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Pattern Recognition and Data Analysis with Applications

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Pattern Recognition and Data Analysis with Applications
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200,89 EUR
Typical price220,59 PLN
Lowest (90 days)181,89 PLN
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2026-08-08 2026-08-15
Riwayat Harga
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2026-08-08181,89
2026-08-15199,99
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SP Springer Nature Author 181,89 EUR 19,00 EUR 200,89 EUR Tersedia 1 minggu yang lalu View offer
SP SpringerNatureLink Shop INT 219,99 USD 19,00 USD 238,99 USD Tersedia 4 hari yang lalu View offer
SP SpringerNatureLink Shop INT 219,99 USD 25,00 USD 244,99 USD Tersedia 4 hari yang lalu View offer
SP SpringerNatureLink Shop INT 249,99 USD 15,00 USD 264,99 USD Tersedia 4 hari yang lalu View offer
SP SpringerNatureLink Shop INT 249,99 USD free 249,99 USD Tersedia 4 hari yang lalu View offer
SP Springer Nature Author 249,99 USD 15,00 USD 264,99 USD Tersedia 1 minggu yang lalu View offer
SP SpringerNatureLink Shop INT 241,99 EUR 19,00 EUR 260,99 EUR Tersedia 4 hari yang lalu View offer

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This book covers latest advancements in the areas of machine learning, computer vision, pattern recognition, computational learning theory, big data analytics, network intelligence, signal processing and their applications in real world. The topics covered in machine learning involves feature extraction, variants of support vector machine (SVM), extreme learning machine (ELM), artificial neural network (ANN) and other areas in machine learning. The mathematical analysis of computer vision and pattern recognition involves the use of geometric techniques, scene understanding and modelling from video, 3D object recognition, localization and tracking, medical image analysis and so on. Computational learning theory involves different kinds of learning like incremental, online, reinforcement, manifold, multi-task, semi-supervised, etc. Further, it covers the real-time challenges involved while processing big data analytics and stream processing with theintegration of smart data computing services and interconnectivity. Additionally, it covers the recent developments to network intelligence for analyzing the network information and thereby adapting the algorithms dynamically to improve the efficiency. In the last, it includes the progress in signal processing to process the normal and abnormal categories of real-world signals, for instance signals generated from IoT devices, smart systems, speech, videos, etc., and involves biomedical signal processing: electrocardiogram (ECG), electroencephalogram (EEG), magnetoencephalography (MEG) and electromyogram (EMG).

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