Results for 'Parameter estimation'

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  1.  47
    Parameters estimation, mixed synchronization, and antisynchronization in chaotic systems.Chunni Wang, Yujun He, Jun Ma & Long Huang - 2014 - Complexity 20 (1):64-73.
  2.  29
    Parameter estimation vs. hypothesis testing.M. I. Charles E. Woodson - 1969 - Philosophy of Science 36 (2):203-204.
    Professor Meehl [2] has pointed out a very significant problem in the methodology of psychological research, indicating that statistical tests of psychological hypotheses against a null hypothesis are loaded in favor of eventual success at rejecting the null hypothesis. In my opinion this is not, however, a contrast between physics and psychology, but rather between the method of parameter estimation and that of the null hypothesis in the tradition of Fisher. A physicist could use the null hypothesis method (...)
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  3.  10
    Parameter estimation or hypothesis testing in the statistical analysis of biological rhythms?Ernst PÖppel - 1975 - Bulletin of the Psychonomic Society 6 (5):511-512.
  4.  10
    Accurate parameter estimation for safety-critical systems with unmodeled dynamics.Arnab Sarker, Peter Fisher, Joseph E. Gaudio & Anuradha M. Annaswamy - 2023 - Artificial Intelligence 316 (C):103857.
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  5.  4
    Parameter estimates depend both on the source model and on the fitted model: An example.Charles E. Collyer - 1988 - Bulletin of the Psychonomic Society 26 (4):289-292.
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  6.  8
    Likelihood-based parameter estimation and comparison of dynamical cognitive models.Heiko H. Schütt, Lars O. M. Rothkegel, Hans A. Trukenbrod, Sebastian Reich, Felix A. Wichmann & Ralf Engbert - 2017 - Psychological Review 124 (4):505-524.
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  7.  5
    An Improved Parameter-Estimating Method in Bayesian Networks Applied for Cognitive Diagnosis Assessment.Ling Ling Wang, Tao Xin & Liu Yanlou - 2021 - Frontiers in Psychology 12.
    Bayesian networks can be employed to cognitive diagnostic assessment. Most of the existing researches on the BNs for CDA utilized the MCMC algorithm to estimate parameters of BNs. When EM algorithm and gradient descending learning method are adopted to estimate the parameters of BNs, some challenges may emerge in educational assessment due to the monotonic constraints cannot be satisfied in the above two methods. This paper proposed to train the BN first based on the ideal response pattern data contained in (...)
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  8.  4
    Calibration for Parameter Estimation of Signals with Complex Noise via Nonstationarity Measure.Zhiming Zhou, Zhengyun Zhou & Liang Wu - 2021 - Complexity 2021:1-12.
    The signals in numerous complex systems of engineering can be regarded as nonlinear parameter trend with noise which is identically distributed random signals or deterministic stationary chaotic signals. The commonly used methods for parameter estimation of nonlinear trend in signals are mainly based on least squares. It can cause inaccurate estimation results when the noise is complex. This paper proposes a calibration method for this issue in the case of single parameter via nonstationarity measure from (...)
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  9.  13
    Comparing Eight Parameter Estimation Methods for the Ratcliff Diffusion Model Using Free Software.Rainer W. Alexandrowicz & Bartosz Gula - 2020 - Frontiers in Psychology 11.
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  10.  7
    Hierarchical Newton Iterative Parameter Estimation of a Class of Input Nonlinear Systems Based on the Key Term Separation Principle.Cheng Wang, Kaicheng Li & Shuai Su - 2018 - Complexity 2018:1-11.
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  11.  13
    Hierarchical differential evolution for parameter estimation in chemical kinetics.Yuan Shi & Xing Zhong - 2008 - In Tu-Bao Ho & Zhi-Hua Zhou (eds.), Pricai 2008: Trends in Artificial Intelligence. Springer. pp. 870--879.
  12.  9
    Multi-Sensor Wearable Health Device Framework for Real-Time Monitoring of Elderly Patients Using a Mobile Application and High-Resolution Parameter Estimation.Gabriel P. M. Pinheiro, Ricardo K. Miranda, Bruno J. G. Praciano, Giovanni A. Santos, Fábio L. L. Mendonça, Elnaz Javidi, João Paulo Javidi da Costa & Rafael T. de Sousa - 2022 - Frontiers in Human Neuroscience 15.
