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2023 7th International Conference on Trends in Electronics and Informatics (ICOEI)最新文献

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Fuzzy Logic Control for Solar based PV-Battery Storage System with MPPT Technique 基于MPPT技术的太阳能光伏-电池储能系统模糊逻辑控制
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125706
Rayalla Anjani Kumar, S. H. Valli, V. Rafi, R. Kiranmayi
Renewable energy sources like solar and wind are getting more research attention as a result of technological breakthroughs in these fields and a corresponding decrease in price. Due to its widespread availability, solar energy promises to be a sustainable answer to rising demand. However, the sun irradiance's unpredictable nature creates practical difficulties. This paper describes the control of a solar and battery storage based micro-grid in grid linked mode to meet the requirement for optimal coordination. The maximum power point tracking (MPPT) control is a feature of the PV array. Battery storage and charge controllers are dotted across the micro-grid to sustain erratic solar generator output. The FUZZY control mode is used to run the grid-side inverter. The Simulink Environment in MATLAB was used to create the model. The two instances of constant load and variable irradiance and variable load and variable irradiance have both been studied. The outcomes clearly demonstrate the effectiveness of the control strategy in preserving the balance of voltage, frequency, and power at PCC.
由于太阳能和风能等可再生能源领域的技术突破以及相应的价格下降,这些能源正受到越来越多的研究关注。由于其广泛的可用性,太阳能有望成为不断增长的需求的可持续解决方案。然而,太阳辐照度的不可预测性给实际操作带来了困难。本文研究了基于太阳能和电池储能的微电网在并网模式下的控制,以满足最优协调的要求。最大功率点跟踪(MPPT)控制是光伏阵列的一个特点。电池存储和充电控制器遍布微电网,以维持不稳定的太阳能发电机输出。并网逆变器采用模糊控制方式运行。利用MATLAB中的Simulink环境建立模型。研究了恒负荷变辐照度和变负荷变辐照度两种情况。结果清楚地证明了控制策略在保持PCC电压、频率和功率平衡方面的有效性。
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引用次数: 0
A Study on ML Algorithms for Big Data Analytics in the field of Medical Reasoning 医学推理领域大数据分析的ML算法研究
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10126002
B. Ramyanjali, R. Agarwal
Machine learning for healthcare is the future technology. Big Data Analytics is one of the recent technological developments as it assures to provide better information from the big data resources. It incorporates selecting the suitable Big Data stockpiling and determines the structure extended by MLstrategies. In this digital era, a lot of information is available on public domain, which is further gathered by machine learning to help treat and analyse patients' medical condition. There are several interesting developments whereby medical experts are good at interpreting the data that they see and the information that they get from models, and on the other side, machine learning algorithms are used. These algorithms do not require any medical expertise guidance but can very effectively extract patterns. As a result, the focus of this study is on how the combination of human experience and trained machine learning algorithm models may be used to yield various research insights in the field of healthcare. This research study focuses on and represents unique ML computations in BDAthat are useful in the field of Health Care Analytics.
医疗保健领域的机器学习是未来的技术。大数据分析是最近的技术发展之一,因为它保证了从大数据资源中提供更好的信息。它包括选择合适的大数据存储和确定mlstrategy扩展的结构。在这个数字时代,大量的信息可以在公共领域获得,这些信息通过机器学习进一步收集,以帮助治疗和分析患者的医疗状况。有几个有趣的发展,医学专家擅长解释他们看到的数据和他们从模型中得到的信息,另一方面,机器学习算法被使用。这些算法不需要任何医学专业知识的指导,但可以非常有效地提取模式。因此,本研究的重点是如何将人类经验和训练有素的机器学习算法模型相结合,以产生医疗保健领域的各种研究见解。本研究关注并代表了bda中独特的ML计算,这些计算在医疗保健分析领域非常有用。
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引用次数: 0
Product Rental Web Application using HTML, CSS, BOOTSTRAP, PHP, and SQL 产品租赁Web应用程序使用HTML, CSS, BOOTSTRAP, PHP和SQL
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125895
Ravindhar Nv, Raga Ranjini R, S. Ch, Kiruthiga M
New web technologies, languages, and approaches have aided in creating dynamic apps that represent a new form of cooperation and collaboration among many users. The objective of this study is to develop a website that would help people in reducing their expenditure for products that are temporarily required. In order to do so, an application has been developed in this research, in which people can request their needs (products for temporary use) and offer products to others as well. In this way, people can get products that are required for them temporarily. At the same time, cost can also be saved since the required product is brought only for rent rather than buying. Another advantage is that the other person offering products for rent as well gains some money. This system can solve the problem of people owning non-essential products readily. Hence this application could be very helpful for people in their day-to-day life.
