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CONFIGURATION MANAGEMENT IN THE MODERN ERA: BEST PRACTICES, INNOVATIONS, AND CHALLENGES 现代配置管理:最佳实践、创新和挑战
Pub Date : 2023-11-27 DOI: 10.51594/csitrj.v4i2.613
Oluwatoyin Ajoke Farayola, Azeez Olanipekun Hassan, Olubukola Rhoda Adaramodu, Ololade Gilbert Fakeyede, Monisola Oladeinde
This research paper explores the multifaceted realm of Configuration Management (CM) in the modern era, examining theoretical frameworks, best practices, innovations, and challenges. Theoretical models, including the Three-Component Model and ITIL, form the foundational understanding of CM, guiding effective identification, control, and status accounting of configuration items. Innovations such as DevOps integration, Infrastructure as Code (IaC), and containerization technologies reshape traditional CM practices, providing scalability, automation, and adaptability solutions. However, challenges such as security concerns, compliance issues, and the complexities of collaboration necessitate strategic recommendations. By embracing a holistic approach, prioritizing security, promoting collaboration, and staying informed on emerging technologies, organizations can navigate these challenges and establish resilient CM practices, ensuring the stability and reliability of their IT systems in the ever-evolving technological landscape. Keywords: Configuration Management, DevOps, Three-Component Model, Security.
本研究论文探讨了现代配置管理(CM)的多层面领域,研究了理论框架、最佳实践、创新和挑战。包括三要素模型和 ITIL 在内的理论模型构成了对 CM 的基本理解,指导着对配置项目的有效识别、控制和状态说明。DevOps 集成、基础设施即代码(IaC)和容器化技术等创新重塑了传统的 CM 实践,提供了可扩展性、自动化和适应性解决方案。然而,安全问题、合规性问题以及协作的复杂性等挑战也需要提出战略性建议。通过采用整体方法、优先考虑安全性、促进协作以及了解新兴技术,企业可以应对这些挑战,并建立弹性 CM 实践,确保其 IT 系统在不断发展的技术环境中保持稳定性和可靠性。 关键词配置管理 DevOps 三组件模型 安全性
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引用次数: 0
INNOVATIVE BUSINESS MODELS DRIVEN BY AI TECHNOLOGIES: A REVIEW 人工智能技术驱动的创新商业模式:综述
Pub Date : 2023-11-25 DOI: 10.51594/csitrj.v4i2.608
Oluwatoyin Ajoke Farayola, Adekunle Abiola Abdul, Blessing Otohan Irabor, Evelyn Chinedu Okeleke
In an era where artificial intelligence (AI) is revolutionizing business paradigms, this study delves into the intricacies of AI-driven business models, offering a nuanced understanding of their emergence, evolution, and impact on traditional business strategies. This scholarly inquiry aims to dissect the role of AI in reshaping business models, highlighting the interplay between technological innovation and business strategy. The study meticulously examines the integration of AI into various business facets by employing a systematic and thematic analysis of a diverse range of literature, including academic journals, industry reports, and case studies. This methodological approach facilitates a comprehensive understanding of AI's role in business innovation, addressing both the opportunities and challenges it presents. The findings reveal that AI-driven business models are characterized by enhanced operational efficiency, data-driven decision-making, and customer-centric approaches. These models signify a transformative shift from conventional business strategies, demanding a reevaluation of leadership roles and ethical considerations in the digital age. The study identifies key challenges in AI implementation, such as technical complexities and ethical dilemmas, while uncovering AI's vast opportunities for business growth and competitive advantage. Conclusively, the study recommends a balanced approach to AI integration, emphasizing the need for ethical AI practices, continuous adaptation, and a synergy between AI capabilities and human insights. It advocates for business leaders to embrace AI not just as a technological tool, but as a catalyst for sustainable and innovative business growth. This scholarly work contributes significantly to the discourse on AI in business, providing a foundational framework for future research and practical application in AI-driven business innovation.   Keywords: Artificial Intelligence, Business Models, Digital Transformation, AI Integration, Leadership in AI, Ethical AI Practices.