    Automatized scalable healthcare support solutions allow real-time 24/7 health monitoring of patients, prioritizing medical treatment according to health conditions, reducing medical appointments in clinics and hospitals, and enabling easy exchange of information among healthcare professionals. With recent health safety guidelines due to the COVID-19 pandemic, protecting the elderly has become imperative. However, state-of-the-art health wearable device platforms present limitations in hardware, parameter estimation algorithms, and software architecture. This paper proposes a complete framework for health systems composed of multi-sensor (...)
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  13.  11
    Corrigendum to “Accurate parameter estimation for safety-critical systems with unmodeled dynamics” [Artif. Intell. 316 (2023) 103857]. [REVIEW]Arnab Sarker, Peter Fisher, Joseph E. Gaudio & Anuradha M. Annaswamy - 2023 - Artificial Intelligence 317 (C):103878.
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  14.  6
    Adaptive Gaussian Incremental Expectation Stadium Parameter Estimation Algorithm for Sports Video Analysis.Lizhi Geng - 2021 - Complexity 2021:1-10.
    In this paper, we propose an adaptive Gaussian incremental expectation stadium parameter estimation algorithm for sports video analysis and prediction through the study and analysis of sports videos. The features with more discriminative power are selected from the set of positive and negative templates using a feature selection mechanism, and a sparse discriminative model is constructed by combining a confidence value metric strategy. The sparse generative model is constructed by combining L1 regularization and subspace representation, which retains sufficient (...)
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  15.  4
    Simulation of Tennis Match Scene Classification Algorithm Based on Adaptive Gaussian Mixture Model Parameter Estimation.Yuwei Wang & Mofei Wen - 2021 - Complexity 2021:1-12.
    This paper presents an in-depth analysis of tennis match scene classification using an adaptive Gaussian mixture model parameter estimation simulation algorithm. We divided the main components of semantic analysis into type of motion, distance of motion, speed of motion, and landing area of the tennis ball. Firstly, for the problem that both people and tennis balls in the video frames of tennis matches from the surveillance viewpoint are very small, we propose an adaptive Gaussian mixture model parameter (...)
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  16.  8
    The Influence of Sample Size on Parameter Estimates in Three-Level Random-Effects Models.Denise Kerkhoff & Fridtjof W. Nussbeck - 2019 - Frontiers in Psychology 10.
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  17.  27
    Using Modified Intelligent Experimental Design in Parameter Estimation of Chaotic Systems.Zahra Shourgashti, Hamid Keshvari & Shirin Panahi - 2017 - Complexity:1-6.
    Computational modeling plays an important role in prediction and optimization of real systems and processes. Models usually have some parameters which should be set up to the proper value. Therefore, parameter estimation is known as an important part of the modeling and system identification. It usually refers to the process of using sampled data to estimate the optimum values of parameters. The accuracy of model can be increased by adjusting its parameters to the optimum value which need a (...)
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  18.  35
    Estimating latent causal influences: Tetrad III variable selection and bayesian parameter estimation.Richard Scheines - unknown
    The statistical evidence for the detrimental effect of exposure to low levels of lead on the cognitive capacities of children has been debated for several decades. In this paper I describe how two techniques from artificial intelligence and statistics help make the statistical evidence for the accepted epidemiological conclusion seem decisive. The first is a variable-selection routine in TETRAD III for finding causes, and the second a Bayesian estimation of the parameter reflecting the causal influence of Actual Lead (...)
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  19.  15
    On Extended Neoteric Ranked Set Sampling Plan: Likelihood Function Derivation and Parameter Estimation.Fathy H. Riad, Mohamed A. Sabry, Ehab M. Almetwally, Ramy Aldallal, Randa Alharbi & Md Moyazzem Hossain - 2022 - Complexity 2022:1-13.
    The extended neoteric ranked set sampling plan proposed by Taconeli and Cabral has proven to outperform many one stages and two stages ranked set sampling plans when estimating the mean and the variance for different populations. Therefore, in this paper, the likelihood function based on ENRSS is proposed and used for estimation of the parameters of the inverted Nadarajah–Haghighi distribution. An extensive Monte Carlo simulation study is conducted to assess the performance of the proposed likelihood function, and the efficiency (...)
