Unity 机器学习代理工具包 (ML-Agents) 是一个开源项目,它使游戏和模拟能够作为训练智能代理的环境。
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behaviors:
Match3VectorObs:
trainer_type: ppo
hyperparameters:
batch_size: 64
buffer_size: 12000
learning_rate: 0.0003
beta: 0.001
epsilon: 0.2
lambd: 0.99
num_epoch: 3
learning_rate_schedule: constant
network_settings:
normalize: true
hidden_units: 128
num_layers: 2
vis_encode_type: match3
reward_signals:
extrinsic:
gamma: 0.99
strength: 1.0
keep_checkpoints: 5
max_steps: 5000000
time_horizon: 1000
summary_freq: 10000
threaded: true
Match3VisualObs:
trainer_type: ppo
hyperparameters:
batch_size: 64
buffer_size: 12000
learning_rate: 0.0003
beta: 0.001
epsilon: 0.2
lambd: 0.99
num_epoch: 3
learning_rate_schedule: constant
network_settings:
normalize: true
hidden_units: 128
num_layers: 2
vis_encode_type: match3
reward_signals:
extrinsic:
gamma: 0.99
strength: 1.0
keep_checkpoints: 5
max_steps: 5000000
time_horizon: 1000
summary_freq: 10000
threaded: true
Match3SimpleHeuristic:
# Settings can be very simple since we don't care about actually training the model
trainer_type: ppo
hyperparameters:
batch_size: 64
buffer_size: 128
network_settings:
hidden_units: 4
num_layers: 1
max_steps: 5000000
summary_freq: 10000
threaded: true
Match3GreedyHeuristic:
# Settings can be very simple since we don't care about actually training the model
trainer_type: ppo
hyperparameters:
batch_size: 64
buffer_size: 128
network_settings:
hidden_units: 4
num_layers: 1
max_steps: 5000000
summary_freq: 10000
threaded: true