enumaerate 发表于 2025-3-23 10:59:02
Kathrin Susann Becher book highlights possible future research directions, graduate students in the field of mathematical modeling or electrical engineeringmay also benefit strongly. . .978-3-030-62734-8978-3-030-62732-4Series ISSN 1612-3956 Series E-ISSN 2198-3283冒号 发表于 2025-3-23 15:00:26
rithms. The comparison is made in terms of accuracy assessment and quality analysis (visual analysis) of the obtained classified image. It showed that our proposed approach outperformed the other conventional classifiers in terms of qualitative analysis and has higher cross-validation accuracy thanV洗浴 发表于 2025-3-23 20:51:18
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Kathrin Susann Becherthen artificial neural networks. Primarily four types of network architectures in deep learning are identified and discussed in this work. They are unsupervised pre-trained network, convolution neural network, recurrent neural network and recursive neural network architectures. Types and availabilit代替 发表于 2025-3-24 06:11:29
Kathrin Susann Becherrithms. The comparison is made in terms of accuracy assessment and quality analysis (visual analysis) of the obtained classified image. It showed that our proposed approach outperformed the other conventional classifiers in terms of qualitative analysis and has higher cross-validation accuracy thanHorizon 发表于 2025-3-24 07:59:44
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Kathrin Susann Bechersight is gained into the dependence structure of solar power supply and the considered meteorological variables. The main goal lies in determining suitable explanatory variables for the design of probabilistic prediction models for solar power supply at single feed-in points and analyzing their impa推迟 发表于 2025-3-24 16:26:22
Kathrin Susann Bechersight is gained into the dependence structure of solar power supply and the considered meteorological variables. The main goal lies in determining suitable explanatory variables for the design of probabilistic prediction models for solar power supply at single feed-in points and analyzing their impaReservation 发表于 2025-3-24 21:31:24
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for land cover classification, which provides a basis for many applications like hydrology, natural hazards, urban planning, etc. In this paper, a novel approach is proposed to classify the polarimetric SAR (PolSAR) image using Naïve Bayes for land cover categorization. Naïve Bayes is a maximum a p