Paper Title

Energy Prediction of Sensor Nodes using Deep Learning

Article Identifiers

Registration ID: IJNRD_199866

Published ID: IJNRD2306511

DOI: Click Here to Get

Authors

Yash Goswami , Fatima Inamdar , Mandar Mokashi , Namrata Thakur

Keywords

sensor nodes, deep learning, feed-forward neural network, energy prediction, sensor network

Abstract

Wireless Sensor Networks (WSNs) have various applications, but the limited battery life of sensor nodes which makes energy consumption a crucial characteristic of sensor networks. Despite recent research focusing heavily on energy-conscious applications and operating systems, energy consumption remains a limiting factor. Once sensor nodes have already been deployed. It is challenging and sometimes even impossible to change batteries which may result in erroneous lifetime prediction of sensor network causing high costs and may render the network useless before its purpose is fulfilled. The models show high accuracy in predicting energy consumption, enabling the development of more efficient and sustainable WSNs. The significance of this approach extends to other domains such as IoT and cyber-physical systems, enabling accurate energy prediction and efficient resource management. The research demonstrates that the use of deep learning techniques significantly improves the accuracy of energy prediction compared to traditional machine learning techniques. This approach can assist researchers and engineers in developing energy-efficient WSNs, ensuring their sustainability. Moreover, the proposed method can be applied in a variety of applications such as energy-efficient routing and adaptive power management in WSNs. The study provides valuable insights into the energy consumption of the sensor nodes & opens up new avenues for developing sustainable and efficient WSNs.

How To Cite

"Energy Prediction of Sensor Nodes using Deep Learning", IJNRD - INTERNATIONAL JOURNAL OF NOVEL RESEARCH AND DEVELOPMENT (www.IJNRD.org), ISSN:2456-4184, Vol.8, Issue 6, page no.f98-f108, June-2023, Available :https://ijnrd.org/papers/IJNRD2306511.pdf

Issue

Volume 8 Issue 6, June-2023

Pages : f98-f108

Other Publication Details

Paper Reg. ID: IJNRD_199866

Published Paper Id: IJNRD2306511

Downloads: 000121170

Research Area: Engineering

Country: Nagpur, Maharashtra, India

Published Paper PDF: https://ijnrd.org/papers/IJNRD2306511.pdf

Published Paper URL: https://ijnrd.org/viewpaperforall?paper=IJNRD2306511

About Publisher

Journal Name: INTERNATIONAL JOURNAL OF NOVEL RESEARCH AND DEVELOPMENT(IJNRD)

ISSN: 2456-4184 | IMPACT FACTOR: 8.76 Calculated By Google Scholar | ESTD YEAR: 2016

An International Scholarly Open Access Journal, Peer-Reviewed, Refereed Journal Impact Factor 8.76 Calculate by Google Scholar and Semantic Scholar | AI-Powered Research Tool, Multidisciplinary, Monthly, Multilanguage Journal Indexing in All Major Database & Metadata, Citation Generator

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Call For Paper - Volume 10 | Issue 8 | August 2025

IJNRD is Scholarly open access journals, Peer-reviewed, and Refereed Journals, High Impact factor 8.76 (Calculate by google scholar and Semantic Scholar | AI-Powered Research Tool), Multidisciplinary, Monthly, Indexing in all major database & Metadata, Citation Generator, Digital Object Identifier(DOI) with Open-Access Publications.

INTERNATIONAL JOURNAL OF NOVEL RESEARCH AND DEVELOPMENT (IJNRD) aims to explore advances in research pertaining to applied, theoretical and experimental Technological studies. The goal is to promote scientific information interchange between researchers, developers, engineers, students, and practitioners working in and around the world. IJNRD will provide an opportunity for practitioners and educators of engineering field to exchange research evidence, models of best practice and innovative ideas.

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Paper Submission Open For: August 2025

Current Issue: Volume 10 | Issue 8

Last Date for Paper Submission: Till 31-Aug-2025

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