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A Performance Fault Diagnosis Method for SaaS Software Based on GBDT Algorithm
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作者 Kun Zhu Shi Ying +4 位作者 Nana Zhang Rui Wang Yutong Wu Gongjin Lan Xu Wang 《Computers, Materials & Continua》 SCIE EI 2020年第3期1161-1185,共25页
SaaS software that provides services through cloud platform has been more widely used nowadays.However,when SaaS software is running,it will suffer from performance fault due to factors such as the software structural... SaaS software that provides services through cloud platform has been more widely used nowadays.However,when SaaS software is running,it will suffer from performance fault due to factors such as the software structural design or complex environments.It is a major challenge that how to diagnose software quickly and accurately when the performance fault occurs.For this challenge,we propose a novel performance fault diagnosis method for SaaS software based on GBDT(Gradient Boosting Decision Tree)algorithm.In particular,we leverage the monitoring mean to obtain the performance log and warning log when the SaaS software system runs,and establish the performance fault type set and determine performance log feature.We also perform performance fault type annotation for the performance log combined with the analysis result of the warning log.Moreover,we deal with the incomplete performance log and the type non-equalization problem by using the mean filling for the same type and combination of SMOTE(Synthetic Minority Oversampling Technique)and undersampling methods.Finally,we conduct an empirical study combined with the disaster reduction system deployed on the cloud platform,and it demonstrates that the proposed method has high efficiency and accuracy for the performance diagnosis when SaaS software system runs. 展开更多
关键词 GBDT algorithm saas software performance log performance fault diagnosis
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SaaS服务供应商在提供免费试用服务时的定价策略
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作者 张志远 叶涛锋 《江苏科技大学学报(自然科学版)》 CAS 2024年第1期95-103,共9页
基于SaaS服务相关的背景构建两周期博弈模型,研究SaaS服务供应商在提供免费试用服务时使用量、交易成本、更新水平、折现率、免费试用时间这5类因素如何影响SaaS服务供应商的计费方式和定价策略.研究发现:在用户感知达到SaaS服务的真实... 基于SaaS服务相关的背景构建两周期博弈模型,研究SaaS服务供应商在提供免费试用服务时使用量、交易成本、更新水平、折现率、免费试用时间这5类因素如何影响SaaS服务供应商的计费方式和定价策略.研究发现:在用户感知达到SaaS服务的真实质量前,最优利润均随着免费试用时间增加而增加.不论采用何种价格歧视策略,当使用量较高且交易成本较高时,SaaS服务供应商采取按阶段收费的方式获利更高,当使用量和交易成本处于一种均衡状态时,SaaS服务供应商通过两种定价方式获利相仿;当使用量较低且交易成本也较低时,SaaS服务供应商采取按使用量收费的方式获利更高.采取按阶段收费方式,折现率较高时,基于行为的价格歧视策略最优;折现率较低时,跨期价格歧视更有利可图.采取按使用量收费方式时,跨期价格歧视最优. 展开更多
关键词 按阶段收费 按使用量收费 免费试用服务 saas服务
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面向SaaS的零信任技术研究
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作者 江为强 陈琳 +2 位作者 刘利军 柏洪涛 王光涛 《电信工程技术与标准化》 2024年第3期1-6,共6页
为解决云计算环境下SaaS对数据进行有效访问控制的安全需求,本文引入零信任技术“永不信任,持续验证”的理念,提出基于零信任的身份认证与访问控制技术和基于零信任网络的软件定义边界解决方案,以实现更细粒度和动态的访问控制,减少潜... 为解决云计算环境下SaaS对数据进行有效访问控制的安全需求,本文引入零信任技术“永不信任,持续验证”的理念,提出基于零信任的身份认证与访问控制技术和基于零信任网络的软件定义边界解决方案,以实现更细粒度和动态的访问控制,减少潜在远程连接的横向攻击风险。本文旨在通过对面向SaaS的零信任技术的研究,为组织和企业提供更安全和可靠的SaaS环境,有效降低数据泄露和安全风险,提高企业对SaaS的信任和采用度。 展开更多
关键词 saas saas安全 零信任技术 身份验证 访问控制
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A Hybrid Model for Improving Software Cost Estimation in Global Software Development
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作者 Mehmood Ahmed Noraini B.Ibrahim +4 位作者 Wasif Nisar Adeel Ahmed Muhammad Junaid Emmanuel Soriano Flores Divya Anand 《Computers, Materials & Continua》 SCIE EI 2024年第1期1399-1422,共24页
