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Advanced Computational Intelligence for Object Detection, Feature Extraction and Recognition in Smart Sensor Environments



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Autore: Woźniak Marcin Visualizza persona
Titolo: Advanced Computational Intelligence for Object Detection, Feature Extraction and Recognition in Smart Sensor Environments Visualizza cluster
Pubblicazione: Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021
Descrizione fisica: 1 online resource (454 p.)
Soggetto topico: Information technology industries
Soggetto non controllato: 3D convolutional neural networks
3D imaging
activity measure
advanced driver assistance system (ADAS)
anchor box
artefacts
artificial bee colony
atrous convolution
augmented reality
automatic design
benchmark
bio-inspired techniques
brain hemorrhage
cascade classifier
cascaded center-ness
citrus
CNN
complex search request
computer vision
continuous casting
convolution neural networks (CNNs)
convolutional neural network
convolutional neural networks
cross-scale
CT brain
CT images
data acquisition
deep learning
deep sort
defect detection
deformable localization
drone detection
evidence chains
evolving connectionist systems
fabric defect
feature extraction
feature fusion
few shot learning
focal loss
generative adversarial network
grow-when-required neural network
hand gesture recognition
hepatic cancer
high-speed trains
human-robot interaction
Hungarian algorithm
hunting
image analysis
image processing
image recognition
industrial environments
information retriever sensor
InSAR
machine learning
marine systems
mixed kernels
multi-hop reasoning
multi-scale
multi-sensor fusion
n/a
nearest neighbor filtering
neural network
non-stationary
object detection
object detector
object tracking
one-class classifier
optical flows
parameter efficiency
pests and diseases identification
pixel convolution
pose estimation
reinforcement learning
RFI
semantic segmentation
ship classification
ship radiated noise
spatial pooling
spatiotemporal interest points
sports scene
superalloy tool
surface defects
surface electromyography (sEMG)
SVM
synthetic images
three-dimensional (3D) vision
thresholding
tool wear monitoring
Traffic sign detection and tracking (TSDR)
UAV detection
UAV imagery
underwater acoustics
unmanned aerial vehicles
vehicle detection
vehicular traffic congestion
vehicular traffic flow classification
vehicular traffic flow detection
video classification
video surveillance
visual detection
visual inspection
visual question answering
Yolo
YOLOv2
Persona (resp. second.): WoźniakMarcin
Sommario/riassunto: Recent years have seen a vast development in various methodologies for object detection and feature extraction and recognition, both in theory and in practice. When processing images, videos, or other types of multimedia, one needs efficient solutions to perform fast and reliable processing. Computational intelligence is used for medical screening where the detection of disease symptoms is carried out, in prevention monitoring to detect suspicious behavior, in agriculture systems to help with growing plants and animal breeding, in transportation systems for the control of incoming and outgoing transportation, for unmanned vehicles to detect obstacles and avoid collisions, in optics and materials for the detection of surface damage, etc. In many cases, we use developed techniques which help us to recognize some special features. In the context of this innovative research on computational intelligence, the Special Issue "Advanced Computational Intelligence for Object Detection, Feature Extraction and Recognition in Smart Sensor Environments" present an excellent opportunity for the dissemination of recent results and achievements for further innovations and development. It is my pleasure to present this collection of excellent contributions to the research community. - Prof. Marcin Woźniak, Silesian University of Technology, Poland -
Titolo autorizzato: Advanced Computational Intelligence for Object Detection, Feature Extraction and Recognition in Smart Sensor Environments  Visualizza cluster
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910557360703321
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