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submodule
opencv
Commits
a3600b94
Commit
a3600b94
authored
Jan 09, 2013
by
marina.kolpakova
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created abstract FeaturePool class
parent
19236b6e
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Showing
5 changed files
with
89 additions
and
23 deletions
+89
-23
octave.hpp
apps/sft/include/sft/octave.hpp
+16
-9
octave.cpp
apps/sft/octave.cpp
+13
-11
sft.cpp
apps/sft/sft.cpp
+3
-3
ml.hpp
modules/ml/include/opencv2/ml/ml.hpp
+11
-0
octave.cpp
modules/ml/src/octave.cpp
+46
-0
No files found.
apps/sft/include/sft/octave.hpp
View file @
a3600b94
...
...
@@ -102,28 +102,34 @@ private:
void
write
(
cv
::
FileStorage
&
fs
,
const
string
&
,
const
ICF
&
f
);
std
::
ostream
&
operator
<<
(
std
::
ostream
&
out
,
const
ICF
&
m
);
class
FeaturePool
class
ICFFeaturePool
:
public
cv
::
FeaturePool
{
public
:
FeaturePool
(
cv
::
Size
model
,
int
nfeatures
);
ICF
FeaturePool
(
cv
::
Size
model
,
int
nfeatures
);
int
size
()
const
{
return
(
int
)
pool
.
size
();
}
float
apply
(
int
fi
,
int
si
,
const
Mat
&
integrals
)
const
;
void
write
(
cv
::
FileStorage
&
fs
,
int
index
)
const
;
virtual
int
size
()
const
{
return
(
int
)
pool
.
size
();
}
virtual
float
apply
(
int
fi
,
int
si
,
const
Mat
&
integrals
)
const
;
virtual
void
write
(
cv
::
FileStorage
&
fs
,
int
index
)
const
;
virtual
~
ICFFeaturePool
();
private
:
void
fill
(
int
desired
);
cv
::
Size
model
;
int
nfeatures
;
Icfvector
pool
;
std
::
vector
<
ICF
>
pool
;
static
const
unsigned
int
seed
=
0
;
enum
{
N_CHANNELS
=
10
};
};
using
cv
::
FeaturePool
;
// used for traning single octave scale
class
Octave
:
cv
::
Boost
{
...
...
@@ -142,12 +148,13 @@ public:
Octave
(
cv
::
Rect
boundingBox
,
int
npositives
,
int
nnegatives
,
int
logScale
,
int
shrinkage
);
virtual
~
Octave
();
virtual
bool
train
(
const
Dataset
&
dataset
,
const
FeaturePool
&
pool
,
int
weaks
,
int
treeDepth
);
virtual
bool
train
(
const
Dataset
&
dataset
,
const
FeaturePool
*
pool
,
int
weaks
,
int
treeDepth
);
virtual
float
predict
(
const
Mat
&
_sample
,
Mat
&
_votes
,
bool
raw_mode
,
bool
return_sum
)
const
;
virtual
void
setRejectThresholds
(
cv
::
Mat
&
thresholds
);
virtual
void
write
(
CvFileStorage
*
fs
,
string
name
)
const
;
virtual
void
write
(
cv
::
FileStorage
&
fs
,
const
FeaturePool
&
pool
,
const
Mat
&
thresholds
)
const
;
virtual
void
write
(
cv
::
FileStorage
&
fs
,
const
FeaturePool
*
pool
,
const
Mat
&
thresholds
)
const
;
int
logScale
;
...
...
@@ -155,7 +162,7 @@ protected:
virtual
bool
train
(
const
cv
::
Mat
&
trainData
,
const
cv
::
Mat
&
responses
,
const
cv
::
Mat
&
varIdx
=
cv
::
Mat
(),
const
cv
::
Mat
&
sampleIdx
=
cv
::
Mat
(),
const
cv
::
Mat
&
varType
=
cv
::
Mat
(),
const
cv
::
Mat
&
missingDataMask
=
cv
::
Mat
());
void
processPositives
(
const
Dataset
&
dataset
,
const
FeaturePool
&
pool
);
void
processPositives
(
const
Dataset
&
dataset
,
const
FeaturePool
*
pool
);
void
generateNegatives
(
const
Dataset
&
dataset
);
float
predict
(
const
Mat
&
_sample
,
const
cv
::
Range
range
)
const
;
...
...
apps/sft/octave.cpp
View file @
a3600b94
...
...
