Questions tagged [openai-gym]

OpenAI Gym is a platform for reinforcement learning research that aims to provide a general-intelligence benchmark with a wide variety of environments.

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Why is the following implementation of an RL algorithm not learning? [closed]

I am trying to implement the REINFORCE algorithm based on a skeleton code provided for the open AI gym environment - Lunar Lander. What is happening: The output of my implementation shows the Lander ...
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How to build a custom environment for deep reinforcement learning with openAI gym and python with multiple variables in the Box space

I am trying to create my own custom environment for deep reinforcement learning using openAI gym. My code is based off of this sample code I found: https://github.com/nicknochnack/OpenAI-Reinforcement-...
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What does the upper bound of the observation space in OpenAI Gym do?

Hello Reinforcement learning community. I am currently working on a modified gym environment which uses a multi-discrete observation space. To define this, I use self.observation_space= spaces....
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Custom Environment in OpenAI Gym

At different states in a MDP, the actions that are executable may be different. Think about Tic Tac Toe, the observation space should be the configuration on the game board. When we are at a certain ...
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Understanding the Fetch example from Openai Gym

I am trying to understand this example (see, link) where an agent is trained to move the robot arm to a given point. By reviewing the code for this problem: import numpy as np from gym.envs.robotics ...
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Open-AI Gym Hopper Observations, Actions, Rewards

Can someone explain to me how the reward system for Hopper environment works and which exactly are the observations and actions' names and what they describe. If you could share some documentation or ...
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Is it possible to resolve TypeError: argument 'input' (position 1) must be Tensor error without retraining the model?

I have made a model in PyTorch for use in an openAI Gym environment. I have made it in the following way: class Policy(nn.Module): def __init__(self, s_size=8, h_size=16, a_size=4): super(...
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How can I change the Action Std Deviation in SpinningUp?

I am just getting started with RL, and training a policy using PPO of SpinningUp. The basic commands are: from spinup import ppo_tf1 as ppo env_fn = lambda : gym.make(MyEnvName) ac_kwargs = dict(...
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How can I install Gym even. on Anaconda(Mac OS)

When I try to install Gym I take "ERROR: File "setup.py" not found. Directory cannot be installed in editable mode" error I wrote these codes and they doesn't exits. pip install ...
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is it possible to save video for safety gym simulation?

I am trying to record the video of the agent acting in a safety gym environment using the wrappers.Monitor available for gym but I am able to save only the json file. env = gym.make('Safexp-PointGoal1-...
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Register gym environment that is defined inside a jupyter notebook cell

I'm trying to register an environment that has been defined inside a cell of a jupyter notebook running on colab. My problem is concerned with the entry_point. Some module has to be specified before ...
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RL PPO action space clipping in openai's spinningup

I'm currently using "spinningup" which was made by openai. In spinningup, PPO and other RL algorithms are implemented. However, only for DDPG, SAC, and TD3 has variable named "...
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ModuleNotFoundError while creating gym installed from github

I was trying out to create a custom gym for Kaggle hungry geese competition. I created one and committed here. I installed it with command: pip install git+https://github.com/Mahesha999/gym-...
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How do I get Target Q-values in Bipedalwalker-v3 in openai-gym, reinforcement learning?

I am new to reinforcement learning and I was trying to solve the BipedalWalker-v3 using Deep Q learning. However I found out that the env.action_space.sample() = numpy array with 4 elements and I am ...
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ValueError: Error when checking input: expected dense_input to have 2 dimensions, but got array with shape (1, 1, 15)

I am trying to make a custom Gym Environment so that I can use it in a Keras Network. But there is a problem that is happening to me when I try to fit de neural network. ValueError: Error when ...
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[Rllib]How to integrate customized gaming http environment into Rllib for multiple environments training

Hi I package a gaming environment into HTTP API (on specific port e.g. 33333) and integrate it into Gym interface(e.g. in the step function I call specific url for gaming info). I can run this gaming ...
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Actor-Critic Model: How to mach the sizes between model and the action batch

I am new to PyTorch and Reinforcement Learning and because of that sorry if this message will sound stupid or the solution too simple but I have no idea how to fix this problem and I've spent already ...
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q table with gym (using box observation space)

I'm trying to run a q-learning algorithm with this observation space: self.observation_space = spaces.Box(low=np.array([0, 0, 0, 0, 0, 0, 0, 0, 0, 0]), high=np.array([1, 1, 1, 1, 1, 1, 1, 1, 1, 1]), ...
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How to save Gamestate Objects in python?

