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Detection of Gross Error: The Q Test01:00

Detection of Gross Error: The Q Test

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When one or more data points appear far from the rest of the data, there is a need to determine whether they are outliers and whether they should be eliminated from the data set to ensure an accurate representation of the measured value. In many cases, outliers arise from gross errors (or human errors) and do not accurately reflect the underlying phenomenon. In some cases, however, these apparent outliers reflect true phenomenological differences. In these cases, we can use statistical methods...
7.1K
Routh-Hurwitz Criterion II01:19

Routh-Hurwitz Criterion II

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In the application of the Routh-Hurwitz criterion, two specific scenarios can arise that complicate stability analysis.
The first scenario occurs when a singular zero appears in the first column of the Routh table. This situation creates a division by zero issues. To resolve this, a small positive or negative number, denoted as epsilon (∈), is substituted for the zero. The stability analysis proceeds by assuming a sign for ∈. If ∈ is positive, any sign change in the first...
1.1K
NMR Spectrometers: Resolution and Error Correction01:14

NMR Spectrometers: Resolution and Error Correction

1.1K
When magnetic nuclei in a sample achieve resonance and undergo relaxation, the signal detected in NMR is an approximately exponential free induction decay. Fourier transform of an exponential decay yields a Lorentzian peak in the frequency domain. Lorentzian peaks in an NMR spectrum are defined by their amplitude, full width at half maximum, and position, where the peak width is governed by the spin-spin relaxation time alone. In real experiments, however, the applied magnetic field is rendered...
1.1K
Quantifying and Rejecting Outliers: The Grubbs Test01:02

Quantifying and Rejecting Outliers: The Grubbs Test

4.2K
Sometimes, a data set can have a recorded numerical observation that greatly  deviates from the rest of the data. Assuming that the data is normally distributed, a statistical method called the Grubbs test can be used to determine whether the observation is truly an outlier.  To perform a two-tailed Grubbs test, first, calculate the absolute difference between the outlier and the mean. Then, calculate the ratio between this difference and the standard deviation of the sample. This...
4.2K
Outliers and Influential Points01:08

Outliers and Influential Points

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An outlier is an observation of data that does not fit the rest of the data. It is sometimes called an extreme value. When you graph an outlier, it will appear not to fit the pattern of the graph. Some outliers are due to mistakes (for example, writing down 50 instead of 500), while others may indicate that something unusual is happening. Outliers are present far from the least squares line in the vertical direction. They have large "errors," where the "error" or residual is the...
6.4K
Modified Boxplots00:57

Modified Boxplots

11.3K
A standard box and whisker plot informs us about the spread of the data in a given sample. One can identify the minimum value, maximum value, first quartile value, second quartile or median value, and third quartile.
However, the box plot does not tell the reader about outliers - values that lie far from the center of the data. We can modify the standard box and whisker plot to identify the outliers and visualize the actual spread of the data in a sample.
Initially, we calculate the adjusted...
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Video Experimental Relacionado

Updated: Feb 17, 2026

Data Acquisition Protocol for Determining Embedded Sensitivity Functions
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Data Acquisition Protocol for Determining Embedded Sensitivity Functions

Published on: April 20, 2016

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Erratum: mayor sensibilidad en puntos excepcionales de orden superior

Hossein Hodaei, Absar U Hassan, Steffen Wittek

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    |December 1, 2017
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    Este resumen es generado por máquina.

    Este artículo corrige el Identificador de Objeto Digital (DOI) para un estudio publicado anteriormente. El DOI corregido garantiza la correcta citación y recuperación de la investigación científica.

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    Área de la Ciencia:

    • Publicaciones científicas
    • Comunicación académica
    • Información bibliométrica

    Sus antecedentes:

    • La citación precisa es crucial para la integridad científica.
    • Los identificadores de objetos digitales (DOI) proporcionan enlaces persistentes a artículos de investigación.
    • Los errores en los DOI pueden dificultar la accesibilidad y el seguimiento de la investigación.

    Objetivo del estudio:

    • Para corregir un identificador de objeto digital (DOI) erróneo para un artículo publicado.
    • Asegurar la referencia y la recuperación precisas del trabajo científico.
    • Para mantener la integridad de los registros científicos.

    Principales métodos:

    • Identificación del DOI incorrecto
    • Verificación del DOI correcto a través de los registros del editor.
    • Emisión de una notificación de corrección para actualizar los metadatos.

    Principales resultados:

    • Se ha corregido el identificador de objeto digital (DOI) del artículo.
    • El DOI actualizado ahora enlaza con precisión a la publicación prevista.
    • Esta corrección facilita la cita adecuada y el acceso a la investigación.

    Conclusiones:

    • Los DOI precisos son esenciales para la capacidad de descubrimiento y cita de la literatura científica.
    • Los avisos de corrección desempeñan un papel vital en el mantenimiento de la fiabilidad de las bases de datos académicas.
    • Asegurar la precisión del DOI apoya a la comunidad científica en general.