Python強化練習之Tensorflow2 opp算法實現月球登陸器
概述
從今天開始我們會開啟一個新的篇章, 帶領大傢來一起學習 (卷進) 強化學習 (Reinforcement Learning). 強化學習基於環境, 分析數據采取行動, 從而最大化未來收益.
強化學習算法種類
On-policy vs Off-policy:
- On-policy: 訓練數據由當前 agent 不斷與環境交互得到
- Off-policy: 訓練的 agent 和與環境交互的 agent 不是同一個 agent, 即別人與環境交互為我提供訓練數據
PPO 算法
PPO (Proximal Policy Optimization) 即近端策略優化. PPO 是一種 on-policy 算法, 通過實現小批量更新, 解決瞭訓練過程中新舊策略的變化差異過大導致不易學習的問題.
Actor-Critic 算法
Actor-Critic 算法共分為兩部分. 第一部分為策略函數 Actor, 負責生成動作並與環境交互; 第二部分為價值函數, 負責評估 Actor 的表現.
Gym
Gym 是一個強化學習會經常用到的包. Gym 裡收集瞭很多遊戲的環境. 下面我們就會用 LunarLander-v2 來實現一個自動版的 “阿波羅登月”.
安裝:
pip install gym
如果遇到報錯:
AttributeError: module 'gym.envs.box2d' has no attribute 'LunarLander'
解決辦法:
pip install gym[box2d]
LunarLander-v2
LunarLander-v2 是一個月球登陸器. 著陸平臺位於坐標 (0, 0). 坐標是狀態向量的前兩個數字, 從屏幕頂部移動到著陸臺和零速度的獎勵大約是 100 到 140分. 如果著陸器墜毀或停止, 則回合結束, 獲得額外的 -100 或 +100點. 每腳接地為 +10, 點火主機每幀 -0.3分, 正解為200分.
啟動登陸器
代碼:
import gym # 創建環境 env = gym.make("LunarLander-v2") # 重置環境 env.reset() # 啟動 for i in range(180): # 渲染環境 env.render() # 隨機移動 observation, reward, done, info = env.step(env.action_space.sample()) if i % 10 == 0: # 調試輸出 print("觀察:", observation) print("得分:", reward)
輸出結果:
觀察: [ 0.00861025 1.4061487 0.42930993 -0.11858992 -0.00789343 -0.05729095
0. 0. ]
得分: 0.4097546298543773
觀察: [ 0.04917412 1.3876126 0.41002613 -0.13066985 -0.06578191 -0.12604967
0. 0. ]
得分: -1.0858669952763478
觀察: [ 0.08917055 1.3429415 0.43598312 -0.2890789 -0.17471936 -0.23913136
0. 0. ]
得分: -2.9339827504803666
觀察: [ 0.1326253 1.2450166 0.44708318 -0.5567949 -0.32039645 -0.28250334
0. 0. ]
得分: -2.2779730990326357
觀察: [ 0.18323365 1.1110108 0.615291 -0.61922276 -0.43743232 -0.2921057
0. 0. ]
得分: -3.107298313736037
觀察: [ 0.24544087 0.94960684 0.66677517 -0.7835077 -0.5929364 -0.2968613
0. 0. ]
得分: -0.5472611013563438
觀察: [ 0.3148238 0.75122666 0.7238519 -0.98458177 -0.72915816 -0.26130882
0. 0. ]
得分: -2.5665300894414416
觀察: [ 0.38628978 0.49828076 0.74157137 -1.2624744 -0.85754734 -0.37227553
0. 0. ]
得分: -3.2562193227533087
觀察: [ 0.46820658 0.18855602 0.92624503 -1.4677961 -1.08614 -0.4508995
0. 0. ]
得分: -4.017106927961208
觀察: [ 0.57930076 -0.09440845 1.4345247 -0.693939 -2.0783656 -5.4039164
1. 0. ]
得分: -100
觀察: [ 0.7383894 -0.08930686 1.4662493 -0.13461255 -3.653495 -3.109081
0. 0. ]
得分: -100
觀察: [ 0.859124 -0.08471288 0.9377837 0.21408719 -3.8998525 0.10151418
0. 0. ]
得分: -100
觀察: [ 9.3801367e-01 -4.6761338e-02 6.5999150e-01 1.4583524e-01
-3.9281998e+00 -4.7179851e-06 0.0000000e+00 1.0000000e+00]
得分: -100
觀察: [ 0.9879366 -0.04012476 0.33624884 0.08859511 -4.253908 -1.0233303
0. 0. ]
得分: -100
觀察: [ 1.0056045 -0.03840658 0.0733737 0.01812508 -4.6796274 -0.6103991
0. 0. ]
得分: -100
觀察: [ 1.0112988 -0.03921754 0.07890484 -0.00624387 -4.845023 -0.17111658
0. 0. ]
得分: -100
觀察: [ 1.0234139 -0.04488504 0.15701209 -0.0331554 -4.829875 0.07602684
0. 0. ]
得分: -100
觀察: [ 1.0306002e+00 -4.8987642e-02 -1.1189224e-02 8.7506004e-04
-4.8712435e+00 -1.5446089e-01 0.0000000e+00 0.0000000e+00]
得分: -100
PPO 算法實現月球登錄器
PPO