Accurate software cost estimation in Global Software Development(GSD)remains challenging due to reliance on historical data and expert judgments.Traditional models,such as the Constructive Cost Model(COCOMO II),rely h... Accurate software cost estimation in Global Software Development(GSD)remains challenging due to reliance on historical data and expert judgments.Traditional models,such as the Constructive Cost Model(COCOMO II),rely heavily on historical and accurate data.In addition,expert judgment is required to set many input parameters,which can introduce subjectivity and variability in the estimation process.Consequently,there is a need to improve the current GSD models to mitigate reliance on historical data,subjectivity in expert judgment,inadequate consideration of GSD-based cost drivers and limited integration of modern technologies with cost overruns.This study introduces a novel hybrid model that synergizes the COCOMO II with Artificial Neural Networks(ANN)to address these challenges.The proposed hybrid model integrates additional GSD-based cost drivers identified through a systematic literature review and further vetted by industry experts.This article compares the effectiveness of the proposedmodelwith state-of-the-artmachine learning-basedmodels for software cost estimation.Evaluating the NASA 93 dataset by adopting twenty-six GSD-based cost drivers reveals that our hybrid model achieves superior accuracy,outperforming existing state-of-the-artmodels.The findings indicate the potential of combining COCOMO II,ANN,and additional GSD-based cost drivers to transform cost estimation in GSD. 展开更多
关键词 Artificial neural networks COCOMO II cost drivers global software development linear regression software cost estimation
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基于天翼云4.0的行业数字化生态赋能平台SaaS化上云设计与实践
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作者 陈淏 毕钊铭 +4 位作者 杜宝兰 任义翔 钟清宇 温育翔 薛文 《科技创新与应用》 2024年第2期133-137,共5页
SaaS为软件交付提供基于订阅的模型,使企业能够通过互联网访问应用程序和服务,该模式消除昂贵的现场基础设施、频繁更新和软件维护的麻烦。该文是基于天翼云4.0架构的实践,对中国电信SaaS上云技术框架,以某省行业数字化生态赋能平台作... SaaS为软件交付提供基于订阅的模型,使企业能够通过互联网访问应用程序和服务,该模式消除昂贵的现场基础设施、频繁更新和软件维护的麻烦。该文是基于天翼云4.0架构的实践,对中国电信SaaS上云技术框架,以某省行业数字化生态赋能平台作为案例,阐述业务平台SaaS化部署过程和应用的实践,为云SaaS化实际部署提供优化和参考。 展开更多
关键词 天翼云4.0 上云技术框架 行业数字化 业务平台 saas化部署
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A Tutorial on Federated Learning from Theory to Practice:Foundations,Software Frameworks,Exemplary Use Cases,and Selected Trends
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作者 M.Victoria Luzón Nuria Rodríguez-Barroso +5 位作者 Alberto Argente-Garrido Daniel Jiménez-López Jose M.Moyano Javier Del Ser Weiping Ding Francisco Herrera 《IEEE/CAA Journal of Automatica Sinica》 SCIE EI CSCD 2024年第4期824-850,共27页
When data privacy is imposed as a necessity,Federated learning(FL)emerges as a relevant artificial intelligence field for developing machine learning(ML)models in a distributed and decentralized environment.FL allows ... When data privacy is imposed as a necessity,Federated learning(FL)emerges as a relevant artificial intelligence field for developing machine learning(ML)models in a distributed and decentralized environment.FL allows ML models to be trained on local devices without any need for centralized data transfer,thereby reducing both the exposure of sensitive data and the possibility of data interception by malicious third parties.This paradigm has gained momentum in the last few years,spurred by the plethora of real-world applications that have leveraged its ability to improve the efficiency of distributed learning and to accommodate numerous participants with their data sources.By virtue of FL,models can be learned from all such distributed data sources while preserving data privacy.The aim of this paper is to provide a practical tutorial on FL,including a short methodology and a systematic analysis of existing software frameworks.Furthermore,our tutorial provides exemplary cases of study from three complementary perspectives:i)Foundations of FL,describing the main components of FL,from key elements to FL categories;ii)Implementation guidelines and exemplary cases of study,by systematically examining the functionalities provided by existing software frameworks for FL deployment,devising a methodology to design a FL scenario,and providing exemplary cases of study with source code for different ML approaches;and iii)Trends,shortly reviewing a non-exhaustive list of research directions that are under active investigation in the current FL landscape.The ultimate purpose of this work is to establish itself as a referential work for researchers,developers,and data scientists willing to explore the capabilities of FL in practical applications. 展开更多
