Representation in Machine Learning
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Last updatedمنذ أسبوع
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2026-08-08
2026-08-15
| تاريخ التحديث | السعر |
|---|---|
| 2026-08-08 | 57,19 |
| 2026-08-15 | 57,19 |
| البائع | Product price | Delivery | الإجمالي | التوفر | Updated | |
|---|---|---|---|---|---|---|
| SP SpringerNatureLink Shop INT | 7 864,00 JPY | free | 7 864,00 JPY | متوفر | منذ 3 أيام | View offer |
| SP Springer Nature Author | 7 864,00 JPY | 19,00 JPY | 7 883,00 JPY | متوفر | منذ أسبوع | View offer |
| SP SpringerNatureLink Shop INT | 65,00 EUR | 25,00 EUR | 90,00 EUR | متوفر | منذ 3 أيام | View offer |
قد تتغيّر الأسعار والتوفر. آخر تحديث: 08.08.2026 23:17.
EAN
9789811979071
Springer Nature
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This book provides a concise but comprehensive guide to representation, which forms the core of Machine Learning (ML). State-of-the-art practical applications involve a number of challenges for the analysis of high-dimensional data. Unfortunately, many popular ML algorithms fail to perform, in both theory and practice, when they are confronted with the huge size of the underlying data. Solutions to this problem are aptly covered in the book. In addition, the book covers a wide range of representation techniques that are important for academics and ML practitioners alike, such as Locality Sensitive Hashing (LSH), Distance Metrics and Fractional Norms, Principal Components (PCs), Random Projections and Autoencoders. Several experimental results are provided in the book to demonstrate the discussed techniques’ effectiveness.