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	    2014</a> | <a href="http://www.inria.fr/en/teams/prima">Presentation of the Project-Team PRIMA</a> | <a href="http://prima.inria.fr">PRIMA Web Site
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        <h2>Section: 
      Research Program</h2>
        <h3 class="titre3">Robust view-invariant Computer Vision</h3>
        <p>Local Appearance, Affine Invariance, Receptive Fields
</p>
        <a name="uid22"/>
        <h4 class="titre4">Summary</h4>
        <p>A long-term grand challenge in computer vision has been to develop
a descriptor for image information that can be reliably used
for a wide variety of computer vision tasks. Such a descriptor
must capture the information in an image in a manner that is
robust to changes the relative position of the camera as well
as the position, pattern and spectrum of illumination.</p>
        <p>Members of PRIMA have a long history of innovation in this area,
with important results in the area of multi-resolution pyramids,
scale invariant image description, appearance based object recognition
and receptive field histograms published over the last 20 years.
The group has most recently developed a new approach that extends
scale invariant feature points for the description of elongated objects using
scale invariant ridges.
PRIMA has worked with ST Microelectronics to embed its multi-resolution receptive field algorithms into low-cost
mobile imaging devices for video communications and mobile computing applications.</p>
        <a name="uid23"/>
        <h4 class="titre4">Detailed Description</h4>
        <p>The visual appearance of a neighbourhood can be described by
a local Taylor series <a href="./bibliography.html#prima-2014-bid5">[48]</a> .
The coefficients of this
series constitute a feature vector that compactly represents
the neighbourhood appearance for indexing and matching. The set
of possible local image neighbourhoods that project to the same
feature vector are referred to as the "Local Jet".
A key problem in computing the local jet is determining the scale
at which to evaluate the image derivatives.</p>
        <p>Lindeberg <a href="./bibliography.html#prima-2014-bid6">[50]</a> 
has described scale invariant features based on profiles of Gaussian
derivatives across scales. In particular, the profile of the
Laplacian, evaluated over a range of scales at an image point,
provides a local description that is "equi-variant” to
changes in scale. Equi-variance means that the feature vector
translates exactly with scale and can thus be used to track,
index, match and recognize structures in the presence of changes
in scale.</p>
        <p>A receptive field is a local function defined over a region of
an image <a href="./bibliography.html#prima-2014-bid7">[56]</a> . We employ a set of receptive
fields based on derivatives of the Gaussian functions as a basis
for describing the local appearance. These functions resemble
the receptive fields observed in the visual cortex of mammals.
These receptive fields are applied to color images in which we
have separated the chrominance and luminance components. Such
functions are easily normalized to an intrinsic scale using the
maximum of the Laplacian <a href="./bibliography.html#prima-2014-bid6">[50]</a> , and normalized
in orientation using direction of the first derivatives <a href="./bibliography.html#prima-2014-bid7">[56]</a> .</p>
        <p>The local maxima in x and y and scale of the product of a Laplacian
operator with the image at a fixed position provides a "Natural
interest point" <a href="./bibliography.html#prima-2014-bid8">[52]</a> . Such natural interest
points are salient points that may be robustly detected and used
for matching. A problem with this approach is that the computational
cost of determining intrinsic scale at each image position can
potentially make real-time implementation unfeasible.</p>
        <p>A vector of scale and orientation normalized Gaussian derivatives
provides a characteristic vector for matching and indexing. The
oriented Gaussian derivatives can easily be synthesized using
the "steerability property" <a href="./bibliography.html#prima-2014-bid9">[39]</a> 
of Gaussian derivatives. The problem is to determine the appropriate
orientation. In earlier work by PRIMA members Colin de Verdiere
<a href="./bibliography.html#prima-2014-bid10">[31]</a> , Schiele <a href="./bibliography.html#prima-2014-bid7">[56]</a>  and Hall <a href="./bibliography.html#prima-2014-bid11">[43]</a> ,
proposed normalising the local jet independently at each pixel
to the direction of the first derivatives calculated at the intrinsic
scale. This results for many view invariant
image recognition tasks are described in the next section.</p>
        <p>Key results in this area
include</p>
        <ul>
          <li>
            <p class="notaparagraph"><a name="uid24"> </a>Fast, video rate, calculation of scale and orientation
for image description with normalized chromatic receptive fields
<a href="./bibliography.html#prima-2014-bid3">[34]</a> .</p>
          </li>
          <li>
            <p class="notaparagraph"><a name="uid25"> </a>Robust visual features for face tracking
<a href="./bibliography.html#prima-2014-bid12">[41]</a> , <a href="./bibliography.html#prima-2014-bid13">[40]</a> .</p>
          </li>
          <li>
            <p class="notaparagraph"><a name="uid26"> </a>Direct computation of time to
collision over the entire visual field using rate of change of
intrinsic scale <a href="./bibliography.html#prima-2014-bid14">[54]</a> .</p>
          </li>
        </ul>
        <p>We have achieved video rate calculation of scale and orientation normalized
Gaussian receptive fields using an O(N) pyramid algorithm <a href="./bibliography.html#prima-2014-bid3">[34]</a> .
This algorithm has been used to propose an embedded system that provides real
time detection and recognition of faces and objects in mobile computing devices.</p>
        <p>Applications have been demonstrated for detection, tracking and recognition of faces as well detection of emotions and posture at video rates.</p>
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