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Add gamma radix metaprobe concept
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docs/concepts/GAMMA_RADIX_METAPROBE.md
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docs/concepts/GAMMA_RADIX_METAPROBE.md
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# Gamma Radix MetaProbe
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Date: 2026-05-19
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Status: BEAUTIFUL_PROVISIONAL
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## One-line definition
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Gamma Radix MetaProbe is a symbolic, receipt-bearing pulse-tracing architecture that uses gamma-length transmission as a radix metaphor for ultra-fine address/probe space, while keeping the implementation in software-accessible manifolds, WebGPU/PIST surfaces, DSP chunks, and FAMM/NUVMAP witness routing.
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This is **not** a claim that ordinary software can dereference literal gamma-wavelength physical memory cells. It is a virtual chart/probe encoding model: gamma-scale coordinates are lawful names, not guaranteed physical addresses.
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## Core idea
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Instead of treating ray tracing as RGB light transport through fixed geometry, treat tracing as packet propagation through admissible manifolds:
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```text
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pulse transport -> attenuation / delay / scatter / residual -> inferred geometry/state
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```
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The gamma pulse is the conceptual radix carrier. Each pulse branch is sorted by energy, direction, time, chirality, interaction kernel, spectral mode, density response, and residual scar.
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## Packet primitive
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The packet aligns with the existing compactified packet primitive:
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```text
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Gamma_i = gamma_i ⊗ chi_i ⊗ kappa_i ⊗ tau_i ⊗ U_i Lambda_i a_i ⊗ theta_i ⊗ epsilon_i
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```
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Where:
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- `gamma_i` = energy-density pulse / symbolic gamma carrier
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- `chi_i` = chirality, braid orientation, or handedness witness
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- `kappa_i` = material / interaction / scattering kernel
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- `tau_i` = delay shell or time-of-flight term
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- `U_i Lambda_i a_i` = spectral/eigen decomposition payload
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- `theta_i` = manifold routing angle / projection coordinate
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- `epsilon_i` = residual scar / admissibility failure witness
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## Radix basis
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The radix is not base-2 or base-10. It is a multi-axis pulse-state basis:
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```text
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R_Gamma = { E, theta, phi, t, chi, kappa, rho, sigma, epsilon }
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```
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Interpretation:
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| Digit | Meaning |
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|---|---|
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| `E` | energy bin / symbolic frequency band |
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| `theta, phi` | angular route / projection direction |
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| `t` | pulse arrival time / time-of-flight |
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| `chi` | chirality / braid handedness |
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| `kappa` | interaction kernel |
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| `rho` | density-field response |
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| `sigma` | spectral mode / surface state |
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| `epsilon` | residual scar / admissibility failure |
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## Relation to existing stack
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### NUVMAP
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NUVMAP becomes the virtual address projection layer:
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```text
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N = (x, y, z, t, E, chi, sigma, rho, epsilon)
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```
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This gives the system an ultra-dense symbolic coordinate space without claiming literal physical storage density.
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### FAMM
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FAMM routes each pulse by field, shear, spectral, and residual state:
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```text
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Route_Gamma = FAMM(rho, G, C, epsilon)
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G = A^T A
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C = U Lambda U^T
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```
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Each branch is lawful only if its residual remains below the active boundary condition.
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### BraidStorm
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A single pulse becomes a strand; many pulses become a braidstorm:
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```text
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B_Gamma = { Gamma_1, Gamma_2, ..., Gamma_n }
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```
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The useful information comes from crossings, timing shear, chirality mismatch, interference, and closure receipts.
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### PIST / WebGPU blitter surface
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The practical implementation does not require gamma radiation. The gamma pulse can be projected as:
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- Fourier packets
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- DSP chunks
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- audio-domain probes
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- hexcode spectral packets
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- WebGPU buffer transitions
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- PIST-like surface dispatches
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Each WebGPU dispatch is a bounded surface transition:
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```text
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PIST_GPU : Gamma_i -> Gamma_{i+1}
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```
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The GPU surface records residual/scar/witness output for each lawful or failed transition.
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### MetaProbe / WaveProbe
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Gamma Radix MetaProbe fits the pure L3 MetaProbe layer:
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- non-settling
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- probe-only
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- low-impact
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- cheap virtual execution
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- exports only when a separate settlement / receipt boundary is invoked
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It can be used to sample route quality, detect local manifold stress, or test compression/reconstruction hypotheses without committing every intermediate state.
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## Where the savings show up
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The savings are **not** from creating literal gamma-scale software memory. They appear by replacing expensive committed computation with cheaper probe computation.
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### 1. Settlement avoidance
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Most branches never need to become final committed state. MetaProbe can run symbolic probes, discard failed branches, and only export winners.
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Savings axis:
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```text
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full execution + storage + commit
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-> probe + witness + selective export
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```
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### 2. Sparse residual transmission
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Instead of transmitting full state, transmit:
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```text
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generator + route witness + residual repair
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```
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This is the same savings pattern as GCCL-Rep / nibble-delta witness substrate: sparse manifold telemetry can be much smaller than raw state replay.
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### 3. WebGPU/edge/free-tier computation
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For browser/WebGPU or free-tier worker contexts, the blitter surface can run bounded, low-duty symbolic probes. The value comes from using available local/edge GPU cycles for spectral transforms instead of renting continuous server compute.
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Constraint: this must stay within provider terms and rate limits. The architecture is legitimate only when request caps, duty cycles, and fair-use boundaries are respected.
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### 4. Cacheable probe fields
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Radix branches that repeat can be memoized as route receipts:
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```text
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same packet class + same boundary condition -> reuse prior branch witness
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```
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This reduces repeated exploration of the same local manifold basin.
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### 5. Compression-native reconstruction
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The tracer is useful when output can be reconstructed from a compact law + residual, not when every pixel/sample/state must be explicitly stored.
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Savings axis:
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```text
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raw samples -> lawful reconstruction core + residual pullback
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```
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### 6. Compute triage
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The gamma radix is a sorting/routing device. It tells the system where expensive compute is worth spending:
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- low residual: accept / cache / compress
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- medium residual: refine locally
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- high residual: route to FAMM scar / reject / quarantine
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- impossible: NaN boundary / no commit
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## Boundary condition
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This concept is useful only if it remains honest about the physical/software boundary:
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- software can name gamma-scale coordinates
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- software cannot dereference them as physical RAM
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- WebGPU can simulate/probe the radix surface
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- FAMM/NUVMAP can route symbolic witnesses
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- exactness must be handled through residual repair and receipts
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## Minimal implementation target
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A first prototype can be purely software:
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1. Define `GammaPacket` with fields for energy bin, direction, time, chirality, spectral mode, and residual.
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2. Implement radix branching over packet fields.
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3. Run branches over a WebGPU or CPU spectral kernel.
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4. Emit route receipts and residual scars.
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5. Compare cost against naive full-state evaluation.
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## Claim status
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This should remain `BEAUTIFUL_PROVISIONAL` until there are benchmark receipts showing:
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- probe cost vs full execution cost
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- residual size vs raw output size
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- cache hit rate for repeated route witnesses
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- WebGPU dispatch cost under real browser limits
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- byte-exact reconstruction where required
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## Keeper phrase
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Gamma Radix MetaProbe: gamma-length coordinates as virtual probe radix, not physical RAM; savings appear when cheap pulse-branch probes replace committed computation, raw state transfer, and repeated full execution.
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