新的网络技术、语言和方法有助于创建动态应用程序,这些应用程序代表了许多用户之间合作和协作的新形式。这项研究的目的是开发一个网站,帮助人们减少临时需要的产品的支出。为了做到这一点,本研究开发了一种应用程序,人们可以在其中请求他们的需求(临时使用的产品)并将产品提供给其他人。通过这种方式,人们可以获得他们暂时需要的产品。同时,由于所需要的产品只用于租赁而不是购买,因此也可以节省成本。另一个好处是,另一个提供产品出租的人也能赚到一些钱。该系统可以很容易地解决人们拥有非必需产品的问题。因此,这个应用程序可能对人们的日常生活非常有帮助。
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引用次数: 1
Compact Firefly Algorithm with Deep Learning Based Chromatic Condition Predictive Model for Organic Synthesis Purification 基于深度学习的紧凑萤火虫算法的有机合成净化色度条件预测模型
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125798
S. Kumaraswamy, Md. Abul Ala Walid, Neetesh K. Sharma, M. Jaimini, Deepak Sharma, Arnab Chakraborty
Chromatography is an effective method utilized in organic synthesis to purify and separate chemical compounds. There are many features which affect the efficacy and efficiency of chromatography, comprising the kind of chromatography utilized, the nature of instances, the type and size of columns, type of mobile phase, and flow rate. In recent times, Deep Learning (DL) has the potential to significantly increase the effectiveness and efficiency of chromatography for purification in organic synthesis allowing the analysis and optimizer of difficult procedures at a much quicker rate than is possible with classical approaches. With this motivation, this study develops a novel Compact Firefly Algorithm with Deep Learning based Chromatic Condition Predictive (CFADL-CCP) Model for Organic Synthesis Purification. The presented CFADL-CCP technique mainly predicts the chromatic conditions accurately and timely for organic synthesis purification. In the presented CFADL-CCP technique, two stage pipeline is involved. At the initial stage, the CFADL-CCP technique uses Deep Neural Network (DNN) model for prediction process. Next, in the second stage, the CFA is used for the optimal hyperparameter tuning of the DNN model which helps to accomplish enhanced predictive outcomes. To illustrate the enhanced predictive results of the CFADL-CCP method, an extensive range of simulations were performed. Extensive result analysis shows the betterment of the CFADL-CCP method over other compared methods.
色谱法是有机合成中纯化和分离化合物的一种有效方法。影响色谱效果和效率的因素有很多,包括所用色谱的种类、样品的性质、色谱柱的类型和大小、流动相的类型和流速。近年来,深度学习(DL)有可能显著提高有机合成中纯化色谱的有效性和效率,从而比传统方法更快地分析和优化困难的过程。基于这一动机,本研究开发了一种新颖的基于深度学习的彩色条件预测(CFADL-CCP)模型的紧凑萤火虫算法,用于有机合成纯化。本文提出的CFADL-CCP技术主要是准确、及时地预测有机合成纯化的染色条件。在CFADL-CCP技术中,采用了两级流水线。在初始阶段,CFADL-CCP技术使用深度神经网络(DNN)模型进行预测过程。接下来,在第二阶段,CFA用于DNN模型的最优超参数调整,这有助于实现增强的预测结果。为了说明CFADL-CCP方法的增强预测结果,进行了广泛的模拟。广泛的结果分析表明,CFADL-CCP方法优于其他比较方法。
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引用次数: 5
Reducing Hydrogen Consumption in the Automotive Systems Using Fuel cells and Whale Optimization 使用燃料电池和鲸鱼优化减少汽车系统中的氢消耗
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125843
J. Fernandes, K. Manideep, M. V. Sainadh, M. L. Sowmica
As it can provide electricity for loads in dangerous areas without a power infrastructure, a back-up power delivery system is essential for military application and disaster relief. The advantages of the proton-exchange membrane electric cell over conventional energy sources including superior thermal efficiency, noise cancelling, key effect, and density, and zero greenhouse gas emissions gradually replace them as the significant supplier of power for the secondary energy provision system. A “dual electric cell and metallic element battery” backup power infrastructure is developed in this work, and fuzzy control-based energy management strategies are also investigated.
