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A Survey of Probabilistic Modeling Techniques of Hidden States and their Duration Distributions
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- KUROKAWA Mori
- KDDI R&D Laboratories, inc.
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- YOKOYAMA Hiroyuki
- KDDI R&D Laboratories, inc.
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- YOSHII Kazuyoshi
- National Institute of Advanced Industrial Science and Technology
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- ASOH Hideki
- National Institute of Advanced Industrial Science and Technology
Bibliographic Information
- Other Title
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- 隠れ状態の継続時間長を考慮した確率モデルに関する調査
Description
<p>Human activity data, so-called "life-log data", has underlying contexts such as sleeping, driving a car, eating. In order to analyse and predict such data, the hidden Markov model is often used. However, the duration time of the hidden context state of HMM distributes exponentially and this is not suited for modeling the above contexts. In order for modeling these context flexibly, we introduce and compare probabilistic modeling techniques of of hidden states with general duration distributions.</p>
Journal
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- JSAI Technical Report, Type 2 SIG
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JSAI Technical Report, Type 2 SIG 2009 (DMSM-A902), 04-, 2009-10-18
The Japanese Society for Artificial Intelligence
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Details 詳細情報について
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- CRID
- 1390007750044974720
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- NII Article ID
- 130008079601
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- ISSN
- 24365556
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- Text Lang
- ja
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- Data Source
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- JaLC
- CiNii Articles
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- Abstract License Flag
- Allowed