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@@ -0,0 +1,358 @@
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@@ -0,0 +1,90 @@
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||||
import os
|
||||
import sys
|
||||
import yaml
|
||||
|
||||
def ptycho_run(config):
|
||||
ptycho_engine = config['ptycho']['engine']
|
||||
|
||||
if ptycho_engine == 'fold_slice':
|
||||
from ptycho.fold_slice import run
|
||||
run(config)
|
||||
|
||||
# Add more ptycho engines here as needed
|
||||
# write their respective run functions and import them above
|
||||
|
||||
|
||||
def ptycho_error(config):
|
||||
ptycho_engine = config['ptycho']['engine']
|
||||
|
||||
if ptycho_engine == 'fold_slice':
|
||||
from ptycho.fold_slice import error
|
||||
return error(config)
|
||||
|
||||
|
||||
|
||||
|
||||
|
||||
|
||||
def bo_initialize(config):
|
||||
bo_algorithm = config['bo']['algorithm']
|
||||
|
||||
if bo_algorithm == 'ucb':
|
||||
from bo.ucb import initialize
|
||||
bo_state = initialize(config)
|
||||
|
||||
else:
|
||||
from bo.random import initialize
|
||||
bo_state = initialize(config)
|
||||
|
||||
return bo_state
|
||||
|
||||
|
||||
def bo_ask(config, bo_state):
|
||||
bo_engine = config['bo']['algorithm']
|
||||
|
||||
if bo_engine == 'ucb':
|
||||
from bo.ucb import ask
|
||||
next_config = ask(config, bo_state)
|
||||
|
||||
else:
|
||||
from bo.random import ask
|
||||
next_config = ask(config, bo_state)
|
||||
|
||||
# Add more BO engines here as needed
|
||||
# write their respective ask functions and import them above
|
||||
|
||||
return next_config
|
||||
|
||||
|
||||
def bo_tell(config, job_config, bo_state, y_value):
|
||||
bo_engine = config['bo']['algorithm']
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||||
|
||||
if bo_engine == 'ucb':
|
||||
from bo.ucb import tell
|
||||
bo_config = tell(job_config, bo_state, y_value)
|
||||
|
||||
else:
|
||||
from bo.random import tell
|
||||
bo_config = tell(job_config, bo_state, y_value)
|
||||
|
||||
return bo_config
|
||||
|
||||
|
||||
|
||||
|
||||
|
||||
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||||
if __name__ == "__main__":
|
||||
if len(sys.argv) != 2:
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||||
print("Usage: python bo-ptycho.py <config_yaml>")
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||||
sys.exit(1)
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||||
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||||
config_yaml = sys.argv[1]
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||||
with open(config_yaml, 'r') as f:
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||||
config = yaml.safe_load(f)
|
||||
|
||||
# ptycho_run(config_yaml)
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||||
# results = ptycho_results(config_yaml)
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# new_config = bo_loop(config)
|
||||
# print(new_config) # type: ignore
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@@ -0,0 +1,56 @@
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||||
import numpy as np
|
||||
import copy
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||||
|
||||
|
||||
def initialize(config):
|
||||
bo_params = []
|
||||
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||||
for key, value in config['bo']['params'].items():
|
||||
if value is not None:
|
||||
bo_params.append(key)
|
||||
|
||||
train_x = np.empty((0, len(bo_params)))
|
||||
train_y = np.empty((0,))
|
||||
|
||||
bo_state = {
|
||||
'params': bo_params,
|
||||
'train_x': train_x,
|
||||
'train_y': train_y,
|
||||
}
|
||||
|
||||
return bo_state
|
||||
|
||||
|
||||
def ask(config, bo_state):
|
||||