在人工智能(AI)彻底改变商业模式的时代,本研究深入探讨了人工智能驱动的商业模式的复杂性,对其出现、演变以及对传统商业战略的影响提供了细致入微的理解。这项学术研究旨在剖析人工智能在重塑商业模式中的作用,强调技术创新与商业战略之间的相互作用。本研究通过对学术期刊、行业报告和案例研究等各种文献进行系统性和专题性分析,细致研究了人工智能与各业务领域的融合。这种方法论有助于全面了解人工智能在商业创新中的作用,同时应对其带来的机遇和挑战。研究结果表明,人工智能驱动的商业模式以提高运营效率、数据驱动决策和以客户为中心为特征。这些模式标志着传统商业战略的转型,要求重新评估数字时代的领导角色和道德考量。本研究指出了人工智能实施过程中的主要挑战,如技术复杂性和道德困境,同时也揭示了人工智能为业务增长和竞争优势带来的巨大机遇。最后,该研究建议采用一种平衡的方法来整合人工智能,强调需要符合道德规范的人工智能实践、持续适应以及人工智能能力与人类洞察力之间的协同作用。研究倡导企业领导者不仅要将人工智能作为一种技术工具,而且要将其作为可持续和创新业务增长的催化剂。这部学术著作为人工智能在商业领域的应用做出了重要贡献,为人工智能驱动的商业创新的未来研究和实际应用提供了一个基础框架。 关键词人工智能、商业模式、数字化转型、人工智能整合、人工智能领导力、人工智能道德实践。
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引用次数: 0
GRC STRATEGIES IN MODERN CLOUD INFRASTRUCTURES: A REVIEW OF COMPLIANCE CHALLENGES 现代云基础设施中的 GRC 战略:合规挑战综述
Pub Date : 2023-11-25 DOI: 10.51594/csitrj.v4i2.609
Apeh Jonathan Apeh, Azeez Olanipekun Hassan, Olajumoke Omotola Oyewole, Ololade Gilbert Fakeyede, Patrick Azuka Okeleke, Olubukola Rhoda Adaramodu
This research paper delves into the intricate landscape of Governance, Risk, and Compliance (GRC) in modern cloud infrastructures. As organisations increasingly migrate critical operations to the cloud, they encounter data security, legal compliance, and effective vendor management challenges. The paper explores a comprehensive range of GRC strategies, technological solutions, and best practices to address these challenges. It investigates the evolving regulatory landscape, the shared responsibility model, and the dynamic nature of cloud environments. Technological solutions, including cloud-native GRC platforms, AI and ML for threat detection, and automated security tools, emerge as pivotal components for fortifying GRC in the cloud. The paper concludes with strategic recommendations for organisations seeking to enhance their GRC strategies and navigate the complexities of modern cloud computing. Keywords: Governance, Risk Management, Compliance Challenges, Automated Security Tools, CSPM Solutions.
本研究论文深入探讨了现代云基础设施中错综复杂的治理、风险与合规性(GRC)问题。随着企业越来越多地将关键业务迁移到云中,他们会遇到数据安全、法律合规性和有效供应商管理等方面的挑战。本文探讨了应对这些挑战的一系列全面的 GRC 战略、技术解决方案和最佳实践。它研究了不断变化的监管环境、责任分担模式以及云环境的动态特性。技术解决方案,包括云原生 GRC 平台、用于威胁检测的人工智能和 ML 以及自动安全工具,都是强化云中 GRC 的关键组成部分。本文最后提出了一些战略建议,供寻求加强 GRC 战略和驾驭现代云计算复杂性的组织参考。 关键词治理、风险管理、合规挑战、自动安全工具、CSPM 解决方案。
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引用次数: 0
ANALYZING THE ROLE OF ARTIFICIAL INTELLIGENCE IN IT AUDIT: CURRENT PRACTICES AND FUTURE PROSPECTS 分析人工智能在 IT 审计中的作用:当前实践与未来展望
Pub Date : 2023-11-25 DOI: 10.51594/csitrj.v4i2.606
Uzoamaka Iwuanyanwu, Apeh Jonathan Apeh, Olubukola Rhoda Adaramodu, Evelyn Chinedu Okeleke, Ololade Gilbert Fakeyede
This research paper explores the integration of Artificial Intelligence (AI) into Information Technology (IT) audits, analyzing current practices, training requirements, and prospects. The literature review traces the historical evolution of IT audits, emphasizing the transformative impact of AI. The discussion on training and skill requirements outlines the evolving role of auditors and the strategies for equipping them with essential competencies. Recommendations emphasize continuous learning, ethical considerations, and collaboration, envisioning a future where auditors adeptly leverage AI to enhance the efficiency and strategic value of IT audits within organizations Keywords: Artificial Intelligence, Information Technology Audits, IT Governance, Machine Learning, Auditing Practices, Skill Development