import numpy as np import tensorflow as tf from tensorflow_probability.python.distributions import Categorical class Memory: def __init__(self): """初始化""" self.actions = [] # 行動(共4種) self.states = [] # 狀態, 由8個數字組成 self.logprobs = [] # 概率 self.rewards = [] # 獎勵 self.is_terminals = [] # 遊戲是否結束 def clear_memory(self): """清除memory""" del self.actions[:] del self.states[:] del self.logprobs[:] del self.rewards[:] del self.is_terminals[:] class ActorCritic(tf.keras.Model): def __init__(self, state_dim, action_dim, n_latent_var): super(ActorCritic, self).__init__() # 行動 self.action_layer = tf.keras.Sequential([ # [b, 8] => [b, 64] tf.keras.layers.Dense(n_latent_var, activation="tanh"), # [b, 64] => [b, 64] tf.keras.layers.Dense(n_latent_var, activation="tanh"), # [b, 64] => [b, 4] tf.keras.layers.Dense(action_dim, activation="softmax") ]) # 評判 self.value_layer = tf.keras.Sequential([ # [b, 8] => [b, 64] tf.keras.layers.Dense(n_latent_var, activation="tanh"), # [b, 64] => [b, 64] tf.keras.layers.Dense(n_latent_var, activation="tanh"), # [b, 64] => [b, 1] tf.keras.layers.Dense(1) ]) def forward(self): """前向傳播, 由act替代""" raise NotImplementedError def build(self, input_shape): # No weight to train. super(ActorCritic, self).build(input_shape) # Be sure to call this at the end def act(self, state, memory): """計算行動""" # 計算4個方向概率 action_probs = self.action_layer(state) # 通過最大概率計算最終行動方向 dist = Categorical(action_probs) action = dist.sample() # 存入memory memory.states.append(state) memory.actions.append(action) memory.logprobs.append(dist.log_prob(action)) # 返回行動 return action.numpy()[0] def evaluate(self, state, action): """ 評估 :param state: 狀態, 2000個一組, 形狀為 [2000, 8] :param action: 行動, 2000個一組, 形狀為 [2000] :return: """ # 計算行動概率 action_probs = self.action_layer(state) dist = Categorical(action_probs) # 轉換成類別分佈 # 計算概率密度, log(概率) action_logprobs = dist.log_prob(action) # 計算熵 dist_entropy = dist.entropy() dist_entropy = tf.squeeze(dist_entropy) # 評判 state_value = self.value_layer(state) state_value = tf.squeeze(state_value) # [2000, 1] => [2000] # 返回行動概率密度, 評判值, 行動概率熵 return action_logprobs, state_value, dist_entropy class PPO: def __init__(self, state_dim, action_dim, n_latent_var, lr, betas, gamma, K_epochs, eps_clip): self.lr = lr # 學習率 self.betas = betas # betas self.gamma = gamma # gamma self.eps_clip = eps_clip # 裁剪, 限制值范圍 self.K_epochs = K_epochs # 迭代次數 # 初始化policy self.policy = ActorCritic(state_dim, action_dim, n_latent_var) self.policy_old = ActorCritic(state_dim, action_dim, n_latent_var) self.optimizer = tf.keras.optimizers.Adam(lr=lr) # 優化器 self.MseLoss = tf.keras.losses.MeanSquaredError() # 損失函數 def update(self, memory): """更新梯度""" # 蒙特卡羅預測狀態回報 rewards = [] discounted_reward = 0 for reward, is_terminal in zip(reversed(memory.rewards), reversed(memory.is_terminals)): # 回合結束 if is_terminal: discounted_reward = 0 # 更新削減獎勵(當前狀態獎勵 + 0.99*上一狀態獎勵 discounted_reward = reward + (self.gamma * discounted_reward) # 首插入 rewards.insert(0, discounted_reward) # 標準化獎勵 rewards = tf.convert_to_tensor(rewards, dtype=tf.float32) rewards = (rewards - np.mean(rewards)) / (np.std(rewards) + 1e-5) # 張量轉換 old_states = tf.stack(memory.states) old_actions = tf.stack(memory.actions) old_logprobs = tf.stack(memory.logprobs) # 迭代優化 K 次: for _ in range(self.K_epochs): with tf.GradientTape() as tape: # 評估 logprobs, state_values, dist_entropy = self.policy.evaluate(old_states, old_actions) # 計算ratios ratios = tf.exp(logprobs - old_logprobs) ratios = tf.squeeze(ratios) # 計算損失 advantages = rewards - state_values surr1 = ratios * advantages surr2 = tf.clip_by_value(ratios, 1 - self.eps_clip, 1 + self.eps_clip) * advantages loss = -tf.minimum(surr1, surr2) + 0.5 * self.MseLoss(state_values, rewards) - 0.01 * dist_entropy # 更新梯度 grads = tape.gradient(loss, self.policy.action_layer.trainable_variables + self.policy.value_layer.trainable_variables) self.optimizer.apply_gradients(zip(grads, self.policy.action_layer.trainable_variables + self.policy.value_layer.trainable_variables)) # 將新的權重賦值給舊policy self.policy_old.action_layer = self.policy.action_layer self.policy_old.value_layer = self.policy.value_layer
main
import gym import tensorflow as tf from PPO import Memory, PPO ############## 超參數 ############## env_name = "LunarLander-v2" # 遊戲名字 env = gym.make(env_name) state_dim = 8 # 狀態維度 action_dim = 4 # 行動維度 render = False # 可視化 solved_reward = 230 # 停止循環條件 (獎勵 > 230) log_interval = 20 # print avg reward in the interval max_episodes = 50000 # 最大迭代次數 max_timesteps = 300 # 最大單次遊戲步數 n_latent_var = 64 # 全連接隱層維度 update_timestep = 2000 # 每2000步policy更新一次 lr = 0.002 # 學習率 betas = (0.9, 0.999) # betas gamma = 0.99 # gamma K_epochs = 4 # policy迭代更新次數 eps_clip = 0.2 # PPO 限幅 ############################################# def main(): # 實例化 memory = Memory() ppo = PPO(state_dim, action_dim, n_latent_var, lr, betas, gamma, K_epochs, eps_clip) # 存放 total_reward = 0 total_length = 0 timestep = 0 # 訓練 for i_episode in range(1, max_episodes + 1): # 環境初始化 state = env.reset() # 初始化(重新玩) # 轉換成tensor state = tf.convert_to_tensor(state) state = tf.reshape(state, [1, 8]) # 迭代 for t in range(max_timesteps): timestep += 1 # 用舊policy得到行動 action = ppo.policy_old.act(state, memory) # 行動 state, reward, done, _ = env.step(action) # 得到(新的狀態,獎勵,是否終止,額外的調試信息) # 轉換成tensor state = tf.convert_to_tensor(state) state = tf.reshape(state, [1, 8]) # 更新memory(獎勵/遊戲是否結束) memory.rewards.append(reward) memory.is_terminals.append(done) # 更新梯度 if timestep % update_timestep == 0: ppo.update(memory) # memory清零 memory.clear_memory() # 累計步數清零 timestep = 0 # 累加 total_reward += reward # 可視化 if render: env.render() # 如果遊戲結束, 退出 if done: break # 遊戲步長 total_length += t # 如果達到要求(230分), 退出循環 if total_reward >= (log_interval * solved_reward): print("########## Solved! ##########") # 保存模型 tf.keras.models.save_model(ppo.policy.action_layer, r"\model\action") tf.keras.models.save_model(ppo.policy.value_layer, r"\model\value") # 退出循環 break # 輸出log, 每20次迭代 if i_episode % log_interval == 0: # 求20次迭代平均時長/收益 avg_length = int(total_length / log_interval) running_reward = int(total_reward / log_interval) # 調試輸出 print('Episode {} \t avg length: {} \t average_reward: {}'.format(i_episode, avg_length, running_reward)) # 清零 total_reward = 0 total_length = 0 if __name__ == '__main__': main()
