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Articles 631 - 660 of 773
Full-Text Articles in Numerical Analysis and Scientific Computing
News From The Bioconductor Project, Bioconductor Team
News From The Bioconductor Project, Bioconductor Team
The R Journal
Bioconductor 2.13 was released on 15 October2013. It is compatible with R3.0.2, and consists of 749 software packages, 179 experiment data packages, and more than 690 up-to-date annotation packages. The release includes 84 new software packages, and enhancements to many others. Descriptions of new packages and updated NEWS files provided by current package maintainers are at http://bioconductor.org/news/bioc_2_13_release/
Complognormal: An R Package For Composite Lognormal Distributions, S. Nadarajah, S. A.A. Bakar
Complognormal: An R Package For Composite Lognormal Distributions, S. Nadarajah, S. A.A. Bakar
The R Journal
In recent years, composite models based on the lognormal distribution have become popular in actuarial sciences and related areas. In this short note, we present a new R package for computing the probability density function, cumulative density function, and quantile function, and for generating random numbersof anycomposite model based on the lognormal distribution. The use of the package is illustrated using a real data set.
Dynamic Parallelization Of R Functions, Stefan Böhringer
Dynamic Parallelization Of R Functions, Stefan Böhringer
The R Journal
R offers several extension packages that allow it to perform parallel computations. These operate on fixed points in the program flow and make it difficult to deal with nested parallelism and to organize parallelism in complex computations in general. In this article we discuss, first, of how to detect parallelism in functions, and second, how to minimize user intervention in that process. We present a solution that requires minimal code changes and enables to flexibly and dynamically choose the degree of parallelization in the resulting computation. An implementation is provided by the R package parallelize.dynamic and practical issues are discussed …
Surface Melting Curve Analysis With R, Stefan Rödiger, Alexander Böhm, Ingolf Schimke
Surface Melting Curve Analysis With R, Stefan Rödiger, Alexander Böhm, Ingolf Schimke
The R Journal
Nucleic acid Melting Curve Analysis is a powerful method to investigate the interaction of double stranded nucleic acids. Many researchers rely on closed source software which is not ubiquitously available, and gives only little control over the computation and data presentation. R in contrast, is open source, highly adaptable and provides numerous utilities for data import, sophisticated statistical analysis and presentation in publication quality. This article covers methods, implemented in the MBmca package, for DNA Melting Curve Analysis on microbead surfaces. Particularly, the use of the second derivative melting peaks is suggested as an additional parameter to characterize the melting …
Factorplot: Improving Presentation Of Simple Contrasts In Generalized Linear Models, David A. Armstrong Ii
Factorplot: Improving Presentation Of Simple Contrasts In Generalized Linear Models, David A. Armstrong Ii
The R Journal
Recent statistical literature has paid attention to the presentation of pairwise comparisons either from the point of view of the reference category problem in generalized linear models (GLMs) or in terms of multiple comparisons. Both schools of thought are interested in the parsimonious presentation of sufficient information to enable readers to evaluate the significance of contrasts resulting from the inclusion of qualitative variables in GLMs. These comparisons also arise when trying to interpret multinomial models where one category of the dependent variable is omitted as a reference. While considerable advances have been made, opportunities remain to improve the presentation of …
Changes In R, The R Core Team
R Foundation News, Kurt Hornik
R Foundation News, Kurt Hornik
The R Journal
Donations and new members
- Donations
- New supporting institutions
- New supporting members
The R In Robotics, André Dietrich, Sebastian Zug, Jörg Kaiser
The R In Robotics, André Dietrich, Sebastian Zug, Jörg Kaiser
The R Journal
The aim of this contribution is to connect two previously separated worlds: robotic application development with the Robot Operating System (ROS) and statistical programming with R. This fruitful combination becomes apparent especially in the analysis and visualization of sensory data. We therefore introduce a new language extension for ROS that allows to implement nodes in pure R. All relevant aspects are described in a step-by-step development of a common sensor data transformation node. This includes the reception of raw sensory data via the ROS network, message interpretation, bag-file analysis, transformation and visualization, as well as the transmission of newly generated …
Spmc: Modelling Spatial Random Fields With Continuous Lag Markov Chains, Luca Sartore
Spmc: Modelling Spatial Random Fields With Continuous Lag Markov Chains, Luca Sartore
The R Journal
Currently, a part of the R statistical software is developed in order to deal with spatial models. More specifically, some available packages allow the user to analyse categorical spatial random patterns. However, only the spMC package considers a viewpoint based on transition probabilities between locations. Through the use of this package it is possible to analyse the spatial variability of data, make inference, predict and simulate the categorical classes in unobserved sites. An example is presented by analysing the well-known Swiss Jura data set.
