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dc.contributor.editorFrank Hutter; Lars Kotthoff; Joaquin Vanschorenvi
dc.date.accessioned2024-03-05T03:58:35Z-
dc.date.available2024-03-05T03:58:35Z-
dc.date.issued2019-
dc.identifier.isbn978-3-030-05318-5vi
dc.identifier.issn2520-1328vi
dc.identifier.otherOER000003083vi
dc.identifier.urihttp://dlib.hust.edu.vn/handle/HUST/23984-
dc.descriptionEbook miễn phí tại trang https://library.oapen.org/vi
dc.description.abstractOverview of general methods in Automated Machine Learning (AutoML), collects descriptions of existing systems based on these methods, and discusses the first series of international challenges of AutoML systems. The recent success of commercial ML applications and the rapid growth of the field has created a high demand for off-the-shelf ML methods that can be used easily and without expert knowledge. However, many of the recent machine learning successes crucially rely on human experts, who manually select appropriate ML architectures (deep learning architectures or more traditional ML workflows) and their hyperparameters. To overcome this problem, the field of AutoML targets a progressive automation of machine learning, based on principles from optimization and machine learning itself. This book serves as a point of entry into this quickly-developing field for researchers and advanced students alike, as well as providing a reference for practitioners aiming to use AutoML in their work.vi
dc.description.urihttps://library.oapen.org/handle/20.500.12657/23012vi
dc.formatPDFvi
dc.language.isoenvi
dc.publisherSpringer Naturevi
dc.rightsAttribution 3.0 Vietnam*
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/vn/*
dc.subjectKhoa học máy tínhvi
dc.subjectTrí tuệ nhân tạovi
dc.subjectXử lý dữ liệu quang họcvi
dc.subjectNhận dạng mẫuvi
dc.subjectHọc máyvi
dc.subject.lccQ325.5vi
dc.titleAutomated Machine Learning: Methods, Systems, Challengesvi
dc.typeEbooks (Sách điện tử)vi
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