[kws] add code for plotting det curve (#52)

* [kws] add code for plotting det curve

* format

* format

* format

* format

* [kws] add code for plotting det curve

format

format

format

format

* set xlim and ylim by parameter

* set xlim and ylim optional

* update help information

* update parser type

* Update run.sh
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Menglong Xu 2021-12-16 18:21:04 +08:00 committed by GitHub
parent 20891f90e6
commit 768900307a
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3 changed files with 107 additions and 0 deletions

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@ -106,6 +106,14 @@ if [ ${stage} -le 3 ] && [ ${stop_stage} -ge 3 ]; then
--score_file $result_dir/score.txt \
--stats_file $result_dir/stats.${keyword}.txt
done
python kws/bin/plot_det_curve.py \
--keywords 'Hey_Snips' \
--stats_dir $result_dir \
--figure_file $result_dir/det.png \
--xlim 10 \
--x_step 2 \
--ylim 10 \
--y_step 2
fi

98
kws/bin/plot_det_curve.py Normal file
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@ -0,0 +1,98 @@
# Copyright (c) 2021 Binbin Zhang(binbzha@qq.com)
# Menglong Xu
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
import argparse
import os
import numpy as np
import matplotlib.pyplot as plt
def load_stats_file(stats_file):
values = []
with open(stats_file, 'r', encoding='utf8') as fin:
for line in fin:
arr = line.strip().split()
threshold, fa_per_hour, frr = arr
values.append([float(fa_per_hour), float(frr) * 100])
values.reverse()
return np.array(values)
def plot_det_curve(
keywords,
stats_dir,
figure_file,
xlim,
x_step,
ylim,
y_step):
plt.figure(dpi=200)
plt.rcParams['xtick.direction'] = 'in'
plt.rcParams['ytick.direction'] = 'in'
plt.rcParams['font.size'] = 12
for index, keyword in enumerate(keywords):
stats_file = os.path.join(stats_dir, 'stats.' + str(index) + '.txt')
values = load_stats_file(stats_file)
plt.plot(values[:, 0], values[:, 1], label=keyword)
plt.xlim([0, xlim])
plt.ylim([0, ylim])
plt.xticks(range(0, xlim + x_step, x_step))
plt.yticks(range(0, ylim + y_step, y_step))
plt.xlabel('False Alarm Per Hour')
plt.ylabel('False Rejection Rate (\\%)')
plt.grid(linestyle='--')
plt.legend(loc='best', fontsize=16)
plt.savefig(figure_file)
if __name__ == '__main__':
parser = argparse.ArgumentParser(description='plot det curve')
parser.add_argument(
'--keywords',
required=True,
help=('keywords, must in the same order as in "dict/words.txt", ' +
'separated by ", "')
)
parser.add_argument('--stats_dir', required=True, help='dir of stats files')
parser.add_argument(
'--figure_file',
required=True,
help='path to save det curve')
parser.add_argument(
'--xlim',
type=int,
default=5,
help='xlimrange of x-axis, x is false alarm per hour')
parser.add_argument('--x_step', type=int, default=1, help='step on x-axis')
parser.add_argument(
'--ylim',
type=int,
default=35,
help='ylimrange of y-axis, y is false rejection rate')
parser.add_argument('--y_step', type=int, default=5, help='step on y-axis')
args = parser.parse_args()
keywords = args.keywords.strip().split(', ')
plot_det_curve(
keywords,
args.stats_dir,
args.figure_file,
args.xlim,
args.x_step,
args.ylim,
args.y_step)

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@ -2,3 +2,4 @@ flake8==3.8.2
pyyaml>=5.1
tensorboard
tensorboardX
matplotlib