本研究论文探讨了将人工智能(AI)融入信息技术(IT)审计的问题,分析了当前的实践、培训要求和前景。文献综述追溯了信息技术审计的历史演变,强调了人工智能的变革性影响。关于培训和技能要求的讨论概述了审计人员不断演变的角色以及使其具备基本能力的战略。建议强调持续学习、道德考量和协作,展望未来,审计人员将善于利用人工智能来提高组织内信息技术审计的效率和战略价值:人工智能、信息技术审计、IT 治理、机器学习、审计实践、技能发展
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引用次数: 0
SECURITY CONSIDERATIONS AND GUIDELINES FOR AUGMENTED REALITY IMPLEMENTATION IN CORPORATE ENVIRONMENTS 在企业环境中实施增强现实技术的安全考虑因素和指导原则
Pub Date : 2023-11-25 DOI: 10.51594/csitrj.v4i2.607
Olajumoke Omotola Oyewole, Ololade Gilbert Fakeyede, Evelyn Chinedu Okeleke, Apeh Jonathan Apeh, Olubukola Rhoda Adaramodu
This research paper explores the intricate tapestry of security considerations in integrating augmented reality (AR) within corporate landscapes. The journey begins with an in-depth literature review, providing insights into authentication, data privacy, network security, and device vulnerabilities specific to AR systems. A conceptual framework, synthesizing the augmented reality security framework with legal, ethical, and human-centric dimensions, serves as a foundational guide. The guidelines proposed outline a strategic roadmap, emphasizing policy formulation, employee training, security audits, integration with existing infrastructures, legal compliance, and device security. The conclusion underscores the dynamic nature of AR technology, advocating for ongoing vigilance and collaboration to secure the evolving frontier of augmented reality in corporate environments. Keywords: Augmented Reality Security, Corporate Environments, Authentication, Data Privacy, Network Security, Conceptual Framework, Security Guidelines.
本研究论文探讨了将增强现实技术(AR)集成到企业环境中的复杂的安全考虑因素。本文从深入的文献综述开始,深入探讨了增强现实系统特有的身份验证、数据隐私、网络安全和设备漏洞。概念框架将增强现实安全框架与法律、道德和以人为本的维度相结合,作为基础指南。提出的指导方针勾勒出了一个战略路线图,强调了政策制定、员工培训、安全审计、与现有基础设施的整合、法律合规性和设备安全性。结论强调了增强现实技术的动态性质,提倡持续警惕和协作,以确保企业环境中不断发展的增强现实前沿技术的安全。 关键词增强现实安全、企业环境、身份验证、数据隐私、网络安全、概念框架、安全指南。
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引用次数: 0
A COMPREHENSIVE REVIEW OF THE ROLE OF DATA ANALYTICS IN SHAPING FOOD PRICING STRATEGIES IN THE UNITED STATES: HISTORICAL PERSPECTIVES, CURRENT TRENDS, AND FUTURE PROJECTIONS 全面回顾数据分析在制定美国食品定价战略中的作用:历史视角、当前趋势和未来预测
Pub Date : 2023-10-03 DOI: 10.51594/csitrj.v4i1.603
Blessing Otohan Irabor, Adekunle Abiola Abdul, Bankole Ibrahim Ashiwaju, Gbolahan Olaoluwa Oladayo
This topic is designed as an extensive review that charts the historical evolution, current state, and future potential of data analytics in influencing food pricing strategies within the United States. It will encompass a thorough examination of how data analytics has transformed from basic statistical models to advanced AI and machine learning algorithms in the context of food pricing. The review will include a critical analysis of various case studies and models that have been employed in the food industry, assessing their impact on both market dynamics and consumer behavior. Furthermore, it will explore the challenges and ethical considerations surrounding data usage in pricing strategies, such as privacy concerns and market fairness. The future section will speculate on emerging trends and technologies that could further shape this field. This topic is intended to provide a holistic and in-depth perspective on the intersection of data science and food economics, highlighting its significance in the contemporary economic landscape of the U.S. Keywords: Data Analytics, Food Pricing Strategies, Trends, Future Projections Food Demand, Customer Segmentation, Supply Chain Optimization, Personalized Pricing, Dynamic Pricing, Food Fraud, Food Safety.