next_config = copy.deepcopy(config)
|
||||
|
||||
for param in bo_state['params']:
|
||||
max_modulation = config['bo']['params'][param]
|
||||
center_value = config['ptycho']['params'][param]
|
||||
|
||||
modulation = max_modulation * (np.random.rand() - 0.5) * 2
|
||||
next_config['ptycho']['params'][param] = center_value + modulation
|
||||
|
||||
return next_config
|
||||
|
||||
|
||||
def tell(job_config, bo_state, y_value):
|
||||
x_value = []
|
||||
|
||||
for param in bo_state['params']:
|
||||
x_value.append(job_config['ptycho']['params'][param])
|
||||
|
||||
x_value = np.array(x_value).reshape(1, -1)
|
||||
y_value = np.array([y_value])
|
||||
|
||||
bo_state['train_x'] = np.vstack([
|
||||
bo_state['train_x'],
|
||||
x_value,
|
||||
])
|
||||
|
||||
bo_state['train_y'] = np.concatenate([
|
||||
bo_state['train_y'],
|
||||
y_value,
|
||||
])
|
||||
|
||||
return bo_state
|
||||
@@ -0,0 +1,48 @@
|
||||
# import os
|
||||
# import sys
|
||||
# import shutil
|
||||
# import numpy as np
|
||||
# import subprocess
|
||||
# import h5py
|
||||
# from PIL import Image
|
||||
# import time
|
||||
# import random
|
||||
|
||||
# import torch
|
||||
# from botorch.sampling.samplers import SobolQMCNormalSampler
|
||||
# from botorch.models import SingleTaskGP
|
||||
# from botorch.fit import fit_gpytorch_model
|
||||
# from gpytorch.mlls import ExactMarginalLogLikelihood
|
||||
# from botorch.optim import optimize_acqf
|
||||
# from botorch.acquisition import UpperConfidenceBound
|
||||
# from botorch.models.transforms.outcome import Standardize
|
||||
# from botorch.acquisition.monte_carlo import qUpperConfidenceBound
|
||||
# from botorch.utils.multi_objective.box_decompositions.non_dominated import NondominatedPartitioning
|
||||
# from botorch.acquisition.multi_objective.monte_carlo import qExpectedHypervolumeImprovement
|
||||
# from botorch.utils.transforms import unnormalize
|
||||
|
||||
# from bo import bo_random_config
|
||||
|
||||
|
||||
def initialize(config):
|
||||
pass
|
||||
|
||||
# n_initial_jobs = config['bo']['parallel_jobs']
|
||||
# n_var_params = len([p for p in config['bo']['params'].values() if p is not None])
|
||||
|
||||
# train_x = np.zeros([n_initial_jobs, n_var_params])
|
||||
|
||||
# for i in range(n_initial_jobs):
|
||||
# config_i = bo_random_config(config)
|
||||
# train_x[i] = [p for p in config_i['bo']['params'].values() if p is not None]
|
||||
|
||||
|
||||
def ask(config, bo_state):
|
||||
|
||||
next_config = config.copy()
|
||||
|
||||
return next_config
|
||||
|
||||
|
||||
def tell(job_config, bo_state, y_value):
|
||||
pass
|
||||
+47
@@ -0,0 +1,47 @@
|
||||
io:
|
||||
input_data_path: '/home/swim/data/BTO_01_crop.mat'
|
||||
result_dir: '/home/swim/Si_project/wrapper/results'
|
||||
verbosity: 1
|
||||
|
||||
ptycho:
|
||||
engine: 'fold_slice'
|
||||
path: '/home/swim/Si_project/lemon-ptychography/fold_slice'
|
||||
params:
|
||||
alpha_max: 30
|
||||
defocus: -200
|
||||
rot_ang: 1
|
||||
Nlayers: 20
|
||||
thickness: 250
|
||||
voltage: 200
|
||||
rbf: 37
|
||||
Nprobe: 1
|
||||
N_scan_x: 64
|
||||
N_scan_y: 64
|
||||
tilt_x: 2
|
||||
tilt_y: 0
|
||||
scan_step_size: 0.36
|
||||
Niter: 20
|
||||
Niter_save_results: 10
|
||||
CBED_size: 192
|
||||
ADU: 1
|
||||
extra_print_info: 'FIB'
|
||||
scan_number: 1
|
||||
gpu_id: 1
|
||||
roi_label: '0_Ndp64'
|
||||
diff_pattern_blur: 1
|
||||
probe_change_start: 1
|
||||
object_change_start: 1
|
||||
grouping: 128
|
||||
probe_posiiton_search: 1
|
||||
regularize_layers: 0.1
|
||||
variable_probe: 'false'
|
||||
|
||||
bo:
|
||||
parallel_jobs: 4
|
||||
algorithm: ucb
|
||||
params:
|
||||
alpha_max:
|
||||
defocus: 150
|
||||
rot_ang: 1
|
||||
Nlayers:
|
||||
thickness: 150
|
||||
@@ -0,0 +1,23 @@
|
||||
#!/bin/bash
|
||||
#SBATCH --job-name=swim_test
|
||||
#SBATCH --nodes=1
|
||||
#SBATCH --ntasks=1
|
||||
#SBATCH --cpus-per-task=1
|
||||
#SBATCH --gres=gpu:rtx-6000ada:1
|
||||
#SBATCH --time=100:00:00
|
||||
#SBATCH --output=/home/swim/slurm-logs/job_%j.log
|
||||
|
||||
echo "TEST JOB"
|
||||
pwd
|
||||
hostname
|
||||
date
|
||||
|
||||
export PATH=/home/shared/MATLAB/R2021a/bin:$PATH
|
||||
export PATH=/usr/local/cuda-11.4/bin:$PATH
|
||||
export LD_LIBRARY_PATH=/usr/local/cuda-11.4/lib64:$LD_LIBRARY_PATH
|
||||
|
||||
source /home/swim/Si_project/wrapper/venv/bin/activate
|
||||
|
||||
python -u bo-ptycho.py config.yaml
|
||||
|
||||
echo "SLURM JOB FINISHED"
|
||||
@@ -0,0 +1,73 @@
|
||||
import os
|
||||
import sys
|
||||
import shutil
|
||||
import subprocess
|
||||
import numpy as np
|
||||
from scipy.io import loadmat
|
||||
|
||||
def fold_slice_translator(config):
|
||||
|
||||
result_dir = config['io']['result_dir']
|
||||
|
||||
fold_slice_dict = {}
|
||||
fold_slice_dict['raw_data'] = config['io']['input_data_path']
|
||||
fold_slice_dict['result_dir'] = os.path.join(result_dir, '')
|
||||
fold_slice_dict.update(config['ptycho']['fold_slice'])
|
||||
|
||||
if os.path.exists(os.path.join(result_dir)):
|
||||
shutil.rmtree(os.path.join(result_dir))
|
||||
os.makedirs(os.path.join(result_dir))
|
||||
|
||||
setup_txt = os.path.join(result_dir, 'setup.txt')
|
||||
with open(setup_txt, 'w') as f:
|
||||
f.write('\n\n')
|
||||
for key, value in fold_slice_dict.items():
|
||||
f.write(f"{key} {value}\n")
|
||||
|
||||
return setup_txt
|
||||
|
||||
|
||||
def run(config):
|
||||
setup_txt = fold_slice_translator(config)
|
||||
fold_slice_path = config['ptycho']['path']
|
||||
verbosity = config['io'].get('verbosity', 0)
|
||||
|
||||
matlab_commands = [
|
||||
f"cd('{fold_slice_path}');",
|
||||
"cd('ptycho');",
|
||||
f"prepare_data('{setup_txt}');"
|
||||
f"run_multislice_new('{setup_txt}');"
|
||||
]
|
||||
|
||||
p = subprocess.Popen(
|
||||
['matlab', '-batch', ' '.join(matlab_commands)],
|
||||
stdout=subprocess.PIPE if verbosity > 0 else subprocess.DEVNULL,
|
||||
stderr=subprocess.STDOUT if verbosity > 0 else subprocess.DEVNULL,
|
||||
text=True
|
||||
)
|
||||
|
||||
if not verbosity == 0:
|
||||
header = '[fold slice]'
|
||||
for line in p.stdout: # type: ignore
|
||||
sys.stdout.write(f'{header} {line}')
|
||||
p.stdout.close() # type: ignore
|
||||
else:
|
||||
print(f"fold_slice running. Set verbosity>0 for full fold_slice output.")
|
||||
|
||||
p.wait()
|
||||
|
||||
|
||||
def error(config):
|
||||
result_dir = config['io']['result_dir']
|
||||
roi_dir = os.path.join(
|
||||
result_dir,
|
||||
f"{config['ptycho']['fold_slice']['scan_number']}",
|
||||
f"roi{config['ptycho']['fold_slice']['roi_label']}"
|
||||
)
|
||||
output_dir = os.path.join(roi_dir, next(os.walk(roi_dir))[1][0])
|
||||
# image_path = os.path.join(output_dir, 'obj_phase_roi_sum', next(os.walk(os.path.join(output_dir, 'obj_phase_roi_sum')))[2][0])
|
||||
result_mat = os.path.join(output_dir, f"Niter{config['ptycho']['fold_slice']['Niter']}.mat")
|
||||
if not os.path.exists(result_mat):
|
||||
raise FileNotFoundError(f"Result directory {result_mat} does not exist. Please check the fold_slice output.")
|
||||
|
||||
return loadmat(result_mat)
|
||||
@@ -0,0 +1,2 @@
|
||||
def run(config, verbosity=0):
|
||||
pass
|
||||
@@ -0,0 +1,10 @@
|
||||
botorch==0.6.1
|
||||
gpytorch==1.6.0
|
||||
multipledispatch>=0.6.0
|
||||
numpy>=1.22.2
|
||||
Pillow>=9.0.1
|
||||
scipy>=1.8.0
|
||||
six>=1.16.0
|
||||
typing_extensions>=4.1.1
|
||||
PyYAML
|
||||
h5py
|
||||
Reference in New Issue
Block a user