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An accurate model based on complex conjugate pole-residue pairs is proposed to model the complex permittivity of hemoglobin at optical frequency.
An accurate model based on complex conjugate pole-residue pairs has been proposed to model the complex permittivity of hemoglobin at optical frequency.
Using the values provided in Tables 1 and 2, we plot the real and imaginary part of the fitted model based on complex conjugate pole-residue pairs and compare them with the experimental data obtained in the previous subsection.
First, we propose a model based on complex conjugate pole-residue pairs to describe the electrical behaviour of hemoglobin, where it is fitted against the complex refractive index data.
It can be described based on complex conjugate pole-residue pairs as follows: (7) ɛ = ɛ ∞ + ∑ p (r p j ω − a p + r p * j ω − a p * ) where ε∞ is the relative permittivity at infinite frequency, a p and r p are the p-th pole and residue, respectively.
Since we have successfully modeled human blood across a range of optical frequency based on complex conjugate pole-residue pairs along with its implementation using the FADI-FDTD method, the power loss density formula in Eq. (30) can be modified to better suit our scenario.
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The results offer guidelines to explore novel sensors for detecting nanoparticles, and also help develop high-efficiency sensory materials based on electrostatic complexes of conjugated polyelectrolytes and inorganic semiconductor nanoparticles.
(19)The conjugate of a dual quaternion is defined based on the conjugate of quaternion as follows.
The smoothing modified three-term conjugate gradient method is based on Polak Ribière Polyak conjugate gradient method.
The atomic decomposition based on the conjugate subspace MP is operated on the test signal.
Specially, the effectiveness of widely used and attained different numerical outcomes three-term conjugate gradient method, which is based on Hang Zhang conjugate gradient method and Polak Ribière Polyak conjugate gradient method [31 33], has been widely studied.
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