关键词 Data privacy distributed machine learning federated learning software frameworks
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Software Defect Prediction Method Based on Stable Learning
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作者 Xin Fan Jingen Mao +3 位作者 Liangjue Lian Li Yu Wei Zheng Yun Ge 《Computers, Materials & Continua》 SCIE EI 2024年第1期65-84,共20页
The purpose of software defect prediction is to identify defect-prone code modules to assist software quality assurance teams with the appropriate allocation of resources and labor.In previous software defect predicti... The purpose of software defect prediction is to identify defect-prone code modules to assist software quality assurance teams with the appropriate allocation of resources and labor.In previous software defect prediction studies,transfer learning was effective in solving the problem of inconsistent project data distribution.However,target projects often lack sufficient data,which affects the performance of the transfer learning model.In addition,the presence of uncorrelated features between projects can decrease the prediction accuracy of the transfer learning model.To address these problems,this article propose a software defect prediction method based on stable learning(SDP-SL)that combines code visualization techniques and residual networks.This method first transforms code files into code images using code visualization techniques and then constructs a defect prediction model based on these code images.During the model training process,target project data are not required as prior knowledge.Following the principles of stable learning,this paper dynamically adjusted the weights of source project samples to eliminate dependencies between features,thereby capturing the“invariance mechanism”within the data.This approach explores the genuine relationship between code defect features and labels,thereby enhancing defect prediction performance.To evaluate the performance of SDP-SL,this article conducted comparative experiments on 10 open-source projects in the PROMISE dataset.The experimental results demonstrated that in terms of the F-measure,the proposed SDP-SL method outperformed other within-project defect prediction methods by 2.11%-44.03%.In cross-project defect prediction,the SDP-SL method provided an improvement of 5.89%-25.46% in prediction performance compared to other cross-project defect prediction methods.Therefore,SDP-SL can effectively enhance within-and cross-project defect predictions. 展开更多
关键词 software defect prediction code visualization stable learning sample reweight residual network
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Strategic Contracting for Software Upgrade Outsourcing in Industry 4.0
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作者 Cheng Wang Zhuowei Zheng 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第2期1563-1592,共30页
The advent of Industry 4.0 has compelled businesses to adopt digital approaches that combine software toenhance production efficiency. In this rapidly evolving market, software development is an ongoing process thatmu... The advent of Industry 4.0 has compelled businesses to adopt digital approaches that combine software toenhance production efficiency. In this rapidly evolving market, software development is an ongoing process thatmust be tailored to meet the dynamic needs of enterprises. However, internal research and development can beprohibitively expensive, driving many enterprises to outsource software development and upgrades to externalservice providers. This paper presents a software upgrade outsourcing model for enterprises and service providersthat accounts for the impact of market fluctuations on software adaptability. To mitigate the risk of adverseselection due to asymmetric information about the service provider’s cost and asymmetric information aboutthe enterprise’s revenues, we propose pay-per-time and revenue-sharing contracts in two distinct informationasymmetry scenarios. These two contracts specify the time and transfer payments for software upgrades. Througha comparative analysis of the optimal solutions under the two contracts and centralized decision-making withfull-information, we examine the characteristics of the solutions under two information asymmetry scenarios andanalyze the incentive effects of the two contracts on the various stakeholders. Overall, our study offers valuableinsights for firms seeking to optimize their outsourcing strategies and maximize their returns on investment insoftware upgrades. 展开更多
