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ModelZoo
ResNet50_tensorflow
Commits
f59c4651
Commit
f59c4651
authored
Nov 19, 2021
by
A. Unique TensorFlower
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PiperOrigin-RevId: 411191131
parent
0dd21139
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official/vision/beta/evaluation/wod_detection_evaluator_test.py
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# Copyright 2021 The TensorFlow Authors. All Rights Reserved.
#
# 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.
"""Tests for wod_detection_evaluator."""
import
tensorflow
as
tf
from
official.vision.beta.evaluation
import
wod_detection_evaluator
class
WodDetectionEvaluatorTest
(
tf
.
test
.
TestCase
):
def
_create_test_data
(
self
):
y_pred
=
{
'source_id'
:
tf
.
convert_to_tensor
([
1
],
dtype
=
tf
.
int64
),
'image_info'
:
tf
.
convert_to_tensor
([[[
100
,
100
],
[
50
,
50
],
[
0.5
,
0.5
],
[
0
,
0
]]],
dtype
=
tf
.
float32
),
'num_detections'
:
tf
.
convert_to_tensor
([
4
],
dtype
=
tf
.
int64
),
'detection_boxes'
:
tf
.
convert_to_tensor
(
[[[
0.1
,
0.15
,
0.2
,
0.25
],
[
0.35
,
0.18
,
0.43
,
0.4
],
[
0.2
,
0.1
,
0.3
,
0.2
],
[
0.65
,
0.55
,
0.75
,
0.85
]]],
dtype
=
tf
.
float32
),
'detection_classes'
:
tf
.
convert_to_tensor
([[
1
,
1
,
2
,
2
]],
dtype
=
tf
.
int64
),
'detection_scores'
:
tf
.
convert_to_tensor
([[
0.95
,
0.5
,
0.1
,
0.7
]],
dtype
=
tf
.
float32
)
}
y_true
=
{
'source_id'
:
tf
.
convert_to_tensor
([
1
],
dtype
=
tf
.
int64
),
'num_detections'
:
tf
.
convert_to_tensor
([
4
],
dtype
=
tf
.
int64
),
'boxes'
:
tf
.
convert_to_tensor
([[[
0.1
,
0.15
,
0.2
,
0.25
],
[
0.3
,
0.2
,
0.4
,
0.3
],
[
0.4
,
0.3
,
0.5
,
0.6
],
[
0.6
,
0.5
,
0.7
,
0.8
]]],
dtype
=
tf
.
float32
),
'classes'
:
tf
.
convert_to_tensor
([[
1
,
1
,
1
,
2
]],
dtype
=
tf
.
int64
),
'difficulties'
:
tf
.
zeros
([
1
,
4
],
dtype
=
tf
.
int64
)
}
return
y_pred
,
y_true
def
test_wod_detection_evaluator
(
self
):
wod_detection_metric
=
wod_detection_evaluator
.
WOD2dDetectionEvaluator
()
y_pred
,
y_true
=
self
.
_create_test_data
()
wod_detection_metric
.
update_state
(
groundtruths
=
y_true
,
predictions
=
y_pred
)
metrics
=
wod_detection_metric
.
evaluate
()
for
_
,
metric_value
in
metrics
.
items
():
self
.
assertAlmostEqual
(
metric_value
.
numpy
(),
0.0
,
places
=
3
)
if
__name__
==
'__main__'
:
tf
.
test
.
main
()
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