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    1. Data och IT
    2. Systemvetenskap och AI

    Collaborative Computing: Networking, Applications and Worksharing

    20th EAI International Conference, CollaborateCom 2024, Wuzhen, China, November 14–17, 2024, Proceedings, Part I

    AvHonghao Gao,Xinheng Wang

    Häftad, Engelska, 2025

    Del 624 i serien Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering

    1 008 kr

    Beställningsvara. Skickas inom 10-15 vardagar. Fri frakt över 249 kr.

    Beskrivning

    The three-volume set LNICST 624, 625, 626 constitutes the refereed proceedings of the 20th EAI International Conference on Collaborative Computing: Networking, Applications and Worksharing, CollaborateCom 2024, held in Wuzhen, China, during November 14–17, 2024. The 62 full papers were carefully reviewed and selected from 173 submissions. They are categorized under the topical sections as follows:  Edge computing & Task schedulingDeep Learning and applicationBlockchain applicationsSecurity and Privacy ProtectionRepresentation learning & Collaborative workingGraph neural networks & Recommendation systemsFederated Learning and application

    Produktinformation

    • Utgivningsdatum:2025-08-10
    • Mått:155 x 235 x 28 mm
    • Vikt:774 g
    • Format:Häftad
    • Språk:Engelska
    • Serie:Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering
    • Antal sidor:494
    • Förlag:Springer International Publishing AG
    • ISBN:9783031932502

    Utforska kategorier

    • Systemvetenskap och AI inom Data och IT
    • Databaser inom Data och IT
    • Hårdvara inom Data och IT

    Innehållsförteckning

    • Edge Computing & Task Scheduling.- Latency Energy aware Heterogeneous Resource Allocation and Task Scheduling in Industrial Cloud Edge Computing.- Backpressure-based Federated Learning Model Scheduling in Edge Computing.- Minimizing the Age of Knowledge in Application-oriented Mobile Edge Computing System with DRL-based Scheduling.- Dependency-Aware Task Offloading in Dynamic Network Environment with D2D Collaboration.- Delay Minimization for Downlink PD-NOMA Transmission with Index Coding in Cache-Aided Wireless Networks.- Fast Adaptive Caching Algorithm for Mobile Edge Networks Based on Meta-Reinforcement Learning.- Delay- and Cost-Aware Dynamic Service Migration in Collaborative Satellite Computing.- Towards Efficient Scheduling in Large Clusters Leveraging the Small-World Network Model.- A Dynamic Prioritization Task Offloading Strategy with Delay Constraints.- Task Scheduling Strategy among Multiple Local Mobile Clouds in Pervasive Edge Computing.- A Task Scheduling Strategy Based on Computing-Aware and Multi-Agent Collaborative Services in Pervasive Edge Computing.- Collaborative Vehicular Edge Cloud Computing Task Offloading Optimization Scheme Based on Deep Reinforcement Learning.- Deep Learning and Application.- NL-ATD: Spatio-Temporal Few-Shot Learning via Attention Transfer and Denoising Model.- A GCN-based DRL Approach for task migration and resource allocation in Heterogeneous Edge-Cloud Environments.- A Multi-Document Summarization Method for Customer Feedback Based on Large Language Models.- KaRe: Towards Flexible and Effective Machine Unlearning with Knowledge Alignment and Repair.- SWGCNN-BiLSTM: A Method for Detecting Unknown Attack Traffic within Imbalanced Samples.- Two-stage workflow scheduling based on deep reinforcement learning.- GRASP-SLAM: Gmapping-augmented DRL for Active SLAM using Policy gradient.- WiLDID:Low-Collaboration WiFi-Based Person Identification Via A Lightweight Deep Neural Network.- Dialogue Summarization by Integrating Structural Features and Improving Factual Consistency through Post-Editing.- TransAware: An Automatic Parallel Method for Deep Learning Model Training with Global Model Structure Awareness.- A Reliability Enhancement Scheme for Distributed Cloud Service Systems Based on Deep Reinforcement Learning.- Contrastive Learning-Based Finger-Vein Recognition Using Frequency-Mixup Augmentation and Time-Frequency Feature Fusion.- BACE-RUL: A Bi-directional Adversarial Network with Covariate Encoding for Machine Remaining Useful Life Prediction.