“…From Equation (2)(3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13), we obtain a value of m such that ∇O(m) = 0. This vector corresponds to the maximum a posteriori estimate of the vector of model parameters and is denoted as m map .…”
Section: Maximum a Posteriori Estimatementioning
confidence: 99%
“…Opposite to the left-hand side of Equation (2)(3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13)(14)(15), the right-hand side of the same equation displays a matrix problem of size N d × N d , which is more feasible when N d N m , as explained before. Therefore, one may compute m map as follows:…”
Section: Maximum a Posteriori Estimatementioning
confidence: 99%
“…Figure 3.7 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 50 in linear and semi-log scales. Figure 3.8 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 100 in linear and semi-log scales. Figure 3.9 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 500 in linear and semi-log scales.…”
Section: Introductionmentioning
confidence: 99%
“…Figure 3.8 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 100 in linear and semi-log scales. Figure 3.9 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 500 in linear and semi-log scales. Figure 3.10 Update vector δm 1 for each inflation factor selection for the case N e = 25 and comparison with a low-order parametrization.…”
Section: Introductionmentioning
confidence: 99%
“…5. (3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13)(14)(15)(16)(17)(18)(19)(20)(21) and (3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13)(14)(15)(16)(17)(18)(19)(20)(21)(22) for different ensembles.…”
Silva, Thiago de Menezes Duarte; Pesco, Sinesio (Advisor); Barreto Jr., Abelardo Borges (Co-Advisor). Evaluating the impact of the inflation factors generation for the ensemble smoother with multiple data assimilation. Rio de Janeiro, 2021. 93p.
“…From Equation (2)(3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13), we obtain a value of m such that ∇O(m) = 0. This vector corresponds to the maximum a posteriori estimate of the vector of model parameters and is denoted as m map .…”
Section: Maximum a Posteriori Estimatementioning
confidence: 99%
“…Opposite to the left-hand side of Equation (2)(3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13)(14)(15), the right-hand side of the same equation displays a matrix problem of size N d × N d , which is more feasible when N d N m , as explained before. Therefore, one may compute m map as follows:…”
Section: Maximum a Posteriori Estimatementioning
confidence: 99%
“…Figure 3.7 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 50 in linear and semi-log scales. Figure 3.8 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 100 in linear and semi-log scales. Figure 3.9 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 500 in linear and semi-log scales.…”
Section: Introductionmentioning
confidence: 99%
“…Figure 3.8 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 100 in linear and semi-log scales. Figure 3.9 Computed coefficients t (Equation (3)(4)(5)(6)) for v i for N e = 500 in linear and semi-log scales. Figure 3.10 Update vector δm 1 for each inflation factor selection for the case N e = 25 and comparison with a low-order parametrization.…”
Section: Introductionmentioning
confidence: 99%
“…5. (3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13)(14)(15)(16)(17)(18)(19)(20)(21) and (3)(4)(5)(6)(7)(8)(9)(10)(11)(12)(13)(14)(15)(16)(17)(18)(19)(20)(21)(22) for different ensembles.…”
Silva, Thiago de Menezes Duarte; Pesco, Sinesio (Advisor); Barreto Jr., Abelardo Borges (Co-Advisor). Evaluating the impact of the inflation factors generation for the ensemble smoother with multiple data assimilation. Rio de Janeiro, 2021. 93p.
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