在没有电力基础设施的危险地区,可以为负载提供电力,因此后备电力系统在军事和救灾中是必不可少的。质子交换膜电池相对于传统能源的热效率、降噪、关键效应、密度、零温室气体排放等优势,逐渐取代传统能源成为二次能源供给系统的重要动力源。本文提出了一种“双电池-金属元素电池”备用电源结构,并对基于模糊控制的能量管理策略进行了研究。
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引用次数: 0
Smart Traffic Monitoring System using YOLO and Deep Learning Techniques 基于YOLO和深度学习技术的智能交通监控系统
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10126048
Akhil Reddy Kalva, Jyothi Swarup Chelluboina, B. Bharathi
As the world's population grows, there are more vehicles on the road every day, which leads to an increase in heavy traffic. Traffic monitoring is essential for preventing accidents. To detect reckless drivers and other traffic infractions, a model that can track, identify, and categorize vehicles is needed. The task of counting the number of vehicles is crucial in traffic situations because it allows the authorities to prevent accidents and traffic jams caused by heavy traffic. The approach outlined in the study uses the image processing methods YOLO and OpenCV to count the number of vehicles, classify them, and identify them. By processing the images from the input video given to OpenCV, a software library, the objects are detected and identified. In comparison to other object detection algorithms, the real-time object detection algorithm YOLO is both quicker and more accurate. The accuracy and efficiency of vehicle detection and classification have been greatly enhanced by convolutional neural networks and other machine learning algorithms, enabling real-time analysis of enormous amounts of data. With the help of this technology, driving safety will be increased, traffic flow will be optimized, and autonomous driving will be made possible.
随着世界人口的增长,每天路上的车辆越来越多,这导致了交通拥堵的增加。交通监控对预防事故至关重要。为了检测鲁莽驾驶和其他交通违规行为,需要一种能够跟踪、识别和分类车辆的模型。计算车辆数量的任务在交通情况下是至关重要的,因为它使当局能够防止交通拥挤造成的事故和交通堵塞。研究中概述的方法使用图像处理方法YOLO和OpenCV来计算车辆数量,对它们进行分类和识别。通过对输入视频中的图像进行处理,将图像输入到OpenCV(一个软件库)中,对目标进行检测和识别。与其他目标检测算法相比,实时目标检测算法YOLO速度更快,精度更高。卷积神经网络和其他机器学习算法大大提高了车辆检测和分类的准确性和效率,使大量数据的实时分析成为可能。在这项技术的帮助下,驾驶安全性将得到提高,交通流量将得到优化,自动驾驶将成为可能。
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引用次数: 1
A Secure Platform for Storing, Generating and Verifying Degree Certificates using Blockchain 一个使用区块链存储、生成和验证学位证书的安全平台
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125598
Tanzila Nargis, Preethi Salian K, Prathyakshini, V. J, Manasa G R, S. Salian
Humans deal with many document generation and verification processes in day–to–day life, such as academic certificates, land registries, vehicle registration, medical records, etc. Academic certificates play an essential role in graduates' lives, as it is the proof of completing a required educational qualification for applying jobs or higher education. The current era of technology is rapidly evolving every day, and as a result, the generation of fake certificates becomes easier. So the utmost priority is given to preserving these certificates and making them tamper-proof. There are various methods to secure these certificates. One such method involves a decentralized storage system which uses blockchain technology to generate and store the certificates. The Universities will add the student details on to the blockchain which generates the unique certification ID and transaction hash which cannot be easily tampered. Later the organization can verify the candidate who is seeking the job using these details. Hence blockchain technology can be used to to secure and standardize a digital certificate format, in which institutions and organizations can benefit by making the verification process faster and easier by eliminating the fake certificates.
