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                <text>Proceedings of the 6th International Conference on Smart Electronics and Communication, ICOSEC 2025;pp.529-534</text>
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                <text>Debnath J., Christ (Deemed To Be University), India; George J., Christ (Deemed To Be University), India</text>
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                <text>Ovarian cancer is a leading cause of death worldwide, frequently diagnosed at advanced stages due to the lack of effective early screening methods. This work proposes a non-invasive cancer diagnostics utilizing amperometric electrochemical biosensors in early cancer detection from biological fluids, such as urine-based by combination of specific biomarkers like HE4 and Ca125, which are closely associated with ovarian cancer. This study approach integrates machine learning models to work with biosensor data for cancer classification tasks, and federated learning methods to ensure patient data privacy. The proposed system achieves diagnostic results using a synthetic dataset with over 98% accuracy. This decentralized healthcare solution demonstrates early ovarian cancer detection and improved patient outcomes by combining predictive capability with privacy preservation.   2025 IEEE.</text>
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                <text>Jayakumar, S.; Reddy Cheepati, Kumar; Praveen Kumar, D.; Sita, Hareesh; Arunraja, A.; Venkatapathi, K.</text>
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                <text>Proceedings of the 6th International Conference on Smart Electronics and Communication, ICOSEC 2025;pp.787-792</text>
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                <text>Jayakumar S., Sri Sairam College Of Engineering, Bengaluru, India; Reddy Cheepati K., Ksrm College Of Engineering, Electrical And Electronics Engineering, Kadapa, India; Praveen Kumar D., Sri Venkateswara College Of Engineering, Electrical And Electronics Engineering, Tirupati, India; Sita H., Mother Theresa Institute Of Engineering And Technology, Electrical And Electronics Engineering, Palamaner, India; Arunraja A., Christ Deemed To Be University, Bangalore, India; Venkatapathi K., Sri Venkatesa Perumal College Of Engineering And Technology, Electrical And Electronics Engineering, Puttur, India</text>
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                <text>This work presents a hybrid power conversion strategy that merges high-efficiency digital DC-DC techniques with a universal single-stage DC-DC/AC converter for renewable and low-power applications. From the first concept, a digitally controlled buck converter employing a two-step digital PWM, Adaptive Window ADC, and Self-Tracking Zero Current Detector ensures ultra-low power consumption, minimized output ripple, and improved efficiency, making it suitable for IoT and energy-constrained devices. From the second, a dual-leg single-stage converter architecture enables seamless photovoltaic integration with both DC and AC grids, reducing redundancy through shared semiconductor structures and optimized protection circuits. By unifying these approaches, the proposed system enhances power density, conversion flexibility, and grid adaptability while ensuring reduced switching losses, minimized EMI, and stable operation under varying loads. Simulation and experimental validation confirm efficiency above 91% for low-power DC applications and up to 97% for PV-based grid operation, demonstrating strong potential in sustainable smart energy systems.   2025 IEEE.</text>
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                <text>DC-DC Buck Converter; Digital PWM; Photovoltaic Integration; Renewable Energy Systems; Universal Solar Converter; Zero Current Detector</text>
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                <text>Revathi, S.; Meesala, Shobha; Sudha, V.; Priyanka, R.; Manikandakumar, M.; Vigneshwaran, T.</text>
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                <text>Algorithmic Crypto Trading using EMA Strategy</text>
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                <text>Proceedings of 5th International Conference on Pervasive Computing and Social Networking, ICPCSN 2025;pp.997-1002</text>
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                <text>Revathi S., Cmr Institute of Technology, Bengaluru, India; Meesala S., Reva University, Bangalore, India; Sudha V., Cambridge Institute of Technology, Bangalore, India; Priyanka R., Cambridge Institute of Technology, Bangalore, India; Manikandakumar M., Christ University, Bangalore, India; Vigneshwaran T., Christ University, Bangalore, India</text>
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                <text>Algorithmic trading has transformed financial markets by enabling data-driven strategies that enhance efficiency and decision-making. This paper presents a web-based crypto currency trading platform that employs the Exponential Moving Average (EMA) strategy for automated trade execution, market trend analysis, and portfolio tracking. The platform integrates key performance metrics, including win rate, average profit per trade, risk-reward ratio, and profit factor to assess trading effectiveness. Notably, EMA-based trading achieves the highest profit factor of 3.5 which outperformed deep learning and manual trading by 9.37% and 133%, respectively. Additionally, EMA exhibits a strong win rate of 60%, compared to 65% for deep learning and 40% for manual trading, while maintaining a balanced risk-reward ratio of 2.2. The system features live data visualization, customizable watchlists, and automated trading workflows, providing traders with actionable insights with minimized human error. Performance evaluation indicates that EMA offers a superior trade-off between profitability and risk management, making it a robust and adaptable solution for navigating cryptocurrency markets. This work bridges the gap between manual trading and advanced algorithmic strategies, delivering a user-friendly and efficient trading framework.   2025 IEEE.</text>
