Endearing 发表于 2025-3-28 15:39:35
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Norbert Thumb,Martin Manninger,Dietmar Dietrichof the underlying mechanism for grain refinement by ultra-high strain-rate presented in this book becomes more and more crucial..978-3-642-43474-7978-3-642-35674-2Series ISSN 0933-033X Series E-ISSN 2196-2812Exuberance 发表于 2025-3-28 23:55:51
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Kurt Maier,Olaf Schlüter,Hubert Uebelackerong with a comparison with common data mining models. Chapter 10 presents a novel hybrid model combining extreme gradient boosting and deep neural networks for predicting injury severity of road traffic acciden978-3-030-10374-3Series ISSN 2522-8714 Series E-ISSN 2522-8722离开就切除 发表于 2025-3-29 07:54:34
Horst Samselssive stress on the stress intensity factor of hole-edge cracks by high strain rate laser shock processing are also analyzed. A new type of statistical data model to describe the fatigue cracking growth with li978-3-662-51502-0978-3-662-46444-1Pander 发表于 2025-3-29 15:24:12
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Andreas Bertsch,Kai Rannenberg,Herbert Bunzlexus region, and selective branching beyond this choice point. Retrograde tracing of motor neurons from the dorsal or ventral limb mesenchyme served to analyze stereotypical dorsal–ventral guidance decisions of motor neurons localized in the medial and lateral aspects of the lateral motor column (L无价值 发表于 2025-3-29 21:56:44
Andreas Berger,Alfred Giessler,Petra Glöcknererred when cultured cells are the subject of study..Pixel size should preferably equal one half of the (radial) Abbe resolution of the optical instrument. For Nyquist sampling, the smallest feature should be at least 4 pixels wide (“Pawley’s Four”). Structures should at least be 10 pixels across to斜坡 发表于 2025-3-30 03:58:38
Birgit Baum-Waidnerhe details of neural networks and their performance in predicting the traffic accidents along with a comparison with common data mining models. Chapter 10 presents a novel hybrid model combining extreme gradient boosting and deep neural networks for predicting injury severity of road traffic accidenanarchist 发表于 2025-3-30 04:17:42
Stephan Hillerhe details of neural networks and their performance in predicting the traffic accidents along with a comparison with common data mining models. Chapter 10 presents a novel hybrid model combining extreme gradient boosting and deep neural networks for predicting injury severity of road traffic acciden