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1.
Occup Ther Health Care ; 37(3): 383-394, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-36322682

RESUMO

The goal of this research was to assess the effects of virtual yoga on sleep and anxiety in persons with vision impairment. This study was a quasi-experimental single group design. Thirteen participants engaged in a six-week Hatha yoga experience with weekly sessions presented on a zoom platform with the recorded sessions provided to the participants after each session. Participants completed self-report assessments for sleep quality and anxiety, pre and post intervention. Wilcoxon Signed Ranks tests revealed significant improvements in both outcomes. Participants reported other positive outcomes from this experience, including opportunities for peer support, socialization, and the ability to exercise within the safety of their home environment.


Assuntos
Terapia Ocupacional , Yoga , Humanos , Qualidade de Vida , Ansiedade/terapia , Sono
2.
IEEE Comput Graph Appl ; 40(3): 73-82, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32356729

RESUMO

Interactive data exploration and analysis is an inherently personal process. One's background, experience, interests, cognitive style, personality, and other sociotechnical factors often shape such a process, as well as the provenance of exploring, analyzing, and interpreting data. This Viewpoint posits both what personal information and how such personal information could be taken into account to design more effective visual analytic systems, a valuable and under-explored direction.

3.
IEEE Comput Graph Appl ; 39(6): 46-60, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31603814

RESUMO

Visual analytics tools integrate provenance recording to externalize analytic processes or user insights. Provenance can be captured on varying levels of detail, and in turn activities can be characterized from different granularities. However, current approaches do not support inferring activities that can only be characterized across multiple levels of provenance. We propose a task abstraction framework that consists of a three stage approach, composed of 1) initializing a provenance task hierarchy, 2) parsing the provenance hierarchy by using an abstraction mapping mechanism, and 3) leveraging the task hierarchy in an analytical tool. Furthermore, we identify implications to accommodate iterative refinement, context, variability, and uncertainty during all stages of the framework. We describe a use case which exemplifies our abstraction framework, demonstrating how context can influence the provenance hierarchy to support analysis. The article concludes with an agenda, raising and discussing challenges that need to be considered for successfully implementing such a framework.

4.
Artigo em Inglês | MEDLINE | ID: mdl-30136978

RESUMO

Much research has been done regarding how to visualize and interact with observations and attributes of high-dimensional data for exploratory data analysis. From the analyst's perceptual and cognitive perspective, current visualization approaches typically treat the observations of the high-dimensional dataset very differently from the attributes. Often, the attributes are treated as inputs (e.g., sliders), and observations as outputs (e.g., projection plots), thus emphasizing investigation of the observations. However, there are many cases in which analysts wish to investigate both the observations and the attributes of the dataset, suggesting a symmetry between how analysts think about attributes and observations. To address this, we define SIRIUS (Symmetric Interactive Representations In a Unified System), a symmetric, dual projection technique to support exploratory data analysis of high-dimensional data. We provide an example implementation of SIRIUS and demonstrate how this symmetry affords additional insights.

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