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                <text>Kafila; Hari Krishna, Somanchi; Kulshrestha, Nitin; Singh Sidhu, Kawerinder; Budiharjo, Roy; Inumula, Krishna Murthy</text>
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                <text>The Impact of AI on High-Frequency Trading: A New Paradigm in Share Market Dynamics</text>
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                <text>2025 International Conference on Pervasive Computational Technologies, ICPCT 2025;pp.452-458</text>
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                <text>Kafila, Sr University, School of Business, Telangana, Warangal, India; Hari Krishna S., Vignana Bharathi Institute of Technology, Department of Business Management, Aushpur Village, Ghatkesar Mandal, Telangana State, 501301, India; Kulshrestha N., Christ Deemed to Be University, Commerce Finance and Accountancy, Uttar Pradesh, Ghaziabad, India; Singh Sidhu K., Uttaranchal University, Uttaranchal Institute of Management, Uttarakhand, Dehradun, India; Budiharjo R., Telkom University, Accounting, School of Economics and Business, West Java, Bandung, 40257, Indonesia; Inumula K.M., Symbiosis International (Deemed University), Symbiosis Institute of International Business (SIIB), Maharashtra, Pune, 411057, India</text>
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                <text>Naredla S., Sr University, School of Business, Telangana, Warangal, India; Singh M., Quantum University, Computer Science and Engineering, Uttarakhand, Roorkee, India; Chaturvedi N., Emirates Aviation University, Faculty of Business Management, Dubai, United Arab Emirates; Banerjee D., Christ University, India; Gobinath V.M., Rajalakshmi Institute of Technology, Mechanical Engineering Department, Tamilnadu, Chennai, India; Anil Tiwari D., Rnb Global University Bikaner, Department of Commerce and Management, India</text>
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                <text>An interconnected system of Internet-enabled devices that can collect and transmit statistics via a wireless connection without the assistance of people is known as the Internet of Things (IoTs). Accordingly, the IoT's seductive power is causing significant shifts in the current corporate environment. The digital marketing industry stands to gain the most from this innovation, which is currently causing major shifts in many other sectors. Using a variety of digital marketing strategies, this innovation gathers numerous types of consumer statistics. IoT technological advancements' impact on digital marketing tactics and customer interaction has emerged as a crucial research topic as it begins to pervade many facets of everyday existence. This investigation examines the application of IoT-based machine learning (ML) in digital marketing for the food business. To give ML-based suggestions, consumer data is analyzed, interests are identified, and conduct is predicted using ML approaches. The ensemble technique aggregates the results of multiple ML techniques to produce an individual forecast. The accuracy matrices graphs for the K-nearest neighbor and decision trees produced excellent estimations, with 100% accuracy and 0.0 error, correspondingly. The nae Bayes method achieved 97.2% accuracy with a 0.029 error, successfully identifying the right tags across every category. The guided ensemble of 3 ML methods is demonstrated by effectively enhancing digital marketing tactics in the food distribution industry by reducing duration and expenses.  2025 IEEE.</text>
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                <text>Sathyavani, Bandela; Poddutoori, Jaipal Reddy; Pawar, Sudarshan A.; Banerjee, Devleena; Muralidhar, L.B.; Kapila, Dhiraj</text>
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                <text>Exploring Emerging AI and IoT Technologies to Enhance Customer Relationship Management in 5G Networks</text>
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                <text>Sathyavani B., Sr University, School of Engineering, Department of Eee, Telangana, Warangal, India; Poddutoori J.R., Solution Architect Affiliation Bbu, Downingtown, 19335, PA, United States; Pawar S.A., Pes Modern Institute of Business Studies, Marketing Management, Nigdi, Pune, India; Banerjee D., Christ University, India; Muralidhar L.B., School of Commerce, Jain (Deemed to Be University), Department of Management Studies, Karnataka, Bengaluru, India; Kapila D., Lovely Professional University, Department of Computer Science &amp;amp; Engineering, Punjab, Phagwara, India</text>
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                <text>The convergence of artificial intelligence, Internet of Things for management of 5G networks to revolutionize customer relationship management. It enables customer engagement, efficiency and levels of personalization. The study explores the emergence of IoT and AI to enhance CRM framework within low-latency and high-speed infrastructure provided using 5G technology. Real time data collection with IoT and AI driven data analytics that offer actionable insights to enable customer behaviour, enabling adaptive and predictive CRM strategies. Additionally, enhanced connectivity with 5G technology to facilitate integration of smart devices to ensure interactive and consistent experience for the customers. The present study examined the operational and technical synergy between the technologies and has high impact on the efficiency of CRM, implementation challenges that include data security and privacy concerns.  2025 IEEE.</text>