We are making a reinforcement learning algorithm for our class. And in this progress we want to make a savestate for a nes-game which is made using the gym-retro package. We have tried using pickle to ...
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TypeError: 'Box' object is not iterable

I have added the observation space in the following way: self.observation_space = spaces.Dict({"radial_coordinates": spaces.Box(low=0, high=1, shape=(100,)), ...
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ImportError: DLL load failed while importing _multiarray_umath: The specified module could not be found

I am creating a new environment using anaconda in windows with some packages conda create -n myenv conda activate myenv conda install python conda install cvxopt conda install gym conda install ...
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How to create Action space in GYM with range from 0 to 10 with 0.5 difference between the consecutive actions?

I intend to create Action space in GYM with range from 0 to 10 I want action space like [0 0.5 1 ..... 10]
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Deployment of a DeepRL model trained on a custom OpenAI-GYM environment

I developed a custom OpenAI-GYM environment and trained a CDQN model on it, now I am trying to figure out how can I test it not using my gym environment but in production (using real world ...
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Why inherit OpenAI base gym class for a custom Environment

My question is pretty simple. Why at all do we need to inherit the base openAi env class while writing a custom environment? What advantage does it offer? I can as well write my own functions and make ...
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Headless servers Opengym AI rendering Error while using ray

While using ray for distributed computation, all the servers are headless (no display). Therefore, using "xvfb-run -s “-screen 0 1400x900x24” to create screen. Getting error pyglet.canvas.xlib....
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Installation of gym on Mac issue

When I am running a command pip install gym I am getting error as : "ERROR: Cannot uninstall 'numpy'. It is a distutils installed project and thus we cannot accurately determine which files ...
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ERROR: VideoRecorder encoder exited with status 1

getting this error when trying to record a video from Open AI gym. I have trained the humanoid and all the modeling seems to be ok. Just won't record video and gives me this error. I am using ...
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KeyError: 'observation' while trying out multi agent reinforcement learning with OpenAI stable-baselines3 and gym

I was trying to use hungry-geese gym here to train PPO: from kaggle_environments import make from stable_baselines3 import PPO directions = {0:'EAST', 1:'NORTH', 2:'WEST', 3:'SOUTH'} loaded_model = ...
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Understanding multi agent learning in OpenAI gym and stable-baselines

I was trying out developing multiagent reinforcement learning model using OpenAI stable baselines and gym as explained in this article. I am confused about how do we specify opponent agents. It seems ...
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In mujoco Hopper-v2 Environment what are the observations' names and actions' names and what they represent

I am asking here because I didn't receive feedback in openai/gym Github page. In mujoco openai-gym environments such as Hopper-v2 what are the observations' names and actions' names . (If you can help ...
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Multiple-Actions in one step, Reinforcement learning

I am trying to write a custom openAI Gym environment in which the agent takes 2-actions in each step, one of which is a discrete action and the other is continuous one. I am using Ray RLLib and using ...
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How to use custom TF callbacks to print out the states of a tested openai gym environment?

Here is my function: scores = dqn.test(env, nb_episodes=1, visualize=False, verbose=1, callbacks=[CustomCallback()]) I copy pasted the custom callback class from https://www.tensorflow.org/guide/...
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How to use a trained RL model to make a prediction?

