Update test-weights of NAS-Bench-201
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		| @@ -3,13 +3,15 @@ | ||||
| ############################################################################################### | ||||
| # Before run these commands, the files must be properly put. | ||||
| # python exps/NAS-Bench-201/test-weights.py --base_path $HOME/.torch/NAS-Bench-201-v1_0-e61699 | ||||
| # python exps/NAS-Bench-201/test-weights.py --base_path $HOME/.torch/NAS-Bench-201-v1_1-096897 | ||||
| # python exps/NAS-Bench-201/test-weights.py --base_path $HOME/.torch/NAS-Bench-201-v1_1-096897 --dataset cifar10-valid --use_12 1 --use_valid 1 | ||||
| # bash ./scripts-search/NAS-Bench-201/test-weights.sh cifar10-valid 1 1 | ||||
| ############################################################################################### | ||||
| import os, sys, time, glob, random, argparse | ||||
| import os, gc, sys, time, glob, random, argparse | ||||
| import numpy as np | ||||
| import torch | ||||
| import torch.nn as nn | ||||
| from pathlib import Path | ||||
| from collections import OrderedDict | ||||
| from tqdm import tqdm | ||||
| lib_dir = (Path(__file__).parent / '..' / '..' / 'lib').resolve() | ||||
| if str(lib_dir) not in sys.path: sys.path.insert(0, str(lib_dir)) | ||||
| @@ -24,30 +26,48 @@ def get_cor(A, B): | ||||
|   return float(np.corrcoef(A, B)[0,1]) | ||||
|  | ||||
|  | ||||
| def tostr(accdict, norms): | ||||
|   xstr = [] | ||||
|   for key, accs in accdict.items(): | ||||
|     cor = get_cor(accs, norms) | ||||
|     xstr.append('{:}: {:.3f}'.format(key, cor)) | ||||
|   return ' '.join(xstr) | ||||
|  | ||||
|  | ||||
| def evaluate(api, weight_dir, data: str, use_12epochs_result: bool, valid_or_test: bool): | ||||
|   print('\nEvaluate dataset={:}'.format(data)) | ||||
|   norms, accs = [], [] | ||||
|   for idx in tqdm(range(len(api))): | ||||
|   final_accs = OrderedDict({'cifar10-valid': [], 'cifar10': [], 'cifar100': [], 'ImageNet16-120': []}) | ||||
|   for idx in range(len(api)): | ||||
|     info = api.get_more_info(idx, data, use_12epochs_result=use_12epochs_result, is_random=False) | ||||
|     if valid_or_test: | ||||
|       accs.append(info['valid-accuracy']) | ||||
|     else: | ||||
|       accs.append(info['test-accuracy']) | ||||
|     for key in final_accs.keys(): | ||||
|       info = api.get_more_info(idx, key, use_12epochs_result=False, is_random=False) | ||||
|       final_accs[key].append(info['test-accuracy']) | ||||
|     config = api.get_net_config(idx, data) | ||||
|     net = get_cell_based_tiny_net(config) | ||||
|     api.reload(weight_dir, idx) | ||||
|     params = api.get_net_param(idx, data, None) | ||||
|     cur_norms = [] | ||||
|     for seed, param in params.items(): | ||||
|       net.load_state_dict(param) | ||||
|       _, summary = weight_watcher.analyze(net, alphas=False) | ||||
|       cur_norms.append( summary['lognorm'] ) | ||||
|       with torch.no_grad(): | ||||
|         net.load_state_dict(param) | ||||
|         _, summary = weight_watcher.analyze(net, alphas=False) | ||||
|         cur_norms.append( summary['lognorm'] ) | ||||
|     norms.append( float(np.mean(cur_norms)) ) | ||||
|     api.clear_params(idx, use_12epochs_result) | ||||
|   correlation = get_cor(norms, accs) | ||||
|   print('For {:} with {:} epochs on {:} : the correlation is {:}'.format(data, 12 if use_12epochs_result else 200, 'valid' if valid_or_test else 'test', correlation)) | ||||
|     if idx % 200 == 199 or idx + 1 == len(api): | ||||
|       correlation = get_cor(norms, accs) | ||||
|       head = '{:05d}/{:05d}'.format(idx, len(api)) | ||||
|       stem = tostr(final_accs, norms) | ||||
|       print('{:} {:} {:} with {:} epochs on {:} : the correlation is {:.3f}. {:}'.format(time_string(), head, data, 12 if use_12epochs_result else 200, 'valid' if valid_or_test else 'test', correlation, stem)) | ||||
|       torch.cuda.empty_cache() ; gc.collect() | ||||
|  | ||||
|  | ||||
| def main(meta_file: str, weight_dir, save_dir): | ||||
| def main(meta_file: str, weight_dir, save_dir, xdata, use_12epochs_result, valid_or_test): | ||||
|   api = API(meta_file) | ||||
|   datasets = ['cifar10-valid', 'cifar10', 'cifar100', 'ImageNet16-120'] | ||||
|   print(time_string() + ' ' + '='*50) | ||||
| @@ -62,7 +82,8 @@ def main(meta_file: str, weight_dir, save_dir): | ||||
|     print('Using 200 epochs, trained on {:20s} : {:} trials in total ({:}).'.format(data, total, nums)) | ||||
|   print(time_string() + ' ' + '='*50) | ||||
|  | ||||
|   evaluate(api, weight_dir, 'cifar10-valid', False, True) | ||||
|   #evaluate(api, weight_dir, 'cifar10-valid', False, True) | ||||
|   evaluate(api, weight_dir, xdata, use_12epochs_result, valid_or_test) | ||||
|    | ||||
|   print('{:} finish this test.'.format(time_string())) | ||||
|  | ||||
| @@ -71,6 +92,9 @@ if __name__ == '__main__': | ||||
|   parser = argparse.ArgumentParser("Analysis of NAS-Bench-201") | ||||
|   parser.add_argument('--save_dir',   type=str, default='./output/search-cell-nas-bench-201/visuals', help='The base-name of folder to save checkpoints and log.') | ||||
|   parser.add_argument('--base_path',  type=str, default=None, help='The path to the NAS-Bench-201 benchmark file and weight dir.') | ||||
|   parser.add_argument('--dataset'  ,  type=str, default=None, help='.') | ||||
|   parser.add_argument('--use_12'   ,  type=int, default=None, help='.') | ||||
|   parser.add_argument('--use_valid',  type=int, default=None, help='.') | ||||
|   args = parser.parse_args() | ||||
|  | ||||
|   save_dir = Path(args.save_dir) | ||||
| @@ -80,5 +104,5 @@ if __name__ == '__main__': | ||||
|   assert meta_file.exists(), 'invalid path for api : {:}'.format(meta_file) | ||||
|   assert weight_dir.exists() and weight_dir.is_dir(), 'invalid path for weight dir : {:}'.format(weight_dir) | ||||
|  | ||||
|   main(str(meta_file), weight_dir, save_dir) | ||||
|   main(str(meta_file), weight_dir, save_dir, args.dataset, bool(args.use_12), bool(args.use_valid)) | ||||
|  | ||||
|   | ||||
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