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Image noise removal method based on nonconvex total generalized variation and primal-dual algorithm
Компьютерные исследования и моделирование, 2023, т. 15, № 3, с. 527-541In various applications, i. e., astronomical imaging, electron microscopy, and tomography, images are often damaged by Poisson noise. At the same time, the thermal motion leads to Gaussian noise. Therefore, in such applications, the image is usually corrupted by mixed Poisson – Gaussian noise.
In this paper, we propose a novel method for recovering images corrupted by mixed Poisson – Gaussian noise. In the proposed method, we develop a total variation-based model connected with the nonconvex function and the total generalized variation regularization, which overcomes the staircase artifacts and maintains neat edges.
Numerically, we employ the primal-dual method combined with the classical iteratively reweighted $l_1$ algorithm to solve our minimization problem. Experimental results are provided to demonstrate the superiority of our proposed model and algorithm for mixed Poisson – Gaussian removal to state-of-the-art numerical methods.
Image noise removal method based on nonconvex total generalized variation and primal-dual algorithm
Computer Research and Modeling, 2023, v. 15, no. 3, pp. 527-541In various applications, i. e., astronomical imaging, electron microscopy, and tomography, images are often damaged by Poisson noise. At the same time, the thermal motion leads to Gaussian noise. Therefore, in such applications, the image is usually corrupted by mixed Poisson – Gaussian noise.
In this paper, we propose a novel method for recovering images corrupted by mixed Poisson – Gaussian noise. In the proposed method, we develop a total variation-based model connected with the nonconvex function and the total generalized variation regularization, which overcomes the staircase artifacts and maintains neat edges.
Numerically, we employ the primal-dual method combined with the classical iteratively reweighted $l_1$ algorithm to solve our minimization problem. Experimental results are provided to demonstrate the superiority of our proposed model and algorithm for mixed Poisson – Gaussian removal to state-of-the-art numerical methods.
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О построении и свойствах WENO-схем пятого, седьмого, девятого, одиннадцатого и тринадцатого порядков. Часть 2. Численные примеры
Компьютерные исследования и моделирование, 2016, т. 8, № 6, с. 885-910Схемы WENO (взвешенные, существенно не осциллирующие схемы) в настоящее время имеют достаточно обширную область применения для аппроксимации разрывных решений в уравнениях в частных производных. Данные схемы применялись для прямого численного моделирования и моделирования динамики больших вихрей в задачах газовой динамики, задачах МГД и даже для задач нейтронной кинетики. Данная работа посвящена уточнению некоторых характеристик схем WENO и численному моделированию характерных задач, которые позволяют сделать выводы обоб ласти применимости данных схем. Первая часть работы содержала результаты по доказательству свойств аппроксимации, устойчивости и сходимости схем WENO5, WENO7, WENO9, WENO11 и WENO13. Во второй части работы проводится модифицированный волновой анализ, позволяющий сделать вывод о дисперсионных и диссипативных свойствах схем. Далее, проводится численное моделирование ряда характерных задач для уравнений гиперболического типа: уравнений переноса (одномерное и двухмерное), уравнения Хопфа, уравнения Бюргерса (с малой диссипацией) и уравнения динамики невязкого газа (одномерное и двухмерное). Для каждой из задач, подразумевающих гладкое решение, приведено практическое вычисление порядка аппроксимации с помощью метода Рунге. Во всех задачах проверяются выводы, сделанные в первой части работы по влиянию шага по времени на нелинейные свойства схем. В частности, для уравнений переноса разрывной функции и уравнений Хопфа показано, что невыполнение указанных рекомендаций ведет вначале к росту вариации решения, а затем включается диссипативный нелинейный механизм схемы и аппроксимация падает. Практически подтверждены выводы первой части по условиям устойчивости. Для одномерного уравнения Бюргерса проведено моделирование затухания случайно распределенных начальных условий в периодической области и выполнено сопоставление со спектральным методом. Делается вывод о применимости схем WENO7–WENO13 для прямого численного моделирования турбулентности. В конце демонстрируются возможности схем на начально-краевых задачах для уравнений динамики невязкого газа: неустойчивость Рэлея–Тейлора и отражение ударной волны от клина с образованием сложной конфигурации ударных волн и разрывов.
Ключевые слова: WENO-схемы, нелинейные схемы, устойчивость численных схем, системы уравнений гиперболического типа, уравнение Хопфа.