I would like to use my trained RL model for a discrete test prediction. This is how the model is built: model = Sequential() model.add(Dense(60, activation='relu', input_shape=states)) model.add(Dense(...
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How to take off objects from map when using Q-learning with OpenAI-Gym in Python

I'm trying to learn how to use Q-learning with OpenAI-Gym in Python, and I modified existing gym 'FrozenLake-v0' to make an example, where agent is going through the map of labirynth and picks up ...
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Deep reinforcement learning with multiple “continuous actions”

Below is a high level diagram of how my Agent should look like in order to be able to interact with a custom gym environment I made. States and actions The environment has three states [s1, s2, s3] ...
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Hyperparameter search for lunarlander continuous of openAI gym

I'm trying to solve the LunarLander continuous environment from open AI gym (Solving the LunarLanderContinuous-v2 means getting an average reward of 200 over 100 consecutive trials.) With best reward ...
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Define observation_space For custom gym environment

I am working on a problem that I want to implement as a reinforcement learning problem and integrate with OpenAI's Gym. The environment has 96 states. In each state we observe 3 elements [home_Loard, ...
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How exactly does DQN learn?

I created my custom environment in gym, which is a maze. I use a DQN model with BoltzmannQPolicy. It trains fine with the following variables: position of the agent distance from the endpoint ...
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Reward of Pong game - (OpenAI gym)

I know that the Pong Game initializes to new game when one side scores 20 points. By the way, the reward shows that it goes down below -20. Why is that so? One thing to expect is that after one side ...
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tensorflow 2.4.1 error while creating a model of deep reinforcement learning

after runing this code import gym from os.path import dirname import random from tensorflow.keras.layers import * from tensorflow.keras.models import * import tensorflow as tf import tensorflow.keras ...
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Numpy error in file “mtrand.pyx” while fitting a keras model

I am using: keras-rl2 : 1.0.4 tensorflow : 2.4.1 numpy : 1.19.5 gym 0.18.0 For the training of a DQN model for a reinforcement learning project. My action space contains 60 dicrete values: self....
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How to build a DQN that outputs 1 discrete and 1 continuous value as a pair?

I am building a DQN for an Open Gym environment. My observation space is only 1 discrete value but my actions are: self.action_space = (Discrete(3), Box(-100, 100, (1,))) ex: [1,56], [0,24], [2,-78].....
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Can a gym enviroment's observation space hold an image and other values at the same time?

So I have a generated maze let's say (for simplicity) it's a 10 by 10 sized maze represented in 200 by 200 RGB pixels. So I know that, if I want to have just the image then it would be Box(0.0, 255.0, ...
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Why are my dimensions our of range when trying to extract QValues for next_states?

I have defined a class QValues with a static method .get_next() in order to extract the q_values of the next states. However, when I call .get_next(), I receive an error saying that my dimensions are ...
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Using gym.spaces.Tuple with float* & int*

when discovering gym.spaces.Tuple, I was very pleased by the perspective of observation spaces mixed of continuous & discrete values. However, all I read about the tf.keras.layers.Add() ...
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Python 3.x how to integrate keras-rl2 into a custom enviroment?

I want to pass input values for the agent and then get the output from it just as I do with NEAT. I actually want to compare NEAT with DQNAgent provided by keras-rl2 and I have the game in pygame. How ...
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“Cannot re-register id” using python class inheritance for environments

Inspired by gym-pybullet-drones github I would like to make one gym environment as a base (for physics and main structure) and define different rewards and dones as other environments over that base (...
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how i can get reward in bank heist atari game?

I'm struggling a bit with why my agent is not getting any rewards in the Atari game "bank heist". After each bank robbery when I render the environment I monitor the received award but when ...
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DDQN not training on breakout

I'm trying to get Breakout going based on a implemented version of Double Deep Q Network. My problem is that I don't see any improvement even after 6000 episodes. At first sight I also don't see any ...
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Reinforcement Learning - PacMan runs for only one episode

I'm trying to train an agent based on pacman but have the problem that it only runs for one episode. Since one episode comprises of three lives, I added the variable dead to check if the episode has ...

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