本专题旨在对数据分析在影响美国食品定价策略方面的历史演变、现状和未来潜力进行广泛评述。它将对数据分析如何在食品定价方面从基本的统计模型转变为先进的人工智能和机器学习算法进行深入研究。审查将包括对食品行业采用的各种案例研究和模型的批判性分析,评估它们对市场动态和消费者行为的影响。此外,还将探讨在定价策略中使用数据所面临的挑战和道德考量,如隐私问题和市场公平性。未来部分将推测可能进一步塑造这一领域的新兴趋势和技术。本专题旨在从整体和深入的角度探讨数据科学与食品经济学的交集,突出其在美国当代经济格局中的重要意义:数据分析、食品定价策略、趋势、未来预测 食品需求、客户细分、供应链优化、个性化定价、动态定价、食品欺诈、食品安全。
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引用次数: 0
ENSURING CYBER SECURITY IN AIRLINES TO PREVENT DATA BREACH 确保航空公司网络安全,防止数据泄露
Pub Date : 2022-12-25 DOI: 10.51594/csitrj.v3i3.426
Leo Tong, Ming Kwan
Using the data breach issues that happened in Cathay Pacific Airways (CX) and British Airways (BA) as case studies, the aim of this study is to focus on analyzing cyber security against data breach that affects airlines passengers’ privacy and induces greater financial losses for airlines. The objective is to investigate the possible leakages in airlines’ cyber security and explore how to strengthen cyber security in airlines. Based on the results, preventative, detective, and reactive measures were revealed which contribute to strengthening cyber security for the airlines.               Keywords: Cyber Security, Data Breach, Airlines.
本研究以国泰航空(CX)和英国航空(BA)发生的数据泄露事件为案例,重点分析网络安全对影响航空公司乘客隐私和给航空公司带来更大经济损失的数据泄露的影响。目的是调查航空公司网络安全可能存在的漏洞,探讨如何加强航空公司的网络安全。在此基础上,提出了加强航空公司网络安全的预防、侦查和应对措施。关键词:网络安全,数据泄露,航空公司
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引用次数: 0
FRAUD PREVENTION AND DETECTION SYSTEM IN NIGERIA BANKING INDUSTRIES 尼日利亚银行业欺诈预防和检测系统
Pub Date : 2022-07-16 DOI: 10.51594/csitrj.v3i2.355
Kamalu Aliyu Babando
Fraud is on the rise as a result of the advent of modern technology and the global superhighways of banking transactions, resulting in billions of dollars in losses worldwide each year. Although fraud prevention technologies are the most effective method of combating fraud, fraudsters are flexible and will usually find a way around them over time. We need fraud detection approaches if we are to catch fraudsters after fraud prevention has failed. Statistics and machine learning are effective fraud detection technologies that have been used to detect money laundering, e-commerce credit card fraud, telecommunications fraud, and computer intrusion, to name a few. The program is simple to use, and anyone with permission can use it. The importance of computer technology has expanded as it has advanced in all areas of human endeavor.                        Keywords: Fraud Detection, Fraud Prevention, Banking Industries, Telecommunications.
由于现代技术的出现和全球银行交易的高速公路,欺诈行为呈上升趋势,每年在全球范围内造成数十亿美元的损失。虽然防欺诈技术是打击欺诈的最有效方法,但欺诈者是灵活的,随着时间的推移,他们通常会找到绕过这些技术的方法。如果我们要在欺诈预防失败后抓住欺诈者,我们需要欺诈检测方法。统计和机器学习是有效的欺诈检测技术,已被用于检测洗钱、电子商务信用卡欺诈、电信欺诈和计算机入侵等。该程序使用简单,任何获得许可的人都可以使用它。计算机技术的重要性随着它在人类努力的所有领域的进步而扩大。关键词:欺诈检测,欺诈预防,银行业,电信。
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引用次数: 0
A DIAGNOSTIC MODEL FOR THE PREDICTION OF LIVER CIRRHOSIS USING MACHINE LEARNING TECHNIQUES 使用机器学习技术预测肝硬化的诊断模型
Pub Date : 2022-01-25 DOI: 10.51594/csitrj.v3i1.296
Ganty Jamila, G. Wajiga, Y. M. Malgwi, Abba Hamman Maidabara
Liver cirrhosis is the most common type of chronic liver disease in the globe. The ability to forecast the onset of liver cirrhosis sickness is critical for successful treatment and the prevention of catastrophic health implications. As a result, the researchers created a prediction model using machine learning techniques. This study was based on a dataset from the Federal Medical Centre, Yola, which included 583 patient instances and 11 attributes. The proposed model for the prediction of liver cirrhosis sickness employed Nave Bayes, Classification and Regression Tree (CART), and Support Vector Machine (SVM) with 10-fold cross-validation. Accuracy, precision, recall, and F1 Score were used to evaluate the model's performance. Among all the strategies used in this study, the Support Vector Machine (SVM) technique produces the best results, with accuracy of 73%, precision of 73%, recall of 100%, and F1 Score of 84%. Based on medical data from FMC, Yola, this study shows that machine learning methods, specifically the Support Vector Machine, provide a more accurate prediction for liver cirrhosis sickness. This approach can be used to help doctors make better clinical decisions.