輸出結果
Episode 20 avg length: 93 reward: -243
Episode 40 avg length: 92 reward: -172
Episode 60 avg length: 79 reward: -192
Episode 80 avg length: 85 reward: -164
Episode 100 avg length: 90 reward: -179
Episode 120 avg length: 100 reward: -201
Episode 140 avg length: 91 reward: -175
Episode 160 avg length: 101 reward: -141
Episode 180 avg length: 86 reward: -153
Episode 200 avg length: 93 reward: -189
Episode 220 avg length: 96 reward: -221
Episode 240 avg length: 105 reward: -140
Episode 260 avg length: 94 reward: -121
Episode 280 avg length: 91 reward: -131
Episode 300 avg length: 91 reward: -122
Episode 320 avg length: 90 reward: -113
Episode 340 avg length: 100 reward: -110
Episode 360 avg length: 110 reward: -92
Episode 380 avg length: 110 reward: -75
Episode 400 avg length: 119 reward: -76
Episode 420 avg length: 162 reward: -77
Episode 440 avg length: 194 reward: -91
Episode 460 avg length: 144 reward: -28
Episode 480 avg length: 192 reward: -8
Episode 500 avg length: 244 reward: -25
Episode 520 avg length: 239 reward: -1
Episode 540 avg length: 269 reward: 21
Episode 560 avg length: 289 reward: 27
Episode 580 avg length: 270 reward: 65
Episode 600 avg length: 264 reward: 86
Episode 620 avg length: 256 reward: 66
Episode 640 avg length: 278 reward: 75
Episode 660 avg length: 235 reward: 11
Episode 680 avg length: 244 reward: 84
Episode 700 avg length: 253 reward: 73
Episode 720 avg length: 292 reward: 63
Episode 740 avg length: 293 reward: 104
Episode 760 avg length: 279 reward: 109
Episode 780 avg length: 246 reward: 86
Episode 800 avg length: 260 reward: 124
Episode 820 avg length: 276 reward: 131
Episode 840 avg length: 269 reward: 121
Episode 860 avg length: 194 reward: 67
Episode 880 avg length: 241 reward: 94
Episode 900 avg length: 259 reward: 98
Episode 920 avg length: 211 reward: 83
Episode 940 avg length: 260 reward: 105
Episode 960 avg length: 194 reward: 65
Episode 980 avg length: 202 reward: 68
Episode 1000 avg length: 243 reward: 79
Episode 1020 avg length: 260 reward: 66
Episode 1040 avg length: 289 reward: 117
Episode 1060 avg length: 252 reward: 94
Episode 1080 avg length: 262 reward: 114
Episode 1100 avg length: 272 reward: 112
Episode 1120 avg length: 263 reward: 97
Episode 1140 avg length: 256 reward: 93
Episode 1160 avg length: 274 reward: 120
Episode 1180 avg length: 256 reward: 117
Episode 1200 avg length: 241 reward: 105
Episode 1220 avg length: 238 reward: 103
Episode 1240 avg length: 267 reward: 121
Episode 1260 avg length: 283 reward: 124
Episode 1280 avg length: 299 reward: 149
Episode 1300 avg length: 281 reward: 126
Episode 1320 avg length: 266 reward: 102
Episode 1340 avg length: 282 reward: 128
Episode 1360 avg length: 275 reward: 114
Episode 1380 avg length: 285 reward: 105
Episode 1400 avg length: 294 reward: 123
Episode 1420 avg length: 293 reward: 132
Episode 1440 avg length: 248 reward: 85
