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Deep Learning for 3D Point Clouds

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Deep Learning for 3D Point Clouds
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20 616,00 JPY
Typical price7 824,08 PLN
Lowest (90 days)154,07 PLN
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2026-08-08 2026-08-15
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2026-08-08154,07
2026-08-15170,50
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SP SpringerNatureLink Shop INT 20 591,00 JPY 25,00 JPY 20 616,00 JPY Mevcut 4 gün önce View offer
SP Springer Nature Author 20 591,00 JPY 25,00 JPY 20 616,00 JPY Mevcut 1 hafta önce View offer
SP SpringerNatureLink Shop INT 154,07 USD 25,00 USD 179,07 USD Mevcut 4 gün önce View offer
SP SpringerNatureLink Shop INT 170,50 EUR free 170,50 EUR Mevcut 4 gün önce View offer

Fiyatlar ve stok durumu değişebilir. Son Güncelleme: 08.08.2026 23:33.

EAN 9789819795703
Springer Nature
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As an efficient 3D vision solution, point clouds have been widely applied into diverse engineering scenarios, including immersive media communication, autonomous driving, reverse engineering, robots, topography mapping, digital twin city, medical analysis, digital museum, etc. Thanks to the great developments of deep learning theories and methods, 3D point cloud technologies have undergone fast growth during the past few years, including diverse processing and understanding tasks. Human and machine perception can be benefited from the success of using deep learning approaches, which can significantly improve 3D perception modeling and optimization, as well as 3D pre-trained and large models. This book delves into these research frontiers of deep learning-based point cloud technologies. The subject of this book focuses on diverse intelligent processing technologies for the fast-growing 3D point cloud applications, especially using deep learning-based approaches. The deep learning-based enhancement and analysis methods are elaborated in detail, as well as the pre-trained and large models with 3D point clouds. This book carefully presents and discusses the newest progresses in the field of deep learning-based point cloud technologies, including basic concepts, fundamental background knowledge, enhancement, analysis, 3D pre-trained and large models, multi-modal learning, open source projects, engineering applications, and future prospects. Readers can systematically learn the knowledge and the latest developments in the field of deep learning-based point cloud technologies. This book provides vivid illustrations and examples, and the intelligent processing methods for 3D point clouds. Readers can be equipped with an in-depth understanding of the latest advancements of this rapidly developing research field.

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