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submodule
opencv
Commits
315c0543
Commit
315c0543
authored
Sep 17, 2013
by
peng xiao
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177 additions
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+177
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test_ml.cpp
modules/ocl/test/test_ml.cpp
+177
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modules/ocl/test/test_ml.cpp
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315c0543
...
...
@@ -121,4 +121,180 @@ TEST_P(KNN, Accuracy)
}
INSTANTIATE_TEST_CASE_P
(
OCL_ML
,
KNN
,
Combine
(
Values
(
6
,
5
),
Values
(
Size
(
200
,
400
),
Size
(
300
,
600
)),
Values
(
4
,
3
),
Values
(
false
,
true
)));
#endif // HAVE_OPENCL
\ No newline at end of file
////////////////////////////////SVM/////////////////////////////////////////////////
PARAM_TEST_CASE
(
SVM_OCL
,
int
,
int
,
int
)
{
cv
::
Size
size
;
int
kernel_type
;
int
svm_type
;
Mat
src
,
labels
,
samples
,
labels_predict
;
int
K
;
cv
::
RNG
rng
;
virtual
void
SetUp
()
{
kernel_type
=
GET_PARAM
(
0
);
svm_type
=
GET_PARAM
(
1
);
K
=
GET_PARAM
(
2
);
rng
=
TS
::
ptr
()
->
get_rng
();
cv
::
Size
size
=
cv
::
Size
(
MWIDTH
,
MHEIGHT
);
src
.
create
(
size
,
CV_32FC1
);
labels
.
create
(
1
,
size
.
height
,
CV_32SC1
);
int
row_idx
=
0
;
const
int
max_number
=
size
.
height
/
K
-
1
;
CV_Assert
(
K
<=
size
.
height
);
for
(
int
i
=
0
;
i
<
K
;
i
++
)
{
Mat
center_row_header
=
src
.
row
(
row_idx
);
center_row_header
.
setTo
(
0
);
int
nchannel
=
center_row_header
.
channels
();
for
(
int
j
=
0
;
j
<
nchannel
;
j
++
)
{
center_row_header
.
at
<
float
>
(
0
,
i
*
nchannel
+
j
)
=
500.0
;
}
labels
.
at
<
int
>
(
0
,
row_idx
)
=
i
;
for
(
int
j
=
0
;
(
j
<
max_number
)
||
(
i
==
K
-
1
&&
j
<
max_number
+
size
.
height
%
K
);
j
++
)
{
Mat
cur_row_header
=
src
.
row
(
row_idx
+
1
+
j
);
center_row_header
.
copyTo
(
cur_row_header
);
Mat
tmpmat
=
randomMat
(
rng
,
cur_row_header
.
size
(),
cur_row_header
.
type
(),
1
,
100
,
false
);
cur_row_header
+=
tmpmat
;
labels
.
at
<
int
>
(
0
,
row_idx
+
1
+
j
)
=
i
;
}
row_idx
+=
1
+
max_number
;
}
labels
.
convertTo
(
labels
,
CV_32FC1
);
cv
::
Size
test_size
=
cv
::
Size
(
MWIDTH
,
100
);
samples
.
create
(
test_size
,
CV_32FC1
);
labels_predict
.
create
(
1
,
test_size
.
height
,
CV_32SC1
);
const
int
max_number_test
=
test_size
.
height
/
K
-
1
;
row_idx
=
0
;
for
(
int
i
=
0
;
i
<
K
;
i
++
)
{
Mat
center_row_header
=
samples
.
row
(
row_idx
);
center_row_header
.
setTo
(
0
);
int
nchannel
=
center_row_header
.
channels
();
for
(
int
j
=
0
;
j
<
nchannel
;
j
++
)
{
center_row_header
.
at
<
float
>
(
0
,
i
*
nchannel
+
j
)
=
500.0
;
}
labels_predict
.
at
<
int
>
(
0
,
row_idx
)
=
i
;
for
(
int
j
=
0
;
(
j
<
max_number_test
)
||
(
i
==
K
-
1
&&
j
<
max_number_test
+
test_size
.
height
%
K
);
j
++
)
{
Mat
cur_row_header
=
samples
.
row
(
row_idx
+
1
+
j
);
center_row_header
.
copyTo
(
cur_row_header
);
Mat
tmpmat
=
randomMat
(
rng
,
cur_row_header
.
size
(),
cur_row_header
.
type
(),
1
,
100
,
false
);
cur_row_header
+=
tmpmat
;
labels_predict
.
at
<
int
>
(
0
,
row_idx
+
1
+
j
)
=
i
;
}
row_idx
+=
1
+
max_number_test
;
}
labels_predict
.
convertTo
(
labels_predict
,
CV_32FC1
);
}
};
TEST_P
(
SVM_OCL
,
Accuracy
)
{
CvSVMParams
params
;
params
.
degree
=
0.4
;
params
.
gamma
=
1
;
params
.
coef0
=
1
;
params
.
C
=
1
;
params
.
nu
=
0.5
;
params
.
p
=
1
;
params
.
svm_type
=
svm_type
;
params
.
kernel_type
=
kernel_type
;
params
.
term_crit
=
cvTermCriteria
(
CV_TERMCRIT_ITER
,
1000
,
0.001
);
CvSVM
SVM
;
SVM
.
train
(
src
,
labels
,
Mat
(),
Mat
(),
params
);
cv
::
ocl
::
CvSVM_OCL
SVM_OCL
;
SVM_OCL
.
train
(
src
,
labels
,
Mat
(),
Mat
(),
params
);
int
c
=
SVM
.
get_support_vector_count
();
int
c1
=
SVM_OCL
.
get_support_vector_count
();
Mat
sv
(
c
,
MHEIGHT
,
CV_32FC1
);
Mat
sv_ocl
(
c1
,
MHEIGHT
,
CV_32FC1
);
for
(
int
i
=
0
;
i
<
c
;
i
++
)
{
const
float
*
v
=
SVM
.
get_support_vector
(
i
);
for
(
int
j
=
0
;
j
<
MHEIGHT
;
j
++
)
{
sv
.
at
<
float
>
(
i
,
j
)
=
v
[
j
];
}
}
for
(
int
i
=
0
;
i
<
c1
;
i
++
)
{
const
float
*
v_ocl
=
SVM_OCL
.
get_support_vector
(
i
);
for
(
int
j
=
0
;
j
<
MHEIGHT
;
j
++
)
{
sv_ocl
.
at
<
float
>
(
i
,
j
)
=
v_ocl
[
j
];
}
}
cv
::
BFMatcher
matcher
(
cv
::
NORM_L2
);
std
::
vector
<
cv
::
DMatch
>
matches
;
matcher
.
match
(
sv
,
sv_ocl
,
matches
);
int
count
=
0
;
for
(
std
::
vector
<
cv
::
DMatch
>::
iterator
itr
=
matches
.
begin
();
itr
!=
matches
.
end
();
itr
++
)
{
if
((
*
itr
).
distance
<
0.1
)
{
count
++
;
}
}
if
(
c
!=
0
)
{
float
matchedRatio
=
(
float
)
count
/
c
;
EXPECT_GT
(
matchedRatio
,
0.95
);
}
if
(
c
!=
0
)
{
CvMat
*
result
=
cvCreateMat
(
1
,
samples
.
rows
,
CV_32FC1
);
CvMat
test_samples
=
samples
;
CvMat
*
result_ocl
=
cvCreateMat
(
1
,
samples
.
rows
,
CV_32FC1
);
SVM
.
predict
(
&
test_samples
,
result
);
SVM_OCL
.
predict
(
&
test_samples
,
result_ocl
);
int
true_resp
=
0
,
true_resp_ocl
=
0
;
for
(
int
i
=
0
;
i
<
samples
.
rows
;
i
++
)
{
if
(
result
->
data
.
fl
[
i
]
==
labels_predict
.
at
<
float
>
(
0
,
i
))
{
true_resp
++
;
}
}
float
matchedRatio
=
(
float
)
true_resp
/
samples
.
rows
;
for
(
int
i
=
0
;
i
<
samples
.
rows
;
i
++
)
{
if
(
result_ocl
->
data
.
fl
[
i
]
==
labels_predict
.
at
<
float
>
(
0
,
i
))
{
true_resp_ocl
++
;
}
}
float
matchedRatio_ocl
=
(
float
)
true_resp_ocl
/
samples
.
rows
;
if
(
matchedRatio
!=
0
&&
true_resp_ocl
<
true_resp
)
{
EXPECT_NEAR
(
matchedRatio_ocl
,
matchedRatio
,
0.03
);
}
}
}
INSTANTIATE_TEST_CASE_P
(
OCL_ML
,
SVM_OCL
,
testing
::
Combine
(
Values
(
CvSVM
::
LINEAR
,
CvSVM
::
POLY
,
CvSVM
::
RBF
,
CvSVM
::
SIGMOID
),
Values
(
CvSVM
::
C_SVC
,
CvSVM
::
NU_SVC
,
CvSVM
::
ONE_CLASS
,
CvSVM
::
EPS_SVR
,
CvSVM
::
NU_SVR
),
Values
(
2
,
3
,
4
)
));
#endif // HAVE_OPENCL
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