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                <text>5G Network; Artificial Intelligence; customer relationship management; Education; Internet of Things</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>Flowing Blood Analysis &amp;amp; Separation: Integrating Raman Spectroscopy &amp;amp; Acoustophoresis in a Microfluidic System</text>
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              <elementText elementTextId="274480">
                <text>Proceedings of the 2025 3rd International Conference on Cyber Physical Systems, Power Electronics and Electric Vehicles, ICPEEV 2025;</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICPEEV67897.2025.11291246" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICPEEV67897.2025.11291246&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105032375308?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105032375308?origin=resultslist&lt;/a&gt;</text>
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                <text>Rawal S., Christ University, Department of Computer Science, Karnataka, Bangalore, India; Sinha S., Christ University, Department of Computer Science, Karnataka, Bangalore, India; Jayapriya J., Christ University, Department of Computer Science, Karnataka, Bangalore, India; Vinay M., Christ University, Department of Computer Science, Karnataka, Bangalore, India</text>
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                <text>The proposed system combines Raman Spectroscopy and Acoustophoresis in a microfluidic environment to provide label-free analysis and separation of the cells present in the blood, including red blood cells, white blood cells and platelets. Based on the Raman Effect, Raman Spectroscopy captures crucial information about the structural and vibrational traits of the blood sample, exposing the molecules to monochromatic radiation and recording their Raman shift. This data is processed using LSTM recurrent neural networks, creating a deep-learning framework for species identification and quantification. The model can forecast the cell population in the blood sample and obtain information on the size and compressibility of individual cells due to the microfluidic nature of the data received by the Raman Spectroscope. Raman spectra allow estimation of the cell size and compressibility, guiding cell separation using acoustophoresis and allowing adjustments of the acoustic wave frequency based on the estimated size and compressibility of the cells. The targeted cells are directed toward a designated collection chamber within the microfluidic system by dynamically adjusting the acoustic wave frequency. Repeated application allows complete separation of the cells and pressure-driven delivery of the targeted cells to their respective collection reservoirs.  2025 IEEE.</text>
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            <description>The topic of the resource</description>
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              <elementText elementTextId="274484">
                <text>Acoustophoresis; Blood Cell Separation; Long Short-Term Memory Recurrent Neural Networks; Microfluidic Systems; Raman Spectroscopy</text>
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              <elementText elementTextId="274485">
                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>ISBN: 979-833158606-5;</text>
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              <elementText elementTextId="274490">
                <text>Kalpana, P.; Sumathi, P.; Jose, Teena; Deepa, S.; Gondkar, Raju Ramakrishna; Zeema, Loveline J.</text>
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                <text>Matrix-Based Apriori Methods for Frequent Pattern Mining: An In-Depth Survey</text>
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              <elementText elementTextId="274493">
                <text>3rd International Conference on Recent Advances in Information Technology for Sustainable Development, ICRAIS 2025 - Proceedings;pp.73-78</text>
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            </elementTextContainer>
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                <text>&lt;a href="https://doi.org/10.1109/ICRAIS66073.2025.11234713" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRAIS66073.2025.11234713&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105029752804?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105029752804?origin=resultslist&lt;/a&gt;</text>
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                <text>Kalpana P., Dept. of Computer Science, CHRIST University, Karnataka, Bangalore, India; Sumathi P., Dept. of Computer Science, Vysya College, Tamil Nadu, Salem, India; Jose T., Dept. of Computer Science, CHRIST University, Karnataka, Bangalore, India; Deepa S., Dept. of Computer Science, CHRIST University, Karnataka, Bangalore, India; Gondkar R.R., Dept. of Computer Science, CHRIST University, Karnataka, Bangalore, India; Zeema L.J., Dept. of Computer Science, CHRIST University, Karnataka, Bangalore, India</text>
