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LeanPool.Sendov.FiniteRange.Degree26To27

The batch 26 to 27 #

Sendov.R_le_batch bounds every R n α for 26 ≤ n ≤ 27 by the elementary part and moment at n₀ = 26 together with the prefactor at n₁ = 27, so one moment and one certificate serve all 2 degrees. The certificate has degree 24, set by n₀ rather than n₁.

Feasibility at n₀ is proved rather than assumed: for n ≥ 36 it follows from 0 ≤ α ≤ 17, since A - c² increases with n. This matters because feasibility propagates upward in n, so it could not be inherited from the hypothesis at n.

The moment numerator Nmomc is checked against the packed recurrence (Sendov.pev_wsum_eq_of_packed), and the numerator Sendov.batchP 26 27 11 Lc Nmomc of 1 - bound is certified positive on [0, 13] by its Bernstein coefficients Bc (Sendov.pev_pos_of_bern). Every closed computation is evaluated by the kernel.

The common denominator L of the moment weights: j + 4 ∣ L for every j < 2k + 1.

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    The base β at which polynomials in α are packed: it exceeds twice the absolute value of every coefficient of Nmomc and of the weighted row sum wsum Lc 0 (qrow …).

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      The base τ at which the recurrence rows, evaluated at betac, are packed into a single integer exponentiation: it exceeds twice the absolute value of every row entry.

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        The moment numerator at n₀ = 26, k = 11.

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          Bernstein coefficients of 13 ^ 24 * batchP 26 27 11 Lc Nmomc on [0, 13].

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            theorem Sendov.Batch26To27.c_lo {α : ℝ} (hα : 0 ≤ α) :
            c 26 α = (150 + 19 * α - 2 * α ^ 2) / (50 * (3 + α))
            theorem Sendov.Batch26To27.c_lo_nonneg {α : ℝ} (hα : 0 ≤ α) (hU : α ≤ 13) :
            0 ≤ c 26 α

            c is nonnegative at n₀ on the batch's α-range. This replaces feasibility at n₀, which for n₀ < 36 does not follow from α ≤ 17.

            theorem Sendov.Batch26To27.pev_Nmomc (α : ℝ) :
            pev Nmomc α = pev (wsum Lc 0 (qrow (gg0 26) (gg1 26) (gg2 26) 11)) α
            theorem Sendov.Batch26To27.integral_lo (α : ℝ) (hα : 0 ≤ α) :
            ∫ (t : ℝ) in 0..1, t ^ 3 * Q 26 α t ^ 11 = pev Nmomc α / (↑Lc * (2 * M 26 * (3 + α)) ^ 11)
            theorem Sendov.Batch26To27.P_pos {α : ℝ} (hα : 0 ≤ α) (hU : 1 * α ≤ 13) :
            0 < pev (batchP 26 27 11 Lc Nmomc) α

            The certificate: batchP 26 27 11 Lc Nmomc is positive on [0, 13].

            theorem Sendov.Batch26To27.finite_range {n : ℕ} (h0 : 26 ≤ n) (h1 : n ≤ 27) {α : ℝ} (hα : 0 ≤ α) (_hα' : α ≤ 17) (hfeas : c n α ^ 2 ≤ A n α) :
            R n α < 1

            The batch 26 ≤ n ≤ 27.