FazBrowse GitHub Viewer
|
Trending
|
URL:
|
Home
Tools:
[Download Repo ZIP]
[View Raw Code]
[Original HTTPS Page]
Caffe-HRT/examples/cpp_classification/classification.cpp at master · prvn16/Caffe-HRT · GitHub
prvn16
Caffe-HRT
Repository navigation
Code
Pull requests
Actions
Projects
Wiki
Security and quality
Insights
Expand file tree
Breadcrumbs
Caffe-HRT
/
examples
/
cpp_classification
/
classification.cpp
Copy path
More file actions
More file actions
Latest commit
History
History
History
265 lines (218 loc) · 8.46 KB
Breadcrumbs
Caffe-HRT
/
examples
/
cpp_classification
/
classification.cpp
Copy path
File metadata and controls
265 lines (218 loc) · 8.46 KB
Raw
Copy raw file
Download raw file
Open symbols panel
Edit and raw actions
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
#
include
<
caffe/caffe.hpp
>
#
ifdef
USE_OPENCV
#
include
<
opencv2/core/core.hpp
>
#
include
<
opencv2/highgui/highgui.hpp
>
#
include
<
opencv2/imgproc/imgproc.hpp
>
#
endif
//
USE_OPENCV
#
include
<
algorithm
>
#
include
<
iosfwd
>
#
include
<
memory
>
#
include
<
string
>
#
include
<
utility
>
#
include
<
vector
>
#
ifdef
USE_OPENCV
using
namespace
caffe
;
//
NOLINT(build/namespaces)
using
std::string;
/*
Pair (label, confidence) representing a prediction.
*/
typedef
std::pair<string,
float
> Prediction;
class
Classifier
{
public:
Classifier
(
const
string& model_file,
const
string& trained_file,
const
string& mean_file,
const
string& label_file);
std::vector<Prediction>
Classify
(
const
cv::Mat& img,
int
N =
5
);
private:
void
SetMean
(
const
string& mean_file);
std::vector<
float
>
Predict
(
const
cv::Mat& img);
void
WrapInputLayer
(std::vector<cv::Mat>* input_channels);
void
Preprocess
(
const
cv::Mat& img,
std::vector<cv::Mat>* input_channels);
private:
shared_ptr<Net<
float
> > net_;
cv::Size input_geometry_;
int
num_channels_;
cv::Mat mean_;
std::vector<string> labels_;
};
Classifier::Classifier
(
const
string& model_file,
const
string& trained_file,
const
string& mean_file,
const
string& label_file) {
#
ifdef
CPU_ONLY
Caffe::set_mode
(Caffe::
CPU
);
#
else
Caffe::set_mode
(Caffe::
GPU
);
#
endif
/*
Load the network.
*/
net_.
reset
(
new
Net<
float
>(model_file,
TEST
));
net_->
CopyTrainedLayersFrom
(trained_file);
CHECK_EQ
(net_->
num_inputs
(),
1
) <<
"
Network should have exactly one input.
"
;
CHECK_EQ
(net_->
num_outputs
(),
1
) <<
"
Network should have exactly one output.
"
;
Blob<
float
>* input_layer = net_->
input_blobs
()[
0
];
num_channels_ = input_layer->
channels
();
CHECK
(num_channels_ ==
3
|| num_channels_ ==
1
)
<<
"
Input layer should have 1 or 3 channels.
"
;
input_geometry_ =
cv::Size
(input_layer->
width
(), input_layer->
height
());
/*
Load the binaryproto mean file.
*/
SetMean
(mean_file);
/*
Load labels.
*/
std::ifstream
labels
(label_file.
c_str
());
CHECK
(labels) <<
"
Unable to open labels file
"
<< label_file;
string line;
while
(
std::getline
(labels, line))
labels_.
push_back
(
string
(line));
Blob<
float
>* output_layer = net_->
output_blobs
()[
0
];
CHECK_EQ
(labels_.
size
(), output_layer->
channels
())
<<
"
Number of labels is different from the output layer dimension.