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                <text>Data Mining identifies intriguing, useful, and previously unknown patterns and correlations between data stored in databases or warehouses. Frequent Pattern Mining (FPM) is one of the vital methods in the prospering arena of data mining (DM), and it describes the relationship between the items in the datasets. In the last two decades, many studies were carried out in FPM using the Apriori algorithm. The Apriori algorithm requires many database scans and produces numerous candidate itemsets, increasing I/O cost and decreasing computational efficiency. To address these issues, researchers contributed many improved versions of Apriori and proved that those algorithms scan the database only once and identify the frequent itemsets quickly, especially when the itemsets are higher, and provide higher efficiency and feasibility. This research article summarizes matrix-based Apriori algorithms in the literature used for identifying frequent itemsets. 2025 IEEE.</text>
              </elementText>
            </elementTextContainer>
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          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
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              <elementText elementTextId="274497">
                <text>Apriori; Data Mining; Frequent Pattern Mining; Matrix-based Apriori</text>
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            <name>Publisher</name>
            <description>An entity responsible for making the resource available</description>
            <elementTextContainer>
              <elementText elementTextId="274498">
                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>ISBN: 979-833150143-3;</text>
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              <elementText elementTextId="274502">
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              <elementText elementTextId="274503">
                <text>Gupta, Shrutika; Naskar, Annesha; Misra, Bitan; Hemanth, K.S.; Chakraborty, Sayan; Kulkarni, Aparna Shrikant</text>
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                <text>Integrating k-Means++ with ARCANE: A Scalable Framework for Exact Cluster Unlearning</text>
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                <text>01-01-2025</text>
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              <elementText elementTextId="274506">
                <text>Proceedings of the International Conference on Research in Computational Intelligence and Communication Networks, ICRCICN;Issue;2025;pp.418-423</text>
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              <elementText elementTextId="274507">
                <text>&lt;a href="https://doi.org/10.1109/ICRCICN68210.2025.11364795" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRCICN68210.2025.11364795&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105035367086?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105035367086?origin=resultslist&lt;/a&gt;</text>
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              <elementText elementTextId="274508">
                <text>Gupta S., CHRIST (Deemed to be University), Department of Computer Science, Bangalore, India; Naskar A., CHRIST (Deemed to be University), Department of Computer Science, Bangalore, India; Misra B., Techno International New Town, Department of Computer Science and Engineering, West Bengal, India; Hemanth K.S., CHRIST (Deemed to be University), Department of Computer Science, Bangalore, India; Chakraborty S., JIS College of Engineering, Department of Computer Science and Technology, West Bengal, Kalyani, India; Kulkarni A.S., MIT Academy of Education, Alandi, Department of Computer Science and Engineering (Data Science), Pune, India</text>
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                <text>To address the demand for exact data removal in unsupervised clustering, a novel framework for exact machine unlearning is proposed that integrates the K-Means++ algorithm with ARCANE. This framework combines high-quality cluster initialization with targeted partitioning, allowing a more efficient method for removing data without the need for a naive retraining of the model. The proposed model is compared to a SISA-based approach against synthetic and Iris datasets. The ARCANE K-Means++ model demonstrated superior clustering quality, achieving a Silhouette Score of 0.841 to the baseline's performance of 0.263. ARCANE framework also demonstrated better speedup and predictable unlearning times for typical deletion requests than the SISA model. This is a strong, scalable, and provably-exact method for machine unlearning, providing a new and intuitive framework for developing privacy-preserving AI.  2025 IEEE.</text>
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            <description>The topic of the resource</description>
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              <elementText elementTextId="274510">
                <text>ARCANE; Clustering; K-means++; Machine Unlearning</text>
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            <elementTextContainer>
              <elementText elementTextId="274511">
                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>Proceedings of the International Conference on Research in Computational Intelligence and Communication Networks, ICRCICN;Issue;2025;pp.217-221</text>
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                <text>Khatija L., Christ (Deemed-to-be University), Bengaluru, India; Vinoth D., Christ (Deemed-to-be University), Bengaluru, India; Kavitha R., Christ (Deemed-to-be University), Bengaluru, India</text>