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  20.  46
    A Solution to Modeling Multilevel Confirmatory Factor Analysis with Data Obtained from Complex Survey Sampling to Avoid Conflated Parameter Estimates.Jiun-Yu Wu, John J. H. Lin, Mei-Wen Nian & Yi-Cheng Hsiao - 2017 - Frontiers in Psychology 8.
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  21.  10
    The Indecision Model of Psychophysical Performance in Dual-Presentation Tasks: Parameter Estimation and Comparative Analysis of Response Formats.A. García-Pérez Miguel & Alcalá-Quintana Rocío - 2017 - Frontiers in Psychology 8.
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  22.  51
    Modeling the Cardiovascular-Respiratory Control System: Data, Model Analysis, and Parameter Estimation.Jerry J. Batzel & Mostafa Bachar - 2010 - Acta Biotheoretica 58 (4):369-380.
    Several key areas in modeling the cardiovascular and respiratory control systems are reviewed and examples are given which reflect the research state of the art in these areas. Attention is given to the interrelated issues of data collection, experimental design, and model application including model development and analysis. Examples are given of current clinical problems which can be examined via modeling, and important issues related to model adaptation to the clinical setting.
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  23.  4
    A belief network approach to optimization and parameter estimation: application to resource and environmental management.Olli Vans - 1998 - Artificial Intelligence 101 (1-2):135-163.
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  24.  31
    Estimation of Parameters in a Bertalanffy Type of Temperature Dependent Growth Model Using Data on Juvenile Stone Loach (Barbatula barbatula).Johan Grasman, Willem B. E. van Deventer & Vincent van Laar - 2012 - Acta Biotheoretica 60 (4):393-405.
    Parameters of a Bertalanffy type of temperature dependent growth model are fitted using data from a population of stone loach ( Barbatula barbatula ). Over two periods respectively in 1990 and 2010 length data of this population has been collected at a lowland stream in the central part of the Netherlands. The estimation of the maximum length of a fully grown individual is given special attention because it is in fact found as the result of an extrapolation over a (...)
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  25.  7
    Estimating cumulative prospect theory parameters from an international survey.Marc Oliver Rieger, Mei Wang & Thorsten Hens - 2017 - Theory and Decision 82 (4):567-596.
    We conduct a standardized survey on risk preferences in 53 countries worldwide and estimate cumulative prospect theory parameters from the data. The parameter estimates show that significant differences on the cross-country level are to some extent robust and related to economic and cultural differences. In particular, a closer look on probability weighting underlines gender differences, economic effects, and cultural impact on probability weighting. The data set is a useful starting point for future research that investigates the impact of risk (...)
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  26.  44
    Estimation of Reliability Parameters Under Incomplete Primary Information.A. N. Golodnikov, P. S. Knopov & V. A. Pepelyaev - 2004 - Theory and Decision 57 (4):331-344.
    We consider the procedure for small-sample estimation of reliability parameters. The main shortcomings of the classical methods and the Bayesian approach are analyzed. Models that find robust Bayesian estimates are proposed. The sensitivity of the Bayesian estimates to the choice of the prior distribution functions is investigated using models that find upper and lower bounds. The proposed models reduce to optimization problems in the space of distribution functions.
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  27.  18
    Estimates of expected value as a function of distribution parameters.Robert J. Schreiber - 1957 - Journal of Experimental Psychology 53 (3):218.
  28.  10
    Estimating a Key Parameter of Mammalian Mating Systems: The Chance of Siring Success for a Mated Male.Ash Abebe, Hannah E. Correia & F. Stephen Dobson - 2019 - Bioessays 41 (12):1900016.
    Studies of multiple paternity in mammals and other animal species generally report proportion of multiple paternity among litters, mean litter sizes, and mean number of sires per litter. It is shown how these variables can be used to produce an estimate of the probability of reproductive success for a male that has mated with a female. This estimate of male success is more informative about the mating system that alternative measures, like the proportion of litters with multiple paternity or the (...)
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  29.  10
    Estimation for Parameters of Life of the Marshall-Olkin Generalized-Exponential Distribution Using Progressive Type-II Censored Data.Ahmed Elshahhat, Abdisalam Hassan Muse, Omer Mohamed Egeh & Berihan R. Elemary - 2022 - Complexity 2022:1-36.
