Autonomous Robot Navigation

Autonomous robot navigation is the ability of a mobile robot to perceive its surroundings, determine its position, and reach a goal without continuous human control. The system combines sensors such as cameras, lidar, or inertial units with localization, simultaneous mapping, and path-planning algorithms, then uses feedback to adjust movement as conditions change. Neuroscience informs these designs by modeling spatial representations associated with place cells, grid cells, and goal-directed behavior in the brain. These principles support robots operating in homes, laboratories, and hazardous environments while providing computational models for studying navigation, learning, and sensorimotor decision-making.

Autonomous Robot Navigation - Related Videos

Research

JoVE Journal - Biology
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High-Throughput, In-Field Screening of Photosynthetic Efficiency in Crop Plants Using an Autonomous Robot

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2026

This manuscript describes a non-destructive, high-throughput approach for autonomous field measurements of photosystem II quantum efficiency, spectral reflectance, and plant architecture, enabling large-scale canopy photosynthesis phenotyping in agronomic and breeding field trials.

Research

JoVE Journal - Neuroscience
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Using Insect Electroantennogram Sensors on Autonomous Robots for Olfactory Searches

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Cited by 49 •

2014

We describe a protocol for using insect antennae in the form of electroantennograms (EAGs) on autonomous robots. Our experimental design allows stable recordings within a day and resolves individual odor patches up to 10 Hz. The efficiency of EAG sensors for olfactory searches is demonstrated in driving a robot toward an odor source.

Research

JoVE Journal - Bioengineering

A Spine Robotic-Assisted Navigation System for Pedicle Screw Placement

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Cited by 8 •

2020

This article presents a standardized surgical technique for robotic-assisted pedicle screw placement by using robotic-assisted navigational systems. We present a step-by-step protocol and describe the workflow and precautions of this procedure.

Insect-controlled Robot: A Mobile Robot Platform to Evaluate the Odor-tracking Capability of an Insect

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Cited by 18 •

2016

The capability to localize an odor source is necessary for insect survival and is expected to be applicable to artificial odor-tracking. The insect-controlled robot is driven by an actual silkmoth and enables us to evaluate the odor-tracking capability of insects through a robotic platform.

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JoVE Journal - Medicine
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Quantitative Autonomic Testing

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Cited by 179 •

2011

Standardized, comprehensive and fully quantitative testing of autonomic functions is described. The autonomic tests consist of evaluation of all three major autonomic domains including cardiovagal, adrenergic and sudomotor. The severity and distribution of dysautonomia is quantitated using Composite Autonomic Severity Scores.

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