CBA

Updated 22 days ago
  • ID: 44722308/35
CODA, 756 W Peachtree St NW, Atlanta, GA 30308
The development of robust, generalized models for human activity recognition (HAR) has been hindered by the scarcity of large-scale, labeled data sets. Recent work has shown that virtual IMU data extracted from videos using computer vision techniques can lead to substantial performance improvements when training HAR models combined with small portions of real IMU data. Inspired by recent advances in motion synthesis from textual descriptions and connecting Large Language Models (LLMs) to various AI models, we introduce an automated pipeline that first uses ChatGPT to generate diverse textual descriptions of activities. These textual descriptions are then used to generate 3D human motion sequences via a motion synthesis model, T2M-GPT, and later converted to streams of virtual IMU data. We benchmarked our approach on three HAR datasets (RealWorld, PAMAP2, and USC-HAD) and demonstrate that the use of virtual IMU training data generated using our new approach leads to significantly..
Primary location: Atlanta United States
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Interest Score
1
HIT Score
0.69
Domain
cba.gatech.edu

Actual
www.cba.gatech.edu

IP
130.207.49.11

Status
OK

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Company
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