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Pattern Recognition and Applications

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lightbulbAbout this topic
Pattern recognition is a field of study within machine learning and artificial intelligence that focuses on the identification and classification of patterns and regularities in data. It involves algorithms and techniques that enable systems to recognize and interpret complex data structures, facilitating applications in various domains such as image processing, speech recognition, and data analysis.
lightbulbAbout this topic
Pattern recognition is a field of study within machine learning and artificial intelligence that focuses on the identification and classification of patterns and regularities in data. It involves algorithms and techniques that enable systems to recognize and interpret complex data structures, facilitating applications in various domains such as image processing, speech recognition, and data analysis.
This chapter serves as an introduction to 3D representations of scenes or Structure From Motion (SfM) from straight line segments. Lines are frequently found in captures of man-made environments, and in nature are mixed with more organic... more
Given an image sequence featuring a portion of a sports field filmed by a moving and uncalibrated camera, such as the one of a smartphone, our goal is to compute automatically and in real-time the focal length and extrinsic camera... more
This chapter serves as an introduction to 3D representations of scenes or Structure From Motion (SfM) from straight line segments. Lines are frequently found in captures of man-made environments, and in nature are mixed with more organic... more
by Titas De and 
1 more
Applied behavioral analysis (ABA) is an effective form of therapy for children with autism spectrum disorder (ASD), but it faces criticism for being un-generalizable, too time intensive, and too dependent on specialists to deliver... more
In this paper we consider face recognition from sets of face images and, in particular, recognition invariance to illumination. The main contribution is an algorithm based on the novel concept of Maximally Probable Mutual Modes (MMPM).... more
This paper addresses the problem of tracking moving objects of variable appearance in challenging scenes rich with features and texture. Reliable tracking is of pivotal importance in surveillance applications. It is made particularly... more
In this paper we are interested in analyzing behaviour in crowded public places at the level of holistic motion. Our aim is to learn, without user input, strong scene priors or labelled data, the scope of "normal behaviour" for a... more
Illumination invariance remains one of the most researched, yet the most challenging aspect of automatic face recognition. In this paper the discriminative power of colour-based invariants is investigated in the presence of large... more
Our aim in this paper is to robustly match frontal faces in the presence of extreme illumination changes, using only a single training image per person and a single probe image. In the illumination conditions we consider, which include... more
Shape matching and point correspondence recovering play a fundamental role in applications like pattern and object recognition, shape classification, image alignment and registration, visual information data mining, and many other... more
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