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Journal ArticleDOI

Visualization and Visual Analysis of Multifaceted Scientific Data: A Survey

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TLDR
This survey studies existing methods for visualization and interactive visual analysis of multifaceted scientific data and suggests new solutions for multirun and multimodel data as well as techniques that support a multitude of facets.
Abstract
Visualization and visual analysis play important roles in exploring, analyzing, and presenting scientific data. In many disciplines, data and model scenarios are becoming multifaceted: data are often spatiotemporal and multivariate; they stem from different data sources (multimodal data), from multiple simulation runs (multirun/ensemble data), or from multiphysics simulations of interacting phenomena (multimodel data resulting from coupled simulation models). Also, data can be of different dimensionality or structured on various types of grids that need to be related or fused in the visualization. This heterogeneity of data characteristics presents new opportunities as well as technical challenges for visualization research. Visualization and interaction techniques are thus often combined with computational analysis. In this survey, we study existing methods for visualization and interactive visual analysis of multifaceted scientific data. Based on a thorough literature review, a categorization of approaches is proposed. We cover a wide range of fields and discuss to which degree the different challenges are matched with existing solutions for visualization and visual analysis. This leads to conclusions with respect to promising research directions, for instance, to pursue new solutions for multirun and multimodel data as well as techniques that support a multitude of facets.

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Citations
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Feature-based Vector Field Representation and Comparison

TL;DR: This thesis replaces the visual processing of data in the traditional workflow with an automated, statistical method that enables a quantitative analysis and describes the input data and demonstrates the advantages of the developed representation and its use for the analysis of vector fields using flow graphs.
Journal ArticleDOI

E-ffective: A Visual Analytic System for Exploring the Emotion and Effectiveness of Inspirational Speeches.

TL;DR: The authors proposed E-ffective, a visual analytic system that allows experts and novices to analyze both the role of speech factors and their contribution in effective speeches, including the influence of emotions in inspirational speeches.
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EPIsembleVis: A geo-visual analysis and comparison of the prediction ensembles of multiple COVID-19 models.

TL;DR: EPIsembleVis as discussed by the authors analyzes a collection of COVID-19 predictions from different epidemiological models as an ensemble and utilizes two metrics to quantify model performance: prediction uncertainty (represented as the dispersion of predictions in each ensemble) and prediction error (calculated by comparing individual model predictions with the recorded data).

Visual Analysis of Relations in Attributed Time-Series Data

TL;DR: This paper presents visual-interactive techniques for revealing relations between two co-existing multivariate feature spaces, and illustrates how analysts can identify similarities and anomalies between time series and categorical attributes of metering devices and sensors.
Journal ArticleDOI

E-ffective: A Visual Analytic System for Exploring the Emotion and Effectiveness of Inspirational Speeches

TL;DR: This paper proposed E-ffective, a visual analytic system that allows experts and novices to analyze both the role of speech factors and their contribution in effective speeches, including the influence of emotions in inspirational speeches.
References
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Book

Self-Organizing Maps

TL;DR: The Self-Organising Map (SOM) algorithm was introduced by the author in 1981 as mentioned in this paper, and many applications form one of the major approaches to the contemporary artificial neural networks field, and new technologies have already been based on it.
Journal ArticleDOI

Exploratory data analysis

F. N. David, +1 more
- 01 Dec 1977 - 
Journal ArticleDOI

The Elements of Statistical Learning

Eric R. Ziegel
- 01 Aug 2003 - 
TL;DR: Chapter 11 includes more case studies in other areas, ranging from manufacturing to marketing research, and a detailed comparison with other diagnostic tools, such as logistic regression and tree-based methods.
Journal ArticleDOI

A Computer Movie Simulating Urban Growth in the Detroit Region

TL;DR: A Computer Movie Simulating Urban Growth in the Detroit Region as discussed by the authors was made to simulate urban growth in the city of Detroit, Michigan, United States of America, 1970, 1970.
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