On the construction and properties of WENO schemes order five, seven, nine, eleven and thirteen. Part 2. Numerical examples
Computer Research and Modeling, 2016, v. 8, no. 6, pp. 885-910Просмотров за год: 13.WENO schemes (weighted, essentially non oscillating) are currently having a wide range of applications as approximate high order schemes for discontinuous solutions of partial differential equations. These schemes are used for direct numerical simulation (DNS) and large eddy simmulation in the gas dynamic problems, problems for DNS in MHD and even neutron kinetics. This work is dedicated to clarify some characteristics of WENO schemes and numerical simulation of specific tasks. Results of the simulations can be used to clarify the field of application of these schemes. The first part of the work contained proofs of the approximation properties, stability and convergence of WENO5, WENO7, WENO9, WENO11 and WENO13 schemes. In the second part of the work the modified wave number analysis is conducted that allows to conclude the dispersion and dissipative properties of schemes. Further, a numerical simulation of a number of specific problems for hyperbolic equations is conducted, namely for advection equations (one-dimensional and two-dimensional), Hopf equation, Burgers equation (with low dissipation) and equations of non viscous gas dynamics (onedimensional and two-dimensional). For each problem that is implying a smooth solution, the practical calculation of the order of approximation via Runge method is performed. The influence of a time step on nonlinear properties of the schemes is analyzed experimentally in all problems and cross checked with the first part of the paper. In particular, the advection equations of a discontinuous function and Hopf equations show that the failure of the recommendations from the first part of the paper leads first to an increase in total variation of the solution and then the approximation is decreased by the non-linear dissipative mechanics of the schemes. Dissipation of randomly distributed initial conditions in a periodic domain for one-dimensional Burgers equation is conducted and a comparison with the spectral method is performed. It is concluded that the WENO7–WENO13 schemes are suitable for direct numerical simulation of turbulence. At the end we demonstrate the possibility of the schemes to be used in solution of initial-boundary value problems for equations of non viscous gas dynamics: Rayleigh–Taylor instability and the reflection of the shock wave from a wedge with the formation a complex configuration of shock waves and discontinuities.
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Параллельная реализация решения сопряженной задачи определения внутрибаллистических характеристик двигателей на твердом топливе
Компьютерные исследования и моделирование, 2021, т. 13, № 1, с. 47-65Представлена физико-математическая постановка сопряженной геометрической и газодинамической задачи моделирования внутрикамерных процессов и расчета основных внутрибаллистических характеристик ракетных двигателей на твердом топливе в осесимметричном приближении. Изложены основополагающие методики и численный алгоритм решения задачи. Отслеживание горящей поверхности топлива осуществлено неявным образом с помощью метода уровней на декартовой структурированной вычислительной сетке. Для расчета параметров течения использованы двумерные уравнения газовой динамики. Ввиду несогласованности границ области с узлами вычислительной сетки, в численных расчетах учтено наличие фиктивных точек, лежащих вне рассматриваемой области, но рядом с границей. Для задания значений параметров течения в фиктивных точках применена обратная процедура Лакса – Вендроффа, заключающаяся в построении экстраполяционного полинома, который учитывает как текущее распределение параметров, так и условия на границе. Численное решение полученной системы уравнений основано на использовании WENO-схем пятого и третьего порядка для дискретной аппроксимации по пространственной координате уравнений метода уровней и газовой динамики соответственно и применении методов Рунге – Кутты, обладающих свойством уменьшения полной вариации, для решения полученных полудискретных уравнений. Изложенный численный алгоритм распараллелен с использованием технологии CUDA и в дальнейшем оптимизирован с учетом особенностей архитектуры графических процессоров.
Программный комплекс использован при расчетах внутрибаллистических характеристик бессоплового двигателя на твердом топливе в течение основного времени работы. На основе полученных численных результатов обсуждается эффективность распараллеливания с использованием технологии CUDA и применения рассмотренных оптимизаций. Показано, что применяемая методика распараллеливания приводит к значительному ускорению по сравнению с использованием центральных процессоров. Представлены распределения основных параметров течения продуктов сгорания в различные промежутки времени. Произведено сравнение полученных результатов квазиодномерного подхода и разработанной численной методики.
Ключевые слова: газовая динамика, ракетные двигатели на твердом топливе, внутренняя баллистика, параллельные вычисления.