@@ -197,14 +197,14 @@ public:
};
}
void
sft
::
Octave
::
processPositives
(
const
Dataset
&
dataset
,
const
FeaturePool
&
pool
)
void
sft
::
Octave
::
processPositives
(
const
Dataset
&
dataset
,
const
FeaturePool
*
pool
)
{
Preprocessor
prepocessor
(
shrinkage
);
int
w
=
boundingBox
.
width
;
int
h
=
boundingBox
.
height
;
integrals
.
create
(
pool
.
size
(),
(
w
/
shrinkage
+
1
)
*
(
h
/
shrinkage
*
10
+
1
),
CV_32SC1
);
integrals
.
create
(
pool
->
size
(),
(
w
/
shrinkage
+
1
)
*
(
h
/
shrinkage
*
10
+
1
),
CV_32SC1
);
int
total
=
0
;
for
(
svector
::
const_iterator
it
=
dataset
.
pos
.
begin
();
it
!=
dataset
.
pos
.
end
();
++
it
)
...
...
@@ -338,7 +338,7 @@ void sft::Octave::traverse(const CvBoostTree* tree, cv::FileStorage& fs, int& nf
fs
<<
"}"
;
}
void
sft
::
Octave
::
write
(
cv
::
FileStorage
&
fso
,
const
FeaturePool
&
pool
,
const
Mat
&
thresholds
)
const
void
sft
::
Octave
::
write
(
cv
::
FileStorage
&
fso
,
const
FeaturePool
*
pool
,
const
Mat
&
thresholds
)
const
{
CV_Assert
(
!
thresholds
.
empty
());
cv
::
Mat
used
(
1
,
weak
->
total
*
(
pow
(
2
,
params
.
max_depth
)
-
1
),
CV_32SC1
);
...
...
@@ -364,7 +364,7 @@ void sft::Octave::write( cv::FileStorage &fso, const FeaturePool& pool, const Ma
fso
<<
"features"
<<
"["
;
for
(
int
i
=
0
;
i
<
nfeatures
;
++
i
)
pool
.
write
(
fso
,
usedPtr
[
i
]);
pool
->
write
(
fso
,
usedPtr
[
i
]);
fso
<<
"]"
<<
"}"
;
}
...
...
@@ -376,7 +376,7 @@ void sft::Octave::initial_weights(double (&p)[2])
p
[
1
]
=
n
/
(
2.
*
(
double
)(
npositives
));
}
bool
sft
::
Octave
::
train
(
const
Dataset
&
dataset
,
const
FeaturePool
&
pool
,
int
weaks
,
int
treeDepth
)
bool
sft
::
Octave
::
train
(
const
Dataset
&
dataset
,
const
FeaturePool
*
pool
,
int
weaks
,
int
treeDepth
)
{
CV_Assert
(
treeDepth
==
2
);
CV_Assert
(
weaks
>
0
);
...
...
@@ -389,7 +389,7 @@ bool sft::Octave::train(const Dataset& dataset, const FeaturePool& pool, int wea
generateNegatives
(
dataset
);
// 2. only sumple case (all features used)
int
nfeatures
=
pool
.
size
();
int
nfeatures
=
pool
->
size
();
cv
::
Mat
varIdx
(
1
,
nfeatures
,
CV_32SC1
);
int
*
ptr
=
varIdx
.
ptr
<
int
>
(
0
);
...
...
@@ -417,7 +417,7 @@ bool sft::Octave::train(const Dataset& dataset, const FeaturePool& pool, int wea
float
*
dptr
=
trainData
.
ptr
<
float
>
(
fi
);
for
(
int
si
=
0
;
si
<
nsamples
;
++
si
)
{
dptr
[
si
]
=
pool
.
apply
(
fi
,
si
,
integrals
);
dptr
[
si
]
=
pool
->
apply
(
fi
,
si
,
integrals
);
}
}
...
...
@@ -448,18 +448,19 @@ void sft::Octave::write( CvFileStorage* fs, string name) const
}
// ========= FeaturePool ========= //
sft
::
FeaturePool
::
FeaturePool
(
cv
::
Size
m
,
int
n
)
:
model
(
m
),
nfeatures
(
n
)
sft
::
ICFFeaturePool
::
ICFFeaturePool
(
cv
::
Size
m
,
int
n
)
:
FeaturePool
(),
model
(
m
),
nfeatures
(
n
)
{
CV_Assert
(
m
!=
cv
::
Size
()
&&
n
>
0
);
fill
(
nfeatures
);
}
float
sft
::
FeaturePool
::
apply
(
int
fi
,
int
si
,
const
Mat
&
integrals
)
const
float
sft
::
ICF
FeaturePool
::
apply
(
int
fi
,
int
si
,
const
Mat
&
integrals
)
const
{
return
pool
[
fi
](
integrals
.
row
(
si
),
model
);
}
void
sft
::
FeaturePool
::
write
(
cv
::
FileStorage
&
fs
,
int
index
)
const
void
sft
::
ICF
FeaturePool
::
write
(
cv
::
FileStorage
&
fs
,
int
index
)
const
{
CV_Assert
((
index
>
0
)
&&
(
index
<
(
int
)
pool
.
size
()));
fs
<<
pool
[
index
];
...
...
@@ -470,8 +471,9 @@ void sft::write(cv::FileStorage& fs, const string&, const ICF& f)
fs
<<
"{"
<<
"channel"
<<
f
.
channel
<<
"rect"
<<
f
.
bb
<<
"}"
;
}
sft
::
ICFFeaturePool
::~
ICFFeaturePool
(){}
void
sft
::
FeaturePool
::
fill
(
int
desired
)
void
sft
::
ICF
FeaturePool
::
fill
(
int
desired
)
{
int
mw
=
model
.
width
;
int
mh
=
model
.
height
;
...
...
apps/sft/sft.cpp
View file @
a3600b94
...
...
@@ -117,7 +117,7 @@ int main(int argc, char** argv)
int
nfeatures
=
cfg
.
poolSize
;
cv
::
Size
model
=
cfg
.
model
(
it
);
std
::
cout
<<
"Model "
<<
model
<<
std
::
endl
;
sft
::
FeaturePool
pool
(
model
,
nfeatures
);
sft
::
ICF
FeaturePool
pool
(
model
,
nfeatures
);
nfeatures
=
pool
.
size
();
...
...
@@ -132,7 +132,7 @@ int main(int argc, char** argv)
std
::
string
path
=
cfg
.
trainPath
;
sft
::
Dataset
dataset
(
path
,
boost
.
logScale
);
if
(
boost
.
train
(
dataset
,
pool
,
cfg
.
weaks
,
cfg
.
treeDepth
))
if
(
boost
.
train
(
dataset
,
&
pool
,
cfg
.
weaks
,
cfg
.
treeDepth
))
{
CvFileStorage
*
fout
=
cvOpenFileStorage
(
cfg
.
resPath
(
it
).
c_str
(),
0
,
CV_STORAGE_WRITE
);
boost
.
write
(
fout
,
cfg
.
cascadeName
);
...
...
@@ -142,7 +142,7 @@ int main(int argc, char** argv)
cv
::
Mat
thresholds
;
boost
.
setRejectThresholds
(
thresholds
);
boost
.
write
(
fso
,
pool
,
thresholds
);
boost
.
write
(
fso
,
&
pool
,
thresholds
);
cv
::
FileStorage
tfs
((
"thresholds."
+
cfg
.
resPath
(
it
)).
c_str
(),
cv
::
FileStorage
::
WRITE
);
tfs
<<
"thresholds"
<<
thresholds
;
...
...
modules/ml/include/opencv2/ml/ml.hpp
View file @
a3600b94
...
...
@@ -2132,6 +2132,17 @@ template<> CV_EXPORTS void Ptr<CvDTreeSplit>::delete_obj();
CV_EXPORTS
bool
initModule_ml
(
void
);
CV_EXPORTS
class
FeaturePool
{
public
:
virtual
int
size
()
const
=
0
;
virtual
float
apply
(
int
fi
,
int
si
,
const
Mat
&
integrals
)
const
=
0
;
virtual
void
write
(
cv
::
FileStorage
&
fs
,
int
index
)
const
=
0
;
virtual
~
FeaturePool
()
=
0
;
};
}
#endif // __cplusplus
...
...
modules/ml/src/octave.cpp
0 → 100644
View file @
a3600b94
/*M///////////////////////////////////////////////////////////////////////////////////////
//
// IMPORTANT: READ BEFORE DOWNLOADING, COPYING, INSTALLING OR USING.
//
// By downloading, copying, installing or using the software you agree to this license.
// If you do not agree to this license, do not download, install,
// copy or use the software.
//
//
// License Agreement
// For Open Source Computer Vision Library
//
// Copyright (C) 2000-2008, Intel Corporation, all rights reserved.
// Copyright (C) 2008-2012, Willow Garage Inc., all rights reserved.
// Third party copyrights are property of their respective owners.
//
// Redistribution and use in source and binary forms, with or without modification,
// are permitted provided that the following conditions are met:
//
// * Redistribution's of source code must retain the above copyright notice,
// this list of conditions and the following disclaimer.
//
// * Redistribution's in binary form must reproduce the above copyright notice,
// this list of conditions and the following disclaimer in the documentation
// and/or other materials provided with the distribution.
//
// * The name of the copyright holders may not be used to endorse or promote products
// derived from this software without specific prior written permission.
//
// This software is provided by the copyright holders and contributors "as is" and
// any express or implied warranties, including, but not limited to, the implied
// warranties of merchantability and fitness for a particular purpose are disclaimed.
// In no event shall the Intel Corporation or contributors be liable for any direct,
// indirect, incidental, special, exemplary, or consequential damages
// (including, but not limited to, procurement of substitute goods or services;
// loss of use, data, or profits; or business interruption) however caused
// and on any theory of liability, whether in contract, strict liability,
// or tort (including negligence or otherwise) arising in any way out of
// the use of this software, even if advised of the possibility of such damage.
//
//M*/
#include "precomp.hpp"
cv
::
FeaturePool
::~
FeaturePool
(){}
\ No newline at end of file
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