"
;
}
static
bool
PairCompare
(
const
std::pair<
float
,
int
>& lhs,
const
std::pair<
float
,
int
>& rhs) {
return
lhs.
first
> rhs.
first
;
}
/*
Return the indices of the top N values of vector v.
*/
static
std::vector<
int
>
Argmax
(
const
std::vector<
float
>& v,
int
N) {
std::vector<std::pair<
float
,
int
> > pairs;
for
(
size_t
i =
0
; i < v.
size
(); ++i)
pairs.
push_back
(
std::make_pair
(v[i], i));
std::partial_sort
(pairs.
begin
(), pairs.
begin
() + N, pairs.
end
(), PairCompare);
std::vector<
int
> result;
for
(
int
i =
0
; i < N; ++i)
result.
push_back
(pairs[i].
second
);
return
result;
}
/*
Return the top N predictions.
*/
std::vector<Prediction>
Classifier::Classify
(
const
cv::Mat& img,
int
N) {
std::vector<
float
> output =
Predict
(img);
N = std::min<
int
>(labels_.
size
(), N);
std::vector<
int
> maxN =
Argmax
(output, N);
std::vector<Prediction> predictions;
for
(
int
i =
0
; i < N; ++i) {
int
idx = maxN[i];
predictions.
push_back
(
std::make_pair
(labels_[idx], output[idx]));
}
return
predictions;
}
/*
Load the mean file in binaryproto format.
*/
void
Classifier::SetMean
(
const
string& mean_file) {
BlobProto blob_proto;
ReadProtoFromBinaryFileOrDie
(mean_file.
c_str
(), &blob_proto);
/*
Convert from BlobProto to Blob<float>
*/
Blob<
float
> mean_blob;
mean_blob.
FromProto
(blob_proto);
CHECK_EQ
(mean_blob.
channels
(), num_channels_)
<<
"
Number of channels of mean file doesn't match input layer.
"
;
/*
The format of the mean file is planar 32-bit float BGR or grayscale.
*/
std::vector<cv::Mat> channels;
float
* data = mean_blob.
mutable_cpu_data
();
for
(
int
i =
0
; i < num_channels_; ++i) {
/*
Extract an individual channel.
*/
cv::Mat
channel
(mean_blob.
height
(), mean_blob.
width
(),
CV_32FC1
, data);
channels.
push_back
(channel);
data += mean_blob.
height
() * mean_blob.
width
();
}
/*
Merge the separate channels into a single image.
*/
cv::Mat mean;
cv::merge
(channels, mean);
/*
Compute the global mean pixel value and create a mean image
* filled with this value.
*/
cv::Scalar channel_mean =
cv::mean
(mean);
mean_ =
cv::Mat
(input_geometry_, mean.
type
(), channel_mean);
}
std::vector<
float
>
Classifier::Predict
(
const
cv::Mat& img) {
Blob<
float
>* input_layer = net_->
input_blobs
()[
0
];
input_layer->
Reshape
(
1
, num_channels_,
input_geometry_.
height
, input_geometry_.
width
);
/*
Forward dimension change to all layers.
*/
net_->
Reshape
();
std::vector<cv::Mat> input_channels;
WrapInputLayer
(&input_channels);
Preprocess
(img, &input_channels);
net_->
Forward
();
/*
Copy the output layer to a std::vector
*/
Blob<
float
>* output_layer = net_->
output_blobs
()[
0
];
const
float
* begin = output_layer->
cpu_data
();
const
float
* end = begin + output_layer->
channels
();
return
std::vector<
float
>(begin, end);
}
/*
Wrap the input layer of the network in separate cv::Mat objects
* (one per channel). This way we save one memcpy operation and we
* don't need to rely on cudaMemcpy2D. The last preprocessing
* operation will write the separate channels directly to the input
* layer.