Parallel implementation of numerical algorithm of solving coupled internal ballistics modelling problem for solid rocket motors
Computer Research and Modeling, 2021, v. 13, no. 1, pp. 47-65We present a physico-mathematical statement of coupled geometrical and gas dynamics problem of intrachamber processes simulation and calculation of main internal ballistics characteristics of solid rocket motors in axisymmetric approximation. Method and numerical algorithm of solving the problem are described in this paper. We track the propellant burning surface using the level set method. This method allows us to implicitly represent the surface on a fixed Cartesian grid as zero-level of some function. Two-dimensional gas-dynamics equations describe a flow of combustion products in a solid rocket motor. Due to inconsistency of domain boundaries and nodes of computational grid, presence of ghost points lying outside the computational domain is taken into account. For setting the values of flow parameters in ghost points, we use the inverse Lax – Wendroff procedure. We discretize spatial derivatives of level set and gas-dynamics equations with standard WENO schemes of fifth and third-order respectively and time derivatives using total variation diminishing Runge –Kutta methods. We parallelize the presented numerical algorithm using CUDA technology and further optimize it with regard to peculiarities of graphics processors architecture.
Created software package is used for calculating internal ballistics characteristics of nozzleless solid rocket motor during main firing phase. On the base of obtained numerical results, we discuss efficiency of parallelization using CUDA technology and applying considered optimizations. It has been shown that implemented parallelization technique leads to a significant acceleration in comparison with central processes. Distributions of key parameters of combustion products flow in different periods of time have been presented in this paper. We make a comparison of obtained results between quasione-dimensional approach and developed numerical technique.
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A hybrid regularizers approach based model for restoring image corrupted by Poisson noise
Компьютерные исследования и моделирование, 2021, т. 13, № 5, с. 965-978Image denoising is one of the fundamental problems in digital image processing. This problem usually refers to the reconstruction of an image from an observed image degraded by noise. There are many factors that cause this degradation such as transceiver equipment, or environmental influences, etc. In order to obtain higher quality images, many methods have been proposed for image denoising problem. Most image denoising method are based on total variation (TV) regularization to develop efficient algorithms for solving the related optimization problem. TV-based models have become a standard technique in image restoration with the ability to preserve image sharpness.
In this paper, we focus on Poisson noise usually appearing in photon-counting devices. We propose an effective regularization model based on combination of first-order and fractional-order total variation for image reconstruction corrupted by Poisson noise. The proposed model allows us to eliminate noise while edge preserving. An efficient alternating minimization algorithm is employed to solve the optimization problem. Finally, provided numerical results show that our proposed model can preserve more details and get higher image visual quality than recent state-of-the-art methods.
A hybrid regularizers approach based model for restoring image corrupted by Poisson noise
Computer Research and Modeling, 2021, v. 13, no. 5, pp. 965-978Image denoising is one of the fundamental problems in digital image processing. This problem usually refers to the reconstruction of an image from an observed image degraded by noise. There are many factors that cause this degradation such as transceiver equipment, or environmental influences, etc. In order to obtain higher quality images, many methods have been proposed for image denoising problem. Most image denoising method are based on total variation (TV) regularization to develop efficient algorithms for solving the related optimization problem. TV-based models have become a standard technique in image restoration with the ability to preserve image sharpness.
In this paper, we focus on Poisson noise usually appearing in photon-counting devices. We propose an effective regularization model based on combination of first-order and fractional-order total variation for image reconstruction corrupted by Poisson noise. The proposed model allows us to eliminate noise while edge preserving. An efficient alternating minimization algorithm is employed to solve the optimization problem. Finally, provided numerical results show that our proposed model can preserve more details and get higher image visual quality than recent state-of-the-art methods.
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Молекулярно-динамические исследования равновесных конфигураций одноименно заряженных частиц в планарных системах с круговой симметрией
Компьютерные исследования и моделирование, 2022, т. 14, № 3, с. 609-618В данной работе представлены результаты численного анализа равновесных конфигураций отрицательно заряженных частиц (электронов), запертых в круговой области бесконечным внешним потенциалом на ее границе. Для поиска устойчивых конфигураций с минимальной энергией авторами разработан гибридный вычислительный алгоритм. Основой алгоритма являются интерполяционные формулы, полученные из анализа равновесных конфигураций, полученных с помощью вариационного принципа минимума энергии для произвольного, но конечного числа частиц в циркулярной модели. Решения нелинейных уравнений данной модели предсказывают формирование оболочечной структуры в виде колец (оболочек), заполненных электронами, число которых уменьшается при переходе от внешнего кольца к внутренним. Число колец зависит от полного числа заряженных частиц. Полученные интерполяционные формулы распределения полного числа электронов по кольцам используются в качестве начальных конфигураций для метода молекулярной динамики. Данный подход позволяет значительно повысить скорость достижения равновесной конфигурации для произвольно выбранного числа частиц по сравнению с алгоритмом имитации отжига Метрополиса и другими алгоритмами, основанными на методах глобальной оптимизации.
