Skills DirectorySkills Directory
SkillsLearnSecurityCategoriesDocsBlogPro
Sign InSubmit Skill
Skills Directory

Security-tested agent skills for Claude, coding agents, and AI workflows.

Directory

  • Browse Skills
  • All Skills A–Z
  • Claude Skills
  • Claude Code Skills
  • Agent Skills
  • Categories
  • Authors
  • Submit a Skill

Learn

  • Learn Hub
  • Install Claude Skills
  • Write SKILL.md
  • Skills vs MCP
  • Directories Compared

Security

  • Security
  • Methodology
  • Secure Claude Skills
  • Security Badges
  • Chrome Extension
  • Skill Manager

Company

  • About
  • Community
  • Blog
  • API Docs
  • Advertise

2026 Skills Directory. All rights reserved.

ProTermsPrivacyRefunds
Back to skills

Grid Field Microstructure Matched Null Harmonics

ASecurity

Matched-null harmonic analysis shows single grid fields lack local sixfold symmetry.

3 stars
0 votes
0 copies
0 views
Added 10/3/2026
researchgoangularexpresstesting

Works with

cli

Security Analysis

A100/100

Scanned 10/3/2026

$npx -y skills add hiyenwong/ai_collection --skill grid-field-microstructure-matched-null-harmonics --agent claude-code

Installs into .claude/skills of the current project.

Are you the author of Grid Field Microstructure Matched Null Harmonics?

Add the live security badge to your README — it updates automatically with every re-scan.

Security grade badge for Grid Field Microstructure Matched Null Harmonics
[![Security: A — Skills Directory](https://www.skillsdirectory.com/api/skills/hiyenwong-grid-field-microstructure-matched-null-harmonics/badge)](https://www.skillsdirectory.com/skills/hiyenwong-grid-field-microstructure-matched-null-harmonics)

More formats (shields.io, HTML) on the badges page. Keep it an A: scan every change in CI with Pro.

Download with Pro
Files
SKILL.md
---
name: grid-field-microstructure-matched-null-harmonics
description: Matched-null harmonic analysis shows single grid fields lack local sixfold symmetry.
category: ai_collection
---

# Grid-Cell Firing Fields Lack Local Sixfold Symmetry — Matched-Null Harmonic Microstructure Analysis

**Source**: arXiv:2609.31145, Anian Kerscher (LMU Munich / Bernstein Center Munich), q-bio.NC, 25 Sep 2026

## Core Finding (negative result with strong methodological value)

Global hexagonal lattice symmetry of grid-cell firing and the **local angular structure of individual firing fields are dissociated**. After correcting global elliptic lattice deformation, single grid fields show *no reliable local sixfold angular modulation* beyond what matched circular fields produce (Exp vs Circ: p=0.279, N=137 cells), while the analysis *is* sensitive to imposed sixfold structure (Exp vs Sixfold-prior: p=5×10⁻⁵, and monotonic separation with β). Individual fields behave as approximately radially symmetric bumps — validating the standard modeling assumption of radially symmetric tuning profiles on hexagonal lattices, and constraining continuous-attractor (Burak–Fiete) models: a globally periodic CAN shows the same global/local dissociation, dominated by low-order (P2) angular structure, not selective local sixfold enhancement.

## The Methodological Pattern: Per-Cell Matched-Null Harmonic Analysis

The reusable core is a **null-referenced inference pipeline** for detecting weak angular structure in noisy neural data — each experimental cell is compared against simulations that preserve *every nuisance parameter* of that cell:

1. **Rate-map construction**: `r(x,y) = (G_σs ∗ S)/(G_σo ∗ O)` — Gaussian-smoothed spike map / occupancy map, with σs=5cm > σo=4cm (spikes sparser than occupancy), boundary-support normalization, and occupancy clipping at the 1st percentile to stabilize sparse regions.
2. **Grid-scale + destretching**: λ from spatial ACF first-ring peaks (6 peaks, mean distance). Fit ellipse to the 6 peaks (direct least-squares conic fit); affine-transform the ellipse to a circle → "destretched" coordinates. This removes global elliptic deformation that would otherwise inject spurious *low-order* (P2) angular harmonics.
3. **Robust field-center detection**: Self-Organized Grid Clustering (SOGC) — mean-shift-like mode-seeking on spike density with (i) kernel-weighted attraction + (ii) weak isotropic repulsion at field scale (no lattice prior imposed) — then **anchor-free lattice-constrained filtering**: fit hexagonal lattice (spacing fixed to λ, optimize orientation+phase), keep only candidate centers near lattice sites (centers stay at empirical locations; lattice fit only *rejects* inconsistent candidates).
4. **Annular angular profiles**: extract firing rate in overlapping circular rings around the field center, radius normalized by grid scale (ρrel = ρ/λ), analysis window 0.1λ–0.4λ (inner field, avoiding center sampling instability and neighbor-field rise at >0.5λ).
5. **Harmonic regression per annulus**: normalize profile by circular mean, fit `r̃(θ) = a_k cos(kθ) + b_k sin(kθ) + c` for k=2..11 (k=1 excluded — too sensitive to center displacement; k≥12 below smoothing scale). Harmonic power `P_k = a_k² + b_k²`. **Primary statistic: sixfold power fraction** `f6 = P6 / Σ_{k=2..11} P_k` — a compositional metric isolating sixfold *specificity* against broadband angular power.
6. **Matched null simulations (the key step)**: per-cell parameters extracted (spike count, occupancy map, destretched λ, affine transform, field location, fitted field width σ̂) → simulate spikes under two local priors:
   - **Circular prior (β=0)**: isotropic Gaussian fields `exp(−ρ²/2σ²)` on a hexagonal lattice (spacing λ, orientation 16°).
   - **Sixfold prior (β>0)**: Gaussian × sixfold von-Mises modulation `[1 + β(ã(θ)−1)]₊` (rectified, unit mean; implemented as 3 von-Mises at κ=2.1 separated by 120°).
   Simulations pass through the *identical* preprocessing pipeline → null distributions per cell per radius.
7. **Null-referenced inference**: per-cell Z-scores of f6(ρrel) against each reference; window summary = AUC(Z) over 0.1–0.4 λrel; population test = two-sided sign-flip permutation (20,000 perms).
8. **Sensitivity battery** (preregistered logic): harmonic leave-one-out (recompute f6 omitting each P_j from denominator — guards the compositional metric), complementary R6² metric, radial-window sweep, smoothing-bandwidth sweep, noise-level sweep, burst-vs-tonic spike split, phase coherence `V(ρ) = Σw_i e^{iφ_i}/Σw_i` with power weights w_i=P6.

## Key Numbers

- 137/166 cells (single module, Gardner et al. 2022 data, ~140 min open-field 150×150 cm); median rate 3.40 Hz.
- Exp vs Circ AUC(Z): mean −0.0138, p=0.279 (no sixfold elevation). Exp vs Sixfold-prior: −0.0798, p=5×10⁻⁵ (analysis detects imposed structure). 109/137 cells negative vs sixfold reference.
- Leave-one-out: Exp–Circ stays non-significant (0.142≤p≤0.695) for *every* omitted harmonic; Exp–Six stays at permutation floor throughout. Omitting P2 shifts Exp–Circ closest to zero (P2 dominates denominator).
- Burak–Fete CAN (128×128 periodic sheet): no selective local sixfold enhancement despite global periodicity; local spectrum dominated by low-order structure; persists under scale/width matching.
- Burst events: no sixfold enhancement in burst-vs-tonic comparisons.

