Orthogonality Test

An orthogonality test is a mathematical procedure used to determine whether two vectors, functions, or signals are independent under a defined inner product, making it important in engineering analysis and design. For vectors, the test evaluates their dot product and confirms orthogonality when it equals zero; for functions or signals, it may integrate their product over a specified interval and apply boundary or weighting conditions. Engineers use this criterion to construct coordinate bases, separate signal components, analyze vibration modes, and simplify coupled equations, supporting efficient modeling, communications, control systems, and structural design.

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Education

JoVE Core - Calculus

Orthogonal Trajectories

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2026

Orthogonal trajectories describe the geometric relationship between two families of curves that intersect each other at right angles. One illustrative case involves a family of parabolas that open sideways along the x-axis. These curves share a common shape but differ by a scaling parameter, resulting in a set of curves that all pass through the origin and widen at different rates.Determining Orthogonal TrajectoriesTo identify the orthogonal trajectories for these parabolas, the first step...

Research

JoVE Journal - Biology
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Orthogonal Protein Purification Facilitated by a Small Bispecific Affinity Tag

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Cited by 7 •

2012

A novel and highly efficient two-step affinity chromatography protocol has been developed and is described in detail. The method is based on a small purification tag with two inherent affinities and is applicable to a wide range of target proteins with different properties.

Calibration Procedures for Orthogonal Superposition Rheology

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Cited by 4 •

2020

We present a detailed calibration protocol for a commercial orthogonal superposition rheology technique using Newtonian fluids including end-effect correction factor determination methods and recommendations for best practices to reduce experimental error.

Resonance Fluorescence of an InGaAs Quantum Dot in a Planar Cavity Using Orthogonal Excitation and Detection

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Cited by 5 •

2017

Resonant excitation of a single self-assembled quantum dot can be achieved using an excitation mode orthogonal to the fluorescence collection mode. We demonstrate a method using the waveguide and Fabry-Perot modes of a planar microcavity surrounding the quantum dots. The method allows complete freedom in the detection polarization.

Using Synchrotron Radiation Microtomography to Investigate Multi-scale Three-dimensional Microelectronic Packages

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Cited by 5 •

2016

For this study synchrotron radiation micro-tomography, a non-destructive three-dimensional imaging technique, is employed to investigate an entire microelectronic package with a cross-sectional area of 16 x 16 mm. Due to the synchrotron's high flux and brightness the sample was imaged in just 3 min with an 8.7 µm spatial resolution.

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