2.0CVMay 14, 2024
Local-peak scale-invariant feature transform for fast and random image stitchingHao Li, Lipo Wang, Tianyun Zhao et al.
Image stitching aims to construct a wide field of view with high spatial resolution, which cannot be achieved in a single exposure. Typically, conventional image stitching techniques, other than deep learning, require complex computation and thus computational pricy, especially for stitching large raw images. In this study, inspired by the multiscale feature of fluid turbulence, we developed a fast feature point detection algorithm named local-peak scale-invariant feature transform (LP-SIFT), based on the multiscale local peaks and scale-invariant feature transform method. By combining LP-SIFT and RANSAC in image stitching, the stitching speed can be improved by orders, compared with the original SIFT method. Nine large images (over 2600*1600 pixels), arranged randomly without prior knowledge, can be stitched within 158.94 s. The algorithm is highly practical for applications requiring a wide field of view in diverse application scenes, e.g., terrain mapping, biological analysis, and even criminal investigation.
3.7CRMar 19, 2014
Blind Recognition of Touched Keys: Attack and CountermeasuresQinggang Yue, Zhen Ling, Benyuan Liu et al.
In this paper, we introduce a novel computer vision based attack that discloses inputs on a touch enabled device, while the attacker cannot see any text or popups from a video of the victim tapping on the touch screen. In the attack, we use the optical flow algorithm to identify touching frames where the finger touches the screen surface. We innovatively use intersections of detected edges of the touch screen to derive the homography matrix mapping the touch screen surface in video frames to a reference image of the virtual keyboard. We analyze the shadow formation around the fingertip and use the k-means clustering algorithm to identify touched points. Homography can then map these touched points to keys of the virtual keyboard. Our work is substantially different from existing work. We target password input and are able to achieve a high success rate. We target scenarios like classrooms, conferences and similar gathering places and use a webcam or smartphone camera. In these scenes, single-lens reflex (SLR) cameras and high-end camcorders used in related work will appear suspicious. To defeat such computer vision based attacks, we design, implement and evaluate the Privacy Enhancing Keyboard (PEK) where a randomized virtual keyboard is used to input sensitive information.