FaceID: A 3D computer graphic application for forensic medicine: A novel semi-automated muscle based digital sculpting initiative for forensic facial reconstruction in Sri Lanka

The field of medicine has integrated with law and regulation in the form of forensic medicine. While the field of medicine, as a whole, is leaping forward by integrating computer solutions, Forensic Medicine- particularly in developing regions such as Sri Lanka- is lacking innovative computer integrations. The process of forensic facial reconstruction in particular, is still at its infancy in Sri Lanka, and is yet to utilize the advanced technologies of other countries. Hence introducing a more efficient multimedia based technique to the local forensic officials in order to improve the efficiency and the accuracy of the reconstructions is the aim of this study. In contrast to the facial reconstructions conducted in other countries, this study introduces a novel semi-automated method of computer aided digital sculpting to the field of forensic medicine. The adopted process involved, acquiring a 3D model of the skull and digitally sculpting muscles in a 3D environment, followed by adding different facial features to improve identification. The research also encompassed a tissue thickness analysis and a facial component analysis, both of which were conducted for the first time on Sri Lankans since both were needed to improve the accuracy of the final output. This procedure was attempted on cases of the age category 20–30 and of medium weight. The outputs and the process were evaluated with different parties such as general public, forensic officials, lawyers and CID all of which yielded true positive results. The ultimate goal of conducting the study was to understand and overcome the challenges faced in developing this novel application for the Sri Lankan Forensic officials and to establish the first unit for facial reconstruction in Sri Lanka.

[1]  Manish Motwani,et al.  The relationship between the soft tissues and the skeletal detail of the mouth. , 2003, Journal of forensic sciences.

[2]  G M Gordon,et al.  An investigation into the accuracy and reliability of skull-photo superimposition in a South African sample. , 2012, Forensic science international.

[3]  Pat Shipman,et al.  The human skeleton , 1985 .

[4]  B. P. Gatliff,et al.  Facial sculpture on the skull for identification , 1984, The American journal of forensic medicine and pathology.

[5]  P Vanezi,et al.  Facial reconstruction using 3-D computer graphics. , 2000, Forensic science international.

[6]  S Miyasaka,et al.  The computer-aided facial reconstruction system. , 1995, Forensic science international.

[7]  Björn Andersson,et al.  Digital 3D Facial Reconstruction Based on Computed Tomography , 2005 .

[8]  G. Lennerstrand,et al.  MRI measurements of normal extraocular muscles and other orbital structures , 2000, Graefe's Archive for Clinical and Experimental Ophthalmology.

[9]  P Vanezis,et al.  Application of 3-D computer graphics for facial reconstruction and comparison with sculpting techniques. , 1989, Forensic science international.

[10]  Andrea F. Abate,et al.  FACES: 3D FAcial reConstruction from anciEnt Skulls using content based image retrieval , 2004, J. Vis. Lang. Comput..

[11]  Caroline M Wilkinson,et al.  Measurement of eyeball protrusion and its application in facial reconstruction. , 2003, Journal of forensic sciences.

[12]  R. Hartley,et al.  Face Reconstructions using Flesh Deformation Modes , 2005 .

[13]  Damian Schofield,et al.  Forensic Facial Reconstruction using Computer Modeling Software , 2005 .

[14]  G. Tomezzoli,et al.  3D Facial Reconstruction from a Skull of a Male Subject of the Neolitic “square mouth vases” Culture of Quinzano (Verona-IT) , 2005 .

[15]  W. M. Krogman The human skeleton in forensic medicine. I. , 1963, Postgraduate medicine.