关键词 software upgrade outsourcing the principal-agent information asymmetry reverse selection contract design
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Identification of Software Bugs by Analyzing Natural Language-Based Requirements Using Optimized Deep Learning Features
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作者 Qazi Mazhar ul Haq Fahim Arif +4 位作者 Khursheed Aurangzeb Noor ul Ain Javed Ali Khan Saddaf Rubab Muhammad Shahid Anwar 《Computers, Materials & Continua》 SCIE EI 2024年第3期4379-4397,共19页
Software project outcomes heavily depend on natural language requirements,often causing diverse interpretations and issues like ambiguities and incomplete or faulty requirements.Researchers are exploring machine learn... Software project outcomes heavily depend on natural language requirements,often causing diverse interpretations and issues like ambiguities and incomplete or faulty requirements.Researchers are exploring machine learning to predict software bugs,but a more precise and general approach is needed.Accurate bug prediction is crucial for software evolution and user training,prompting an investigation into deep and ensemble learning methods.However,these studies are not generalized and efficient when extended to other datasets.Therefore,this paper proposed a hybrid approach combining multiple techniques to explore their effectiveness on bug identification problems.The methods involved feature selection,which is used to reduce the dimensionality and redundancy of features and select only the relevant ones;transfer learning is used to train and test the model on different datasets to analyze how much of the learning is passed to other datasets,and ensemble method is utilized to explore the increase in performance upon combining multiple classifiers in a model.Four National Aeronautics and Space Administration(NASA)and four Promise datasets are used in the study,showing an increase in the model’s performance by providing better Area Under the Receiver Operating Characteristic Curve(AUC-ROC)values when different classifiers were combined.It reveals that using an amalgam of techniques such as those used in this study,feature selection,transfer learning,and ensemble methods prove helpful in optimizing the software bug prediction models and providing high-performing,useful end mode. 展开更多
关键词 Natural language processing software bug prediction transfer learning ensemble learning feature selection
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Interactivity software tools for teaching in ophthalmology
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作者 Jesús Barrio-Barrio 《Annals of Eye Science》 2024年第1期10-23,共14页
The use of interactive audience software,such as audience response systems(ARS),in medical education has become increasingly popular in recent years.This technology allows instructors to engage students in real time,e... The use of interactive audience software,such as audience response systems(ARS),in medical education has become increasingly popular in recent years.This technology allows instructors to engage students in real time,encouraging active participation and promoting effective learning.The benefits of interactive audience software in medical education include increased student engagement,promotion of active learning,and enhanced learning outcomes.However,there are also several challenges to its implementation,including technical difficulties,careful planning and preparation,over-reliance on