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Through this project, we researched on transfer learning methods and their applications on real world problems. By implementing and modifying various methods in transfer learning for our problem, we obtained an insight in the advantages and…

Machine Learning · Computer Science 2017-07-11 Hailin Chen , Shengping Cui , Sebastian Li

On edge devices, data scarcity occurs as a common problem where transfer learning serves as a widely-suggested remedy. Nevertheless, transfer learning imposes a heavy computation burden to resource-constrained edge devices. Existing task…

Distributed, Parallel, and Cluster Computing · Computer Science 2021-07-07 Zimu Zheng , Qiong Chen , Chuang Hu , Dan Wang , Fangming Liu

Migrations of systems from on-site premises to the cloud has been a fundamental endeavor by many industrial institutions. A crucial component of such cloud migrations is the transition of databases to be hosted online. In this work, we…

Databases · Computer Science 2024-03-14 Ran Zmigrod , Salwa Alamir , Xiaomo Liu

Migrating codebases from one instruction set architecture (ISA) to another is a major engineering challenge. A recent example is the adoption of Arm (in addition to x86) across the major Cloud hyperscalers. Yet, this problem has seen…

The Electronic Data Interchange (EDI) is the exchange of standardized documents between computer systems for business use. The objective of this study is to make Electronic Data Interchange secure to use and to eliminate human intervention…

Cryptography and Security · Computer Science 2011-08-05 Achimugu Philip , Oluwagbemi Oluwatolani , Abah Joshua

Migration legacy systems to cloud platforms is a knowledge intensive process. There is an ever increasing body of knowledge reporting empirical scenarios of successful and problematic cloud migration. Reusing this body of knowledge,…

Software Engineering · Computer Science 2022-02-17 Mahdi Fahmideh , Jun Yan , Jun Shen , Aakash Ahmad , Davoud Mougouei , Anup Shrestha

Nowadays, a significant focus within the research community on the intelligent management of data at the confluence of the Internet of Things (IoT) and Edge Computing (EC) is observed. In this manuscript, we propose a scheme to be…

Distributed, Parallel, and Cluster Computing · Computer Science 2024-10-15 Georgios Boulougaris , Kostas Kolomvatsos

Combining semantic information with behavioral data is a crucial research area in recommender systems. A promising approach involves leveraging external knowledge to enrich behavioral-based recommender systems with abundant semantic…

Information Retrieval · Computer Science 2024-05-27 Weiqing Luo , Chonggang Song , Lingling Yi , Gong Cheng

A number of data acquisition systems depend on human interface to access computer for measuring, processing and analyzing data and to prepare it for presentation and storage. Data acquisition software is installed on the computer and all…

Human-Computer Interaction · Computer Science 2010-11-01 Shahrukh Khalid , Adnan Ali Khan

Modern ETL streaming pipelines extract data from various sources and forward it to multiple consumers, such as data warehouses (DW) and analytical systems that leverage machine learning (ML). However, the increasing number of systems that…

Distributed, Parallel, and Cluster Computing · Computer Science 2022-04-01 Christian Haase , Timo Röseler , Mattias Seidel

A data warehouse efficiently prepares data for effective and fast data analysis and modelling using machine learning algorithms. This paper discusses existing solutions for the Data Extraction, Transformation, and Loading (ETL) process and…

Distributed, Parallel, and Cluster Computing · Computer Science 2023-12-21 Nassi Ebadifard , Ajitesh Parihar , Youry Khmelevsky , Gaetan Hains , Albert Wong , Frank Zhang

This article reports on the third iteration of a survey of computerized tools and technologies taught as part of postgraduate translation training programmes. While the survey was carried out under the aegis of the EMT Network, more than…

Computers and Society · Computer Science 2025-04-01 Andrew Rothwell , Joss Moorkens , Tomas Svoboda

Continual pretraining promises to adapt large language models (LLMs) to new domains using only unlabeled test-time data, but naively applying standard self-supervised objectives to instruction-tuned models is known to degrade their…

Artificial Intelligence · Computer Science 2025-10-24 Tianyi Zhang , Florian Mai , Lucie Flek

Application migration in edge-cloud system enables high QoS and cost effective service delivery. However, automatically orchestrating such migration is typically solved with heuristic approaches. Starting from the Markov Decision Process…

Artificial Intelligence · Computer Science 2025-09-19 Sadig Gojayev , Ahmad Anaqreh , Carolina Fortuna

Intermediate task transfer learning can greatly improve model performance. If, for example, one has little training data for emotion detection, first fine-tuning a language model on a sentiment classification dataset may improve performance…

Computation and Language · Computer Science 2024-10-22 David Schulte , Felix Hamborg , Alan Akbik

Moving existing legacy systems to cloud platforms is a difficult and high cost process that may involve technical and non-technical resources and challenges. There is evidence that the lack of understanding and preparedness of cloud…

Software Engineering · Computer Science 2020-04-23 Mahdi Fahmideh , Farhad Daneshgar , Ghassan Beydoun , Fethi Rabhi

LLMs often fail to handle temporal knowledge conflicts--contradictions arising when facts evolve over time within their training data. Existing studies evaluate this phenomenon through benchmarks built on structured knowledge bases like…

The General Data Protection Regulation contains a blanket prohibition on the transfer of personal data outside of the European Economic Area unless strict requirements are met. The rationale for this provision is to protect personal data…

Computers and Society · Computer Science 2024-07-31 Paulius Jurcys , Marcelo Corrales Compagnucci , Mark Fenwick

Machine learning (ML) techniques are increasingly prevalent in education, from their use in predicting student dropout, to assisting in university admissions, and facilitating the rise of MOOCs. Given the rapid growth of these novel uses,…

Artificial Intelligence · Computer Science 2022-09-09 Lydia T. Liu , Serena Wang , Tolani Britton , Rediet Abebe

Moving mission-oriented enterprise applications to cloud environments is a major IT strategic task and requires a systematic approach. The foci of this paper are to review and examine existing cloud migration approaches from the process…

Software Engineering · Computer Science 2020-04-23 Mahdi Fahmideh , Graham Low , Ghassan Beydoun , Farhad Daneshgar