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To achieve precise distance measurements, especially in surveying and construction, certain corrections must be applied to account for potential sources of error like the standardization errors, temperature variations, and slope adjustments.Standardization error emerges when measurement equipment undergoes changes, such as wear, repairs, or weather impacts. To address this, surveyors compare the equipment’s readings to a standard. This process identifies any deviation that might lead to...
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Collisions in Multiple Dimensions: Problem Solving01:06

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In multiple dimensions, the conservation of momentum applies in each direction independently. Hence, to solve collisions in multiple dimensions, we should write down the momentum conservation in each direction separately. To help understand collisions in multiple dimensions, consider an example.
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Generalized Hooke's Law01:22

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The generalized Hooke's Law is a broadened version of Hooke's Law, which extends to all types of stress and in every direction. Consider an isotropic material shaped into a cube subjected to multiaxial loading. In this scenario, normal stresses are exerted along the three coordinate axes. As a result of these stresses, the cubic shape deforms into a rectangular parallelepiped. Despite this deformation, the new shape maintains equal sides, and there is a normal strain in the direction of the...
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Elastic Collisions: Case Study01:15

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Elastic collision of a system demands conservation of both momentum and kinetic energy. To solve problems involving one-dimensional elastic collisions between two objects, the equations for conservation of momentum and conservation of internal kinetic energy can be used. For the two objects, the sum of momentum before the collision equals the total momentum after the collision. An elastic collision conserves internal kinetic energy, and so the sum of kinetic energies before the collision equals...
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Coplanar Forces01:25

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Consider an object upon which multiple forces are acting. If the lines of action of each force lie within the same plane, the system can be considered coplanar. The Cartesian vector form can be used to resolve each force into its respective components. For a coplanar system, the system will be in equilibrium if each component of the resultant force equals zero and the resultant force on the system is zero. If the sum of the forces is not equal to zero, then the object will not be in equilibrium...
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Electrostatic Boundary Conditions01:16

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Consider an external electric field propagating through a homogeneous medium. When the electric field crosses the surface boundary of the medium, it undergoes a discontinuity. The electric field can be resolved into normal and tangential components. The amount by which the field changes at any boundary is given by the difference between the field components above and below the surface boundary.
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Related Experiment Video

Updated: Sep 11, 2025

Operation of the Collaborative Composite Manufacturing CCM System
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A generalized physics-based correction for adjacency effects.

Alexandre Castagna, Quinten Vanhellemont

    Applied Optics
    |August 12, 2025
    PubMed
    Summary

    A new physics-based processor, TSDSF + RAdCor in ACOLITE, improves surface reflectance retrieval accuracy for satellite imagery, especially for small inland waters. It outperforms other processors in the visible range but shows mixed results in the near-infrared.

    Area of Science:

    • Remote Sensing
    • Atmospheric Optics
    • Geospatial Analysis

    Background:

    • Atmospheric scattering (adjacency effect) blurs satellite signals, reducing accuracy in surface reflectance retrieval.
    • This effect is critical for aquatic remote sensing due to high land-water contrast and small water body scales.
    • Existing processors struggle with accurate surface reflectance retrieval, particularly for complex subscene compositions.

    Purpose of the Study:

    • To present a novel physics-based processor (TSDSF + RAdCor) for accurate surface reflectance retrieval across all surface types.
    • To implement and evaluate the processor within the ACOLITE software for Landsat 8 (OLI) and Sentinel-2 (MSI) sensors.
    • To assess the processor's performance for inland and coastal aquatic remote sensing applications.

    Main Methods:

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    • Developed a two-module processor: TSDSF for aerosol property estimation and RAdCor for surface reflectance retrieval.
    • Implemented the processor in the open-source ACOLITE software.
    • Validated performance using OLI and MSI data over small inland waters in Belgium, comparing against in situ data and other processors (C2RCC, POLYMER, Sen2Cor, iCOR, ACOLITE/DSF, LaSRC).

    Main Results:

    • The TSDSF + RAdCor processor demonstrated improved accuracy in visible wavebands (6-18% deviation for OLI, 14-31% for MSI).
    • Performance varied in near-infrared wavebands (70-150% deviation), with notable exceptions.
    • The new processor outperformed most others in the visible range but was surpassed by C2RCC and POLYMER in the near-infrared.

    Conclusions:

    • The TSDSF + RAdCor processor offers a robust solution for surface reflectance retrieval, particularly beneficial for aquatic remote sensing.
    • Recommendations for optimal use of the processor within ACOLITE are provided.
    • Further refinement may be needed for near-infrared waveband accuracy across all sensors and conditions.