## Reusable Patterns

1. **Matched-null circular reference**: to test "does X have property P", build simulations that copy all nuisance statistics of each unit (sampling, geometry, amplitude, location) and vary only P. Compare per-unit Z, not raw measurements. This is the correct defense against finite-sampling and preprocessing-induced spurious harmonics.
2. **Compositional metric + leave-one-out guard**: when using a fraction f = P_target/ΣP_k, always run the omission sensitivity — fractions can move by denominator changes alone.
3. **Global/local dissociation testing**: correct global deformation (affine destretch to circle) *before* asking local questions; otherwise global anisotropy masquerades as local structure.
4. **Lattice-constrained filtering without bias**: fit lattice only to *reject* candidates, never to reposition accepted ones — empirical centers stay empirical.
5. **Rectified von-Mises angular modulation** `g_rad(ρ)[1+β(ã(θ)−1)]₊` as a parametric dial for injecting k-fold angular structure into radially symmetric fields (β = strength knob, κ = concentration).
6. **Sign-flip permutation at population level** with AUC(Z) per-unit window summaries — nonparametric, handles non-Gaussian Z distributions.
7. **Honest negative-result reporting**: state explicitly what *is* shown (no sixfold above sensitivity threshold) and what *cannot* be excluded (weaker-than-β_min modulation; subset-of-cells effects; non-sixfold anisotropy). The paper's conclusion is scoped, not overclaimed.

## Implications for Grid-Cell Theory

- Supports treating individual grid fields as radially symmetric compact bumps (Sanzeni/Wei-style models).
- CAN models pass the constraint: global hexagonality does not force local sixfold expression.
- Local anisotropies exist (broadband, low-order dominated) but are not lattice-inherited — their origin remains open.

## Related Skills

- `grid-cell-normative-theory-review` — normative theories of grid representations
- `grid-cells-reduce-spatial-aliasing-hippocampal-place` — coding-theory perspective
- `topological-grid-cell-decoding-codes` — decoding-side counterpart

Attribution

hiyenwonghiyenwong
View sourceSee grades on GitHubMore from hiyenwong →
SSkills DirectorySkills Directory

Ship a skill? Prove it's safe.

Free 120-pattern security scan, letter grade, and an embeddable README badge.

Submit a skill

Is this your skill, or is something wrong with this listing? Request removal or report an issue. Author removals are honored within 72 hours.

Comments (0)

No comments yet. Be the first to comment!

SSkills DirectorySkills Directory

Ship a skill? Prove it's safe.

Free 120-pattern security scan, letter grade, and an embeddable README badge.

Submit a skill

Related Skills

Competitor Analysis

This skill provides comprehensive analysis of competitor SEO and GEO strategies, revealing what's working in your market and identifying opportunities to outperform the competition.

1823 votes

Deep Research

Universal deep research agent team. 13-agent pipeline for rigorous academic research on any topic. 8 modes: full research, quick brief, paper review, lit-review, fact-check, three-way literature scan, Socratic guided research dialogue, and systematic review with optional meta-analysis. Covers research question formulation, Socratic mentoring, methodology design, systematic literature search, source verification, cross-source synthesis, risk of bias assessment, meta-analysis, APA 7.0 report co...

502942 votes

Paperclip Distill

Use when an operation issue is a Paperclip cursor-window, distill, or backfill — `operationType: "distill"` or `"backfill"` and the body references a Paperclip source bundle for a project or root issue. Turn raw Paperclip activity into a wiki-insightful project page, decisions log, and history note. This skill exists specifically to replace the stiff, datestamp-heavy templated output that the deterministic distiller produces.

953191 votes

Academic Pipeline

Orchestrator for the full academic research pipeline: research -> write -> integrity check -> review -> revise -> re-review -> re-revise -> final integrity check -> finalize. Coordinates deep-research, academic-paper, and academic-paper-reviewer into a seamless 10-stage workflow with mandatory, coverage-bounded integrity checks, two-stage peer review, and auditable quality-assurance artifacts. Triggers on: academic pipeline, research to paper, full paper workflow, paper pipeline, end-to-end p...

502941 votes

Literature Review

Assistance with writing literature reviews by searching for academic sources via Semantic Scholar, OpenAlex, Crossref and PubMed APIs. Use when the user needs to find papers on a topic, get details for specific DOIs, or draft sections of a literature review with proper citations.

6511 votes
View all in research →