*/
void
Classifier::WrapInputLayer
(std::vector<cv::Mat>* input_channels) {
Blob<
float
>* input_layer = net_->
input_blobs
()[
0
];
int
width = input_layer->
width
();
int
height = input_layer->
height
();
float
* input_data = input_layer->
mutable_cpu_data
();
for
(
int
i =
0
; i < input_layer->
channels
(); ++i) {
cv::Mat
channel
(height, width,
CV_32FC1
, input_data);
input_channels->
push_back
(channel);
input_data += width * height;
}
}
void
Classifier::Preprocess
(
const
cv::Mat& img,
std::vector<cv::Mat>* input_channels) {
/*
Convert the input image to the input image format of the network.
*/
cv::Mat sample;
if
(img.
channels
() ==
3
&& num_channels_ ==
1
)
cv::cvtColor
(img, sample, cv::
COLOR_BGR2GRAY
);
else
if
(img.
channels
() ==
4
&& num_channels_ ==
1
)
cv::cvtColor
(img, sample, cv::
COLOR_BGRA2GRAY
);
else
if
(img.
channels
() ==
4
&& num_channels_ ==
3
)
cv::cvtColor
(img, sample, cv::
COLOR_BGRA2BGR
);
else
if
(img.
channels
() ==
1
&& num_channels_ ==
3
)
cv::cvtColor
(img, sample, cv::
COLOR_GRAY2BGR
);
else
sample = img;
cv::Mat sample_resized;
if
(sample.
size
() != input_geometry_)
cv::resize
(sample, sample_resized, input_geometry_);
else
sample_resized = sample;
cv::Mat sample_float;
if
(num_channels_ ==
3
)
sample_resized.
convertTo
(sample_float,
CV_32FC3
);
else
sample_resized.
convertTo
(sample_float,
CV_32FC1
);
cv::Mat sample_normalized;
cv::subtract
(sample_float, mean_, sample_normalized);
/*
This operation will write the separate BGR planes directly to the
* input layer of the network because it is wrapped by the cv::Mat
* objects in input_channels.
*/
cv::split
(sample_normalized, *input_channels);
CHECK
(
reinterpret_cast
<
float
*>(input_channels->
at
(
0
).
data
)
== net_->
input_blobs
()[
0
]->
cpu_data
())
<<
"
Input channels are not wrapping the input layer of the network.
"
;
}
int
main
(
int
argc,
char
** argv) {
if
(argc !=
6
) {
std::cerr <<
"
Usage:
"
<< argv[
0
]
<<
"
deploy.prototxt network.caffemodel
"
<<
"
mean.binaryproto labels.txt img.jpg
"
<< std::endl;
return
1
;
}
::google::InitGoogleLogging
(argv[
0
]);
string model_file = argv[
1
];
string trained_file = argv[
2
];
string mean_file = argv[
3
];
string label_file = argv[
4
];
Classifier
classifier
(model_file, trained_file, mean_file, label_file);
string file = argv[
5
];
std::cout <<
"
---------- Prediction for
"
<< file <<
"
----------
"
<< std::endl;
cv::Mat img =
cv::imread
(file, -
1
);
CHECK
(!img.
empty
()) <<
"
Unable to decode image
"
<< file;
std::vector<Prediction> predictions = classifier.
Classify
(img);
/*
Print the top N predictions.
*/
for
(
size_t
i =
0
; i < predictions.
size
(); ++i) {
Prediction p = predictions[i];
std::cout << std::fixed <<
std::setprecision
(
4
) << p.
second
<<
"
-
\"
"
<< p.
first
<<
"
\"
"
<< std::endl;
}
}
#
else
int
main
(
int
argc,
char
** argv) {
LOG
(
FATAL
) <<
"
This example requires OpenCV; compile with USE_OPENCV.
"
;
}
#
endif
//
USE_OPENCV
Back
|
FazBrowse Home
|
New Git URL