Episode 1460 avg length: 281 reward: 115
Episode 1480 avg length: 291 reward: 152
Episode 1500 avg length: 279 reward: 130
Episode 1520 avg length: 267 reward: 103
Episode 1540 avg length: 270 reward: 137
Episode 1560 avg length: 269 reward: 120
Episode 1580 avg length: 260 reward: 113
Episode 1600 avg length: 282 reward: 147
Episode 1620 avg length: 259 reward: 125
Episode 1640 avg length: 240 reward: 90
Episode 1660 avg length: 284 reward: 125
Episode 1680 avg length: 282 reward: 123
Episode 1700 avg length: 274 reward: 123
Episode 1720 avg length: 273 reward: 130
Episode 1740 avg length: 260 reward: 117
Episode 1760 avg length: 243 reward: 106
Episode 1780 avg length: 241 reward: 90
Episode 1800 avg length: 290 reward: 144
Episode 1820 avg length: 258 reward: 131
Episode 1840 avg length: 283 reward: 142
Episode 1860 avg length: 262 reward: 100
Episode 1880 avg length: 273 reward: 132
Episode 1900 avg length: 255 reward: 92
Episode 1920 avg length: 251 reward: 117
Episode 1940 avg length: 220 reward: 103
Episode 1960 avg length: 221 reward: 111
Episode 1980 avg length: 205 reward: 83
Episode 2000 avg length: 227 reward: 102
Episode 2020 avg length: 251 reward: 123
Episode 2040 avg length: 227 reward: 100
Episode 2060 avg length: 255 reward: 135
Episode 2080 avg length: 273 reward: 136
Episode 2100 avg length: 256 reward: 126
Episode 2120 avg length: 273 reward: 141
Episode 2140 avg length: 280 reward: 109
Episode 2160 avg length: 266 reward: 112
Episode 2180 avg length: 249 reward: 88
Episode 2200 avg length: 247 reward: 119
Episode 2220 avg length: 270 reward: 143
Episode 2240 avg length: 257 reward: 65
Episode 2260 avg length: 250 reward: 30
Episode 2280 avg length: 261 reward: 112
Episode 2300 avg length: 270 reward: 139
Episode 2320 avg length: 275 reward: 128
Episode 2340 avg length: 290 reward: 149
Episode 2360 avg length: 269 reward: 139
Episode 2380 avg length: 272 reward: 137
Episode 2400 avg length: 232 reward: 105
Episode 2420 avg length: 242 reward: 127
Episode 2440 avg length: 241 reward: 134
Episode 2460 avg length: 249 reward: 113
Episode 2480 avg length: 287 reward: 154
Episode 2500 avg length: 289 reward: 149
Episode 2520 avg length: 258 reward: 129
Episode 2540 avg length: 250 reward: 101
Episode 2560 avg length: 287 reward: 158
Episode 2580 avg length: 271 reward: 145
Episode 2600 avg length: 253 reward: 120
Episode 2620 avg length: 255 reward: 127
Episode 2640 avg length: 254 reward: 122
Episode 2660 avg length: 238 reward: 123
Episode 2680 avg length: 243 reward: 115
Episode 2700 avg length: 241 reward: 93
Episode 2720 avg length: 232 reward: 90
Episode 2740 avg length: 215 reward: 83
Episode 2760 avg length: 241 reward: 112
Episode 2780 avg length: 273 reward: 129
Episode 2800 avg length: 269 reward: 133
Episode 2820 avg length: 246 reward: 91
Episode 2840 avg length: 261 reward: 130
Episode 2860 avg length: 261 reward: 136
Episode 2880 avg length: 289 reward: 128
Episode 2900 avg length: 271 reward: 131
Episode 2920 avg length: 277 reward: 145
