Created
March 16, 2024 16:01
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#!/usr/bin/env bash | |
set -euo pipefail | |
cd "$(git rev-parse --show-toplevel)" | |
if [[ "$(uname)" == "Linux" ]]; then | |
my_cores=$(nproc) | |
elif [[ "$(uname)" == "Darwin" ]]; then | |
my_cores=$(sysctl -n hw.ncpu) | |
else | |
echo "Unknown number of cores ¯\_(ツ)_/¯" | |
exit 1 | |
fi | |
out="plot.csv" | |
if [[ ! -f "$out" ]]; then | |
echo "cores,area,chunk,start,stop" >"$out" | |
fi | |
for cores in 4 8 12 16 24 32 48 64; do | |
if [ "$cores" -le "$my_cores" ]; then | |
for area in 32 64 128 256 512; do | |
for chunk in 2 4 8; do | |
cabal clean | |
ghc_flags="--ghc-options=-j$cores +RTS -A${area}m -n${chunk}m -RTS" | |
start=$(date --iso=sec) | |
cabal build --disable-tests -j "$ghc_flags" language | |
stop=$(date --iso=sec) | |
echo "$cores,$area,$chunk,$start,$stop" >>"$out" | |
done | |
done | |
fi | |
done |
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import sys | |
import pandas as pd | |
import matplotlib.pyplot as plt | |
# Excuse my terrible python skills | |
if len(sys.argv) < 2: | |
print("Usage: python script_name.py filename.csv") | |
sys.exit(1) | |
filename = sys.argv[1] | |
basename = filename.rsplit('.', 1)[0] | |
df = pd.read_csv(filename) | |
df['duration'] = (pd.to_datetime(df['stop']) - pd.to_datetime(df['start'])).dt.total_seconds() | |
areas = df['area'].unique() | |
areas.sort() | |
cores = df['cores'].unique() | |
cores.sort() | |
fig, axs = plt.subplots(len(areas), 1, figsize=(10, 6 * len(areas)), sharex=True, sharey=True) | |
if len(areas) == 1: axs = [axs] | |
for ax, area in zip(axs, areas): | |
df_area = df[df['area'] == area] | |
chunks = df_area['chunk'].unique() | |
chunks.sort() | |
for chunk in chunks: | |
df_chunk = df_area[df_area['chunk'] == chunk] | |
mean_durations = df_chunk.groupby('cores')['duration'].mean().reset_index().sort_values(by='cores') | |
ax.plot(mean_durations['cores'], mean_durations['duration'], marker='o', linestyle='-', label=f'-n{chunk}m') | |
ax.set_title(f'-A{area}m') | |
ax.legend() | |
ax.grid(True) | |
ax.set_xticks(cores) | |
ax.set_yticks(range(int(df['duration'].min()), int(df['duration'].max()) + 1, 1)) | |
fig.supxlabel('Cores') | |
fig.supylabel('Duration (seconds)') | |
plt.tight_layout() | |
plt.savefig(f'{basename}.png') |
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