Title :
Estimation of depth fields suitable for video compression based on 3-D structure and motion of objects
Author :
Alatan, A. Aydin ; Onural, Levent
Author_Institution :
Dept. of Electr. & Electron. Eng., Bilkent Univ., Ankara, Turkey
fDate :
6/1/1998 12:00:00 AM
Abstract :
Intensity prediction along motion trajectories removes temporal redundancy considerably in video compression algorithms. In three-dimensional (3-D) object-based video coding, both 3-D motion and depth values are required for temporal prediction. The required 3-D motion parameters for each object are found by the correspondence-based E-matrix method. The estimation of the correspondences-two-dimensional (2-D) motion field-between the frames and segmentation of the scene into objects are achieved simultaneously by minimizing a Gibbs energy. The depth field is estimated by jointly minimizing a defined distortion and bit-rate criterion using the 3-D motion parameters. The resulting depth field is efficient in the rate-distortion sense. Bit-rate values corresponding to the lossless encoding of the resultant depth fields are obtained using predictive coding; prediction errors are encoded by a Lempel-Ziv algorithm. The results are satisfactory for real-life video scenes
Keywords :
coding errors; data compression; entropy codes; image segmentation; matrix algebra; motion estimation; parameter estimation; prediction theory; rate distortion theory; video coding; 2D motion field; 3D depth values; 3D motion parameters; 3D object-based video coding; 3D structure; Gibbs energy; Lempel-Ziv algorithm; bit-rate criterion; correspondence-based E-matrix method; depth field estimation; distortion criterion; entropy coding; frames; intensity prediction; lossless encoding; motion trajectories; prediction errors; predictive coding; rate-distortion; real-life video scenes; scene segmentation; temporal prediction; temporal redundancy; video compression algorithms; Bit rate; Image coding; Layout; Motion compensation; Motion estimation; Rate-distortion; Redundancy; Trajectory; Video coding; Video compression;
Journal_Title :
Image Processing, IEEE Transactions on