Rlme: An R Package For Rank-Based Estimation And Prediction In Random Effects Nested Models, Yusuf K. Bilgic, Herbert Susmann
Rlme: An R Package For Rank-Based Estimation And Prediction In Random Effects Nested Models, Yusuf K. Bilgic, Herbert Susmann
The R Journal
There is a lack of robust statistical analyses for random effects linear models. In practice, statistical analyses, including estimation, prediction and inference, are not reliable when data are unbalanced, of small size, contain outliers, or not normally distributed. It is fortunate that rank-based regression analysis is a robust nonparametric alternative to likelihood and least squares analysis. We propose an R package that calculates rank-based statistical analyses for two- and three-level random effects nested designs. In this package, a new algorithm which recursively obtains robust predictions for both scale and random effects is used, along with three rank-based fitting methods.
Performance Attribution For Equity Portfolios, Yang Lu, David Kane
Performance Attribution For Equity Portfolios, Yang Lu, David Kane
The R Journal
The pa package provides tools for conducting performance attribution for long-only, single currency equity portfolios. The package uses two methods: the Brinson-Hood-Beebower model (hereafter referred to as the Brinson model) and a regression-based analysis. The Brinson model takes an ANOVA-type approach and decomposes the active return of any portfolio into asset allocation, stock selection, and interaction effect. The regression-based analysis utilizes estimated coefficients, based on a regression model, to attribute active return to different factors.
Temporal Disaggregation Of Time Series, Christoph Sax, Peter Steiner
Temporal Disaggregation Of Time Series, Christoph Sax, Peter Steiner
The R Journal
Temporal disaggregation methods are used to disaggregate low frequency time series to higher frequency series, where either the sum, the average, the first or the last value of the resulting high frequency series is consistent with the low frequency series. Temporal disaggregation can be performed with or without one or more high frequency indicator series. The package tempdisagg is a collection of several methods for temporal disaggregation.
On Sampling From The Multivariate T Distribution, Marius Hofert
On Sampling From The Multivariate T Distribution, Marius Hofert
The R Journal
The multivariate normal and the multivariate t distributions belong to the most widely used multivariate distributions in statistics, quantitative risk management, and insurance. In contrast to the multivariate normal distribution, the parameterization of the multivariate t distribution does not correspond to its moments. This, paired with a non-standard implementation in the R package mvtnorm, provides traps for working with the multivariate t distribution. In this paper, common traps are clarified and corresponding recent changes to mvtnorm are presented.
Editorial, Hadley Wickham
Editorial, Hadley Wickham
The R Journal
Welcome to volume 5, issue 2 of The R Journal. I’m very pleased to include 21 articles about R for your enjoyment.
The end of the year also brings changes to the editorial board. Martyn Plummer is leaving the board after four years. Martyn was responsible for writing up the standard operating procedures for the journal, an act which has made my life as a new editor considerably easier! We welcome Michael Lawrence, who will join the editorial board in 2014. I am stepping down as Editor-in-Chief and will be leaving this task in the capable hands of Deepayan Sarkar.
Rnetcdf: A Package For Reading And Writing Netcdf Datasets, Pavel Michna, Milton Woods
Rnetcdf: A Package For Reading And Writing Netcdf Datasets, Pavel Michna, Milton Woods
The R Journal
This paper describes the RNetCDF package (version 1.6), an interface for reading and writing files in Unidata NetCDF format, and gives an introduction to the NetCDF file format. NetCDF is a machine independent binary file format which allows storage of different types of array based data, along with short metadata descriptions. The package presented here allows access to the most important functions of the NetCDF C-interface for reading, writing, and modifying NetCDF datasets. In this paper, we present a short overview on the NetCDF file format and show usage examples of the package.
Betategarch: Simulation, Estimation And Forecasting Of Beta-Skew-T-Egarch Models, Genaro Sucarrat
Betategarch: Simulation, Estimation And Forecasting Of Beta-Skew-T-Egarch Models, Genaro Sucarrat
The R Journal
This paper illustrates the usage of the betategarch package, a package for the simulation, estimation and forecasting of Beta-Skew-t-EGARCH models. The Beta-Skew-t-EGARCH model is a dynamic model of the scale or volatility of financial returns. The model is characterised by its robustness to jumps or outliers, and by its exponential specification of volatility. The latter enables richer dynamics, since parameters need not be restricted to be positive to ensure positivity of volatility. In addition, the model also allows for heavy tails and skewness in the conditional return (i.e. scaled return), and for leverage and a time-varying long-term component in the …
Lfe: Linear Group Fixed Effects, Simen Gaure
Lfe: Linear Group Fixed Effects, Simen Gaure
The R Journal
Linear models with fixed effects and many dummy variables are common in some fields. Such models are straightforward to estimate unless the factors have too many levels. The R package lfe solves this problem by implementing a generalization of the within transformation to multiple factors, tailored for large problems.
