KHAIT: K-9 Handler Artificial Intelligence Teaming for Collaborative Sensemaking
Authors
In urban search and rescue (USAR) operations, communication between handlers and specially trained canines is crucial but often complicated by challenging environments and the specific behaviors canines are trained to exhibit when detecting a person. Since a USAR canine often works out of sight of the handler, the handler lacks awareness of the canine's location and situation, known as the "sensemaking gap." In this paper, we propose KHAIT, a novel approach to close the sensemaking gap and enhance USAR effectiveness by integrating object detection-based Artificial Intelligence (AI) and Augmented Reality (AR). Equipped with AI-powered cameras, edge computing, and AR headsets, KHAIT enables precise and rapid object detection from a canine's perspective, improving survivor localization. We evaluate this approach in a real-world USAR environment, demonstrating an average survival allocation time decrease of 22%, enhancing the speed and accuracy of operations.
Research Questions / Practical Problems
Question signals indexed for this paper.
Research Questions
3- How can the "sensemaking gap" between search-and-rescue dogs and human operators be bridged to improve urban search-and-rescue efficiency?Category: XR-Assisted Search and Rescue and Cross-Agent CoordinationSimilar questionsarrow_forward
- How can AI and AR technologies help search-and-rescue dogs provide real-time perceptual support when humans cannot directly supervise them?Category: XR-Assisted Search and Rescue and Cross-Agent CoordinationSimilar questionsarrow_forward
- How does the KHAIT system demonstrate technical reliability and user usability in complex environments?Category: Medical AI Explanation, Trust, and RelianceSimilar questionsarrow_forward
Practical Problems
1- When search-and-rescue dogs work out of sight, operators struggle to obtain their location and target information, exacerbating rescue delays.Category: Medical AI Explanation, Trust, and RelianceSimilar questionsarrow_forward
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