Unlocking IoT Potential: Strategic Approaches to Sensors and Communication

Date: Thursday, October 10 2024
Time: 10:00 PM (PST)
Location: Virtual

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SDV ADAS: Advanced Driver Assist Features

Building Intelligent Driver Monitoring (DMS) & Pothole Detection (PDS) on NVIDIA Jetson

Duration

2 Hrs

Preferred Date

NA

Preferred Location

Virtual

Time

12:00 PM CST

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About the Workshop

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Modern vehicles are becoming intelligent, software-defined platforms—but safety still depends on how effectively we transform raw sensor data into real-time, actionable decisions. This workshop equips engineering teams to design and deploy Level-0 (alert-only) AI-driven ADAS features on NVIDIA Jetson, focusing on two high-impact capabilities:

Participants will gain hands-on insight into building edge-native AI pipelines that operate with sub-50 ms latency, without cloud dependency, and integrate seamlessly with in-vehicle and fleet systems.

Workshop Objective 

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Enable engineering teams to design, prototype, and deploy Level 0 (alert-only) AI-driven ADAS features on NVIDIA Jetson, focusing on driver distraction monitoring and pothole detection, with real-time edge inference and seamless system integration.

By the end of this workshop, participants will understand how to move from detection to actionable alerts while integrating AI insights into in-vehicle and fleet systems.

Who Should Attend

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ADAS Engineering Teams

Auto Software Developers

Fleet Operations & Mobility Platform Teams

Why You Should Attend

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Transition from reactive safety to predictive, AI-driven alerts

Achieve real-time edge performance without cloud dependency

Gain a clear roadmap from PoC to deployment

Reduce vehicle wear, improve safety outcomes, and lower operational costs

Key Takeaways

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Practical understanding of deploying Level 0 ADAS on Jetson

Real-time ecosystem integration patterns

Multi-stage alert design strategiess

A clear roadmap from PoC to deployment

Hands-on exposure to DMS and PDS live demos

Agenda

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Use Case 1: Driver Distraction Monitoring (DDMS)

Problem Statement

Driver fatigue, distraction, and drowsiness are major contributors to preventable accidents. Reactive alerts are insufficient without temporal and behavioral context.

AI-Based Approach
  • Eye closure (PERCLOS)
  • Head pose deviation
  • Gaze tracking
  • Multi-stage alerts
  • Event logging
  • Immediate ADAS intervention triggers when required
Business Impact

Use Case 2: Pothole Detection System (PDS)

Problem Statement

Road hazards often go undetected, leading to safety risks, vehicle damage, and unplanned maintenance costs.

AI + Sensor Fusion Solution
Smart Features
Business Impact

Integration Architecture

End-to-End Pipeline
  • Protocol adapters
  • Security layer (TLS, encryption)
  • Data buffering and forwarding
  • Event ingestion
  • Analytics dashboards
  • Model updates via OTA
Implementation Roadmap (High-Level)
Live Demonstration Preview
  • Fatigue detection
  • Distraction events
  • Alert escalation
  • Visual detection
  • IMU correlation
  • Map-based hazard logging

Target metrics include real-time latency, high confidence detection, and stable frame rates on Jetson.

Conclusion & Next Steps

Trusted by the best

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200+ enterprises worldwide including several Fortune 500

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