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Market Analysis Of AI-Based Health Technologies: Trends And Forecasts

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Authors: Faria Khan

 

 

Abstract: The integration of Artificial Intelligence (AI) into healthcare systems has revolutionized the landscape of medical diagnostics, treatment planning, patient care, and healthcare operations. With exponential growth in data generation and computational capabilities, AI-based health technologies are being rapidly adopted across clinical, administrative, and research domains. This paper provides a comprehensive market analysis of AI-based health technologies, exploring the current trends, key market drivers, challenges, regional developments, and future forecasts. As AI continues to evolve, its impact on healthcare systems is expected to increase significantly, transforming traditional healthcare models into more predictive, personalized, and efficient systems. Through data-driven insights and strategic foresight, this study aims to highlight the critical factors influencing the market trajectory and predict the future scope of AI in the global healthcare sector.

DOI: http://doi.org/

 

 

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AI And Big Data Analytics In Pharmaceutical Supply Chain Management

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Authors: Nandini Bhatt

 

 

Abstract: Artificial Intelligence (AI) and Big Data Analytics are reshaping pharmaceutical supply chain management by enabling greater efficiency, transparency, and resilience. This paper examines the transformative impact of AI-driven big data technologies on pharmaceutical supply chains, highlighting their roles in demand forecasting, inventory management, quality control, and risk mitigation. It discusses the challenges of integrating AI and big data in complex, regulated environments and explores ethical and operational considerations. The study emphasizes how leveraging AI and big data analytics enhances supply chain agility, reduces costs, and improves patient access to medicines while addressing issues such as data security and regulatory compliance.

DOI: http://doi.org/

 

 

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Votechian:A Biometric Blockchain – Based Voting System

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Authors: Manisha Wasnik, Shreya Sharma, Aamir Shaikh, Abhishek Shinde, Harsh Tagde

Abstract: CryptoNavigator is a cryptocurrency tracking application built with Flutter, Dart, and Supabase. It fetches live market data through the CoinGecko API, providing real-time price tracking, search, favorites, and deep insights per cryptocurrency. Secure user login through email verification and profile management are some of its security features. One of the main features is price prediction to assist investors in making knowledge-based decisions. With a user-friendly UI and cross-platform support, CryptoNavigator aims to assist both new and experienced investors in tracking and predicting cryptocurrency trends.

DOI: http://doi.org/

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Drug Discovery Using Generative Adversial Network

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Authors: Professor Anita Mahajan, Ajaz Shaikh, Shubham Ghume, Neeraj Lonkar, Saif Shaikh

 

Abstract: Drug development research is traditionally a lengthy, resource-intensive, and expensive process, often relying on experimental approaches and iterative laboratory trials. the emergence of generative adversarial networks (gans) hasintroduced a novel and efficient approach to this field by facilitating the generation of new molecular structures. This research explores the application of molgan, a specialized gan framework tailored for generating molecular graphs in drug discovery. traditional methods struggle with inefficiencies and the vastness of the chemical space, making it challenging to identify molecules with specific pharmacological properties. molgan addresses these limitations by automating molecular generation while incorporating desired chemical characteristics. by leveraging reinforcement learning techniques, molgan fine- tunes the generation process to produce drug-like molecules, enhancing both the speed and effectiveness of drug discovery efforts.

DOI: http://doi.org/

 

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Smart Society Solution– Transforming Community Management With Digital Approach For Efficient Society Administration

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Authors: Anjali Gupta, Assistant Professor Pooja, Dr. Rajendra Singh

Abstract: In the modern era of rapid urbanization, gated communities and residential societies require an integrated, scalable, and secure management solution to handle day-to-day operations efficiently. This paper presents the design and development of Smart Society Solution (SSS)—a web-based platform engineered using React.js for the frontend, Strapi for headless backend services, and Tailwind CSS/Bootstrap for responsive UI/UX. The system provides a modular architecture, supporting essential community management functions like dashboard analytics, service request handling, resident and visitor management, billing, and reporting. RESTful APIs tested via Swagger ensure seamless client-server communication. The solution offers robust extensibility and has potential implications for smart city planning and digital governance

 

 

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Characteristics Of High Performing Organizations: A Case Study Of Tesla, Inc.

