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metadata
library_name: hivex
original_train_name: DroneBasedReforestation_difficulty_9_task_6_run_id_2_train
tags:
  - hivex
  - hivex-drone-based-reforestation
  - reinforcement-learning
  - multi-agent-reinforcement-learning
model-index:
  - name: hivex-DBR-PPO-baseline-task-6-difficulty-9
    results:
      - task:
          type: sub-task
          name: explore_furthest_distance_and_return_to_base
          task-id: 6
          difficulty-id: 9
        dataset:
          name: hivex-drone-based-reforestation
          type: hivex-drone-based-reforestation
        metrics:
          - type: furthest_distance_explored
            value: 145.77357864379883 +/- 13.077080261858926
            name: Furthest Distance Explored
            verified: true
          - type: out_of_energy_count
            value: 0.5948174804449081 +/- 0.06757295469824405
            name: Out of Energy Count
            verified: true
          - type: recharge_energy_count
            value: 109.52864997416735 +/- 98.14010026461244
            name: Recharge Energy Count
            verified: true
          - type: cumulative_reward
            value: 6.161528750956059 +/- 5.63553250345049
            name: Cumulative Reward
            verified: true

This model serves as the baseline for the Drone-Based Reforestation environment, trained and tested on task 6 with difficulty 9 using the Proximal Policy Optimization (PPO) algorithm.

Environment: Drone-Based Reforestation
Task: 6
Difficulty: 9
Algorithm: PPO
Episode Length: 2000
Training max_steps: 1200000
Testing max_steps: 300000

Train & Test Scripts
Download the Environment