technology,and ethical concerns related to privacy and data security.The cost of implementing interactive audience software may also be a barrier for some institutions.This paper specifically reviews six interactive software platforms,including Socrative,Quizizz,Pear Deck,Slido,Wooclap and ClassPoint.These platforms allow for real-time assessment of student understanding,feedback,and participation.They also enable instructors to adjust their teaching strategies based on student responses and feedback.Overall,interactive audience software has shown great potential to enhance learning and engagement in medical education.It is important for instructors to carefully consider the benefits and challenges of its implementation.While the cost of implementing interactive audience software may be a barrier for some institutions,there are free and low-cost options available. 展开更多
关键词 Interactive audience software mobile software audience response systems(ARS) medical education
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Threshold-Based Software-Defined Networking(SDN)Solution for Healthcare Systems against Intrusion Attacks
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作者 Laila M.Halman Mohammed J.F.Alenazi 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第2期1469-1483,共15页
The healthcare sector holds valuable and sensitive data.The amount of this data and the need to handle,exchange,and protect it,has been increasing at a fast pace.Due to their nature,software-defined networks(SDNs)are ... The healthcare sector holds valuable and sensitive data.The amount of this data and the need to handle,exchange,and protect it,has been increasing at a fast pace.Due to their nature,software-defined networks(SDNs)are widely used in healthcare systems,as they ensure effective resource utilization,safety,great network management,and monitoring.In this sector,due to the value of thedata,SDNs faceamajor challengeposed byawide range of attacks,such as distributed denial of service(DDoS)and probe attacks.These attacks reduce network performance,causing the degradation of different key performance indicators(KPIs)or,in the worst cases,a network failure which can threaten human lives.This can be significant,especially with the current expansion of portable healthcare that supports mobile and wireless devices for what is called mobile health,or m-health.In this study,we examine the effectiveness of using SDNs for defense against DDoS,as well as their effects on different network KPIs under various scenarios.We propose a threshold-based DDoS classifier(TBDC)technique to classify DDoS attacks in healthcare SDNs,aiming to block traffic considered a hazard in the form of a DDoS attack.We then evaluate the accuracy and performance of the proposed TBDC approach.Our technique shows outstanding performance,increasing the mean throughput by 190.3%,reducing the mean delay by 95%,and reducing packet loss by 99.7%relative to normal,with DDoS attack traffic. 展开更多
关键词 Network resilience network management attack prediction software defined networking(SDN) distributed denial of service(DDoS) healthcare
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Auxiliary Software for Defining the Parameters of the Structural Organization of a Complex System
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作者 Branislav M. Savic 《Journal of Software Engineering and Applications》 2024年第2期109-128,共20页
The developed auxiliary software serves to simplify, standardize and facilitate the software loading of the structural organization of a complex technological system, as well as its further manipulation within the pro... The developed auxiliary software serves to simplify, standardize and facilitate the software loading of the structural organization of a complex technological system, as well as its further manipulation within the process of solving the considered technological system. Its help can be especially useful in the case of a complex structural organization of a technological system with a large number of different functional elements grouped into several technological subsystems. This paper presents the results of its application for a special complex technological system related to the reference steam block for the combined production of heat and electricity. 展开更多
