Try a new search

Format these results:

Searched for:

person:bellih01

in-biosketch:yes

Total Results:

24


[S.l.] : 11th Annual Conference on the Science of Dissemination and Implementation in Health, 2018

Design thinking for implementation science: A case study employing user-centered digital design methodology to create usable decision support

Chokshi, Sara; Belli, Hayley; Troxel, Andrea; Schwartz, Jessica; Blecker, Saul; Blaum, Caroline; Szerencsy, Adam; Testa, Paul; Mann, Devin
(Website)
CID: 4256142

Quantifying the three-dimensional facial morphology of the laboratory rat with a focus on the vibrissae

Belli, Hayley M; Bresee, Chris S; Graff, Matthew M; Hartmann, Mitra J Z
The morphology of an animal's face will have large effects on the sensory information it can acquire. Here we quantify the arrangement of cranial sensory structures of the rat, with special emphasis on the mystacial vibrissae (whiskers). Nearly all mammals have vibrissae, which are generally arranged in rows and columns across the face. The vibrissae serve a wide variety of important behavioral functions, including navigation, climbing, wake following, anemotaxis, and social interactions. To date, however, there are few studies that compare the morphology of vibrissal arrays across species, or that describe the arrangement of the vibrissae relative to other facial sensory structures. The few studies that do exist have exploited the whiskers' grid-like arrangement to quantify array morphology in terms of row and column identity. However, relying on whisker identity poses a challenge for comparative research because different species have different numbers and arrangements of whiskers. The present work introduces an approach to quantify vibrissal array morphology regardless of the number of rows and columns, and to quantify the array's location relative to other sensory structures. We use the three-dimensional locations of the whisker basepoints as fundamental parameters to generate equations describing the length, curvature, and orientation of each whisker. Results show that in the rat, whisker length varies exponentially across the array, and that a hard limit on intrinsic curvature constrains the whisker height-to-length ratio. Whiskers are oriented to "fan out" approximately equally in dorsal-ventral and rostral-caudal directions. Quantifying positions of the other sensory structures relative to the whisker basepoints shows remarkable alignment to the somatosensory cortical homunculus, an alignment that would not occur for other choices of coordinate systems (e.g., centered on the midpoint of the eyes). We anticipate that the quantification of facial sensory structures, including the vibrissae, will ultimately enable cross-species comparisons of multi-modal sensing volumes.
PMCID:5886528
PMID: 29621356
ISSN: 1932-6203
CID: 4255962

Variations in vibrissal geometry across the rat mystacial pad: base diameter, medulla, and taper

Belli, Hayley M; Yang, Anne E T; Bresee, Chris S; Hartmann, Mitra J Z
Many rodents tactually sense the world through active motions of their vibrissae (whiskers), which are regularly arranged in rows and columns (arcs) on the face. The present study quantifies several geometric parameters of rat whiskers that determine the tactile information acquired. Findings include the following. 1) A meta-analysis of seven studies shows that whisker base diameter varies with arc length with a surprisingly strong dependence on the whisker's row position within the array. 2) The length of the whisker medulla varies linearly with whisker length, and the medulla's base diameter varies linearly with whisker base diameter. 3) Two parameters are required to characterize whisker "taper": radius ratio (base radius divided by tip radius) and radius slope (the difference between base and tip radius, divided by arc length). A meta-analysis of five studies shows that radius ratio exhibits large variability due to variations in tip radius, while radius slope varies systematically across the array. 4) Within the resolution of the present study, radius slope does not differ between the proximal and distal segments of the whisker, where "proximal" is defined by the presence of the medulla. 5) Radius slope of the medulla is offset by a constant value from radius slope of the proximal portion of the whisker. We conclude with equations for all geometric parameters as functions of row and column position.NEW & NOTEWORTHY Rats tactually explore their world by brushing and tapping their whiskers against objects. Each whisker's geometry will have a large influence on its mechanics and thus on the tactile signals the rat obtains. We performed a meta-analysis of seven studies to generate equations that describe systematic variations in whisker geometry across the rat's face. We also quantified the geometry of the whisker medulla. A database provides access to geometric parameters of over 500 rat whiskers.
PMCID:5390285
PMID: 27881718
ISSN: 1522-1598
CID: 4255952

The protective estimator : a tool for longitudinal analysis with missing data

Chapter by: Belli, Hayley M; Troxel, Andrea B
in: Wiley StatsRef : statistics reference online by Balakrishnan, N; Colton, Theodore; Everitt, Brian; Piegorsch, Walter W; Ruggeri, Fabrizio; Teugels, Jef L (Eds)
[Hoboken, NJ] : John Wiley & Sons, Inc., [2014]
pp. ?-?
ISBN: 1118445112
CID: 4256012