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  1. 1861
  2. 1862
  3. 1863
    Published 2012
    Table of Contents: ...Foreword -- Benefits of geographic information systems in managing a major transportation program: Evaluation and lessons learned -- Mapping oversized and overweight truck routes with procedure based on geographic information systems -- Enhanced analysis of work zone safety through integration of statewide crash and lane closure system data -- Wireless communication simulation model for traffic monitoring systems based on dynamic cellular handoffs: Framework and evaluation -- Monitoring travel time reliability from the cloud: Cloud computing-based architecture for advanced dissemination of traffic information -- Design of open source framework for traffic and travel simulation -- Modeling annual average daily traffic with integrated spatial data from multiple network buffer bandwidths -- Inferring road maps from global positioning system traces: Survey and comparative evaluation -- Estimating spatial traffic states with location-based data under heterogeneous conditions -- Automated identification and extraction of horizontal curve information from geographic information system roadway maps -- Estimation of a road mask to improve vehicle detection and tracking in airborne imagery -- Add-on program for national household travel survey: Experience of stakeholders and best practices to maximize program benefits -- Engaging new partners in transportation research: Integrating the publishing, archiving, and indexing of technical literature into the research process -- Development of decision tool for strategies to reduce greenhouse gas emissions: Role of national household travel survey data in GreenSTEP model development....
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  4. 1864
  5. 1865
  6. 1866
    by Burlew, Michele
    Published 2012
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  7. 1867
  8. 1868
  9. 1869
  10. 1870
  11. 1871
  12. 1872
    by Cerrato, Paul
    Published 2016
    Table of Contents: ...Perception Versus Reality; The Cost of Insecurity is Steep; A Closer Look at Data Breach Fines; Do not ignore individual states in breach investigations; Fines are Only Part of the Problem; Factoring in the Meaningful Use Program; Calculating the Cost of Security; References; Chapter 3 -- Regulations Governing Protected Health Information; Defining the Crown Jewels....
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  13. 1873
    by Burns, Sean
    Published 2019
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  14. 1874
  15. 1875
  16. 1876
  17. 1877
  18. 1878
    Published 2025
    Table of Contents: ...Patnaik -- 3.1 Introduction 60 -- 3.2 Environmental Monitoring via IoT for Sustainable Aquaculture 63 -- 3.3 The Primacy of IoT in Enhancing Fish Health Monitoring 67 -- 3.4 Delving Into IoT: Improving Agricultural Water Quality Management 70 -- 3.5 Connecting the Dots: Using IoT Fish Behavior Monitoring to Improve Aquaculture Practices 74 -- 3.6 The Worldwide Deployment of IoT in Aquaculture: Advantages and Success Factors 79 -- 3.7 Conclusion 81 -- Acknowledgment 81 -- References 81 -- 4 Energy Consumption Optimization in Wireless Sensor Networks 87 Avik Das, Shatyaki Ghosh and Arindam Basak -- 4.1 Introduction 87 -- 4.1.1 WSN Application and Hardware Characteristics 90 -- 4.2 MAC Layer Approaches 93 -- 4.2.1 IEEE 802.15.4 Standard along with the ZigBee Technology 94 -- 4.2.2 Different Other MAC Approaches 95 -- 4.3 Routing Approaches 98 -- 4.4 Transmission Power Control Approaches 99 -- 4.5 Autonomic Approaches 102 -- 4.6 Application of ZigBee in a WSN 105 -- 4.7 WSN with Cloud Computing 106 -- 4.8 Final Considerations and Future Directions 109 -- References 110 -- 5 Airline Prediction Using Customer Feedback and Rating Using Machine Learning and Deep Learning 115 Ch Sambasiva Rao, Pabbathi Manobhi Ram, Viswanadhapalli Siva and Motakatla Satya Sai Krishna Reddy -- 5.1 Introduction 116 -- 5.1.1 Customer Ratings and Recommendation 116 -- 5.2 Literature Survey 117 -- 5.3 System Design 119 -- 5.4 Methodology 120 -- 5.4.1 