Estimation and Filtering Theory
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Recent papers in Estimation and Filtering Theory
This paper presents a frame work for hardware acceleration for post video processing system implemented on FPGA. The deblocking filter algorithms ported on SOC having Altera NIOS-II soft core processor.SOC designed with the help of SOPC... more
A high order signal model is proposed in which the states are Kronecker tensor products of probability distributions. This model enables an optimal linear filter to be specified. A minimum residual error variance criterion may be used to... more
Multi-sensor networks can alleviate the need for high-cost, high-accuracy, single-sensor tracking in favor of an abundance of lower-cost and lower-accuracy sensors to perform multi-sensor tracking. The use of a multi-sensor network gives... more
Convolving the output of Discontinuous Galerkin computations with symmetric Smoothness-Increasing Accuracy-Conserving (SIAC) filters can improve both smoothness and accuracy. To extend convolution to the boundaries, several one-sided... more
The sliding mode control of the Ball on a Beam system is dealt with in this paper. Static and dynamic slidingmode controllers are designed using the complete model of the Ball on a Beam system. Simulation results indicate that the... more
The Kalman filter is commonly used in neural interface systems to decode neural activity and estimate the desired movement kinematics. We analyze a low-complexity Kalman filter implementation in which the filter gain is approximated by... more
A simple UV-Visible spectrophotometric method has been developed for the determination of Atorvastatin in its pure form as well as pharmaceutical dosage form using Methyl Orange reagent. The method is based on the measurement... more
This paper presents an application of the Dual Extended Kalman Filter (DEKF) algorithm for the estimation of vehicle/ tyre dynamics states and parameters. The developed algorithm-Adap-tyre relies on online adaptation of simple tyre models... more
"This book provides several flight-validated formulations and algorithms, fortified by thousands of hours working with real GPS and inertial data. The material, not yet widely used only due to its originality, is beginning to appear in... more
Pokok Pembahasan: Ilustrasi Pengambilan Sampel, Field Table, dan Kriteria Kerapatan Mangrove,.
A novel modification is proposed to the Kalman filter for the case of non-Gaussian measurement noise. We model the non-Gaussian data as outliers. Measurement data is robustly discriminated between Gaussian (valid data) and outliers by... more
Personal positioning is a challenging topic in the area of navigation mainly because of the cost, size and power consumption constraints imposed on the hardware. Satel- lite based positioning techniques can meet the requirements for many... more
Target tracking performance is determined by the fidelity of target mobility model (F, Q), tracking sensor measurement quality (R), and sensor-to-target geometry (H). A tracking sensor manager has choices in sensor selection/placement... more
Center of Mass (CoM) estimation realizes a crucial role in legged locomotion. Most walking pattern generators and real-time gait stabilizers commonly assume that the CoM position and velocity are available for feedback. In this thesis we... more
Pokok Pembahasan: Definisi Penutupan Lamun, Teknik pengambilan sampel untuk estimasi penutupan lamun, Estimasi Kerapatan Lamun, dan Keragaman Lamun.
Today very important means of communication is the e-mail that allows people all over the world to communicate, share data, and perform business. Yet there is nothing worse than an inbox full of spam; i.e., information crafted to be... more
Vocabularies in Tendering and Estimating
Sensors can be used to measure the position of an object. In the present thesis the effects which limit the usage of sensors in high dynamic positioning applications on a nanometer level are discussed. Various sensor principles and... more
In recent years, signal processing has come under mounting pressure to accommodate the increasingly high-dimensional raw data generated by modern sensing systems. Despite extraordinary advances in computational power, processing the... more
The previously-discussed optimal Kalman filter [1] – [3] is routinely used for tracking observed and unobserved states whose second-order statistics change over time. It is often assumed within Kalman filtering applications that one or... more
This paper reviews an important result in estimation theory, now known as the Kalman filter, named after Rudolf E. Kalman. The Kalman filter solves the least-squares estimation problem recursively, and in a computationally ecient manner.... more
— Electrical devices often use RC, LC or RLC circuit to design power amplifiers, filters and mixers etc. Complex iterative algorithms are used for the simulation of these circuits.. This paper illustrates numerical experiments on growth... more
Problemi estimativi seguenti alla risoluzione contrattuale per grave inadempimento. Il contratto di locazione finanziaria può essere risolto per grave inadempimento qualora l’utilizzatore non provveda al pagamento di almeno sei canoni... more
This chapter presents the minimum-variance filtering results simplified for the case when the model parameters are time-invariant and the noise processes are stationary. The filtering objective remains the same, namely, the task is to... more
A strategy for adaptive control and energetic optimization of aerobic fermentors was implemented, with both air flow and agitation speed as manipulated variables. This strategy is separable in its components: control, optimization,... more
—In many contemporary engineering problems, model uncertainty is inherent because accurate system identification is virtually impossible owing to system complexity or lack of data on account of availability, time, or cost. The situation... more
Estimation theory applied to a school of fishes: speed estimation.
Monte Carlo Filter applied to noisy measurements to estimate the position of those fishes.
Analysis of the filter performance.
Monte Carlo Filter applied to noisy measurements to estimate the position of those fishes.
Analysis of the filter performance.
Abstract We propose a principled algorithm for robust Bayesian filtering and smoothing in nonlinear stochastic dynamic systems when both the transition function and the measurement function are described by non-parametric Gaussian process... more
— This article presents a complete formulation of the challenging task of stable humanoid robot omnidirectional walk based on the Cart and Table model for approximating the robot dynamics. For the control task, we propose two novel... more
The recently introduced theory of compressive sensing enables the recovery of sparse or compressible signals from a small set of nonadaptive, linear measurements. If properly chosen, the number of measurements can be much smaller than the... more
In this paper, a low power bulk-driven quasi-floating gate MOSFET based Miller compensated Operational Transconductance Amplifier (OTA) is proposed required particularly in design of Gm-C filter. The analysis of amplifier is compared with... more
The induction machine, because of its robustness and low-cost, is commonly used in the industry. Nevertheless, as every type of electrical machine, this machine suffers of some limitations. The most important one is the working... more
High efficiency filtration equipment have largely resulted from the development of filtration media with increased area-to-volume ratio and reduced the pore size. The pore size usually exceeds the particle size, particularly in fabric or... more
Today very important means of communication is the e-mail that allows people all over the world to communicate, share data, and perform business. Yet there is nothing worse than an inbox full of spam; i.e., information crafted to be... more
This chapter reviews the solutions for the discrete-time, linear stationary filtering problems that are attributed to Wiener [1] and Kolmogorov [2]. As in the continuous-time case, a model-based approach is employed. Here, a linear model... more
This work mainly focuses on signal processing issues related to continuous-wave, polarization-based direct imaging schemes. Here, we present a mathematical framework to analyze the performance of the Polarization Difference Imaging (PDI)... more
This paper investigates the anti-synchronization of identical hyperchaotic Xu systems (Xu, Cai and Zheng, 2009) via sliding mode control. The stability results derived in this paper for the anti-synchronization of identical hyperchaotic... more
Optimal filtering is concerned with designing the best linear system for recovering data from noisy measurements. It is a model-based approach requiring knowledge of the signal generating system. The signal models, together with the noise... more
Usually, standard inertial navigation unit (INU) with global positioning system (GPS) provides relatively poor accuracy in altitude estimation, while autonomous landing of unmanned aerial vehicles (UAVs) requires accurate position... more