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CMB Gravitational Lensing Reconstruction L1-367

AstrophysicsCMB lensingδ=5 · challengingL_DAG = 3.5📋 Stub — not mineable
📋

Unclaimed Principle — open for contribution

This Principle is declared in the catalog but has no reference solver, no pinned dataset, and is not registered on-chain. There is no reward pool. Submitting a cert against this Principle today will record the cert for reproducibility but pay zero PWM.

To claim it as a Bounty #7 contribution: open a PR adding (1) a reference solver, (2) ≥1 dataset pinned to IPFS, (3) updates to the L3 manifest with dataset CIDs. After verifier-agent triple-review, the founders' 3-of-5 multisig signs PWMRegistry.register() and the Principle becomes mineable.

Forward model E

CMB Gravitational Lensing Reconstruction: CMB lensing reconstruction: recover projected matter density kappa from statistical anisotropy of CMB maps via quadratic estimator. The forward operator produces the measurement through a 3-node primitive DAG (F.fourier.harmonic…); recovery is posed as a nonlinear_inverse problem. Difficulty tier delta=5 with effective condition number kappa_eff~500; foreground_bias, point_source_contamination set the accuracy floor at the Omega boundary. See the forward_model field for the closed-form equation.

L-DAG

F.fourier.harmonic -> S.quadratic.estimator -> K.filter
F.fourier.harmonicS.quadratic.estimatorK.filter

Well-posedness W

Existence:
true
Uniqueness:
true
Stability:
conditional
κ:
100000

Existence of the recovered 2D_lensing_convergence is guaranteed within the declared Omega bounds. Uniqueness holds on the measurement-supported subspace; out-of-support modes are controlled by declared priors. Stability is conditionally stable (kappa_eff ~= 500); foreground_bias dominates the stability cliff; the remaining mismatch parameters contribute higher-order bias terms. Thermal gaussian sets the irreducible data-fidelity floor.

Solvability C

Solver class:
classical [quadratic_estimator (Hu_Okamoto) or iterative_lensing_reconstruction]
Convergence rate q:
2
Complexity:
O(N_pix * log N_pix) for FFT-based QE per iteration

Specs (0)

No L2 specs registered yet for this principle.