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After finding the solution of this algebraic system, the solution (Y t)) can be derived by substituting the vector C in equation (17).
By substituting the vector of optimal transmit power ( {mathbf{P}}^=left{{p}_1^(t),{p}_2^(t),cdots, {p}_N^(t)right} ) into the interference power constraint inequality in (6), we can obtain: sum limits_{iin mathcal{N}}{p}_i^(t){G}_{left i,bright)}le {varpi}_{mathrm{PBS}}.
The cyclic optimization phase consists in substituting new vectors for the previously chosen ones, without modification of the subspace dimension K.
We substitute the characteristic vector of into the above equation.
We substitute the characteristic vector of by order of size of.
Then we substitute the characteristic vector v i ¯ ⋆ of F i c − { n } with n ∉ F i into equation (2.2).
First, we substitute the characteristic vector w i of H i with the smallest size into equation (2.3).
First substitute the characteristic vector v i ¯ of F i c with n ∈ F i into equation (2.1).
We follow the same process to substitute the characteristic vector w i of H i with the smallest size after deleting first H i. Note that h i ( w j ) = 0 for any j > i and h i ( w i ) ≠ 0 for every 1 ≤ i ≤ q, since H i does not contain n and G i contains n, g k ( w i ) = 0 for 1 ≤ k ≤ p. Thus, we reduce (2.3) to ∑ i = 1 p β i g i ( x ) = 0. (2.4).
We re-designed the co-expression vector, substituting the full length 14-3-3β 14-3-3β 14-3-3βA cDNAng for a construct truncated after N234.
Firstly, the output rotation-angle function is formulated according to the Fourier series components of the input angle, and is substituted into a vector loop equation.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com