    A new three-parameter extension of the generalized-exponential distribution, which has various hazard rates that can be increasing, decreasing, bathtub, or inverted tub, known as the Marshall-Olkin generalized-exponential distribution has been considered. So, this article addresses the problem of estimating the unknown parameters and survival characteristics of the three-parameter MOGE lifetime distribution when the sample is obtained from progressive type-II censoring via maximum likelihood and Bayesian approaches. Making use of the s-normality of classical estimators, two types of approximate confidence (...)
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  30.  21
    Estimating causal parameters without target populations.Eyal Shahar - 2007 - Journal of Evaluation in Clinical Practice 13 (5):814-816.
  31.  16
    Estimation of Climatic Parameters of a PV System Based on Gradient Method.Rabiaa Gammoudi, Houda Brahmi & Rachid Dhifaoui - 2019 - Complexity 2019:1-10.
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  32.  40
    Estimation of a Bernouilli Parameter: A Normative Approach to Replace the Bayesian One.Jean-franÇois Laslier - 1989 - Theory and Decision 26 (3):253.
  33.  19
    Estimation of signal detection theory parameters from rating-method data: A comparison of the method of scoring and direct search.Donald D. Dorfman, Lynn L. Beavers & Carl Saslow - 1973 - Bulletin of the Psychonomic Society 1 (3):207-208.
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  34.  26
    Estimation and Identifiability of Model Parameters in Human Nociceptive Processing Using Yes-No Detection Responses to Electrocutaneous Stimulation.Huan Yang, Hil G. E. Meijer, Jan R. Buitenweg & Stephan A. van Gils - 2016 - Frontiers in Psychology 7.
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  35.  23
    Sample Size Requirements for Estimation of Item Parameters in the Multidimensional Graded Response Model.Shengyu Jiang, Chun Wang & David J. Weiss - 2016 - Frontiers in Psychology 7.
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  36.  5
    Bootstrapping U-statistics with estimated parameters.Paul Janssen & Noël Veraverbeke - 1992 - History and Philosophy of Logic 21 (6):1585-1603.
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  37.  58
    Parameters of social preference functions: measurement and external validity.Christoph Graf, Rudolf Vetschera & Yingchao Zhang - 2013 - Theory and Decision 74 (3):357-382.
    Most of the existing literature on social preferences either tests whether certain characteristics of the social context influence individual decisions, or tries to estimate parameters of social preference functions describing such behavior at the level of the entire population. In the present paper, we are concerned with measuring parameters of social preference functions at the individual level. We draw upon concepts developed for eliciting other types of utility functions, in particular the literature on decision making under incomplete information. Our method (...)
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  38.  8
    Capturing Dynamic Performance in a Cognitive Model: Estimating ACT‐R Memory Parameters With the Linear Ballistic Accumulator.Maarten van der Velde, Florian Sense, Jelmer P. Borst, Leendert van Maanen & Hedderik van Rijn - 2022 - Topics in Cognitive Science 14 (4):889-903.
    The parameters governing our behavior are in constant flux. Accurately capturing these dynamics in cognitive models poses a challenge to modelers. Here, we demonstrate a mapping of ACT-R's declarative memory onto the linear ballistic accumulator (LBA), a mathematical model describing a competition between evidence accumulation processes. We show that this mapping provides a method for inferring individual ACT-R parameters without requiring the modeler to build and fit an entire ACT-R model. Existing parameter estimation methods for the LBA can (...)
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  39.  29
    Populations with explicit borders in space and time: Concept, terminology, and estimation of characteristic parameters.Manfred A. Pfeifer, Klaus Henle & Josef Settele - 2007 - Acta Biotheoretica 55 (4):305-316.
    Biologists studying short-lived organisms have become aware of the need to recognize an explicit temporal extend of a population over a considerable time. In this article we outline the concept and the realm of populations with explicit spatial and temporary boundaries. We call such populations “temporally bounded populations”. In the concept, time is of the same importance as space in terms of a dimension to which a population is restricted. Two parameters not available for populations that are only spatially defined (...)
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  40.  23
    Sequential decision making: Wald's model and estimates of parameters.Gordon M. Becker - 1958 - Journal of Experimental Psychology 55 (6):628.
  41.  18
    Capturing Dynamic Performance in a Cognitive Model: Estimating ACT‐R Memory Parameters With the Linear Ballistic Accumulator.Maarten Velde, Florian Sense, Jelmer P. Borst, Leendert Maanen & Hedderik Rijn - 2022 - Topics in Cognitive Science 14 (4):889-903.