Changes To Grid For R 3.0.0, Paul Murrell
Changes To Grid For R 3.0.0, Paul Murrell
The R Journal
From R 3.0.0, there is a new recommended way to develop new grob classes in grid. In a nutshell, two new “hook” functions, makeContext() and makeContent() have been added to grid to provide an alternative to the existing hook functions preDrawDetails(), drawDetails(), and postDrawDetails(). There is also a new function called grid.force(). This article discusses why these changes have been made, provides a simple demonstration of the use of the new functions, and discusses some of the implications for packages that build on grid.
Exactcidiff: An R Package For Computing Exact Confidence Intervals For The Difference Of Two Proportions, Guogen Shan, Weizhen Wang
Exactcidiff: An R Package For Computing Exact Confidence Intervals For The Difference Of Two Proportions, Guogen Shan, Weizhen Wang
The R Journal
Comparing two proportions through the difference is a basic problem in statistics and has applications in many fields. More than twenty confidence intervals (Newcombe, 1998a,b) have been proposed. Most of them are approximate intervals with an asymptotic infimum coverage probability much less than the nominal level. In addition, large sample may be costly in practice. So exact optimal confidence intervals become critical for drawing valid statistical inference with accuracy and precision. Recently, Wang (2010, 2012) derived the exact smallest (optimal) one-sided 1 confidence intervals for the difference of two paired or independent proportions. His intervals, however, are computer-intensive by nature. …
A Robust Rgbd Slam System For 3d Environment With Planar Surfaces, Po-Chang Su, Ju Shen, Sen-Ching S. Cheung
A Robust Rgbd Slam System For 3d Environment With Planar Surfaces, Po-Chang Su, Ju Shen, Sen-Ching S. Cheung
Computer Science Faculty Publications
With the increasing popularity of RGB-depth (RGB-D) sensors such as the Microsoft Kinect, there have been much research on capturing and reconstructing 3D environments using a movable RGB-D sensor. The key process behind these kinds of simultaneous location and mapping (SLAM) systems is the iterative closest point or ICP algorithm, which is an iterative algorithm that can estimate the rigid movement of the camera based on the captured 3D point clouds. While ICP is a well-studied algorithm, it is problematic when it is used in scanning large planar regions such as wall surfaces in a room. The lack of depth …
Analyzing The Performance Of The Sofia Infrared Telescope, Sarah M. Bass, Jeffrey Van Cleve, Zaheer Ali
Analyzing The Performance Of The Sofia Infrared Telescope, Sarah M. Bass, Jeffrey Van Cleve, Zaheer Ali
STAR Program Research Presentations
The Stratospheric Observatory for Infrared Astronomy (SOFIA) is an airborne near-space observatory onboard a modified Boeing 747-SP aircraft, which flies at altitudes of 45,000 ft., above 99% of the Earth’s water vapor. SOFIA contains an effective 2.5 m infrared (IR) telescope that has a dichroic tertiary mirror, reflecting IR and visible wavelengths to the science instrument (SI) and focal plane imager (FPI), respectively. To date, seven different SIs have been designed to cover a wide range of wavelengths and spectral resolutions. Since the telescope operates in the infrared, different techniques, including chopping, nodding, and dithering, are used to reduce the …
Flitecam Data Process Validation, Jesse K. Tsai, Sachindev S. Shenoy, Brent Cedric Nicklas, Zaheer Ali, William T. Reach
Flitecam Data Process Validation, Jesse K. Tsai, Sachindev S. Shenoy, Brent Cedric Nicklas, Zaheer Ali, William T. Reach
STAR Program Research Presentations
FLITECAM Data Processing Validation
Many of the challenges that come from working with astronomical imaging arise from the reduction of raw data into scientifically meaningful data. First Light Infrared Test CAMera (FLITECAM) is an infrared camera operating in the 1.0–5.5 μm waveband on board SOFIA (Stratospheric Observatory For Infrared Astronomy). Due to the significant noise from the atmosphere and the camera itself, astronomers have developed many methods to reduce the effects of atmospheric and instrumental emission. The FLITECAM Data Reduction Program (FDRP) is a program, developed at SOFIA Science Center, subtracts darks, removes flats, and dithers images.