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                <text>Demand forecasting is a key part of running operations efficiently in the fast-changing retail and online shopping industries. Regular methods that use statistics often have trouble handling the complex, changing, and time-based patterns found in actual sales data. This study introduces a new way to predict demand that uses multivariate Long Short-Term Memory (LSTM) models. The models take both the order of sales over time and other factors like prices and weather into account. Three model designs were tested: a simple straightforward model, a pure LSTM model, and a new hybrid LSTM model that mixes time-based data with steady economic factors. The combined hybrid model worked the best, by successfully balancing learning from sequences with keeping things stable. The study did experiments to see what would happen if weather conditions changed, like extreme heat, cold, storms, or dry spells and compared normal forecasts with these changed scenarios to see how demand would shift for products and overall sales. The results show that this new framework not only makes better predictions but also gives useful information on how weather events can affect store sales. By linking prediction with 'what if' analysis, this research moves demand forecasting from just predicting what will happen to helping make better decisions.  2025 IEEE.</text>
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                <text>counterfactual analysis; Demand forecasting; multivariate LSTM; retail time series; weather-aware forecasting</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>Ghouse, Syed Mohammad; Nagaraju, E.; Prakash, Om; Zabiullah, Ismail; Gowda, Anil B; Sharief, Mohammed Ismail</text>
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                <text>Market-Based Strategies for Enhancing Grid Resilience under High Renewable Penetration</text>
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                <text>14th International Conference on Renewable Energy Research and Applications, ICRERA 2025;pp.1848-1853</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICRERA66237.2025.11283943" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRERA66237.2025.11283943&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105032835369?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105032835369?origin=resultslist&lt;/a&gt;</text>
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                <text>Ghouse S.M., CMR University, School of Management, Karnataka, Bangalore, India; Nagaraju E., CMR University, School of Management, Karnataka, Bangalore, India; Prakash O., CMR University, School of Management, Karnataka, Bangalore, India; Zabiullah I., CMR University, School of Management, Karnataka, Bangalore, India; Gowda A.B., Christ University, Karnataka, Bangalore, India; Sharief M.I., CMR University, School of Management, Karnataka, Bangalore, India</text>
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                <text>The rise in penetration of renewable energy sources (RES), especially wind and solar, presents important challenges to power system operation and electricity markets. Renewables cut emissions and are cheaper in the long run but are intermittent, creating volatility, uncertainty about revenues, and reliability risks. This study analyses the performance of markets in delivering resilience to the grid given high levels of renewables. A grid simulation over 24 hours was then developed in order to study four aspects of the problem; (i) Stability of revenues for the generators, (ii) Reduction in the cost of imbalances as a result of flexibility, (iii) Reliability in terms of Loss of Load Expectation (LOLE), and Energy Not Served (ENS), and (iv) the impact on costs for consumers. Findings show that flexibility participation reduces costs incurred due to imbalance by ? 60%, and resilience mechanisms reduce the effective tariff faced by consumers from 32/kWh to 6.8/kWh. Reliability indices also improve greatly when flexibility and ancillary services markets are introduced. In addition, a Particle Swarm Optimization (PSO) model was applied to find the optimum levels of renewable penetration and flexibility that result in the least total system cost, which correspond to approximately 0.7 for flexibility and approximately 55-65% for renewables. These results point to the economic and technical need for reengineered electricity markets that incorporate flexibility products, ancillary services, and resilience incentives. This dissertation provides a complete methodology of simulation, reliability metrics, and optimization to inform policy makers, system operators, and investors of resilient renewable dominated grids.  2025 IEEE.</text>
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                <text>Ancillary services; Flexibility services; Grid resilience; Particle Swarm Optimization (PSO); Renewable energy integration</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>Hemalatha Yadav, J.; Arora, Kapil; Salgotra, Priyanka; Dawod, NajimAubed; Patil, Amit Kumar; Kataria, Abhinav</text>
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                <text>Cognitive IoT-Integrated Real-Time Transaction Monitoring System for Financial Security</text>
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              <elementText elementTextId="274545">
                <text>Proceedings - 2025 International Conference on Recent Innovation in Science Engineering and Technology, ICRISET 2025;</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICRISET64803.2025.11251638" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRISET64803.2025.11251638&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105031406686?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105031406686?origin=resultslist&lt;/a&gt;</text>
