PRE-REQUISITE | DSAA 2011 |
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DESCRIPTION | Learning and optimization serve as the foundational block for many artificial intelligence algorithms. Our initial focus is on convex analysis and on modeling problems as convex problems, while later on in the course we will shift the focus to different algorithms for convex optimization and nonconvex optimization. The techniques introduced in this course will be motivated by needs of problems and applications in Machine Learning and Deep Learning. The topics range from foundational material to cutting-edge trends. |
Section | Date & Time | Room | Instructor | Quota | Enrol | Avail | Wait | Remarks |
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L01 (6399) | Th 03:00PM - 05:50PM | Rm 122, E1 | GONG, Zijun WANG, Xin | 50 | 27 | 23 | 0 |
VECTOR | [3-0-0:3] |
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EXCLUSION | IOTA 5108 |
CO-LIST WITH | IOTA 5108 |
DESCRIPTION | This course aims to develop students’ fundamental understanding of the theory and application of incremental learning and adaptive signal processing. Topics covered in this course include Wiener filter, least mean squares (LMS), recursive least squares (RLS), the Kalman filter, classification, parameter learning, neural network and deep learning. |
Section | Date & Time | Room | Instructor | Quota | Enrol | Avail | Wait | Remarks |
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L01 (6146) | Th 09:00AM - 11:50AM | Rm 228, E2 | GONG, Zijun YANG, Liuqing | 20 | 6 | 14 | 0 |
VECTOR | [3-0-0:3] |
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EXCLUSION | INTR 5320 |
CO-LIST WITH | INTR 5320 |
DESCRIPTION | This course aims to develop students’ fundamental understanding of the theory and application of incremental learning and adaptive signal processing. Topics covered in this course include Wiener filter, least mean squares (LMS), recursive least squares (RLS), the Kalman filter, classification, parameter learning, neural network and deep learning. |
Section | Date & Time | Room | Instructor | Quota | Enrol | Avail | Wait | Remarks |
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L01 (6166) | Th 09:00AM - 11:50AM | TBA | GONG, Zijun YANG, Liuqing | 20 | 2 | 18 | 0 | The classroom is E2228. |