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Digital Video Steganalysis Based on a Spatial Temporal Detector

  • Su, Yuting (School of Electronic Information Engineering, Tianjin University) ;
  • Yu, Fan (School of Electronic Information Engineering, Tianjin University) ;
  • Zhang, Chengqian (School of Electronic Information Engineering, Tianjin University)
  • Received : 2016.06.03
  • Accepted : 2016.10.24
  • Published : 2017.01.31

Abstract

This paper presents a novel digital video steganalysis scheme against the spatial domain video steganography technology based on a spatial temporal detector (ST_D) that considers both spatial and temporal redundancies of the video sequences simultaneously. Three descriptors are constructed on XY, XT and YT planes respectively to depict the spatial and temporal relationship between the current pixel and its adjacent pixels. Considering the impact of local motion intensity and texture complexity on the histogram distribution of three descriptors, each frame is segmented into non-overlapped blocks that are $8{\times}8$ in size for motion and texture analysis. Subsequently, texture and motion factors are introduced to provide reasonable weights for histograms of the three descriptors of each block. After further weighted modulation, the statistics of the histograms of the three descriptors are concatenated into a single value to build the global description of ST_D. The experimental results demonstrate the great advantage of our features relative to those of the rich model (RM), the subtractive pixel adjacency model (SPAM) and subtractive prediction error adjacency matrix (SPEAM), especially for compressed videos, which constitute most Internet videos.

Keywords

References

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