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                <text>Hemalatha Yadav J., Alliance University, Bangalore, India; Arora K., Alliance University, Alliance School of Business, Department of Management, Bangalore, India; Salgotra P., Maharishi Markandeshwar (Deemed to be) University, Maharishi Markandeshwar Institute of Management, (Ambala) Haryana, Mullana, India; Dawod N., Al-Nisour University College, Department of Medical Laboratories, Nisour Seq. Karkh, Baghdad, Iraq; Patil A.K., Mit Art, Design and Technology University, Department of Ece, Pune, India; Kataria A., Christ Deemed to be University, Delhi NCR Campus, India</text>
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                <text>As financial transactions become more complex in terms of the digitally connected environment, smart and real-time monitoring systems are required to fight off fraud and guarantee safety. The paper proposes a Cognitive IoT based Real-Time Transaction Monitoring System which is a proposed system to the financial sector. The proposed model resorts to the Z-Score normalization as a means of pre-processing the data and Recursive Feature Elimination with Random Forest as a method of selecting the most relevant features affecting the behavior of transactions. As the main type of classifier, a hybrid LSTM-Autoencoder model is used that makes it possible to reliably detect anomalies both using sequential and reconstruction-based learning. Developed on top of TensorFlow and its federated learning extensions, the system maintains the privacy of its user data by supporting decentralized training of edge devices. Experimental tests indicate higher results over the detection accuracy, which reduces false positives, and real-time reactivity. It is a scalable, safe, flexible system that can be used to monitor financial transactions efficiently, using the combined potential of the cognitive computer, the IoT environment, and powerful machine learning to respond to the dynamic nature of financial security issues.   2025 IEEE.</text>
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                <text>Anomaly Detection; Cognitive IoT; Feature Selection; Federated Learning; Financial Security; LSTM-Autoencoder; Real-Time Monitoring</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>Rajagopal, Navaneetha Krishnan; Chib, Shiney; Singh, Anjali; Sasidharan, M.; Chacko, Elizabeth; Nargunde, Amarja Satish</text>
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                <text>AI in Predictive HR Analytics for Talent Management</text>
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                <text>Proceedings - 2025 International Conference on Recent Innovation in Science Engineering and Technology, ICRISET 2025;</text>
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                <text>Rajagopal N.K., University of Technology and Applied Sciences, College of Economics and Business Administration, P.O. Box 608, Salalah, 211, Oman; Chib S., Datta Meghe Institute of Management Studies, Rtmnu, Nagpur, India; Singh A., Gl Bajaj College of Technology and Management, Dms, Greater Noida, India; Sasidharan M., Ck College of Engineering and Technology, Department of Mba, Cuddalore, 607001, India; Chacko E., Christ University, Dharmaram College Post, Hosur Road, Karnataka, Bengaluru, 560029, India; Nargunde A.S., Bharati Vidyapeeth (Deemed to be University), Institute of Management and Rural Development Administration, Department of Management Studies, Maharashtra, Sangli, India</text>
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                <text>This paper presents the topic on how Machine Learning (ML) can be used to conduct Predictive HR Analytics to streamline Talent Management practices. The aim of the development of the project is mainly the application of Random Forest as a supervised learning model to forecast turnover of the employees, performance, and career-growth potential. With the historical employee data, such as performance reviews, tenure, and levels of engagement, Random Forest models would help determine the aspects that are significant factors to employee retention and performance. The model is incorporated with HR software solutions such as SAP SuccessFactors that help to gather information seamlessly to make predictions in real-time, and base decisions on data. It can be seen in the findings of this research that this approach to identifying the factors that influence the effort to retain employees based on the likelihood of them leaving was not only more accurate than other methods but much more effective in the retention efforts. Through predictive analytics, organizations are better placed to take the initiative of managing talent, minimizing turnover and streamline workforce productivity, which eventually lead to business success. This research demonstrates that such predictive models based on AI have a high potential to change HR practice.   2025 IEEE.</text>
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                <text>Deep Learning-Based Health Risk Prediction in Contact Sports Using Wearable Sensor Data</text>
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                <text>2025 12th International Conference on Reliability, Infocom Technologies and Optimization ,Trends and Future Directions, ICRITO 2025;</text>
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                <text>Uwah S.E., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Iwendi C., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Sharma V., Christ University, Dept. of Computer Science, Bengaluru, India; Ojo O.A., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Okewumi P.O., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Nwigwe S., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom</text>