Modules 120 -- 5.4.1.1 Data Collection 120 -- 5.4.1.2 Review-Based Airline Prediction 120 -- 5.4.1.3 Rating-Based Airline Prediction 121 -- 5.5 Algorithm Used: Random Forest, Convolutional Neural Network, and AdaBoost 121 -- 5.5.1 Random Forest System 121 -- 5.5.2 Convolutional 1D Neural Network-Based Training 122 -- 5.5.2.1 Sequential Model 122 -- 5.5.2.2 Add 1D Convolutional Layer 123 -- 5.5.2.3 Adding 1D Max Pooling Layer 123 -- 5.5.2.4 Adding Dense Layer 123 -- 5.5.2.5 Neural Network Training 123 -- 5.5.3 AdaBoost Algorithm 124 -- 5.6 Experimental Results and Evaluations 125 -- 5.7 Screenshots 126 -- 5.8 Conclusion 130 -- References 130 -- 6 The Breakthrough of Future Delivery: Delivery Robots 133 Ayushi Gupta -- 6.1 Introduction 133 -- 6.2 Related Work 136 -- 6.3 Evolution of Delivery Robot 138 -- 6.4 Working Principal/Model of Delivery Robots 141 -- 6.5 Benefits of Delivery Robots 143 -- 6.6 Applications of Delivery Robots 149 -- 6.7 Development Projects 153 -- 6.8 Challenging Issues with Delivery Robots 158 -- 6.9 Conclusion and Future Work 165 -- References 166 -- 7 Emergence of Cloud Computing in IoT Applications 169 Priyanshu Sonthalia and Doddi Puneet -- 7.1 Introduction 170 -- 7.1.1 Characteristics of Cloud Computing 170 -- 7.1.2 Types of Cloud Deployment Models 171 -- 7.1.3 Categories of Cloud Computing Architectures 172 -- 7.1.4 Types of Cloud Service Models 173 -- 7.2 Benefits of IoT and Cloud Integration 174 -- 7.2.1 Scalability and Elasticity of Cloud Resources for Managing IoT Data 174 -- 7.2.2 Reduced Infrastructure Costs with Cloud-Based Solutions 174 -- 7.2.3 Improved Accessibility and Availability of IoT Services with Cloud Deployment 175 -- 7.2.4 Enhanced Processing Power and Analytics Capabilities with Cloud Computing 175 -- 7.2.5 Reduced Time to Market and Increased Innovation with Cloud-Based IoT Development 175 -- 7.3 Cloud-Based IoT Architecture 175 -- 7.3.1 Four Layers of Cloud-Based IoT Architecture 175 -- 7.3.2 Role of Gateways in Linking IoT Devices to the Cloud 176 -- 7.3.3 Overview of Cloud-Based IoT Platforms and Services 177 -- 7.3.4 Cloud-Based IoT Standards and Protocols, such as MQTT, CoAP, AMQP, and HTTP 177 -- 7.4 Cloud-Based IoT Applications 180 -- 7.5 Challenges in IoT Cloud Integration 181 -- 7.5.1 Security Risks and Challenges Associated with Cloud-Based IoT Solutions 181 -- 7.5.2 Latency and Bandwidth Constraints of IoT Systems Hosted in the Cloud 181 -- 7.5.3 Interoperability Issues Between Different IoT Devices and Cloud Platforms 182 -- 7.5.4 Legal and Regulatory Challenges Associated with IoT Using Cloud Solutions 182 -- 7.6 Open Issues and Research Directions 182 -- 7.6.1 Future Trends and Developments in Cloud-Based IoT Solutions 182 -- 7.6.2 Opportunities for Research in Cloud-Based IoT Solutions 182 -- 7.6.3 Overview of Emerging Cloud-Based IoT Standards and Protocols 183 -- 7.7 Case Study 1: Smart Home Automation Using Cloud-Based IoT 183 -- 7.8 Case Study 2: Industrial IoT Optimization Using Cloud-Based IoT 184 -- 7.9 Conclusion 185 -- References 186 -- 8 Conceptual Assessment of Sensory Networks and Its Functional Aspects 189 Barat Nikhita, Siddhant Prateek Mahanayak and Kunal Anand -- 8.1 Introduction 189 -- 8.2 Evolution of IoT 191 -- 8.2.1 Phase 1: Early Adopters (Pre-2010) 192 -- 8.2.2 Phase 2: Connectivity and Smart Devices (2010-2015) 193 -- 8.2.3 Phase 3: Big Data and Cloud Computing (2015 to Present) 194 -- 8.2.4 Phase 4: Artificial Intelligence and Edge Computing (Present and Future) 195 -- 8.3 Features of IoT 196 -- 8.4 Architectural Framework of IoT 199 -- 8.4.1 Device Layer 200 -- 8.4.2 Network Layer 201 -- 8.4.3 Platform Layer 202 -- 8.4.4 Application Layer 203 -- 8.5 Components of IoT 204 -- 8.6 Applications of IoT 206 -- 8.7 Case Study 211 -- 8.7.1 Overview of Barcelona Smart City Project 211 -- 8.7.2 Methodology 212 -- 8.8 Conclusion 213 -- References 214 -- 9 System Security Using Artificial Intelligence and Reduction of Data Breach 221 M. ...
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  19. 1879
    by Eng, Lee
    Published 2016
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  20. 1880