关键词 Complex System Structural Organization Auxiliary software PARAMETERS
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Nonparametric Statistical Feature Scaling Based Quadratic Regressive Convolution Deep Neural Network for Software Fault Prediction
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作者 Sureka Sivavelu Venkatesh Palanisamy 《Computers, Materials & Continua》 SCIE EI 2024年第3期3469-3487,共19页
The development of defect prediction plays a significant role in improving software quality. Such predictions are used to identify defective modules before the testing and to minimize the time and cost. The software w... The development of defect prediction plays a significant role in improving software quality. Such predictions are used to identify defective modules before the testing and to minimize the time and cost. The software with defects negatively impacts operational costs and finally affects customer satisfaction. Numerous approaches exist to predict software defects. However, the timely and accurate software bugs are the major challenging issues. To improve the timely and accurate software defect prediction, a novel technique called Nonparametric Statistical feature scaled QuAdratic regressive convolution Deep nEural Network (SQADEN) is introduced. The proposed SQADEN technique mainly includes two major processes namely metric or feature selection and classification. First, the SQADEN uses the nonparametric statistical Torgerson–Gower scaling technique for identifying the relevant software metrics by measuring the similarity using the dice coefficient. The feature selection process is used to minimize the time complexity of software fault prediction. With the selected metrics, software fault perdition with the help of the Quadratic Censored regressive convolution deep neural network-based classification. The deep learning classifier analyzes the training and testing samples using the contingency correlation coefficient. The softstep activation function is used to provide the final fault prediction results. To minimize the error, the Nelder–Mead method is applied to solve non-linear least-squares problems. Finally, accurate classification results with a minimum error are obtained at the output layer. Experimental evaluation is carried out with different quantitative metrics such as accuracy, precision, recall, F-measure, and time complexity. The analyzed results demonstrate the superior performance of our proposed SQADEN technique with maximum accuracy, sensitivity and specificity by 3%, 3%, 2% and 3% and minimum time and space by 13% and 15% when compared with the two state-of-the-art methods. 展开更多
关键词 software defect prediction feature selection nonparametric statistical Torgerson-Gower scaling technique quadratic censored regressive convolution deep neural network softstep activation function nelder-mead method
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基于SaaS云平台的变形监测系统设计与应用
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作者 刘云锋 赵祎锋 后腾辉 《中国新通信》 2024年第2期72-74,共3页
本文主要阐述在软件即服务(Software as a Service,SaaS)云平台模式下,的变形监测系统的架构及功能设计。通过优化现有基于传感器的监测系统,达到构建以项目生命周期为主线的管理平台的目的,并结合当下流行的物联网技术,实现监测自动化。
关键词 saas 云平台 监测系统 物联网
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Construction and Reflection of Software Engineering Major Based on Accreditation Board for Engineering and Technology (ABET) Certification
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作者 Yimei Xu Na Li Hongfei Hu 《Journal of Contemporary Educational Research》 2024年第3期83-87,共5页