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                <text>This study presents a deep learning-based approach to predicting physiological health risks in athletes engaged in contact sports using wearable sensor data. Motivated by the need to detect early warning signs of collapse or severe fatigue, this study employs a Long Short-Term Memory (LSTM) neural network to analyse multivariate time-series data. Key physiological signals, including heart rate, body temperature, and motion, were extracted from the PAMAP2 dataset to train and validate the model. The LSTM demonstrated strong predictive performance, achieving an accuracy of 98.3% in identifying potentially dangerous physiological states. In addition to its high classification accuracy, the model effectively captured temporal dependencies in the data, underscoring its suitability for health risk prediction in dynamic, high-intensity sports environments. This study highlights the potential of wearable data and LSTMbased analysis in supporting proactive athlete health management and injury prevention.   2025 IEEE.</text>
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                <text>Nwibo, Ezekiel Gabriel; Iwendi, Celestine; Sharma, Vandana; Nwigwe, Simon; Ojo, Olayinka Anthony; Odirichukwu, Jacinta Chioma</text>
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                <text>Nwibo E.G., School of Arts and Creative Technologies, University of Greater Manchester, Department of Computing, Bolton, United Kingdom; Iwendi C., School of Arts and Creative Technologies, University of Greater Manchester, Department of Computing, Bolton, United Kingdom; Sharma V., Christ University, Computer Science Department, Bengaluru, India; Nwigwe S., Doctoral College, University of Greater Manchester, Department of Research, Bolton, United Kingdom; Ojo O.A., University of Greater Manchester, Department of Computing, Bolton, United Kingdom; Odirichukwu J.C., Federal University of Technology Owerri, Department of Computer Science, Nigeria</text>
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                <text>The exponential increase in campus energy consumption results from the rise in population density, leading to urbanisation and the use of higher energy-intensive devices within the environment. This study explored high-performance data analytics techniques to visualise energy consumption across buildings using datasets obtained from a load audit of the entire distribution network within the Federal University of Technology, Owerri (FUTO). Advanced time series models were used to predict and forecast the consumption patterns for a year. Visualisations for this research provided detailed insights into the energy profile across all the clusters, while the SARIMA, ARIMA, and Prophet models predicted the energy demands. The heatmap for the correlation matrix reveals a constant energy scale throughout the week (weekend average energy usage is at least 40% of the weekday). A comparative performance was done to analyse the scalability and predictive abilities of the individual models. Results from the study indicate that SARIMA has the lowest mean square error (4.4896) and the highest R2 score (0.8362). The study concludes that the adoption of machine learning models for energy forecasting and prediction is vital for modern-day energy management in the University.   2025 IEEE.</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>2025 12th International Conference on Reliability, Infocom Technologies and Optimization ,Trends and Future Directions, ICRITO 2025;</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICRITO66076.2025.11241290" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRITO66076.2025.11241290&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105029820572?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105029820572?origin=resultslist&lt;/a&gt;</text>
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                <text>Joy S., New Horizon College of Engineering, Department of Computer Science and Engineering, Bengaluru, India; Rajesh S., New Horizon College of Engineering, Department of Electronics and Communication Engineering, Bengaluru, India; Neethu P.S., School of Engineering and Technology, Christ University, Dept of Aiml and Data Science, Bengaluru, India</text>
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                <text>The paper presents a 24 GHz millimeter-wave (mm-Wave) system for real-time human presence and distance detection, leveraging the 24 GHz band's balance of range, resolution, and power efficiency for applications in smart environments. The system uses Doppler-based reflections from signals to accurately detect presence and estimate distances with  12cm accuracy up to 5 meters with little needed infrastructure. The challenges presented by signal attenuation and multipath interference are addressed using beamforming and Massive MIMO with 5G-enabled IoT as the framework. The use of Ultra-Reliable Low Latency Communication and Massive-Machine-Type Communication allows a framework for rapid data processing and scalability. This system enables automated smart home lighting, healthcare occupancy detection, and security intrusion alert applications, with very high detection accuracies. The limits are reduced detection performance beyond a distance of 6 meters and interference from reflective surfaces. Future work includes investigating the 60 GHz bands, which will yield higher resolution in the detection, and using machine learning techniques to develop adaptive detection, as a scalable and cost effective method of real-time automation in a range of settings.   2025 IEEE.</text>
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                <text>Rajak, Akash; Kumar, Amit; Singh, Shweta; Vidushi; Verma, Ankit; Mishra, Siddheshwari Dutt</text>
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                <text>Harnessing Behavioural Insights for Autism Spectrum Disorder Prediction via Machine Learning</text>