Episode 2940 avg length: 251 reward: 117
Episode 2960 avg length: 253 reward: 120
Episode 2980 avg length: 270 reward: 133
Episode 3000 avg length: 240 reward: 85
Episode 3020 avg length: 284 reward: 141
Episode 3040 avg length: 255 reward: 117
Episode 3060 avg length: 299 reward: 134
Episode 3080 avg length: 263 reward: 122
Episode 3100 avg length: 259 reward: 126
Episode 3120 avg length: 270 reward: 125
Episode 3140 avg length: 299 reward: 150
Episode 3160 avg length: 256 reward: 116
Episode 3180 avg length: 264 reward: 124
Episode 3200 avg length: 271 reward: 128
Episode 3220 avg length: 259 reward: 122
Episode 3240 avg length: 261 reward: 125
Episode 3260 avg length: 271 reward: 129
Episode 3280 avg length: 242 reward: 126
Episode 3300 avg length: 218 reward: 93
Episode 3320 avg length: 230 reward: 116
Episode 3340 avg length: 223 reward: 109
Episode 3360 avg length: 249 reward: 122
Episode 3380 avg length: 224 reward: 104
Episode 3400 avg length: 261 reward: 131
Episode 3420 avg length: 280 reward: 140
Episode 3440 avg length: 264 reward: 125
Episode 3460 avg length: 247 reward: 105
Episode 3480 avg length: 276 reward: 141
Episode 3500 avg length: 282 reward: 149
Episode 3520 avg length: 282 reward: 141
Episode 3540 avg length: 290 reward: 152
Episode 3560 avg length: 282 reward: 141
Episode 3580 avg length: 291 reward: 151
Episode 3600 avg length: 289 reward: 166
Episode 3620 avg length: 266 reward: 142
Episode 3640 avg length: 277 reward: 91
Episode 3660 avg length: 272 reward: 114
Episode 3680 avg length: 281 reward: 159
Episode 3700 avg length: 287 reward: 160
Episode 3720 avg length: 254 reward: 78
Episode 3740 avg length: 296 reward: 174
Episode 3760 avg length: 267 reward: 124
Episode 3780 avg length: 273 reward: 148
Episode 3800 avg length: 275 reward: 147
Episode 3820 avg length: 276 reward: 145
Episode 3840 avg length: 283 reward: 151
Episode 3860 avg length: 275 reward: 142
Episode 3880 avg length: 290 reward: 142
Episode 3900 avg length: 290 reward: 154
Episode 3920 avg length: 283 reward: 141
Episode 3940 avg length: 273 reward: 145
Episode 3960 avg length: 290 reward: 161
Episode 3980 avg length: 268 reward: 145
Episode 4000 avg length: 270 reward: 142
Episode 4020 avg length: 283 reward: 156
Episode 4040 avg length: 283 reward: 149
Episode 4060 avg length: 299 reward: 172
Episode 4080 avg length: 292 reward: 158
Episode 4100 avg length: 274 reward: 143
Episode 4120 avg length: 299 reward: 163
Episode 4140 avg length: 290 reward: 153
Episode 4160 avg length: 299 reward: 165
Episode 4180 avg length: 290 reward: 160
Episode 4200 avg length: 299 reward: 157
Episode 4220 avg length: 299 reward: 171
Episode 4240 avg length: 271 reward: 148
Episode 4260 avg length: 265 reward: 139
Episode 4280 avg length: 258 reward: 137
Episode 4300 avg length: 280 reward: 137
Episode 4320 avg length: 262 reward: 133
Episode 4340 avg length: 255 reward: 110
Episode 4360 avg length: 275 reward: 134
Episode 4380 avg length: 282 reward: 154
Episode 4400 avg length: 264 reward: 128
Episode 4420 avg length: 299 reward: 150