This project contains …
Pin: Measuring Asymmetric Information In Financial Markets With R, Paolo Zagaglia
Pin: Measuring Asymmetric Information In Financial Markets With R, Paolo Zagaglia
The R Journal
The package PIN computes a measure of asymmetric information in financial markets, the so-called probability of informed trading. This is obtained from a sequential trade model and is used to study the determinants of an asset price. Since the probability of informed trading depends on the number of buy- and sell-initiated trades during a trading day, this paper discusses the entire modelling cycle, from data handling to the computation of the probability of informed trading and the estimation of parameters for the underlying theoretical model.
Statistical Software From A Blind Person's Perspective, A. Jonathan R. Godfrey
Statistical Software From A Blind Person's Perspective, A. Jonathan R. Godfrey
The R Journal
Blind people have experienced access issues to many software applications since the advent of the Windows operating system; statistical software has proven to follow the rule and not be an exception. The ability to use R within minutes of download with next to no adaptation has opened doors for accessible production of statistical analyses for this author (himself blind) and blind students around the world. This article shows how little is required to make R the most accessible statistical software available today. There is any number of ramifications that this opportunity creates for blind students, especially in terms of their …
Multiple Factor Analysis For Contingency Tables In The Factominer Package, Belchin Kostov, Mónica Bécue-Bertaut, François Husson
Multiple Factor Analysis For Contingency Tables In The Factominer Package, Belchin Kostov, Mónica Bécue-Bertaut, François Husson
The R Journal
We present multiple factor analysis for contingency tables (MFACT) and its implementation in the FactoMineR package. This method, through an option of the MFA function, allows us to deal with multiple contingency or frequency tables, in addition to the categorical and quantitative multiple tables already considered in previous versions of the package. Thanks to this revised function, either a multiple contingency table or a mixed multiple table integrating quantitative, categorical and frequency data can be tackled.
The FactoMineR package (Lê et al., 2008; Husson et al., 2011) offers the most commonly used principal component methods: principal component analysis (PCA), correspondence …
Generalized Simulated Annealing For Global Optimization: The Gensa Package, Yang Xiang, Sylvain Gubian, Brain Suomela, Julia Hoeng
Generalized Simulated Annealing For Global Optimization: The Gensa Package, Yang Xiang, Sylvain Gubian, Brain Suomela, Julia Hoeng
The R Journal
Many problems in statistics, finance, biology, pharmacology, physics, mathematics, economics, and chemistry involve determination of the global minimum of multidimensional functions. R packages for different stochastic methods such as genetic algorithms and differential evolution have been developed and successfully used in the R community. Based on Tsallis statistics, the R package GenSA was developed for generalized simulated annealing to process complicated non-linear objective functions with a large number of local minima. In this paper we provide a brief introduction to the R package and demonstrate its utility by solving a non-convex portfolio optimization problem in finance and the Thomson problem …
R Foundation News, Kurt Hornik
R Foundation News, Kurt Hornik
The R Journal
New Benefactors
Quartz, Bio, Switzerland
New supporting Institutions
Institute for Geoinformatics, Westfälische Wilhelms-Universität Münster, Germany
News From The Bioconductor Project, Bioconductor Team
News From The Bioconductor Project, Bioconductor Team
The R Journal
Bioconductor 2.12 was released on 3 October 2012. It is compatible with R 3.0.1, and consists of 671 software packages and more than 675 up-to-date annotation packages. The release includes 65 new software packages, and enhancements to many others. Descriptions of new packages and updated NEWS files provided by current package maintainers are at http://bioconductor.org/news/bioc_2_12_release/.
Conference Review: The 6th Chinese R Conference, Jing Leng, Jingjing Guan
Conference Review: The 6th Chinese R Conference, Jing Leng, Jingjing Guan
The R Journal
The 6th Chinese R Conference (Beijing session) was held in the Sinology Pavilion of Renmin University of China (RUC), Beijing, from May 18th to 19th, 2013. The conference was orga nized by the “Capital of Statistics” (COS, http://cos.name), an online statistical community in China. It was sponsored and co-organized by the Center for Applied Statistics of RUC, the School of Statistics of RUC, and the Business Intelligence Research Center of Peking University
Possible Directions For Improving Dependency Versioning In R, Jeroen Ooms
Possible Directions For Improving Dependency Versioning In R, Jeroen Ooms
The R Journal
One of the most powerful features of R is its infrastructure for contributed code. The built-in package manager and complementary repositories provide a great system for development and exchange of code, and have played an important role in the growth of the platform towards the de-facto standard in statistical computing that it is today. However, the number of packages on CRAN and other repositories has increased beyond what might have been foreseen, and is revealing some limitations of the current design. One such problem is the general lack of dependency versioning in the infrastructure. This paper explores this problem in …