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                <text>2025 12th International Conference on Reliability, Infocom Technologies and Optimization ,Trends and Future Directions, ICRITO 2025;</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICRITO66076.2025.11241561" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRITO66076.2025.11241561&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105029842779?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105029842779?origin=resultslist&lt;/a&gt;</text>
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                <text>Rajak A., Kiet Group of Institutions, Delhi-NCR, Ghaziabad, India; Kumar A., Kiet Group of Institutions, Delhi-NCR, Ghaziabad, India; Singh S., Kiet Group of Institutions, Delhi-NCR, Ghaziabad, India; Vidushi, Christ (Deemed to be University), Bengaluru, India; Verma A., Kiet Group of Institutions, Delhi-NCR, Ghaziabad, India; Mishra S.D., Mriirs, Faridabad, India</text>
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                <text>This paper exploration has been done for predicting autism spectrum disorder or ASD while using certain machine learning classifiers. The multisource dataset used, covers behavioral, genetic, neuroimaging and sensor data. The classifiers used are: Random Forest, AdaBoost, Extra Trees, Logistic Regression, K Neighbors, and Bernoulli Naive Bayes. The results achieved are: The Bernoulli Naive Bayes (92.10%), Random Forest (91.53%) and Logistic Regression (91.34%). AdaBoost and Extra Trees performed well with accuracies 90.34% and 90.20%, respectively. K Neighbors Classifier had the lowest accurate outcome with 87.65%. This study explores improving ASD diagnosis, highlighting the effectiveness of various models and emphasizing the need for further research to address challenges such as model interpretability and data quality.   2025 IEEE.</text>
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                <text>autism spectrum disorder; machine learning; neural networks; random forest; stress management; support vector machines</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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                <text>ISBN: 979-833155421-7;</text>
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                <text>Nwigwe, Simon; Iwendi, Celestine; Sharma, Vandana; Ojo, Olayinka Anthony; Uwah, Salome Enoshi; Nwibo, Ezekiel Gabriel</text>
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                <text>Comparative Analysis of Machine Learning Models for Uterine Cancer Prediction Using Clinical and Genomic Data</text>
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                <text>2025 12th International Conference on Reliability, Infocom Technologies and Optimization ,Trends and Future Directions, ICRITO 2025;</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICRITO66076.2025.11241682" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICRITO66076.2025.11241682&lt;/a&gt; &lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/pages/publications/105029800501?origin=resultslist" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/pages/publications/105029800501?origin=resultslist&lt;/a&gt;</text>
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                <text>Nwigwe S., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Iwendi C., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Sharma V., Christ University, Computer Science Department, Bengaluru, India; Ojo O.A., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Uwah S.E., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom; Nwibo E.G., University of Greater Manchester, Centre of Intelligence of Things, Bolton, United Kingdom</text>
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                <text>Uterine cancer prediction accuracy is important in clinical decision-making because it improves the overall chances of patient recovery. Several machine learning models, such as Decision Tree, Random Forest, XGBoost Regressor, and Support Vector Regressor, were explored to determine which is more effective in predicting uterine cancer. Attributes such as mutation counts, diagnosis age, and MSI score, were used for the analysis. The different models were tested using the standard performance metrics such as the Mean Absolute Error (MAE), Root Mean Squared Error (RMSE), and R2 Score. Random Forest showed the highest predictive performance with an R2 score of 0.655, followed by XGBoost regressor, which was relatively close to the R2 score of Random Forest. Support Vector Regressor performed very poorly as the R2 score was negative, implying that the model is not suitable for such prediction. Ensemble-based models, which include Random Forest and XGBoost Regressor, have proven to be more effective in handling medical prediction tasks, and this is because of their robustness and their ability when it comes to handle overfitting. Though model generalizability was affected due to small data size and the absence of hyperparameter tuning. The future work will focus on expanding the dataset, implementing hyperparameter tuning, integrating deep learning, and leveraging explainable AI (XAI). The research has provided valuable insight for clinicians who wish to use machine learning for uterine cancer prognosis.   2025 IEEE.</text>
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                <text>Clinical Data; Genomic Data; Machine Learning; Medical AI; Prediction; Random Forest; Uterine Cancer; XGBoost</text>
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                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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