original languageEnglish
Title of host publicationProceedings of the 2nd International Conference on Advance Computing and Innovative Technologies in Engineering (ICACITE 2022), Greater Noida, India, 28-29 April 2022
PublisherIEEE
Pages1314-1318
Number of pages5
ISBN (Print)9781665437899
DOIs
Publication statusPublished - 2022
EventInternational Conference on Advance Computing and Innovative Technologies in Engineering -
Duration: 28 Apr 2022 → …

Conference

ConferenceInternational Conference on Advance Computing and Innovative Technologies in Engineering
Period28/04/22 → …

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