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Authors: Raghu V Kaspa

Abstract: High Performing Organizations (HPOs) consistently outperform their peers in metrics such as innovation, agility, financial results, and employee engagement. This paper explores the critical attributes that characterize HPOs and applies these attributes to Tesla, Inc., as a case study. Through an analytical lens grounded in organizational theory, performance frameworks, and empirical evidence, Tesla’s rise as a global automotive and energy leader is examined to identify the drivers of its high performance.

 

 

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Educational And Vocational Interests In Relation To Academic Achievements Of Secondary School Students In Delhi

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Authors: Sonali Bahuguna, Professor Indu Sharma

Abstract: This research examines the connection between educational and vocational interests and the academic performance of secondary school students in Delhi. Considering the recent inclusion of vocational courses in more than 800 government schools as part of the samagra shiksha scheme, this study examines the correlation between students' interests and their academic achievements. The study employs a stratified random sample of 500 students from various socio-economic and institutional backgrounds, utilizing standardized interest inventories and academic data analysis. The findings indicate a strong positive relationship between educational and vocational interests and academic performance, with vocational interests having a greater predictive power. This supports the belief that incorporating student interests into educational content can enhance academic engagement and achievement.

 

 

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Text Mining Using Sentiment Analysis

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Authors: Sanjana Bhandare, Ajinkya Pokharkar, Prerna Bhandare, Dnyaneshwar Chaudhari, Dr. Manisha Wasnik

Abstract: In this era of the most popular social networking, Twitter has many users who express their thoughts in the form of tweets. This paper presents an idea to extract sentiments from tweets and a method to classify tweets as good, bad or neutral. This approach is beneficial in many ways for all organizations mentioned or tagged in a tweet. Generally speaking, tweets are in unstructured format and tweets need to be converted into structure first. In this paper, tweets are analyzed using predefined steps and accessed by the library using Twitter API. The data needs to be learned using algorithms that allow it to test tweets and extract the desired information from given tweets.

 

 

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Final Fake Paper Abcd Se Lena

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Authors: Shanmukha Priya Kurre, Bapanapalli Naga Bhargavi, Guntur Pushpa, Dabbugottu Thirupathi Vani, Chinthabttina Meghamala, Dhulipudi Chinmayi Sai Sri.

 

Abstract: The Red Chilli Defect Detection and Removal System is a robust and automated solution designed to identify and remove defective red chillies on a conveyor belt. Utilizing a Raspberry Pi 3 B V1.2 and a Pi Camera module, the system captures real-time images of chillies as they move along the belt. Advanced image processing algorithms analyze these images to detect defects based on predefined parameters such as color, shape, and texture. Upon detection of a defective chilli, a control signal is sent to a DC motor-controlled ejection mechanism powered by an L293D motor driver to remove the defective chilli from the conveyor. This automated approach enhances the efficiency and precision of the quality control process in industries handling red chilli sorting, ensuring higher throughput and consistent product quality.

DOI: http://doi.org/10.61137/ijsret.vol.11.issue3.275

 

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Biogeochemical Cycling Mediated By Nanoparticle-Producing Microorganisms

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Authors: Vandana Prasad

Abstract: Microorganisms are pivotal drivers of Earth's biogeochemical cycles, mediating transformations of essential elements such as carbon, nitrogen, sulfur, and metals. In recent years, attention has increasingly turned to the capacity of certain microbes to synthesize nanoparticles either as byproducts of metabolism or through controlled biological processes. These nanoparticle-producing microorganisms (NPMs) exert significant influence on the fate, transformation, and mobility of both organic and inorganic compounds in the environment. This review explores the role of NPMs in biogeochemical cycling, focusing on how microbially synthesized nanoparticles modulate redox reactions, element sequestration, nutrient availability, and ecosystem feedback loops. Emphasis is placed on the interface between microbial metabolism and nanomaterial formation, including mechanisms such as enzymatic reduction, biomineralization, and biosorption. We also examine the ecological implications of these microbial-nanoparticle interactions for soil and aquatic environments, including their influence on pollutant transformation, metal immobilization, and carbon sequestration. Finally, we highlight the biotechnological potential of leveraging these processes for sustainable environmental management and propose future research directions for understanding nanoparticle-mediated geochemical transformations.

DOI: http://doi.org/10.61137/ijsret.vol.8.issue6.578

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