#2628: committing to be reviewed

This commit is contained in:
Czar Echavez
2024-06-01 13:23:27 +01:00
parent 472040aa70
commit 3bad9aa51e
7 changed files with 12601 additions and 12 deletions

3
.gitignore vendored
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@@ -166,4 +166,5 @@ sandbox/
sandbox.ipynb
# benchmarking
**/benchmark_session/
**/benchmark/sessions/
**/benchmark/output/

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@@ -13,7 +13,7 @@ from primaite.config.load import data_manipulation_config_path
_LOGGER = primaite.getLogger(__name__)
_BENCHMARK_ROOT = Path(__file__).parent / "benchmark_session"
_BENCHMARK_ROOT = Path(__file__).parent
_RESULTS_ROOT: Final[Path] = _BENCHMARK_ROOT / "results"
_RESULTS_ROOT.mkdir(exist_ok=True, parents=True)
@@ -33,9 +33,15 @@ class BenchmarkSession:
num_episodes: int
"""Number of episodes to run the training session."""
num_steps: int
"""Number of steps to run the training session."""
batch_size: int
"""Number of steps for each episode."""
learning_rate: float
"""Learning rate for the model."""
start_time: datetime
"""Start time for the session."""
@@ -45,11 +51,15 @@ class BenchmarkSession:
session_metadata: Dict
"""Dict containing the metadata for the session - used to generate benchmark report."""
def __init__(self, gym_env: BenchmarkPrimaiteGymEnv, num_episodes: int, batch_size: int):
def __init__(
self, gym_env: BenchmarkPrimaiteGymEnv, num_episodes: int, num_steps: int, batch_size: int, learning_rate: float
):
"""Initialise the BenchmarkSession."""
self.gym_env = gym_env
self.num_episodes = num_episodes
self.num_steps = num_steps
self.batch_size = batch_size
self.learning_rate = learning_rate
def train(self):
"""Run the training session."""
@@ -59,10 +69,11 @@ class BenchmarkSession:
model = PPO(
policy="MlpPolicy",
env=self.gym_env,
batch_size=self.batch_size,
n_steps=self.batch_size * self.num_episodes,
learning_rate=self.learning_rate,
n_steps=self.num_steps * self.num_episodes,
batch_size=self.num_steps * self.num_episodes,
)
model.learn(total_timesteps=self.num_episodes * self.gym_env.game.options.max_episode_length)
model.learn(total_timesteps=self.num_episodes * self.num_steps)
# end timer for session
self.end_time = datetime.now()
@@ -108,14 +119,13 @@ class BenchmarkSession:
}
def _get_benchmark_primaite_environment(num_timesteps: int) -> BenchmarkPrimaiteGymEnv:
def _get_benchmark_primaite_environment() -> BenchmarkPrimaiteGymEnv:
"""
Create an instance of the BenchmarkPrimaiteGymEnv.
This environment will be used to train the agents on.
"""
env = BenchmarkPrimaiteGymEnv(env_config=data_manipulation_config_path())
env.game.options.max_episode_length = num_timesteps
return env
@@ -132,7 +142,11 @@ def _prepare_session_directory():
def run(
number_of_sessions: int = 3, num_episodes: int = 3, num_timesteps: int = 128, batch_size: int = 128
number_of_sessions: int = 10,
num_episodes: int = 1000,
num_timesteps: int = 128,
batch_size: int = 1280,
learning_rate: float = 3e-4,
) -> None: # 10 # 1000 # 256
"""Run the PrimAITE benchmark."""
benchmark_start_time = datetime.now()
@@ -145,8 +159,14 @@ def run(
for i in range(1, number_of_sessions + 1):
print(f"Starting Benchmark Session: {i}")
with _get_benchmark_primaite_environment(num_timesteps=num_timesteps) as gym_env:
session = BenchmarkSession(gym_env=gym_env, num_episodes=num_episodes, batch_size=batch_size)
with _get_benchmark_primaite_environment() as gym_env:
session = BenchmarkSession(
gym_env=gym_env,
num_episodes=num_episodes,
num_steps=num_timesteps,
batch_size=batch_size,
learning_rate=learning_rate,
)
session.train()
session_metadata_dict[i] = session.session_metadata

