Open to research collaborations

Robots that perceive, reason, and act.

Nitesh Subedi is a Ph.D. researcher at Iowa State University advancing autonomous navigation, robot learning, and vision-language systems.

Selected work
2
Publications
10+
Projects
86.7%
Sim2Real Success
Robocon Campaigns
Nitesh Subedi

From mechanical systems to embodied intelligence.

I am a Ph.D. researcher in Mechanical Engineering at Iowa State University and a Graduate Research Assistant. My work spans reinforcement learning for robotic manipulation, robot navigation using LLMs and VLMs, and model predictive control.

Before starting my Ph.D., I worked as an R&D Engineer at NSDeVil on autonomous navigation for wheeled robots. My engineering background connects mechanical design, controls, perception, and learning.

Robot learning Autonomous navigation Vision-language models
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LCLA framework aligning sensory observations with an expert policy

LCLA: Language-Conditioned Latent Alignment

Aligns sensory observations to a latent representation of an expert policy. A lightweight adapter decouples perception from control, enabling expert behavior reuse across sensing modalities.

Robot exposing fruit in an occluded plant environment

Find the Fruit

A zero-shot sim2real reinforcement learning framework for occlusion-aware plant manipulation. By separating kinematic planning from compliant control, the system achieves an 86.7% success rate in exposing target fruits.

Research grounded in complete robotic systems.

Work moves from dynamics and control through perception and learning, with deployment as the final test.

Full MPC Navigation Stack

ROS 2 navigation using CasADi, IPOPT, Python, and NUMBA acceleration for optimal path generation and tracking.

Computer Vision

Object detection, tracking, person re-identification, and visual perception using PyTorch, YOLO, DeepSort, and OpenCV.

Mechanical Systems

Robot design, fabrication, embedded systems, controls, and four ABU Robocon campaigns.

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Building intelligent systems for difficult environments.

Interested in research collaborations across robotics, autonomous navigation, manipulation, and embodied AI.

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