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1.
Sensors (Basel) ; 20(17)2020 Sep 02.
Article in English | MEDLINE | ID: mdl-32887286

ABSTRACT

Tracking and action-recognition algorithms are currently widely used in video surveillance, monitoring urban activities and in many other areas. Their development highly relies on benchmarking scenarios, which enable reliable evaluations/improvements of their efficiencies. Presently, benchmarking methods for tracking and action-recognition algorithms rely on manual annotation of video databases, prone to human errors, limited in size and time-consuming. Here, using gained experiences, an alternative benchmarking solution is presented, which employs methods and tools obtained from the computer-game domain to create simulated video data with automatic annotations. Presented approach highly outperforms existing solutions in the size of the data and variety of annotations possible to create. With proposed system, a potential user can generate a sequence of random images involving different times of day, weather conditions, and scenes for use in tracking evaluation. In the design of the proposed tool, the concept of crowd simulation is used and developed. The system is validated by comparisons to existing methods.


Subject(s)
Algorithms , Computer Simulation , Crowding , Benchmarking , Humans , Video Recording
2.
Comput Math Methods Med ; 2019: 6917658, 2019.
Article in English | MEDLINE | ID: mdl-31428185

ABSTRACT

The ability of the locomotor system to maintain continuous walking despite very small external or internal disturbances is called local dynamic stability (LDS). The importance of the LDS requires constantly working on different aspects of its assessment method which is based on the short-term largest Lyapunov exponent (LLE). A state space structure is a vital aspect of the LDS assessment because the algorithm of the LLE computation for experimental data requires a reconstruction of a state space trajectory. The gait kinematic data are usually one- or three-dimensional, which enables to construct a state space based on a uni- or multivariate time series. Furthermore, two variants of the short-term LLE are present in the literature which differ in length of a time span, over which the short-term LLE is computed. Both a state space structure and the consistency of the observations based on values of both short-term LLE variants were analyzed using time series representing the joint angles at ankle, knee, and hip joints. The short-term LLE was computed for individual joints in three state spaces constructed on the basis of either univariate or multivariate time series. Each state space revealed walkers' locally unstable behavior as well as its attenuation in the current stride. The corresponding conclusions made on the basis of both short-term LLE variants were consistent in ca. 59% of cases determined by a joint and a state space. Moreover, the authors present an algorithm for estimation of the embedding dimension in the case of a multivariate gait time series.


Subject(s)
Gait Analysis/methods , Gait/physiology , Walking/physiology , Aged , Algorithms , Ankle Joint/physiology , Biomechanical Phenomena , Exercise Test/statistics & numerical data , Female , Gait Analysis/statistics & numerical data , Hip Joint/physiology , Humans , Knee Joint/physiology , Male , Mathematical Concepts , Models, Biological , Multivariate Analysis , Systems Theory , Time Factors
3.
ScientificWorldJournal ; 2014: 831691, 2014.
Article in English | MEDLINE | ID: mdl-24955420

ABSTRACT

This paper introduces an expanded version of the Invasive Weed Optimization algorithm (exIWO) distinguished by the hybrid strategy of the search space exploration proposed by the authors. The algorithm is evaluated by solving three well-known optimization problems: minimization of numerical functions, feature selection, and the Mona Lisa TSP Challenge as one of the instances of the traveling salesman problem. The achieved results are compared with analogous outcomes produced by other optimization methods reported in the literature.


Subject(s)
Algorithms , Problem Solving
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