With the rapid development of information technology,the demand for talents in the field of software engineering is growing.In order to cultivate high-quality software engineering talents who meet the market demand,un... With the rapid development of information technology,the demand for talents in the field of software engineering is growing.In order to cultivate high-quality software engineering talents who meet the market demand,universities have continuously carried out the construction of software engineering majors.Accreditation Board for Engineering and Technology(ABET)certification,as an internationally recognized higher education quality assurance system,provides important reference and guidance for the construction of software engineering majors.Guided by student learning outcomes and core competencies,combined with the characteristics of software engineering talent cultivation,the innovation of talent cultivation mode takes industry-education integration and school-enterprise cooperation as the main development paths and explores comprehensive reform of the major in terms of professional positioning and goals,curriculum system,teaching conditions,and teachers.This comprehensive reform model has effectively promoted the development of major construction and improved the quality of talent cultivation. 展开更多
关键词 ABET certification software engineering Major construction Talent cultivation
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一种基于SaaS满足个性化需求的出入管理系统设计和应用
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作者 王晓宇 《电脑知识与技术》 2024年第7期104-106,共3页
出入管理是智慧园区的重要组成,其功能相对标准和规范,SaaS模式可以满足其需求,但往往无法满足部分客户的个性化和本地化需求。为此,文章探讨了一种基于SaaS满足个性化需求的出入管理系统设计和应用,主要思路是将个性化需求剥离为本地... 出入管理是智慧园区的重要组成,其功能相对标准和规范,SaaS模式可以满足其需求,但往往无法满足部分客户的个性化和本地化需求。为此,文章探讨了一种基于SaaS满足个性化需求的出入管理系统设计和应用,主要思路是将个性化需求剥离为本地化的子服务,和SaaS相互配合,各司其职,从而解决SaaS产品与个性化功能之间的矛盾,并以实际案例说明了该系统的应用效果,可作为其他SaaS系统设计实现的参考。 展开更多
关键词 saas智慧园区 出入管理 访客系统 个性化
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中国SAAS市场发展问题探析 被引量:2
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作者 陈睿哲 《科学决策》 2023年第1期149-160,共12页
SaaS是Software-as-a-Service(软件即服务)的简称,随着互联网技术的发展和应用软件的成熟,在21世纪开始兴起的一种完全创新的软件应用模式。在分析全球SaaS市场发展的前提下,重点对比分析了中美SaaS市场的特点,参照全球及美国的发展经验... SaaS是Software-as-a-Service(软件即服务)的简称,随着互联网技术的发展和应用软件的成熟,在21世纪开始兴起的一种完全创新的软件应用模式。在分析全球SaaS市场发展的前提下,重点对比分析了中美SaaS市场的特点,参照全球及美国的发展经验,提出来我国SaaS市场的发展趋势,并根据我国的实际情况,首次从政治、经济、社会和技术的角度,进行了风险研判,并提出了对我国SaaS市场的基本判断。本文对于SaaS领域的从业者具有一定的参考价值。 展开更多
关键词 saas 发展趋势 风向研判 基本判断
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SaaS平台协同绵阳市中小型制造企业数字化转型发展
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作者 王钰 李道波 +2 位作者 李明珠 袁勋 魏楠 《现代工业经济和信息化》 2023年第12期10-12,15,共4页
随着数字化时代的发展,我国中小企业在数字化转型方面仍存在不平衡状态,数字化转型已被证实有助于中小微企业降本增效、提高客户体验以及部门协作与创新能力。Saa S(软件即服务)平台为企业提供数字化诊断、咨询和建设路径,是协同企业数... 随着数字化时代的发展,我国中小企业在数字化转型方面仍存在不平衡状态,数字化转型已被证实有助于中小微企业降本增效、提高客户体验以及部门协作与创新能力。Saa S(软件即服务)平台为企业提供数字化诊断、咨询和建设路径,是协同企业数字化转型实现创新的重要路径。基于数字化转型发展趋势与前景,以绵阳中小型制造企业为例,研究Saa S平台在中小型制造企业数字化转型中的应用策略和方法。该研究对于推动中小企业的数字化转型、提升协同与合作能力、提高生产效率和质量控制水平、拓宽销售渠道与市场机会以及促进产业升级与创新发展具有重要意义。 展开更多
关键词 Saa S平台 数字化转型 中小型企业 降本增效
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5G跨域态势感知与AI管控SaaS服务解决方案 被引量:1
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作者 王新宽 范学领 +1 位作者 张淏湜 谢敏 《江苏通信》 2023年第3期25-28,38,共5页
随着5G网络的普及,应用场景不断丰富,5G引入的新技术新网络架构与5G+工业互联网、工业上云碰撞出了新的浪花,也给运营商和ToB客户的网络安全带来了新的挑战。提供一套5G跨域态势感知与AI管控SaaS服务解决方案,包括5G跨域全流量数据采集... 随着5G网络的普及,应用场景不断丰富,5G引入的新技术新网络架构与5G+工业互联网、工业上云碰撞出了新的浪花,也给运营商和ToB客户的网络安全带来了新的挑战。提供一套5G跨域态势感知与AI管控SaaS服务解决方案,包括5G跨域全流量数据采集、留存、序列分片AI分析管控、监测与回溯、5GAF定向引流、企业侧精准牵引、SRv6智能化IPv6引流与防护、工业企业SaaS化安全服务能力建设。 展开更多
关键词 5G跨域态势感知 AI管控 saas服务 网络安全 5G+工业互联网
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基于SaaS的高校智慧体育校园服务平台的初探
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作者 韩星蕊 曾理 +2 位作者 林盈伽 刘杨 刘彦晨 《当代体育科技》 2023年第18期97-102,110,共7页
互联网技术的不断发展为整合、利用原本零散的校园体育数据提供了新的可能。该文通过梳理智慧校园、智慧体育校园的发展,分析了高校智慧体育校园服务平台现状,借助SaaS系统,提出对智慧体育校园服务平台规划构建的设想及建议。研究认为,... 互联网技术的不断发展为整合、利用原本零散的校园体育数据提供了新的可能。该文通过梳理智慧校园、智慧体育校园的发展,分析了高校智慧体育校园服务平台现状,借助SaaS系统,提出对智慧体育校园服务平台规划构建的设想及建议。研究认为,智慧体育校园是体育数据的动态反馈,校园体育数据来源于体育课程、体质健康、心理健康、体育课外活动等过程中产生的数据。然而,这些数据之间并没有形成良好的链接,存在数据断点,同时,校园体育数据还存在梳理、整合、管理、实时反馈中的痛点。该文所提出的基于SaaS的高校智慧校园服务平台构建的数据要素包含静态数据与动态数据两方面;平台的数据分析内容要兼顾体质健康、体育课、课外活动等,能够在时间上与空间上同时兼顾,并对未来作出判断与预测;平台的数据应用包含整合、聚类与统计;平台的功能体现在运动跟踪与监测、教学反馈、管理应用、促进校企合作等方面。 展开更多
关键词 saas 智慧体育 智慧校园 “互联网+体育”
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