policy

Reinforcement-Learning-for-Smart-HVAC-Control-Using-CityLearn

HanSun103 · PyTorch

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Overview

Name
Reinforcement-Learning-for-Smart-HVAC-Control-Using-CityLearn
Author
HanSun103
Framework
PyTorch
License
MIT
Skill type
other
Evidence level
untested
Task description
A project that trains a Soft Actor-Critic (SAC) agent to control HVAC in a single-building CityLearn environment. We compare the RL agent against a simple Rule-Based Controller (RBC) baseline using CityLearn's built-in KPI framework.

Spaces

Action space
other · 0-dim · 0Hz
Observation space
  • type: other

Links

HuggingFace repo
null
Paper (arXiv)
null

Compatible robots

20

Compatible environments

0

No environments list Reinforcement-Learning-for-Smart-HVAC-Control-Using-CityLearn yet.

Datasets that reference this policy

0

No datasets reference Reinforcement-Learning-for-Smart-HVAC-Control-Using-CityLearn yet.