Hybrid Approach for Shot Boundary Detection Based on Machine Learning
LAP Lambert Academic Publishing
Published on 22. January 2024
Book
Paperback/Softback
260 pages
978-620-5-63092-1 (ISBN)
Description
High level video generalization, video segmentation, video indexing, video summarization and video recovery required an elementary step of recognition of shot boundaries. Therefore detection of shot boundaries is prerequisite for revealing content of complicated video structure. There are several applications where shot boundary detection automation can be used such as Geographical information system (GIS), restoration of video, multimedia news, digital libraries, Tele-learning, interactive display. There are some problems that still need to be addressed by the researchers to resolve. The disturbance caused by the illumination change, detection of gradual and abrupt transitions is the main confronts in the detection of shot breaks. In this book we propose three methods for shot boundary detection which are Dual Tree Discrete Wavelet Transform (DTDWT), Artificial Neural Network (ANN) and Convolution Neural Network (CNN). We have assessed algorithms using performance evaluation metric Precision, Recall and F1 measure.
More details
Language
English
Product notice
Paperback (trade)
Unsewn / adhesive bound
Dimensions
Height: 220 mm
Width: 150 mm
Thickness: 16 mm
Weight
405 gr
ISBN-13
978-620-5-63092-1 (9786205630921)
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Schweitzer Classification
Persons
Dr. Neelam Labhade-Kumar has obtained her Ph.D in Electronics and Communication Engineering. Her area of research is Video Shot Boundary Detection, Image Enhancement and Retrieval. She has published papers in several reputed journals like Springer, Elsevier, Scopus and UGC care etc. She has total 14 years of teaching experience.