Visual-Haptics for Remote Robot Operation, Inspection & Physical Intervention

visualhaptics.kuqu@gmail.com
Project Period: Jan 2026– Dec 2027

Visual-Haptics for Remote Robot Operation, Inspection & Physical Intervention

Immersive visual-haptic teleoperation for safe robotic inspection and physical intervention in underwater and agricultural environments.

This project develops a unified visual-haptic teleoperation framework integrating multimodal feedback, predictive safety control, and immersive XR interaction. The system is designed to improve operator awareness, support safer maneuvering, and enable robust remote intervention across challenging robotic scenarios.

Use Case Scenarios:

1. Underwater Infrastructure Intervention

Underwater Infrastructure Intervention

2. Greenhouse Intervention

Greenhouse Intervention
Project Overview

Advancing Teleoperation Beyond Visual-Only Interfaces

Remote robotic operation in extreme and semi-structured environments is constrained by limited operator feedback, uncertain maneuvering conditions, and reduced situational awareness. Conventional visual-only teleoperation often fails to provide the reliability and contact-awareness needed for safe inspection and physical intervention.

The Visual-Haptics project addresses these limitations through a dedicated software and interaction framework that fuses visual sensing with haptic feedback, evaluates predictive control in simulation, and validates the integrated system on terrestrial and underwater robotic platforms.

Objectives

Four Core Research Objectives

O1. Multimodal Framework

Design and implement a unified teleoperation software framework integrating visual and haptic feedback for navigation, inspection, and physical intervention.

O2. Predictive Safety

Explore predictive control approaches for obstacle avoidance, safe maneuvering, and operator assistance under uncertainty.

O3. Evaluation

Assess performance and user experience through controlled experiments measuring accuracy, workload, usability, and perceived presence.

O4. Validation

Validate the framework across terrestrial and underwater robotic platforms, advancing from laboratory prototype toward relevant-environment testing.

Application Domains

Cross-Domain Validation Strategy

Underwater robotic platform

Underwater Inspection

Validation in underwater environments where visibility, maneuverability, and environmental uncertainty complicate remote inspection and contact-aware intervention.

Greenhouse robotic platform

Greenhouse Harvesting

Validation in agricultural settings involving constrained navigation, delicate interaction, and semi-structured physical intervention tasks.

Highlights

Framework Capabilities

TRL 4-6

Lab validation to relevant environment testing

Vision + Haptics + XR

Integrated multimodal operator interaction

Predictive Safety

Safer maneuvering and obstacle-aware assistance

Cross-Domain

Underwater and terrestrial robotic validation

Explore the Project

Research, Validation, and Dissemination

Learn more about the scientific motivation, technical work packages, validation roadmap, publications, and team expertise behind the project.