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@@ -0,0 +1,122 @@
\documentclass{article}%
\usepackage[T1]{fontenc}%
\usepackage[utf8]{inputenc}%
\usepackage{lmodern}%
\usepackage{textcomp}%
\usepackage{lastpage}%
\usepackage{geometry}%
\geometry{tmargin=2.5cm,rmargin=2.5cm,bmargin=2.5cm,lmargin=2.5cm}%
\usepackage{graphicx}%
%
\title{PrimAITE 3.0.0 Learning Benchmark}%
\author{PrimAITE Dev Team}%
\date{2024{-}06{-}01}%
%
\begin{document}%
\normalsize%
\maketitle%
\section{Introduction}%
\label{sec:Introduction}%
PrimAITE v3.0.0 was benchmarked automatically upon release. Learning rate metrics were captured to be referenced during system{-}level testing and user acceptance testing (UAT).%
\newline%
The benchmarking process consists of running 10 training session using the same config file. Each session trains an agent for 1000 episodes, with each episode consisting of 128 steps.%
\newline%
The mean reward per episode from each session is captured. This is then used to calculate a combined average reward per episode from the 10 individual sessions for smoothing. Finally, a 25{-}widow rolling average of the combined average reward per session is calculated for further smoothing.
%
\section{System Information}%
\label{sec:SystemInformation}%
\subsection{Python}%
\label{subsec:Python}%
\begin{tabular}{|l|l|}%
\hline%
\textbf{Version}&3.8.10 (tags/v3.8.10:3d8993a, May 3 2021, 11:48:03) {[}MSC v.1928 64 bit (AMD64){]}\\%
\hline%
\end{tabular}
%
\subsection{System}%
\label{subsec:System}%
\begin{tabular}{|l|l|}%
\hline%
\textbf{OS}&Windows\\%
\hline%
\textbf{OS Version}&10.0.19045\\%
\hline%
\textbf{Machine}&AMD64\\%
\hline%
\textbf{Processor}&Intel64 Family 6 Model 85 Stepping 4, GenuineIntel\\%
\hline%
\end{tabular}
%
\subsection{CPU}%
\label{subsec:CPU}%
\begin{tabular}{|l|l|}%
\hline%
\textbf{Physical Cores}&6\\%
\hline%
\textbf{Total Cores}&12\\%
\hline%
\textbf{Max Frequency}&3600.00Mhz\\%
\hline%
\end{tabular}
%
\subsection{Memory}%
\label{subsec:Memory}%
\begin{tabular}{|l|l|}%
\hline%
\textbf{Total}&63.52GB\\%
\hline%
\textbf{Swap Total}&9.50GB\\%
\hline%
\end{tabular}
%
\section{Stats}%
\label{sec:Stats}%
\subsection{Benchmark Results}%
\label{subsec:BenchmarkResults}%
\begin{tabular}{|l|l|}%
\hline%
\textbf{Total Sessions}&10\\%
\hline%
\textbf{Total Episodes}&10010\\%
\hline%
\textbf{Total Steps}&1280000\\%
\hline%
\textbf{Av Session Duration (s)}&1569.8775\\%
\hline%
\textbf{Av Step Duration (s)}&0.0012\\%
\hline%
\textbf{Av Duration per 100 Steps per 10 Nodes (s)}&0.1226\\%
\hline%
\end{tabular}
%
\section{Graphs}%
\label{sec:Graphs}%
\subsection{PrimAITE 3.0.0 Learning Benchmark Plot}%
\label{subsec:PrimAITE3.0.0LearningBenchmarkPlot}%
\begin{figure}[h!]%
\centering%
\includegraphics[width=0.8\textwidth]{D:/Projects/ARCD/PrimAITE/PrimAITE/benchmark/results/v3.0.0/PrimAITE v3.0.0 Learning Benchmark.png}%
\caption{PrimAITE 3.0.0 Learning Benchmark Plot}%
\end{figure}
%
\subsection{PrimAITE All Versions Learning Benchmark Plot}%
\label{subsec:PrimAITEAllVersionsLearningBenchmarkPlot}%
\begin{figure}[h!]%
\centering%
\includegraphics[width=0.8\textwidth]{D:/Projects/ARCD/PrimAITE/PrimAITE/benchmark/results/PrimAITE Versions Learning Benchmark.png}%
\caption{PrimAITE All Versions Learning Benchmark Plot}%
\end{figure}
%
\end{document}

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@@ -1 +1 @@
3.0.0b9
3.0.0