2024-08-29 23:17:47 +02:00
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import os
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2024-08-29 17:30:29 +02:00
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import numpy as np
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2024-08-29 23:17:47 +02:00
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import matplotlib.pyplot as plt
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import matplotlib.patheffects as PathEffects
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N_processes = 5
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N_threads = 5
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# Load measured timings
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times = np.empty((N_processes, N_threads))
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for fname in os.listdir('timings'):
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values = open(f'timings/{fname}').read().split()
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n_processes = int(values[0])
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n_threads = int(values[1])
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2024-08-29 17:30:29 +02:00
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dt = float(values[2])
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2024-08-29 23:17:47 +02:00
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times[n_processes-1][n_threads-1] = dt
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print(times)
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""" Plot measured time"""
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fig_time, axs_time = plt.subplots()
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im = axs_time.imshow(times.T, origin='lower')
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axs_time.set_title('Computation time')
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fig_time.colorbar(im, ax=axs_time, label='Measured computation time (s)')
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""" Plot speedup """
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workers = np.arange(N_processes + 1)[:, None] * np.arange(N_threads + 1)
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speedup = times[0, 0] / times
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fig_speedup, axs_speedup = plt.subplots()
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im = axs_speedup.imshow(speedup.T, origin='lower')
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axs_speedup.set_title('Computation speed-up')
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fig_speedup.colorbar(im, ax=axs_speedup, label='Speed-up')
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# Set same style for both plots
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for axs, data in zip([axs_time, axs_speedup], [times, speedup]):
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axs.set_xlabel('# processes')
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axs.set_ylabel('# threads')
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axs.set_xticks(np.arange(N_processes))
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axs.set_xticklabels(np.arange(N_processes)+1)
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axs.set_yticks(np.arange(N_threads))
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axs.set_yticklabels(np.arange(N_threads)+1)
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for i in range(N_processes):
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for j in range(N_threads):
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txt = axs.text(i, j, f'{data[i, j]:.2f}', fontsize=10, color='w',
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ha='center', va='center', fontweight='bold')
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txt.set_path_effects([PathEffects.withStroke(linewidth=0.5, foreground='k')])
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axs.spines[['right', 'top']].set_visible(False)
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# Save plots
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fig_time.savefig('time.png', dpi=300)
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fig_speedup.savefig('speedup.png', dpi=300)
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2024-08-29 17:30:29 +02:00
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