Image Texture Analysis
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65,99 USD
Typical price56,20 PLN
Lowest (90 days)39,99 PLN
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Price history (90 days)
Full history
2026-08-08
2026-08-15
| Cập nhật lúc | Giá |
|---|---|
| 2026-08-08 | 39,99 |
| 2026-08-14 | 39,99 |
| 2026-08-15 | 54,99 |
| Người bán | Product price | Delivery | Tổng cộng | Tình trạng | Updated | |
|---|---|---|---|---|---|---|
| SP SpringerNatureLink Shop INT | 46,99 USD | 19,00 USD | 65,99 USD | Có sẵn | 15 giờ trước | View offer |
| SP SpringerNatureLink Shop INT | 64,99 USD | 25,00 USD | 89,99 USD | Có sẵn | 13 giờ trước | View offer |
| SP SpringerNatureLink Shop INT | 64,99 USD | 25,00 USD | 89,99 USD | Có sẵn | 13 giờ trước | View offer |
| SP SpringerNatureLink Shop INT | 69,99 USD | 29,00 USD | 98,99 USD | Có sẵn | 13 giờ trước | View offer |
| SP SpringerNatureLink Shop INT | 69,99 USD | 19,00 USD | 88,99 USD | Có sẵn | 13 giờ trước | View offer |
| SP Springer Nature Author | 69,99 USD | 19,00 USD | 88,99 USD | Có sẵn | 6 ngày trước | View offer |
| SP SpringerNatureLink Shop INT | 77,00 EUR | free | 77,00 EUR | Có sẵn | 13 giờ trước | View offer |
Giá và tình trạng có thể thay đổi. Cập nhật lần cuối: 08.08.2026 12:16.
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This useful textbook/reference presents an accessible primer on the fundamentals of image texture analysis, as well as an introduction to the K-views model for extracting and classifying image textures. Divided into three parts, the book opens with a review of existing models and algorithms for image texture analysis, before delving into the details of the K-views model. The work then concludes with a discussion of popular deep learning methods for image texture analysis. Topics and features: provides self-test exercises in every chapter; describes the basics of image texture, texture features, and image texture classification and segmentation; examines a selection of widely-used methods for measuring and extracting texture features, and various algorithms for texture classification; explains the concepts of dimensionality reduction and sparse representation; discusses view-based approaches to classifying images; introduces the template for the K-views algorithm, as well as a range of variants of this algorithm; reviews several neural network models for deep machine learning, and presents a specific focus on convolutional neural networks. This introductory text on image texture analysis is ideally suitable for senior undergraduate and first-year graduate students of computer science, who will benefit from the numerous clarifying examples provided throughout the work.