Episode 4440 avg length: 275 reward: 151
Episode 4460 avg length: 257 reward: 116
Episode 4480 avg length: 256 reward: 104
Episode 4500 avg length: 263 reward: 134
Episode 4520 avg length: 299 reward: 164
Episode 4540 avg length: 265 reward: 137
Episode 4560 avg length: 265 reward: 147
Episode 4580 avg length: 283 reward: 138
Episode 4600 avg length: 299 reward: 152
Episode 4620 avg length: 281 reward: 154
Episode 4640 avg length: 289 reward: 161
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Episode 16280 avg length: 238 reward: 112
Episode 16300 avg length: 284 reward: 159
Episode 16320 avg length: 280 reward: 136
Episode 16340 avg length: 271 reward: 120
Episode 16360 avg length: 281 reward: 139
Episode 16380 avg length: 267 reward: 141
Episode 16400 avg length: 299 reward: 164
Episode 16420 avg length: 239 reward: 113
Episode 16440 avg length: 276 reward: 143
Episode 16460 avg length: 268 reward: 144
Episode 16480 avg length: 269 reward: 134
Episode 16500 avg length: 273 reward: 148
Episode 16520 avg length: 247 reward: 97
Episode 16540 avg length: 266 reward: 129
Episode 16560 avg length: 267 reward: 119
Episode 16580 avg length: 270 reward: 124
Episode 16600 avg length: 262 reward: 101
Episode 16620 avg length: 257 reward: 121
Episode 16640 avg length: 233 reward: 99
Episode 16660 avg length: 268 reward: 114
Episode 16680 avg length: 261 reward: 126
Episode 16700 avg length: 278 reward: 143
Episode 16720 avg length: 278 reward: 117
Episode 16740 avg length: 266 reward: 135
Episode 16760 avg length: 282 reward: 140
Episode 16780 avg length: 299 reward: 154
Episode 16800 avg length: 279 reward: 144
Episode 16820 avg length: 281 reward: 124
Episode 16840 avg length: 280 reward: 132
Episode 16860 avg length: 278 reward: 148
Episode 16880 avg length: 280 reward: 113
Episode 16900 avg length: 268 reward: 133
Episode 16920 avg length: 291 reward: 147
Episode 16940 avg length: 274 reward: 150
Episode 16960 avg length: 281 reward: 137
Episode 16980 avg length: 251 reward: 126
Episode 17000 avg length: 261 reward: 135
Episode 17020 avg length: 267 reward: 105
Episode 17040 avg length: 274 reward: 176
Episode 17060 avg length: 262 reward: 131
Episode 17080 avg length: 186 reward: 184
Episode 17100 avg length: 225 reward: 150
Episode 17120 avg length: 201 reward: 218
Episode 17140 avg length: 211 reward: 220
Episode 17160 avg length: 221 reward: 218
Episode 17180 avg length: 232 reward: 210
Episode 17200 avg length: 216 reward: 220
Episode 17220 avg length: 226 reward: 203
Episode 17240 avg length: 198 reward: 170
Episode 17260 avg length: 196 reward: 222
Episode 17280 avg length: 214 reward: 196
Episode 17300 avg length: 229 reward: 205
Episode 17320 avg length: 183 reward: 192
Episode 17340 avg length: 212 reward: 186
Episode 17360 avg length: 192 reward: 164
########## Solved! ##########
到此這篇關於Python強化練習之Tensorflow2 opp算法實現月球登陸器的文章就介紹到這瞭,更多相關Python Tensorflow2 OPP內容請搜索WalkonNet以前的文章或繼續瀏覽下面的相關文章希望大傢以後多多支持WalkonNet!
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