    The parameters governing our behavior are in constant flux, and capturing these dynamics in cognitive models remains a challenge. We demonstrate how a mapping between ACT‐R's model of declarative memory and the linear ballistic accumulator enables efficient estimation of memory parameters from data. The resulting estimates provide a cognitively meaningful explanation for observed differences in behavior over time and between individuals.
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  42. Estimation and Model Selection in Dirichlet Regression.Julio Michael Stern - 2012 - AIP Conference Proceedings 1443:206-213.
    We study Compositional Models based on Dirichlet Regression where, given a (vector) covariate x, one considers the response variable, y, to be a positive vector with a conditional Dirichlet distribution, y | X We introduce a new method for estimating the parameters of the Dirichlet Covariate Model given a linear model on X, and also propose a Bayesian model selection approach. We present some numerical results which suggest that our proposals are more stable and robust than traditional approaches.
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  43.  15
    Calculation of Average Mutual Information and False-Nearest Neighbors for the Estimation of Embedding Parameters of Multidimensional Time Series in Matlab.Sebastian Wallot & Dan Mønster - 2018 - Frontiers in Psychology 9.
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  44.  22
    Parameter Inference for Computational Cognitive Models with Approximate Bayesian Computation.Antti Kangasrääsiö, Jussi P. P. Jokinen, Antti Oulasvirta, Andrew Howes & Samuel Kaski - 2019 - Cognitive Science 43 (6):e12738.
    This paper addresses a common challenge with computational cognitive models: identifying parameter values that are both theoretically plausible and generate predictions that match well with empirical data. While computational models can offer deep explanations of cognition, they are computationally complex and often out of reach of traditional parameter fitting methods. Weak methodology may lead to premature rejection of valid models or to acceptance of models that might otherwise be falsified. Mathematically robust fitting methods are, therefore, essential to the (...)
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  45.  3
    A Non-Interative Method for the Estimation of Superquadric Parameters from Depth Maps.M. Cotronei & G. Salvato - 1996 - Journal of Intelligent Systems 6 (2):115-132.
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  46.  12
    An Iterative Learning Scheme-Based Fault Estimator Design for Nonlinear Systems with Randomly Occurring Parameter Uncertainties.He Jun, Wei Shanbi & Chai Yi - 2018 - Complexity 2018:1-12.
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  47.  18
    Statistical calculations of tracer and intrinsic diffusion coefficients in concentrated alloys and estimates of microscopic parameters of diffusion from experimental data.V. G. Vaks, A. Yu Stroev, I. R. Pankratov, K. Yu Khromov, A. D. Zabolotskiy & I. A. Zhuravlev - 2015 - Philosophical Magazine 95 (14):1536-1572.
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  48.  13
    Gibbs-Slice Sampling Algorithm for Estimating the Four-Parameter Logistic Model.Jiwei Zhang, Jing Lu, Hang Du & Zhaoyuan Zhang - 2020 - Frontiers in Psychology 11.
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  49.  6
    Systematic Parameter Reviews in Cognitive Modeling: Towards a Robust and Cumulative Characterization of Psychological Processes in the Diffusion Decision Model.N. -Han Tran, Leendert van Maanen, Andrew Heathcote & Dora Matzke - 2021 - Frontiers in Psychology 11.
    Parametric cognitive models are increasingly popular tools for analyzing data obtained from psychological experiments. One of the main goals of such models is to formalize psychological theories using parameters that represent distinct psychological processes. We argue that systematic quantitative reviews of parameter estimates can make an important contribution to robust and cumulative cognitive modeling. Parameter reviews can benefit model development and model assessment by providing valuable information about the expected parameter space, and can facilitate the more efficient (...)
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  50.  45
    Bayesian estimation and testing of structural equation models.Richard Scheines - unknown
    The Gibbs sampler can be used to obtain samples of arbitrary size from the posterior distribution over the parameters of a structural equation model (SEM) given covariance data and a prior distribution over the parameters. Point estimates, standard deviations and interval estimates for the parameters can be computed from these samples. If the prior distribution over the parameters is uninformative, the posterior is proportional to the likelihood, and asymptotically the inferences based on the Gibbs sample are the same as those (...)
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