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"SmartFilter: An Edge System for Real-Time Application-Guided Video Fra" by Jude Tchaye-Kondi, Yanlong Zhai et al.

Given the limited bandwidth available in distributed camera systems, it is nearly impossible for cameras to transmit their entire feed to the server in real-time. Furthermore, as the number of camera units increases, the processing overheads on the server also increase, resulting in excessive latencies. This paper introduces SmartFilter, a new Edge-to-Cloud filtering solution for video analytics. SmartFilter exploits the feedbacks from the running server-side application to filter directly on th...
Continuous Vision Deep Learning Edge Computing Real Time System Real Time Systems Smart Cameras
Source: uow.edu.au

"TreeNet Based Fast Task Decomposition for Resource-Constrained Edge In" by Dong Lu, Yanlong Zhai et al.

Edge intelligence is an emerging technology that integrates edge computing and deep learning to bring AI to the networkโ€™s edge. It has gained wide attention for its lower network latency and better privacy preservation abilities. However, the inference of deep neural networks is computationally demanding and results in poor real-time performance, making it challenging for resource-constrained edge devices. In this paper, we propose a hierarchical deep learning model based on TreeNet to reduce ...
Adaptation Models Computational Modeling Deep Learning Edge Computing Edge Intelligence Odel Acceleration
Source: uow.edu.au

"A Novel Mix-Normalization Method for Generalizable Multi-Source Person" by Lei Qi, Lei Wang et al.

Person re-identification (Re-ID) has achieved great success in the supervised scenario. However, it is difficult to directly transfer the supervised model to arbitrary unseen domains due to the model overfitting to the seen source domains. In this paper, we aim to tackle the generalizable multi-source person Re-ID task (i.e., there are multiple available source domains, and the testing domain is unseen during training) from the data augmentation perspective, thus we put forward a novel method, t...
Adaptation Models Data Models Omain Aware Mix Normalization Eneralizable Multi Source Person Re Identification Task Analysis Training Data
Source: uow.edu.au

"Diffusion Kernel Attention Network for Brain Disorder Classification" by Jianjia Zhang, Luping Zhou et al.

Constructing and analyzing functional brain networks (FBN) has become a promising approach to brain disorder classification. However, the conventional successive construct-and-analyze process would limit the performance due to the lack of interactions and adaptivity among the subtasks in the process. Recently, Transformer has demonstrated remarkable performance in various tasks, attributing to its effective attention mechanism in modeling complex feature relationships. In this paper, for the fir...
Diffusion Kernel Attention Network Attention Network Rain Disease Classification Brain Modeling Drain Network Diffusion Process
Source: uow.edu.au

"Charging RF-Energy Harvesting Devices in IoT Networks with Imperfect C" by Hang Yu, Kwan Wu Chin et al.

This paper considers energy delivery by a Hybrid Access Point (HAP) to one or more Radio Frequency (RF)-energy harvesting devices. Unlike prior works, it considers imperfect and causal Channel State Information (CSI), and probabilistic constraints that ensure devices receive their required amount of energy over a given planning horizon. To this end, it outlines two novel contributions. The first is a chance-constrained program, which is then solved using a Mixed Integer Linear Program (MILP) cou...
Integer Linear Program Hybrid Access Point Radio Frequency Channel State Information Mixed Integer Linear Program Sample Average Approximation
Source: uow.edu.au

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"Orchestrating Virtual Network Functions in Wireless Powered IoT Networ" by Honglin Ren, Kwan Wu Chin et al.

Virtualization of devices operating in Internet of Things (IoTs) networks allows them to host functions or tasks from different users; these devices can thus execute multiple on demand sensing and data processing services concurrently. Devices, however, have limited energy and operational lifetime. To this end, this paper considers supporting Virtual Network Functions (VNFs) in a Radio Frequency (RF)-charging network with a Hybrid Access Point (HAP). Our aim is to minimize the energy used by the...
Integer Linear Program Virtual Network Functions Vnfs Virtual Network Functions Radio Frequency Hybrid Access Point Mixed Integer Linear Program
Source: uow.edu.au

"Novel Tasks Assignment Methods for Wireless Powered IoT Networks" by Honglin Ren and Kwan Wu Chin

Devices in Internet of Things (IoT) networks are required to execute tasks such as sensing, computation and communication. These devices, however, have energy limitation, which in turn bounds the number of tasks they can execute and their tasks execution time. To this end, this paper considers energy delivery, tasks assignment and execution in a Radio Frequency (RF) IoT network with a Hybrid Access Point (HAP) and RF-powered devices. We outline a novel Mixed-Integer Linear Program (MILP) to assi...
Integer Linear Program Energy Saving Task Assignment Radio Frequency Hybrid Access Point Mixed Integer Linear Program Model Predictive Control
Source: uow.edu.au

"Blockchain-based secure deduplication and shared auditing in decentral" by Guohua Tian, Yunhan Hu et al.

Data deduplication and public auditing are significant for providing secure and efficient network storage services. However, the existing data deduplication schemes supporting auditing not only cannot effectively alleviate the threats of the single point of failure and duplicate-faking attack, but also have to bear the massive waste of computation and storage resources caused by metadata redundancy and repetitive audit tasks. In this paper, we propose a blockchain-based secure deduplication and ...
Data Deduplication Decentralized Storage Maximum Likelihood Estimation Hared Auditing Task Analysis
Source: uow.edu.au

"A cost-sensitive deep learning based approach for network traffic clas" by Akbar Telikani, Amir H. Gandomi et al.

Network traffic classification (NTC) plays an important role in cyber security and network performance, for example in intrusion detection and facilitating a higher quality of service. However, due to the unbalanced nature of traffic datasets, NTC can be extremely challenging and poor management can degrade classification performance. While existing NTC methods seek to re-balance data distribution through resampling strategies, such approaches are known to suffer from information loss, overfitti...
Class Imbalance Convolutional Neural Networks Cost Sensitive Learning Deep Learning Ncrypted Traffic Classification Generative Adversarial Networks
Source: uow.edu.au

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