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Proceedings of the 2023 International Conference on Advances in Computing Research (ACR’23) / / edited by Kevin Daimi, Abeer Al Sadoon
Proceedings of the 2023 International Conference on Advances in Computing Research (ACR’23) / / edited by Kevin Daimi, Abeer Al Sadoon
Autore Daimi Kevin
Edizione [1st ed. 2023.]
Pubbl/distr/stampa Cham : , : Springer Nature Switzerland : , : Imprint : Springer, , 2023
Descrizione fisica 1 online resource (670 pages)
Disciplina 004
Altri autori (Persone) Al SadoonAbeer
Collana Lecture Notes in Networks and Systems
Soggetto topico Computational intelligence
Cooperating objects (Computer systems)
Engineering—Data processing
Medical informatics
Computational Intelligence
Cyber-Physical Systems
Data Engineering
Health Informatics
Soggetto non controllato Mathematics
ISBN 3-031-33743-3
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Community Opinion Network Maximization for Mining Top K Seed Social Network Users -- Taxonomy for an Automated Sleep Stage Scoring -- Convolutional Neural Networks Based Classification of Mammograms -- Finding Insights in Florida Voter Participation -- HealthCare Text Analytics using Recent ML Techniques -- Emotion Recognition Techniques with IoT and Deep Learning Technologies -- Augmented Reality for Cognitive Impairment and Dementia -- Analysis on Malicious Intruder Threats to Data Integrity -- Smart Product Recommendation System -- Detection and Prediction of Epileptic Seizures Using Machine Learning Model. .
Record Nr. UNINA-9910728395603321
Daimi Kevin  
Cham : , : Springer Nature Switzerland : , : Imprint : Springer, , 2023
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Proceedings of the Second International Conference on Advances in Computing Research (ACR'24)
Proceedings of the Second International Conference on Advances in Computing Research (ACR'24)
Autore Daimi Kevin
Edizione [1st ed.]
Pubbl/distr/stampa Cham : , : Springer International Publishing AG, , 2024
Descrizione fisica 1 online resource (570 pages)
Altri autori (Persone) Al SadoonAbeer
Collana Lecture Notes in Networks and Systems Series
ISBN 3-031-56950-4
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910847085903321
Daimi Kevin  
Cham : , : Springer International Publishing AG, , 2024
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Proceedings of the Second International Conference on Innovations in Computing Research (ICR’23) / / edited by Kevin Daimi, Abeer Al Sadoon
Proceedings of the Second International Conference on Innovations in Computing Research (ICR’23) / / edited by Kevin Daimi, Abeer Al Sadoon
Autore Daimi Kevin
Edizione [1st ed. 2023.]
Pubbl/distr/stampa Cham : , : Springer Nature Switzerland : , : Imprint : Springer, , 2023
Descrizione fisica 1 online resource (460 pages)
Disciplina 004.072
Altri autori (Persone) Al SadoonAbeer
Collana Lecture Notes in Networks and Systems
Soggetto topico Computational intelligence
Cooperating objects (Computer systems)
Engineering - Data processing
Medical informatics
Computational Intelligence
Cyber-Physical Systems
Data Engineering
Health Informatics
ISBN 3-031-35308-0
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910731479303321
Daimi Kevin  
Cham : , : Springer Nature Switzerland : , : Imprint : Springer, , 2023
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Proceedings of the Third International Conference on Innovations in Computing Research (ICR'24)
Proceedings of the Third International Conference on Innovations in Computing Research (ICR'24)
Autore Daimi Kevin
Edizione [1st ed.]
Pubbl/distr/stampa Cham : , : Springer International Publishing AG, , 2024
Descrizione fisica 1 online resource (794 pages)
Altri autori (Persone) Al SadoonAbeer
Collana Lecture Notes in Networks and Systems Series
ISBN 3-031-65522-2
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Intro -- Preface -- Organization -- Contents -- Data Science -- Extracting Official Agencies' Communication Patterns During the COVID-19 Pandemic: A Text Mining Approach -- 1 Introduction -- 2 Related Work -- 3 Text Mining Methodology -- 3.1 Data Collection and Pre-processing -- 3.2 Text Mining Approaches -- 4 Results and Discussion -- 4.1 Word Analysis -- 4.2 Collocation Analysis -- 4.3 Topic Modeling -- 4.4 Sentiment and Correlation Analysis -- 5 Conclusion and Future Work -- References -- Towards Automated Policy Predictions via Structured Attribute-Based Access Control -- 1 Introduction -- 2 Algorithm Overview -- 3 Application -- 3.1 Data Set -- 3.2 Policy Prediction with Time Series -- 4 Related Work -- 5 Conclusions and Future Work -- References -- Exploratory Analysis of Gamblers' Financial Transactions to Mine Behavioral Pattern Data -- 1 Introduction -- 2 Previous Works -- 3 Data -- 4 Exploring Data Slices -- 5 80th and 99th Percentiles -- 6 99th Percentiles -- 7 Dynamic Time Frames -- 8 Quantitative Comparisons of Session Series -- 9 Limitations -- 10 Discussion -- References -- The Detection of Misstated Financial Reports Using XBRL Mining and Intelligible MLP -- 1 Introduction -- 2 The Conceptual Framework -- 2.1 AI-Based Financial Analysis -- 2.2 Cross-Section Characterisation of Reported Numbers -- 3 Methodology -- 3.1 Web-Mining of XBRL Financial Reports -- 3.2 Input Pre-selection, MLP Topology and Learning -- 4 Results -- 5 Conclusion -- References -- University Student Enrollment Prediction: A Machine Learning Framework -- 1 Introduction -- 2 Literature Review -- 3 Methodology and Framework -- 4 Results and Discussion -- 5 Conclusion -- References -- Early Prediction of Sepsis Utilizing Multi-branches Multi-tasks Hybrid Deep Learning Model -- 1 Introduction -- 2 Review of Previous Studies.
3 Multi-branches Multi-tasks Hybrid Deep Learning Model for Sepsis Predicting -- 3.1 Global Feature Extraction Module (Branch 1) -- 3.2 Local Feature Extraction Module (Branch 2) -- 3.3 Multi-tasks Learning -- 4 Experiments -- 5 Conclusion -- References -- Comprehensive Analysis of Iris Dataset Using K-Mean and Fuzzy K-Mean Clustering Algorithm -- 1 Introduction -- 2 Background -- 2.1 Clustering -- 2.2 Big Data -- 2.3 Data Stream -- 3 Material and Methods -- 3.1 Dataset Description -- 3.2 Preprocessing -- 3.3 K-Nearest Neighbor -- 3.4 Parameter Evaluation -- 4 Results -- 5 Discussion -- 6 Conclusion -- References -- An Efficient and Reliable scRNA-seq Data Imputation Method Using Variational Autoencoders -- 1 Introduction -- 2 Related Work -- 2.1 Classic Methods -- 2.2 Deep Learning Methods -- 3 Methods -- 3.1 A Brief on VAE -- 3.2 Our Data Imputation Approach Based VAE -- 4 Experiments -- 4.1 Datasets -- 4.2 Data Preprocessing -- 5 Results -- 5.1 Mean Square Error (MSE) -- 5.2 Clustering Results -- 5.3 Running Time -- 6 Conclusion -- References -- Prediction of Automotive Vehicles Engine Health Using MLP and LR -- 1 Introduction -- 2 Related Work -- 3 Data Preprocessing -- 4 Multi-Layer Perceptron -- 4.1 Working Flow -- 5 Logistic Regression -- 5.1 Model Implementation and Training -- 5.2 Model Evaluation -- 5.3 Hyperparameter Tuning with BayesSearch CV -- 6 Results -- 6.1 MLP Before Data Preprocessing -- 6.2 MLP After Data Preprocessing and Optimization -- 6.3 Comparing MLP Results -- 6.4 Logistic Regression -- 6.5 Comparing MLP with LR -- 7 Conclusion -- 8 Future Work -- References -- Medical Image Character Recognition Using Attention-Based Siamese Networks for Visually Similar Characters with Low Resolution -- 1 Introduction -- 2 Related Works -- 3 Proposed Method -- 3.1 Model Architecture -- 3.2 Model + Attention Mechanism.
4 Experiment, Result and Analysis -- 4.1 Dataset Description -- 4.2 Training Strategy -- 4.3 Result -- 4.4 Performance Analysis on AUC-ROC Curve -- 4.5 Performance Analysis Using Feature Map Visualisation -- 4.6 Quantitative Analysis with Related Works with Background Interference -- 5 Conclusion -- References -- Toward Smart Bicycle Safety: Leveraging Machine Learning Models and Optimal Lighting Solutions -- 1 Introduction -- 2 Using AI in Bikes Lights -- 3 Methodology -- 3.1 Data Collection -- 3.2 Pre-processing -- 3.3 Term Frequency-Inverse Document Frequency Features (TF-IDF) -- 3.4 Model Development -- 3.5 Model Evaluation -- 4 Results and Discussion -- 5 Conclusion and Future Work -- References -- vThrot: Fine-Grained, Virtual I/O Resource Redistribution Scheme -- 1 Introduction -- 2 vThrot -- 2.1 System Architecture -- 2.2 The Reclamation Process of vThrot -- 2.3 The Redistribution Process of vThrot -- 2.4 vThrot Priority-Based I/O Processing -- 3 Performance Evaluation -- 4 Conclusion -- References -- Bayesian Optimization-Based CNN Model for Blood Glucose Estimation Using Photoplethysmography Signals -- 1 Introduction -- 2 Literature Review -- 3 Methodology Overview -- 3.1 Dataset and Pre-processing -- 3.2 Basic Architecture of the CNN Model -- 3.3 Bayesian Optimization -- 4 Results and Discussion -- 5 Conclusion -- References -- Comparing Convolutional Neural Networks and Transformers in a Points-of-Interest Experiment -- 1 Introduction -- 2 Overview of Deep Learning Architectures -- 2.1 Convolutional Neural Network (CNN) -- 2.2 Transformers -- 3 Construction of Mini-Places Dataset -- 3.1 Dataset Selection -- 3.2 Dataset Optimization -- 4 Training of Deep Learning Models -- 4.1 Image Classification Models -- 4.2 Comparison of the Models -- 5 Assessment of Experimental Findings -- 6 Conclusion -- References.
Gender and Age Extraction from Audio Signal Using Convolutional Neural Network, MFCC and Spectrogram -- 1 Introduction -- 1.1 Speaker Gender Recognition -- 2 CORPUS -- 3 Methodology -- 3.1 Proposed Model Architecture -- 4 Results -- 4.1 Gender Recognition -- 4.2 Age Extraction -- 5 Conclusion -- References -- The Hybrid Model Combination of Deep Learning Techniques, CNN-LSTM, BERT, Feature Selection, and Stop Words to Prevent Fake News -- 1 Introduction -- 2 Literature Review -- 2.1 Materials and Methods -- 2.2 Counterfeit News Prevention Challenges -- 2.3 Previous Fake News Prevention Attempts -- 2.4 Accuracy Results and Discussion -- 3 Methodology for Hybrid Model of CNN-LSTM + BERT + Feature Selection + Stop Words -- 3.1 LSTM + CNN -- 3.2 Stop Words -- 3.3 BERT -- 3.4 TFIDF and Feature Selection -- 4 Critical Analysis -- 5 Conclusion -- References -- Comparative Analysis of Decision Tree Algorithms Using Gini and Entropy Criteria on the Forest Covertypes Dataset -- 1 Introduction -- 2 Related Works -- 3 Methodology -- 3.1 Dataset Description -- 3.2 Decision Tree Classifier -- 3.3 Evaluation Metrics -- 4 Results -- 5 Discussion -- 6 Conclusion -- References -- A Comparative Analysis of Random Forest and Support Vector Machine Techniques on the UNSW-NB15 Dataset -- 1 Introduction -- 2 Related Works -- 3 Proposed Intrusion Detection Systems -- 3.1 Data Extraction -- 3.2 Data Balancing -- 3.3 Data Transformation -- 3.4 Model Parameter Selection -- 3.5 Model Fitting -- 4 Evaluation of the Models -- 4.1 Confirmation of the Candidate Model Using SMOTE -- 5 Conclusion and Future Directions -- References -- A Comparative Study of Speed Measurement Using Radar Guns and Pneumatic Counter -- 1 Introduction -- 2 Materials and Methods -- 2.1 Study Area -- 2.2 Equipment and Tools -- 2.3 Methodology -- 3 Results and Discussion -- 3.1 Cosine Effect Correction.
3.2 Statistical Description of Data Obtained -- 3.3 Dispersion and Regression Statistical Analysis -- 3.4 Suggested Fitting Equation -- 3.5 Discussions -- 4 Conclusions -- References -- Comparative Analysis of Preprocessing Techniques for KNN Classification on the Diabetes Dataset -- 1 Introduction -- 2 Related Work -- 3 Material and Methods -- 3.1 Dataset Description -- 3.2 Preprocessing -- 3.3 K-Nearest Neighbor -- 3.4 Parameter Evaluation -- 4 Results -- 5 Discussion -- 6 Conclusion -- References -- Computer Science and Computer Engineering Education -- Code Smells for Assessing and Improving Students' Coding Skills and Practices -- 1 Introduction -- 2 Background -- 2.1 Code Smells -- 2.2 Teaching Object-Oriented Programming -- 3 Motivation -- 4 Our Approach -- 4.1 Implementation and Experiment -- 5 Results -- 5.1 Size Complexities -- 5.2 Distribution of Code Smells -- 5.3 Code Smells Density -- 5.4 Code Smells and Earned Grades -- 5.5 Code Smells Trends -- 5.6 Summary -- 6 Conclusion -- References -- An Investigation on Assessment Strategies, Student Engagement, and Retention for Large Cohorts Affected by COVID Learning Disruptions -- 1 Introduction -- 2 Background and Pedagogy -- 2.1 Assessment Strategies -- 2.2 Study Design and Procedure -- 3 Results and Discussions -- 3.1 Results -- 3.2 Student Engagement -- 3.3 Student Retention -- 4 Conclusion -- References -- Self-organization as a Key Principle of Adaptive Intelligence -- 1 Introduction -- 2 From Single Synapse to Neural Network -- 2.1 Neural Timing -- 2.2 Basic Adaptive Response -- 3 Self-organized Network Learning -- 3.1 Winner-Take-All -- 3.2 Reinforcement -- 4 Modular Functional Connectivity -- 4.1 Functional Specificity -- 4.2 Functional Plasticity -- 5 The Receptive Field Concept -- 5.1 Sensitivity and Selectivity to Input Dimensions.
5.2 From-Simple-to-Complex Functional Organization.
Record Nr. UNINA-9910878985003321
Daimi Kevin  
Cham : , : Springer International Publishing AG, , 2024
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui