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Agricultural Internet of things : technologies and applications / / editors, Yong He [and three others]
Agricultural Internet of things : technologies and applications / / editors, Yong He [and three others]
Edizione [1st ed. 2021.]
Pubbl/distr/stampa Cham, Switzerland : , : Springer, , [2021]
Descrizione fisica 1 online resource (XI, 439 p. 184 illus., 133 illus. in color.)
Disciplina 635
Collana Agriculture automation and control
Soggetto topico Agriculture - Automation
Agricultura de precisió
Internet de les coses
Soggetto genere / forma Llibres electrònics
ISBN 3-030-65702-7
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto 1.Introduction of Agricultural IoT -- 2.Agricultural IoT Standardization and System Applications -- 3.Data Communication and Networking Technologies -- 4.Soil Information Sensing Technology -- 5.Crop Information Sensing Technology -- 6.Field Condition Sensing Technology -- 7.Livestock and Aquaculture Information Sensing Technology -- 8.Agricultural Information Processing Technology -- 9.Agricultural Decision-Making Methods and Systems -- 10.IoT Management of Field Crops and Orchards -- 11.Plant Factory IoT Management -- 12.Livestock and Aquaculture IoT Systems -- 13.Agricultural Products Traceability System Applications -- 14.Integrated IoT Applications Platform Based on Cloud Technology and Big Data.
Record Nr. UNINA-9910495204903321
Cham, Switzerland : , : Springer, , [2021]
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Brain Informatics [[electronic resource] ] : International Conference, BI 2017, Beijing, China, November 16-18, 2017, Proceedings / / edited by Yi Zeng, Yong He, Jeanette Hellgren Kotaleski, Maryann Martone, Bo Xu, Hanchuan Peng, Qingming Luo
Brain Informatics [[electronic resource] ] : International Conference, BI 2017, Beijing, China, November 16-18, 2017, Proceedings / / edited by Yi Zeng, Yong He, Jeanette Hellgren Kotaleski, Maryann Martone, Bo Xu, Hanchuan Peng, Qingming Luo
Edizione [1st ed. 2017.]
Pubbl/distr/stampa Cham : , : Springer International Publishing : , : Imprint : Springer, , 2017
Descrizione fisica 1 online resource (XVI, 336 p. 100 illus.)
Disciplina 006.32
Collana Lecture Notes in Artificial Intelligence
Soggetto topico Artificial intelligence
Pattern recognition
Optical data processing
User interfaces (Computer systems)
Data mining
Operating systems (Computers)
Artificial Intelligence
Pattern Recognition
Image Processing and Computer Vision
User Interfaces and Human Computer Interaction
Data Mining and Knowledge Discovery
Operating Systems
ISBN 3-319-70772-8
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Intro -- Preface -- Organization -- Contents -- Cognitive and Computational Foundations of Brain Science -- Speech Emotion Recognition Using Local and Global Features -- 1 Introduction -- 2 Materials and Methods -- 2.1 Database -- 2.2 Features for Speech Emotion Recognition -- 3 Results/Discussion -- 3.1 Classification Results for EMODB -- 3.2 Classification Results for RAVDESS -- 3.3 SFFS -- 4 Conclusions -- References -- Advertisement and Expectation in Lifestyle Changes: A Computational Model -- 1 Introduction -- 2 Temporal-Causal Modeling -- 3 The Computational Model -- 3.1 Graphical Representation of the Model -- 3.2 Numerical Representations and Parameters -- 4 Simulation Experiments -- 4.1 Hypotheses -- 4.2 Scenarios and Results -- 4.3 Explanation -- 5 Conclusion -- References -- A Computational Cognitive Model of Self-monitoring and Decision Making for Desire Regulation -- Abstract -- 1 Introduction -- 2 Background -- 3 Conceptual Representation of the Model -- 3.1 Desire Generation and Choosing Actions -- 3.2 Self-monitoring and Regulation Strategies -- 3.3 Numerical Representation of the Model -- 4 Simulation Results -- 5 Conclusion -- References -- Video Category Classification Using Wireless EEG -- Abstract -- 1 Introduction -- 2 Experimental Setup and Data Acquisition Techniques -- 2.1 Demographics of Subjects -- 2.2 EEG Recordings -- 2.3 Experimental Setup -- 3 Experimental Study and Findings -- 3.1 Algorithms and Methods -- 3.2 Experimental Results -- 4 Discussion -- 5 Conclusion -- References -- Learning Music Emotions via Quantum Convolutional Neural Network -- 1 Introduction -- 2 Related Work on Quantum Information -- 3 Quantum Convolutional Neural Network for Music Emotion Analysis -- 3.1 Rationale -- 3.2 Quantum Convolutional Neural Network -- 4 Experiments -- 5 Conclusions -- References.
Supervised EEG Source Imaging with Graph Regularization in Transformed Domain -- 1 Introduction -- 2 Inverse Problem -- 3 Graph Regularized EEG Source Imaging in Transformed Domain -- 3.1 EEG Source Imaging in Transformed Domain -- 3.2 Discriminative Source Reconstruction with Graph Regularization -- 4 Optimization with ADMM Algorithm -- 5 Numerical Experiment -- 6 Conclusion -- References -- Insula Functional Parcellation from FMRI Data via Improved Artificial Bee-Colony Clustering -- 1 Introduction -- 2 Related Content -- 2.1 Insula Functional Parcellation Based on FMRI Data -- 2.2 Artificial Bee Colony (ABC) Algorithm -- 3 DABCC Algorithm -- 3.1 Food Source Representation -- 3.2 Initialization -- 3.3 Self-adaptive Multidimensional Search Mechanism Based on Difference Bias for Employed Bee Search -- 3.4 Algorithm Description -- 4 Experimental Results and Analysis -- 4.1 Data Description and Preprocessing -- 4.2 Evaluation Metrics -- 4.3 Search Capability -- 4.4 Parcellation Results -- 4.5 Functional Consistency -- 5 Conclusion -- References -- EEG-Based Emotion Recognition via Fast and Robust Feature Smoothing -- 1 Introduction -- 2 Related Work -- 3 Moving Average Smoothing on Statistical Feature Set -- 3.1 Feature Extraction -- 3.2 Moving Average Smoothing on Extracted Features -- 3.3 Classification Algorithm -- 4 Emotion Recognition on DEAP Dataset -- 4.1 Experimental Setup -- 4.2 Results and Discussions -- 5 Conclusion -- References -- Human Information Processing Systems -- Stronger Activation in Widely Distributed Regions May not Compensate for an Ineffectively Connected Neural Network When Reading a Second Language -- Abstract -- 1 Introduction -- 2 Methods -- 2.1 Participants -- 2.2 Materials -- 2.3 Experimental Procedure -- 2.4 Data Acquisition -- 2.5 Data Processing -- 3 Results -- 4 Discussion.
4.1 Assimilated and Accommodated Neural Network for L2 -- 4.2 Stronger Activation but an Ineffectively Connected Neural Network -- Acknowledgments -- References -- Objects Categorization on fMRI Data: Evidences for Feature-Map Representation of Objects in Human Brain -- Abstract -- 1 Introduction -- 2 Method -- 2.1 Subjects and fMRI Data Acquisition -- 2.2 Stimuli and Experimental Procedure -- 2.3 Data Preprocessing -- 2.4 Voxel Selection -- 2.5 SVM Method -- 3 Results -- 3.1 Classification Results for One vs. One Classifiers -- 3.2 Classification Results for One vs. Two Classifiers -- 3.3 Classification Results for Two vs. Two Classifiers -- 3.4 Classification Results for Regions Maximally Responsive to One Category of Objects -- 4 Discussion and Conclusions -- Acknowledgments -- References -- Gender Role Differences of Female College Students in Facial Expression Recognition: Evidence from N170 and VPP -- Abstract -- 1 Introduction -- 2 Materials and Methods -- 2.1 Participants -- 2.2 Stimuli -- 2.3 Experimental Procedure -- 2.4 Behavioral Data Analysis -- 2.5 EEG Recordings and Analysis -- 3 Results -- 3.1 Behavioral Results -- 3.2 ERP Results -- 4 Discussion -- 4.1 Gender Role Differences on Facial Expression Recognition: Evidence on Early ERP Components -- 4.2 Emotional Negativity Bias: Evidence on VPP -- 4.3 Emotion Congruency: Evidence on Behavior -- 5 Conclusion -- Acknowledgments -- References -- Brain Big Data Analytics, Curation and Management -- Overview of Acquisition Protocol in EEG Based Recognition System -- Abstract -- 1 Introduction -- 2 Signal Acquisition -- 2.1 The Noninvasive Electroencephalography Method -- 3 EEG Signal Based Recognition System -- 3.1 Relaxation -- 3.2 Motor/Non-motor Imaginary -- 3.3 Exposed to Stimuli (Evoked Potentials) -- 4 Analysis and Discussions -- 5 Conclusion -- Acknowledgments -- References.
A Study on Automatic Sleep Stage Classification Based on Clustering Algorithm -- Abstract -- 1 Introduction -- 2 Related Work -- 3 Automatic Sleep Staging Classification Algorithm Based on K-Means Clustering -- 3.1 Denoising -- 3.2 Feature Extraction and Feature Selection -- 3.3 Automatic Sleep Stage Classification Based on Improving K-Means Algorithm -- 4 Experimental Results and Analysis -- 4.1 Sleep Data Set -- 4.2 Evaluation Metrics -- 4.3 Experimental Results and Discussion -- 5 Conclusion -- References -- Speaker Verification Method Based on Two-Layer GMM-UBM Model in the Complex Environment -- 1 Introduction -- 2 Methods -- 2.1 Voice Data Acquisition and Preprocessing -- 2.2 Feature Extraction -- 2.3 Speaker Verification Architecture Based on Two-Layer GMM-UBM Model -- 3 Results -- 3.1 Evaluation Criterion -- 3.2 GMM-UBM Speaker Verification Based on Segmented Voice Data -- 3.3 GMM-UBM Speaker Verification Based on Continuous Long-Term Voice Data -- 4 Discussion -- References -- Emotion Recognition from EEG Using Rhythm Synchronization Patterns with Joint Time-Frequency-Space Correlation -- 1 Introduction -- 2 Architecture of Emotional Recognition Model Based on Rhythm Synchronization Patterns (RSP-ERM) -- 2.1 Functions of Each Layer -- 2.2 Defining Emotional States - Class Label -- 3 Experimental Design -- 3.1 Data Description -- 3.2 Learning and Testing Process -- 3.3 Contrast Methods -- 4 Experimental Results and Discussion -- 5 Conclusions -- References -- Informatics Paradigms for Brain and Mental Health -- Patients with Major Depressive Disorder Alters Dorsal Medial Prefrontal Cortex Response to Anticipation with Different Saliences -- Abstract -- 1 Introduction -- 2 Methods -- 2.1 Subjects -- 2.2 Task Design -- 2.3 Data Acquisition and Analysis -- 3 Results -- 3.1 Anticipation Period Findings.
3.2 The Findings of Anticipation Effect on Picture Viewing -- 4 Discussion -- Acknowledgment -- References -- Abnormal Brain Activity in ADHD: A Study of Resting-State fMRI -- Abstract -- 1 Introduction -- 2 Method -- 2.1 Dataset -- 2.2 Image Processing -- 3 Statistics Analysis -- 4 Result -- 4.1 The Comparison of ALFF, fALFF and ReHo Between Two Groups -- 4.2 The Comparison of ALFF, fALFF and ReHo of Two Age Groups -- 5 Discussion -- Acknowledgements -- References -- Wearable EEG-Based Real-Time System for Depression Monitoring -- 1 Introduction -- 2 Related Work -- 3 Methodology -- 4 Making Sense of the Raw Data -- 4.1 Hardware -- 4.2 Resting EEG -- 4.3 Stimulus -- 4.4 Real-Time Signal Preprocessing -- 4.5 Feature Extraction -- 4.6 Classification -- 4.7 Visualization -- 5 Experiment -- 5.1 Participants -- 5.2 Results -- 6 Conclusions and Future Work -- References -- Group Guided Sparse Group Lasso Multi-task Learning for Cognitive Performance Prediction of Alzheimer's Disease -- 1 Introduction -- 2 Proposed Method -- 2.1 Group Guided Sparse Group Lasso Multi-task Learning -- 2.2 Optimization -- 3 Experimental Results -- 3.1 Data and Experimental Setting -- 3.2 The Results of Comparing with the Comparable Methods -- 3.3 Identification of MRI Biomarkers -- 4 Conclusions -- References -- A Novel Deep Learning Based Multi-class Classification Method for Alzheimer's Disease Detection Using Brain MRI Data -- 1 Introduction -- 2 Related Work -- 3 Proposed Network Architecture -- 4 Experiments -- 4.1 Dataset -- 4.2 Implementation Details -- 4.3 Results -- 5 Conclusion -- References -- A Quantitative Analysis Method for Objectively Assessing the Depression Mood Status Based on Portable EEG and Self-rating Scale -- 1 Introduction -- 2 Material and Method -- 2.1 Experimental Design -- 2.2 Data Analysis -- 3 Results.
3.1 Depressive Mood Status Assessment Based on POMS-BCN Data.
Record Nr. UNISA-996466446703316
Cham : , : Springer International Publishing : , : Imprint : Springer, , 2017
Materiale a stampa
Lo trovi qui: Univ. di Salerno
Opac: Controlla la disponibilità qui
Brain Informatics : International Conference, BI 2017, Beijing, China, November 16-18, 2017, Proceedings / / edited by Yi Zeng, Yong He, Jeanette Hellgren Kotaleski, Maryann Martone, Bo Xu, Hanchuan Peng, Qingming Luo
Brain Informatics : International Conference, BI 2017, Beijing, China, November 16-18, 2017, Proceedings / / edited by Yi Zeng, Yong He, Jeanette Hellgren Kotaleski, Maryann Martone, Bo Xu, Hanchuan Peng, Qingming Luo
Edizione [1st ed. 2017.]
Pubbl/distr/stampa Cham : , : Springer International Publishing : , : Imprint : Springer, , 2017
Descrizione fisica 1 online resource (XVI, 336 p. 100 illus.)
Disciplina 006.32
Collana Lecture Notes in Artificial Intelligence
Soggetto topico Artificial intelligence
Pattern recognition
Optical data processing
User interfaces (Computer systems)
Data mining
Operating systems (Computers)
Artificial Intelligence
Pattern Recognition
Image Processing and Computer Vision
User Interfaces and Human Computer Interaction
Data Mining and Knowledge Discovery
Operating Systems
ISBN 3-319-70772-8
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Intro -- Preface -- Organization -- Contents -- Cognitive and Computational Foundations of Brain Science -- Speech Emotion Recognition Using Local and Global Features -- 1 Introduction -- 2 Materials and Methods -- 2.1 Database -- 2.2 Features for Speech Emotion Recognition -- 3 Results/Discussion -- 3.1 Classification Results for EMODB -- 3.2 Classification Results for RAVDESS -- 3.3 SFFS -- 4 Conclusions -- References -- Advertisement and Expectation in Lifestyle Changes: A Computational Model -- 1 Introduction -- 2 Temporal-Causal Modeling -- 3 The Computational Model -- 3.1 Graphical Representation of the Model -- 3.2 Numerical Representations and Parameters -- 4 Simulation Experiments -- 4.1 Hypotheses -- 4.2 Scenarios and Results -- 4.3 Explanation -- 5 Conclusion -- References -- A Computational Cognitive Model of Self-monitoring and Decision Making for Desire Regulation -- Abstract -- 1 Introduction -- 2 Background -- 3 Conceptual Representation of the Model -- 3.1 Desire Generation and Choosing Actions -- 3.2 Self-monitoring and Regulation Strategies -- 3.3 Numerical Representation of the Model -- 4 Simulation Results -- 5 Conclusion -- References -- Video Category Classification Using Wireless EEG -- Abstract -- 1 Introduction -- 2 Experimental Setup and Data Acquisition Techniques -- 2.1 Demographics of Subjects -- 2.2 EEG Recordings -- 2.3 Experimental Setup -- 3 Experimental Study and Findings -- 3.1 Algorithms and Methods -- 3.2 Experimental Results -- 4 Discussion -- 5 Conclusion -- References -- Learning Music Emotions via Quantum Convolutional Neural Network -- 1 Introduction -- 2 Related Work on Quantum Information -- 3 Quantum Convolutional Neural Network for Music Emotion Analysis -- 3.1 Rationale -- 3.2 Quantum Convolutional Neural Network -- 4 Experiments -- 5 Conclusions -- References.
Supervised EEG Source Imaging with Graph Regularization in Transformed Domain -- 1 Introduction -- 2 Inverse Problem -- 3 Graph Regularized EEG Source Imaging in Transformed Domain -- 3.1 EEG Source Imaging in Transformed Domain -- 3.2 Discriminative Source Reconstruction with Graph Regularization -- 4 Optimization with ADMM Algorithm -- 5 Numerical Experiment -- 6 Conclusion -- References -- Insula Functional Parcellation from FMRI Data via Improved Artificial Bee-Colony Clustering -- 1 Introduction -- 2 Related Content -- 2.1 Insula Functional Parcellation Based on FMRI Data -- 2.2 Artificial Bee Colony (ABC) Algorithm -- 3 DABCC Algorithm -- 3.1 Food Source Representation -- 3.2 Initialization -- 3.3 Self-adaptive Multidimensional Search Mechanism Based on Difference Bias for Employed Bee Search -- 3.4 Algorithm Description -- 4 Experimental Results and Analysis -- 4.1 Data Description and Preprocessing -- 4.2 Evaluation Metrics -- 4.3 Search Capability -- 4.4 Parcellation Results -- 4.5 Functional Consistency -- 5 Conclusion -- References -- EEG-Based Emotion Recognition via Fast and Robust Feature Smoothing -- 1 Introduction -- 2 Related Work -- 3 Moving Average Smoothing on Statistical Feature Set -- 3.1 Feature Extraction -- 3.2 Moving Average Smoothing on Extracted Features -- 3.3 Classification Algorithm -- 4 Emotion Recognition on DEAP Dataset -- 4.1 Experimental Setup -- 4.2 Results and Discussions -- 5 Conclusion -- References -- Human Information Processing Systems -- Stronger Activation in Widely Distributed Regions May not Compensate for an Ineffectively Connected Neural Network When Reading a Second Language -- Abstract -- 1 Introduction -- 2 Methods -- 2.1 Participants -- 2.2 Materials -- 2.3 Experimental Procedure -- 2.4 Data Acquisition -- 2.5 Data Processing -- 3 Results -- 4 Discussion.
4.1 Assimilated and Accommodated Neural Network for L2 -- 4.2 Stronger Activation but an Ineffectively Connected Neural Network -- Acknowledgments -- References -- Objects Categorization on fMRI Data: Evidences for Feature-Map Representation of Objects in Human Brain -- Abstract -- 1 Introduction -- 2 Method -- 2.1 Subjects and fMRI Data Acquisition -- 2.2 Stimuli and Experimental Procedure -- 2.3 Data Preprocessing -- 2.4 Voxel Selection -- 2.5 SVM Method -- 3 Results -- 3.1 Classification Results for One vs. One Classifiers -- 3.2 Classification Results for One vs. Two Classifiers -- 3.3 Classification Results for Two vs. Two Classifiers -- 3.4 Classification Results for Regions Maximally Responsive to One Category of Objects -- 4 Discussion and Conclusions -- Acknowledgments -- References -- Gender Role Differences of Female College Students in Facial Expression Recognition: Evidence from N170 and VPP -- Abstract -- 1 Introduction -- 2 Materials and Methods -- 2.1 Participants -- 2.2 Stimuli -- 2.3 Experimental Procedure -- 2.4 Behavioral Data Analysis -- 2.5 EEG Recordings and Analysis -- 3 Results -- 3.1 Behavioral Results -- 3.2 ERP Results -- 4 Discussion -- 4.1 Gender Role Differences on Facial Expression Recognition: Evidence on Early ERP Components -- 4.2 Emotional Negativity Bias: Evidence on VPP -- 4.3 Emotion Congruency: Evidence on Behavior -- 5 Conclusion -- Acknowledgments -- References -- Brain Big Data Analytics, Curation and Management -- Overview of Acquisition Protocol in EEG Based Recognition System -- Abstract -- 1 Introduction -- 2 Signal Acquisition -- 2.1 The Noninvasive Electroencephalography Method -- 3 EEG Signal Based Recognition System -- 3.1 Relaxation -- 3.2 Motor/Non-motor Imaginary -- 3.3 Exposed to Stimuli (Evoked Potentials) -- 4 Analysis and Discussions -- 5 Conclusion -- Acknowledgments -- References.
A Study on Automatic Sleep Stage Classification Based on Clustering Algorithm -- Abstract -- 1 Introduction -- 2 Related Work -- 3 Automatic Sleep Staging Classification Algorithm Based on K-Means Clustering -- 3.1 Denoising -- 3.2 Feature Extraction and Feature Selection -- 3.3 Automatic Sleep Stage Classification Based on Improving K-Means Algorithm -- 4 Experimental Results and Analysis -- 4.1 Sleep Data Set -- 4.2 Evaluation Metrics -- 4.3 Experimental Results and Discussion -- 5 Conclusion -- References -- Speaker Verification Method Based on Two-Layer GMM-UBM Model in the Complex Environment -- 1 Introduction -- 2 Methods -- 2.1 Voice Data Acquisition and Preprocessing -- 2.2 Feature Extraction -- 2.3 Speaker Verification Architecture Based on Two-Layer GMM-UBM Model -- 3 Results -- 3.1 Evaluation Criterion -- 3.2 GMM-UBM Speaker Verification Based on Segmented Voice Data -- 3.3 GMM-UBM Speaker Verification Based on Continuous Long-Term Voice Data -- 4 Discussion -- References -- Emotion Recognition from EEG Using Rhythm Synchronization Patterns with Joint Time-Frequency-Space Correlation -- 1 Introduction -- 2 Architecture of Emotional Recognition Model Based on Rhythm Synchronization Patterns (RSP-ERM) -- 2.1 Functions of Each Layer -- 2.2 Defining Emotional States - Class Label -- 3 Experimental Design -- 3.1 Data Description -- 3.2 Learning and Testing Process -- 3.3 Contrast Methods -- 4 Experimental Results and Discussion -- 5 Conclusions -- References -- Informatics Paradigms for Brain and Mental Health -- Patients with Major Depressive Disorder Alters Dorsal Medial Prefrontal Cortex Response to Anticipation with Different Saliences -- Abstract -- 1 Introduction -- 2 Methods -- 2.1 Subjects -- 2.2 Task Design -- 2.3 Data Acquisition and Analysis -- 3 Results -- 3.1 Anticipation Period Findings.
3.2 The Findings of Anticipation Effect on Picture Viewing -- 4 Discussion -- Acknowledgment -- References -- Abnormal Brain Activity in ADHD: A Study of Resting-State fMRI -- Abstract -- 1 Introduction -- 2 Method -- 2.1 Dataset -- 2.2 Image Processing -- 3 Statistics Analysis -- 4 Result -- 4.1 The Comparison of ALFF, fALFF and ReHo Between Two Groups -- 4.2 The Comparison of ALFF, fALFF and ReHo of Two Age Groups -- 5 Discussion -- Acknowledgements -- References -- Wearable EEG-Based Real-Time System for Depression Monitoring -- 1 Introduction -- 2 Related Work -- 3 Methodology -- 4 Making Sense of the Raw Data -- 4.1 Hardware -- 4.2 Resting EEG -- 4.3 Stimulus -- 4.4 Real-Time Signal Preprocessing -- 4.5 Feature Extraction -- 4.6 Classification -- 4.7 Visualization -- 5 Experiment -- 5.1 Participants -- 5.2 Results -- 6 Conclusions and Future Work -- References -- Group Guided Sparse Group Lasso Multi-task Learning for Cognitive Performance Prediction of Alzheimer's Disease -- 1 Introduction -- 2 Proposed Method -- 2.1 Group Guided Sparse Group Lasso Multi-task Learning -- 2.2 Optimization -- 3 Experimental Results -- 3.1 Data and Experimental Setting -- 3.2 The Results of Comparing with the Comparable Methods -- 3.3 Identification of MRI Biomarkers -- 4 Conclusions -- References -- A Novel Deep Learning Based Multi-class Classification Method for Alzheimer's Disease Detection Using Brain MRI Data -- 1 Introduction -- 2 Related Work -- 3 Proposed Network Architecture -- 4 Experiments -- 4.1 Dataset -- 4.2 Implementation Details -- 4.3 Results -- 5 Conclusion -- References -- A Quantitative Analysis Method for Objectively Assessing the Depression Mood Status Based on Portable EEG and Self-rating Scale -- 1 Introduction -- 2 Material and Method -- 2.1 Experimental Design -- 2.2 Data Analysis -- 3 Results.
3.1 Depressive Mood Status Assessment Based on POMS-BCN Data.
Record Nr. UNINA-9910483404003321
Cham : , : Springer International Publishing : , : Imprint : Springer, , 2017
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Magnetic resonance imaging of healthy and diseased brain networks / / topic editors: Yong He and Alan Evans
Magnetic resonance imaging of healthy and diseased brain networks / / topic editors: Yong He and Alan Evans
Autore Yong He
Pubbl/distr/stampa Frontiers Media SA, 2015
Descrizione fisica 1 online resource (365 pages) : illustrations; digital, PDF file(s)
Collana Frontiers Research Topics
Soggetto topico Radiology, MRI, Ultrasonography & Medical Physics
Medicine
Health & Biological Sciences
Soggetto non controllato connectomics
connectivity
graph theory
MRI
Small-world
ISBN 9782889194353 (ebook)
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910137529703321
Yong He  
Frontiers Media SA, 2015
Materiale a stampa
Lo trovi qui: Univ. Federico II
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Plant Chemical Compositions and Bioactivities
Plant Chemical Compositions and Bioactivities
Autore Gouda Mostafa
Edizione [1st ed.]
Pubbl/distr/stampa New York, NY : , : Springer, , 2024
Descrizione fisica 1 online resource (334 pages)
Altri autori (Persone) LiXiaoli
HeYong
Collana Methods and Protocols in Food Science Series
ISBN 1-0716-3938-2
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910869156503321
Gouda Mostafa  
New York, NY : , : Springer, , 2024
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui