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Automatic face identification of characters in
movies become a challenging problem due to the
huge variation of each characters. In this paper, we
present two schemes of global face name matching
based frame work for robust character identification.
A noise insensitive character relationship
representation is incorporated. We introduce an edit
operation based graph matching algorithm.
The objective is to identify the faces of the characters in the
video and label them with the corresponding names in the
cast.

The textual clues like cast list, scripts, subtitles and closed
captions are usually exploited.

This occurrences provides lots of movie structure and
content.

Automatic character identification is essential for semantic
movie index and retrieval, scene segmentation and other
applications.
During face tracking and face clustering process,
    the noises has been generated.

    The performance are limited at the time of noise
    generation.
DISADVANTAGES
    The time taken for detecting the face is too long.

   The detected face cannot be more accurate.
By using clustering mechanism, the face of the
    movie character is detected more accurately.

ADVANTAGES

    In the proposed system, the face detection is
    performed in a minute process.

    The faces are identified easily in low
    resolution, complex background also.
   Two schemes considered in robust face name graph
    matching algorithm
     First, External script resources are utilized in both
    schemes belong to the global matching based
    category.
     Second, The original graph is employed for face
    name graph representation.
   In ECGM, the difference between the two graph is
    measured by edit distance which is a sequence of
    graph edit operation.

   The optimal match is achieved with the least edit
    distance.
FRONT END : Visual Studio 2010

BACK END: C#.Net
Design

Detection

Recognition
Robust face name graph matching for movie character identification

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Robust face name graph matching for movie character identification

  • 1.
  • 2. Automatic face identification of characters in movies become a challenging problem due to the huge variation of each characters. In this paper, we present two schemes of global face name matching based frame work for robust character identification. A noise insensitive character relationship representation is incorporated. We introduce an edit operation based graph matching algorithm.
  • 3. The objective is to identify the faces of the characters in the video and label them with the corresponding names in the cast. The textual clues like cast list, scripts, subtitles and closed captions are usually exploited. This occurrences provides lots of movie structure and content. Automatic character identification is essential for semantic movie index and retrieval, scene segmentation and other applications.
  • 4. During face tracking and face clustering process, the noises has been generated. The performance are limited at the time of noise generation. DISADVANTAGES  The time taken for detecting the face is too long.  The detected face cannot be more accurate.
  • 5. By using clustering mechanism, the face of the movie character is detected more accurately. ADVANTAGES  In the proposed system, the face detection is performed in a minute process.  The faces are identified easily in low resolution, complex background also.
  • 6.
  • 7. Two schemes considered in robust face name graph matching algorithm  First, External script resources are utilized in both schemes belong to the global matching based category.  Second, The original graph is employed for face name graph representation.
  • 8. In ECGM, the difference between the two graph is measured by edit distance which is a sequence of graph edit operation.  The optimal match is achieved with the least edit distance.
  • 9. FRONT END : Visual Studio 2010 BACK END: C#.Net