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Visual Object Tracking from Correlation Filter to Deep Learning

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Visual Object Tracking from Correlation Filter to Deep Learning
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117,69 EUR
Typical price2 182,24 PLN
Lowest (90 days)117,69 PLN
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Last updated6 zile în urmă
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2026-08-08 2026-08-15
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2026-08-08117,69
2026-08-15119,99
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SP Springer Nature Author 117,69 EUR free 117,69 EUR Disponibil 1 săptămână în urmă View offer
SP SpringerNatureLink Shop INT 20 019,00 JPY 15,00 JPY 20 034,00 JPY Disponibil 6 zile în urmă View offer
SP Springer Nature Author 20 019,00 JPY free 20 019,00 JPY Disponibil 1 săptămână în urmă View offer
SP SpringerNatureLink Shop INT 139,99 USD 19,00 USD 158,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 159,99 USD 19,00 USD 178,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 159,99 USD 19,00 USD 178,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 165,50 EUR 15,00 EUR 180,50 EUR Disponibil 6 zile în urmă View offer

Prețurile și disponibilitatea se pot modifica. Ultima actualizare: 15.08.2026 04:24.

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The book focuses on visual object tracking systems and approaches based on correlation filter and deep learning. Both foundations and implementations have been addressed. The algorithm, system design and performance evaluation have been explored for three kinds of tracking methods including correlation filter based methods, correlation filter with deep feature based methods, and deep learning based methods. Firstly, context aware and multi-scale strategy are presented in correlation filter based trackers; then, long-short term correlation filter, context aware correlation filter and auxiliary relocation in SiamFC framework are proposed for combining correlation filter and deep learning in visual object tracking; finally, improvements in deep learning based trackers including Siamese network, GAN and reinforcement learning are designed. The goal of this book is to bring, in a timely fashion, the latest advances and developments in visual object tracking, especially correlation filter and deep learning based methods, which is particularly suited for readers who are interested in the research and technology innovation in visual object tracking and related fields.

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