发明授权
- 专利标题: Topic models
- 专利标题(中): 主题模型
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申请号: US12912428申请日: 2010-10-26
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公开(公告)号: US08645298B2公开(公告)日: 2014-02-04
- 发明人: Philipp Hennig , David Stern , Thore Graepel , Ralf Herbrich
- 申请人: Philipp Hennig , David Stern , Thore Graepel , Ralf Herbrich
- 申请人地址: US WA Redmond
- 专利权人: Microsoft Corporation
- 当前专利权人: Microsoft Corporation
- 当前专利权人地址: US WA Redmond
- 代理机构: Microsoft Corporation
- 主分类号: G06F17/00
- IPC分类号: G06F17/00 ; G06F15/18 ; G06N5/00 ; G06F7/00 ; G06F17/30
摘要:
Machine learning techniques may be used to train computing devices to understand a variety of documents (e.g., text files, web pages, articles, spreadsheets, etc.). Machine learning techniques may be used to address the issue that computing devices may lack the human intellect used to understand such documents, such as their semantic meaning. Accordingly, a topic model may be trained by sequentially processing documents and/or their features (e.g., document author, geographical location of author, creation date, social network information of author, and/or document metadata). Additionally, as provided herein, the topic model may be used to predict probabilities that words, features, documents, and/or document corpora, for example, are indicative of particular topics.
公开/授权文献
- US20120101965A1 TOPIC MODELS 公开/授权日:2012-04-26
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