肝硬化是全球最常见的慢性肝病。预测肝硬化发病的能力对于成功治疗和预防灾难性的健康影响至关重要。因此,研究人员使用机器学习技术创建了一个预测模型。这项研究基于约拉联邦医疗中心的数据集,其中包括583例患者和11个属性。提出的肝硬化疾病预测模型采用了中贝叶斯、分类回归树(CART)和支持向量机(SVM),并进行了10次交叉验证。采用准确率、精密度、召回率和F1评分来评价模型的性能。在本研究使用的所有策略中,支持向量机(SVM)技术的效果最好,准确率为73%,精密度为73%,召回率为100%,F1 Score为84%。基于FMC, Yola的医疗数据,本研究表明,机器学习方法,特别是支持向量机,可以更准确地预测肝硬化疾病。这种方法可以帮助医生做出更好的临床决策。
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引用次数: 0
REAL-TIME PETROL AVAILABILITY REPORTING SYSTEM (RPARS) FOR NSUKKA TOWN, NIGERIA 尼日利亚nsukka镇实时汽油供应报告系统(rpars
Pub Date : 2022-01-24 DOI: 10.51594/csitrj.v3i1.294
Achi Unimke Aaron, Umar Zayyanu, F. Bakpo
As the number of vehicle owners grows continually, the challenge of searching for petrol availability increases, as not all petrol stations may have petrol available at all times. This is owed to the fact that petrol as a commodity remains relatively scarce. Therefore, this project aims to provide a platform for reporting in real-time petrol availability in Nsukka town. Hence, vehicle owners and public transporters need not waste more petrol and time searching for filling stations with petrol availability. A mobile application is developed to capture relevant real-time information about petrol availability in sampled petrol stations in Nsukka town. The application is a real-time petrol availability reporting system. The system shows a Graphic User Interface (GUI), of a simulated real-time display of petrol availability in sampled filling stations in Nsukka town. This system will help public road vehicle transporters and private vehicle owners make informed decisions on refilling their vehicle tanks from petrol stations with petrol availability closest to the users of the system when they are running out of petrol in their vehicle. Object-Oriented Analysis and Design (OOAD) methodology was used for the analysis and design while JavaScript (JS) and DART programming languages, MongoDB, a no-SQL database, were used to implement the simulation of wireless capacitive fuel level sensor reading on a mobile App, using flutter SDK. Keywords: Realtime, Petrol Availability, Reporting System, Petrol Stations.
随着车主数量的不断增长,寻找汽油供应的挑战也在增加,因为并非所有的加油站都可能随时都有汽油供应。这是因为汽油作为一种商品仍然相对稀缺。因此,该项目旨在提供一个平台,实时报告恩苏卡镇的汽油供应情况。因此,车主和公共交通工具不需要浪费更多的汽油和时间寻找有汽油供应的加油站。开发了一个移动应用程序,以捕获Nsukka镇抽样加油站的汽油可用性的相关实时信息。该应用程序是一个实时汽油可用性报告系统。该系统显示了一个图形用户界面(GUI),模拟了Nsukka镇采样加油站的汽油可用性的实时显示。该系统有助公共道路车辆运输商及私人车主在车辆燃油用完时,在知情的情况下,决定到离系统使用者最近的加油站加油。采用面向对象分析与设计(OOAD)方法进行分析与设计,使用JavaScript (JS)和DART编程语言,使用MongoDB (no-SQL数据库)在移动App上实现无线电容式燃油液位传感器读数仿真,并使用flutter SDK。关键词:实时,汽油供应,报告系统,加油站。
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引用次数: 0
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