人类在日常生活中要处理许多文件的生成和验证过程,如学术证书、土地登记、车辆登记、医疗记录等。学历证书在毕业生的生活中起着至关重要的作用,因为它是完成申请工作或高等教育所需的教育资格的证明。当今时代的技术日新月异,因此,伪造证书变得更加容易。因此,最优先考虑的是保存这些证书并使其防篡改。有各种方法来保护这些证书。其中一种方法涉及使用区块链技术生成和存储证书的分散存储系统。大学将把学生的详细信息添加到区块链中,区块链生成唯一的认证ID和交易哈希,这些不能轻易被篡改。稍后,组织可以使用这些细节来验证正在寻找该职位的候选人。因此,区块链技术可用于保护和标准化数字证书格式,机构和组织可以通过消除假证书使验证过程更快、更容易而受益。
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引用次数: 1
Analysis of Diabetic Prediction Using Machine Learning Algorithms on BRFSS Dataset 基于BRFSS数据集的机器学习算法的糖尿病预测分析
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125804
Lakshmi H.N., A. Reddy, Kritika Naidu
Due to the detrimental effects it has on everyone's health, diabetes is a chronic condition that still poses a serious threat to the global population. It is a metabolic disorder that increases blood sugar levels and increasing the risk of heart disease, kidney failure, stroke, issues with the nerves and heart, among other issues. Over the years, several scholars have sought to create reliable diabetes prediction models. Due to a lack of adequate data sets and prediction techniques, this discipline still faces many unsolved research issues, which forces researchers to apply big data analytics and ML-based methodology. The paper investigates healthcare prediction analytics and addresses the issues using four different machine learning methods. This study has utilized the Early detection and Binary 012 databases. Based on these datasets, the precision, recall, and accuracy of KNNs and Random Forest methods are calculated. The study's findings may be valuable to health professionals, stakeholders, students, and researchers engaged in diabetes prediction research and development because SVM performs better than KNN and Logistic Regression.
由于它对每个人的健康都有不利影响,糖尿病是一种慢性疾病,仍然对全球人口构成严重威胁。它是一种代谢紊乱,会增加血糖水平,增加患心脏病、肾衰竭、中风、神经和心脏问题以及其他问题的风险。多年来,一些学者试图建立可靠的糖尿病预测模型。由于缺乏足够的数据集和预测技术,该学科仍然面临许多未解决的研究问题,这迫使研究人员应用大数据分析和基于ml的方法。本文研究了医疗保健预测分析,并使用四种不同的机器学习方法解决了问题。本研究利用了早期检测和二进制012数据库。基于这些数据集,计算了knn和随机森林方法的精密度、召回率和正确率。该研究的发现可能对从事糖尿病预测研究和开发的卫生专业人员,利益相关者,学生和研究人员有价值,因为SVM比KNN和Logistic回归表现更好。
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引用次数: 1
Abnormal Activity Detection Techniques in Intelligent Video Surveillance: A Survey 智能视频监控中的异常活动检测技术综述
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125671
S.Sony Priya, R. Minu
Currently, CCTV (Closed Circuit Television) cameras are used for surveillance by alerting the security officer if any malfunction or abnormal activity happens. Abnormal activities may be theft, violence, or explosion. CCTV cameras are used in public places like city streets, parks, communities, and neighborhoods to help detect crime and enhance public safety. Manual surveillance for this is tedious and time-consuming. Detecting abnormal crowd behavior in real-time is an exciting research area. Presently, most researchers are interested in developing Dynamic abnormal detection mechanisms to ensure security. However, this is challenging due to climate change, human movement, occlusions, and low video quality. Due to the high dimensionality of video data, Space and time complexity are also increased. This paper explains the various methods of abnormal activity detection under deep learning and the handcrafted approach.
