12 research outputs found

    VisioTracker, an innovative automated approach to oculomotor analysis

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    Investigations into the visual system development and function necessitate quantifiable behavioral models of visual performance that are easy to elicit, robust, and simple to manipulate. A suitable model has been found in the optokinetic response (OKR), a reflexive behavior present in all vertebrates due to its high selection value. The OKR involves slow stimulus-following movements of eyes alternated with rapid resetting saccades. The measurement of this behavior is easily carried out in zebrafish larvae, due to its early and stable onset (fully developed after 96 hours post fertilization (hpf)), and benefitting from the thorough knowledge about zebrafish genetics, for decades one of the favored model organisms in this field. Meanwhile the analysis of similar mechanisms in adult fish has gained importance, particularly for pharmacological and toxicological applications. Here we describe VisioTracker, a fully automated, high-throughput system for quantitative analysis of visual performance. The system is based on research carried out in the group of Prof. Stephan Neuhauss and was re-designed by TSE Systems. It consists of an immobilizing device for small fish monitored by a high-quality video camera equipped with a high-resolution zoom lens. The fish container is surrounded by a drum screen, upon which computer-generated stimulus patterns can be projected. Eye movements are recorded and automatically analyzed by the VisioTracker software package in real time. Data analysis enables immediate recognition of parameters such as slow and fast phase duration, movement cycle frequency, slow-phase gain, visual acuity, and contrast sensitivity. Typical results allow for example the rapid identification of visual system mutants that show no apparent alteration in wild type morphology, or the determination of quantitative effects of pharmacological or toxic and mutagenic agents on visual system performance

    “Sphere to Cylinder”: Transverse Aspect

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    “Ellipsoid-of-Revolution to Cylinder”: Transverse Aspect

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    C 10(3): The Ten Parameter Conformal Group as a Datum Transformation in Three-Dimensional Euclidean Space

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    Ellipsoid-of-Revolution to Tangential Plane

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    Ellipsoid-of-Revolution to Sphere and from Sphere to Plane

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    “Sphere to Cylinder”: Pseudo-Cylindrical Projections

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    Optimal Map Projections by Variational Calculus: Harmonic Maps

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    Map Projections of Alternative Structures: Torus, Hyperboloid, Paraboloid, Onion Shape and Others

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    “Sphere to Cylinder”: Polar Aspect

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