Molecular dynamics studies of equilibrium configurations of equally charged particles in planar systems with circular symmetry
Computer Research and Modeling, 2022, v. 14, no. 3, pp. 609-618The equilibrium configurations of charged electrons, confined in the hard disk potential, are analysed by means of the hybrid numerical algorithm. The algorithm is based on the interpolation formulas, that are obtained from the analysis of the equilibrium configurations, provided by the variational principle developed in the circular model. The solution of the nonlinear equations of the circular model yields the formation of the shell structure which is composed of the series of rings. Each ring contains a certain number of particles, which decreases as one moves from the boundary ring to the central one. The number of rings depends on the total number of electrons. The interpolation formulas provide the initial configurations for the molecular dynamics calculations. This approach makes it possible to significantly increase the speed at which an equilibrium configuration is reached for an arbitrarily chosen number of particles compared to the Metropolis annealing simulation algorithm and other algorithms based on global optimization methods.
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An effective segmentation approach for liver computed tomography scans using fuzzy exponential entropy
Компьютерные исследования и моделирование, 2021, т. 13, № 1, с. 195-202Accurate segmentation of liver plays important in contouring during diagnosis and the planning of treatment. Imaging technology analysis and processing are wide usage in medical diagnostics, and therapeutic applications. Liver segmentation referring to the process of automatic or semi-automatic detection of liver image boundaries. A major difficulty in segmentation of liver image is the high variability as; the human anatomy itself shows major variation modes. In this paper, a proposed approach for computed tomography (CT) liver segmentation is presented by combining exponential entropy and fuzzy c-partition. Entropy concept has been utilized in various applications in imaging computing domain. Threshold techniques based on entropy have attracted a considerable attention over the last years in image analysis and processing literatures and it is among the most powerful techniques in image segmentation. In the proposed approach, the computed tomography (CT) of liver is transformed into fuzzy domain and fuzzy entropies are defined for liver image object and background. In threshold selection procedure, the proposed approach considers not only the information of liver image background and object, but also interactions between them as the selection of threshold is done by find a proper parameter combination of membership function such that the total fuzzy exponential entropy is maximized. Differential Evolution (DE) algorithm is utilizing to optimize the exponential entropy measure to obtain image thresholds. Experimental results in different CT livers scan are done and the results demonstrate the efficient of the proposed approach. Based on the visual clarity of segmented images with varied threshold values using the proposed approach, it was observed that liver segmented image visual quality is better with the results higher level of threshold.
Ключевые слова: segmentation, liver CT, threshold, fuzzy exponential entropy, differential evolution.
An effective segmentation approach for liver computed tomography scans using fuzzy exponential entropy
Computer Research and Modeling, 2021, v. 13, no. 1, pp. 195-202Accurate segmentation of liver plays important in contouring during diagnosis and the planning of treatment. Imaging technology analysis and processing are wide usage in medical diagnostics, and therapeutic applications. Liver segmentation referring to the process of automatic or semi-automatic detection of liver image boundaries. A major difficulty in segmentation of liver image is the high variability as; the human anatomy itself shows major variation modes. In this paper, a proposed approach for computed tomography (CT) liver segmentation is presented by combining exponential entropy and fuzzy c-partition. Entropy concept has been utilized in various applications in imaging computing domain. Threshold techniques based on entropy have attracted a considerable attention over the last years in image analysis and processing literatures and it is among the most powerful techniques in image segmentation. In the proposed approach, the computed tomography (CT) of liver is transformed into fuzzy domain and fuzzy entropies are defined for liver image object and background. In threshold selection procedure, the proposed approach considers not only the information of liver image background and object, but also interactions between them as the selection of threshold is done by find a proper parameter combination of membership function such that the total fuzzy exponential entropy is maximized. Differential Evolution (DE) algorithm is utilizing to optimize the exponential entropy measure to obtain image thresholds. Experimental results in different CT livers scan are done and the results demonstrate the efficient of the proposed approach. Based on the visual clarity of segmented images with varied threshold values using the proposed approach, it was observed that liver segmented image visual quality is better with the results higher level of threshold.
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Журнал включен в базу данных Russian Science Citation Index (RSCI) на платформе Web of Science
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