目前,CCTV(闭路电视)摄像机用于监控,如果发生任何故障或异常活动,它会提醒保安人员。异常活动可能是偷窃、暴力或爆炸。闭路电视摄像机被用于城市街道、公园、社区和邻里等公共场所,以帮助侦查犯罪和加强公共安全。为此进行手动监视既乏味又耗时。实时检测人群异常行为是一个令人兴奋的研究领域。目前,大多数研究人员都对开发动态异常检测机制来保证安全感兴趣。然而,由于气候变化、人类运动、遮挡和低视频质量,这是具有挑战性的。由于视频数据的高维性,也增加了空间和时间复杂度。本文介绍了深度学习和手工方法下异常活动检测的各种方法。
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引用次数: 0
Study of Image Data Security with Cloud 基于云的图像数据安全研究
Pub Date : 2023-04-11 DOI: 10.1109/ICOEI56765.2023.10125614
Pronika Chawla, Harshit Parihar, Ankit Mathur
The on-demand availableness of computer systems resources, especially storage of data (cloud storage) and rectifying power, with no direct ongoing administration by the user is what they call cloud computing. Large cloud functions are usually spread among several locations, each of which constitutes a data center. Customers may save money on capital expenses by using cloud computing, which frequently takes a “pay-as-you-go” approach. Coherence in cloud computing is achieved by sharing resources. In today's world of the Internet, demand for cloud services is increasing drastically leading to the production of new services day by day. As the services increase, the data gets primarily targeted by spiteful users who attempt to steal the data for their own atrocious and unethical activities. Users and trustworthy applications are considering more security and privacy and services get more in demand. Moreover, this study has reviewed several algorithms such as CPE-ABE (Ciphertext policy attribute-based encryption), ABE, KP-ABE (Key policy attribute-based encryption) CSP (Constraint satisfaction problem), PKG, AES (Advanced Encryption Standards), SHA-1 (Secure Hash Algorithm), Photo encryption, Photo decryption, PRE, IDEA (International Data Encryption algorithm) and LSBG (Least Significant Bit Grouping) for image data security. As already discussed, the increasing threats and frauds around the world, safe and secure applications and services should be created to resolve this problem so that people can store data on a platform that can be relied on. This research study has discussed about the concept of what are the paradigms required for securing and protecting the data and securing the image data at an encrypted level. This study has reviewed several existing research works, studied different algorithms which have been used in different research articles, and compared their strengths and drawbacks accordingly. Different research works have been summarized in a form of table, which includes multiple algorithms that are used to secure data, which are then distinguished them based on the strengths and drawbacks.
计算机系统资源的按需可用性,特别是数据存储(云存储)和校正能力,无需用户进行直接的持续管理,这就是他们所说的云计算。大型云功能通常分布在多个位置,每个位置都构成一个数据中心。客户可以通过使用云计算来节省资本开支,云计算通常采用“现收现付”的方式。云计算中的一致性是通过资源共享来实现的。在当今的互联网世界中,对云服务的需求正在急剧增加,导致新服务的产生。随着服务的增加,数据主要成为恶意用户的目标,他们试图窃取数据以进行自己的残暴和不道德的活动。用户和值得信赖的应用程序正在考虑更多的安全和隐私,服务的需求也越来越大。此外,本研究还回顾了几种用于图像数据安全的算法,如CPE-ABE(基于密文策略属性的加密)、ABE、KP-ABE(基于密钥策略属性的加密)、CSP(约束满足问题)、PKG、AES(高级加密标准)、SHA-1(安全哈希算法)、照片加密、照片解密、PRE、IDEA(国际数据加密算法)和LSBG(最低有效位分组)。正如已经讨论过的,世界各地日益增加的威胁和欺诈,应该创建安全可靠的应用程序和服务来解决这个问题,以便人们可以将数据存储在一个可以依赖的平台上。本研究讨论了保护和保护数据所需的范式以及在加密级别保护图像数据的概念。本研究回顾了一些现有的研究工作,研究了不同研究文章中使用的不同算法,并相应地比较了它们的优缺点。不同的研究工作以表格的形式进行了总结,其中包括用于保护数据的多种算法,然后根据优点和缺点对它们进行了区分。
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引用次数: 0
期刊
2023 7th International Conference on Trends in Electronics and Informatics (ICOEI)
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