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| Content Provider | ACM Digital Library |
|---|---|
| Author | Nguyen-Dinh, Long-Van Tröster, Gerhard Blanke, Ulf Rossi, Mirco |
| Abstract | The growing ubiquity of sensors in mobile phones has opened many opportunities for personal daily activity sensing. Most context recognition systems require a cumbersome preparation by collecting and manually annotating training examples. Recently, mining online crowd-generated repositories for free annotated training data has been proposed to build context models. A crowd-generated dataset can capture a large variety both in terms of class number and in intra-class diversity, but may not cover all user-specific contexts. Thus, performance is often significantly worse than that of user-centric training. In this work, we exploit for the first time the combination of both crowd-generated audio dataset available in the web and unlabeled audio data obtained from users' mobile phones. We use a semi-supervised Gaussian mixture model to combine labeled data from the crowd-generated database and unlabeled personal recording data. Hereby we refine generic knowledge with data from the user to train a personalized model. This technique has been tested on 7 users on mobile phones with a total data of 14 days and up to 9 context classes. Preliminary results show that a semi-supervised model can improve the recognition accuracy up to 21%. |
| Starting Page | 35 |
| Ending Page | 38 |
| Page Count | 4 |
| File Format | |
| ISBN | 9781450323970 |
| DOI | 10.1145/2509352.2509396 |
| Language | English |
| Publisher | Association for Computing Machinery (ACM) |
| Publisher Date | 2013-10-22 |
| Publisher Place | New York |
| Access Restriction | Subscribed |
| Subject Keyword | Crowd-generated media Mobile phone Activities of daily living Semi-supervised learning Context recognition |
| Content Type | Text |
| Resource Type | Article |
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