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9.84 kB
| #!/usr/bin/env python3 | |
| """Exact contact-collar certificate construction and verification. | |
| Python standard library only. No optimizer or earlier verifier is imported. | |
| The output certifies the listed templates, not all unconditional bodies. | |
| """ | |
| from __future__ import annotations | |
| import argparse, itertools as it, json, math, time | |
| from collections import Counter | |
| from fractions import Fraction as F | |
| from functools import lru_cache | |
| from pathlib import Path | |
| ROOT=Path(__file__).resolve().parents[1] | |
| ST=Counter() | |
| def require(ok:bool,msg:str)->None: | |
| if not ok: raise ValueError(msg) | |
| def dot(a,b): return sum((x*y for x,y in zip(a,b)),F(0)) | |
| def solve(a,b): | |
| """Gauss-Jordan solve over Q; None means a singular square system.""" | |
| n=len(b);z=[[F(x) for x in r]+[F(y)] for r,y in zip(a,b)] | |
| for k in range(n): | |
| p=next((j for j in range(k,n) if z[j][k]),None) | |
| if p is None:return None | |
| z[k],z[p]=z[p],z[k];h=z[k][k];z[k]=[x/h for x in z[k]] | |
| for j in range(n): | |
| if j!=k and z[j][k]: | |
| h=z[j][k];z[j]=[x-h*y for x,y in zip(z[j],z[k])] | |
| return tuple(z[j][-1] for j in range(n)) | |
| def restricted_vertices(rows,k): | |
| ans=set() | |
| for inds in it.combinations(range(len(rows)),k): | |
| ST['restricted_linear_systems']+=1 | |
| x=solve([rows[i] for i in inds],[1]*k) | |
| if x and all(t>0 for t in x) and all(dot(r,x)<=1 for r in rows):ans.add(x) | |
| return tuple(sorted(ans)) | |
| def orthant_vertices(rows): | |
| """Complete vertices of {x>=0 : rows*x<=1}, including cut-plane vertices.""" | |
| n=len(rows[0]);ans={(F(0),)*n} | |
| for support_mask in range(1,1<<n): | |
| s=[i for i in range(n) if support_mask>>i&1];k=len(s) | |
| rr=tuple(sorted({tuple(r[i] for i in s) for r in rows if any(r[i] for i in s)})) | |
| if len(rr)<k:continue | |
| for x in restricted_vertices(rr,k): | |
| v=[F(0)]*n | |
| for i,t in zip(s,x):v[i]=t | |
| ans.add(tuple(v)) | |
| return tuple(sorted(ans)) | |
| def orbit(v): | |
| s=[i for i,x in enumerate(v) if x] | |
| for signs in it.product((-1,1),repeat=len(s)): | |
| w=list(v) | |
| for i,t in zip(s,signs):w[i]*=t | |
| yield tuple(w) | |
| def signed_rows(rows): | |
| return tuple(sorted({z for a in rows for z in orbit(a)})) | |
| def expand_pairs(pairs): | |
| ans=[] | |
| for d in pairs: | |
| h=max(map(abs,d));require(h>0,'zero direction') | |
| for s in (1,-1):ans.append(tuple(F(s*x,h) for x in d)) | |
| require(len(set(ans))==len(ans),'duplicate normalized direction') | |
| return tuple(ans) | |
| def make_certificate(label,rows,positive_vertices,pairs,save_landings=False): | |
| n=len(rows[0]);D=expand_pairs(pairs);rows=tuple(tuple(map(F,r)) for r in rows) | |
| vertices=tuple(positive_vertices) | |
| require(all(dot(a,v)<=1 for a in rows for v in vertices),'infeasible input point') | |
| require(all(any(v[i]>=1 for v in vertices) for i in range(n)),'axis intercept lower bound') | |
| g_candidates=[] | |
| for v in vertices: | |
| for a in rows: | |
| value=dot(a,v) | |
| if value<1:g_candidates.append(1-value) | |
| else:g_candidates.extend(2*a[i]*v[i] for i in range(n) if a[i]*v[i]>0) | |
| g=min(g_candidates);require(g>0,'nonpositive slack gap') | |
| A=max(sum(a,F(0)) for a in rows) | |
| B=max(dot(a,tuple(map(abs,d))) for a in rows for d in D) | |
| witness=[];margins=[];point_count=0 | |
| for v0 in vertices: | |
| active=[a for a in rows if dot(a,v0)==1] | |
| if not active:continue | |
| for v in orbit(v0): | |
| best=None;bm=None | |
| for di,d in enumerate(D): | |
| margin=min(-sum((ai*(dj if vj>0 else -dj if vj<0 else abs(dj)) for ai,vj,dj in zip(a,v,d)),F(0)) for a in active) | |
| ST['active_row_margin_tests']+=len(active) | |
| if bm is None or margin>bm:bm=margin;best=di | |
| require(bm is not None and bm>0,f'uncovered point in {label}: {v}') | |
| margins.append(bm);witness.append((v,best));point_count+=1 | |
| a=min(margins) | |
| eta=min(F(1,2),g/F(2*(n+1))) | |
| tau=eta/(a+B);radius=tau*a/(3*A);beta_lower=3*radius | |
| core=1-2*A*radius | |
| require(core>0,'invalid inner core') | |
| saved=[] | |
| for v,di in witness: | |
| w=tuple(x+tau*y for x,y in zip(v,D[di])) | |
| require(all(dot(r,tuple(map(abs,w)))<=core for r in rows),'uniform-step landing failed') | |
| ST['uniform_core_landings']+=1;ST['absolute_row_core_checks']+=len(rows) | |
| if save_landings:saved.append({'point':list(map(str,v)),'direction_index':di,'landing':list(map(str,w))}) | |
| cert={'label':label,'dimension':n,'positive_rows':[[str(x) for x in r] for r in rows], | |
| 'positive_generators':[[str(x) for x in v] for v in vertices], | |
| 'directions':[[str(x) for x in d] for d in D], | |
| 'direction_count':len(D),'signed_boundary_points_checked':point_count, | |
| 'g':str(g),'a':str(a),'A':str(A),'B':str(B),'eta':str(eta),'tau':str(tau), | |
| 'closed_Hausdorff_radius':str(radius),'blocking_slack_lower_bound':str(beta_lower), | |
| 'open_Hausdorff_radius':str(beta_lower/2),'inner_core_factor':str(core)} | |
| if save_landings:cert['landings']=saved | |
| ST['certificates']+=1 | |
| return cert | |
| def model_certificate(): | |
| j=json.loads((ROOT/'data/cyclic_discovery.json').read_text()) | |
| rows=tuple(tuple(F(x,j['rhs']) for x in r) for r in j['positive_rows']) | |
| pos=orthant_vertices(rows) | |
| require(set(pos)=={tuple(map(F,v)) for v in j['positive_orthant_vertices']},'discovery vertex list mismatch') | |
| cert=make_certificate('irregular cyclic five-body',rows,pos,j['opposite_pair_representatives'],True) | |
| # Verify all extreme perturbations of every saved boundary point. This is | |
| # a stress check; the continuum theorem, not this finite set, covers all L. | |
| D=[tuple(map(F,d)) for d in cert['directions']];h=F(cert['closed_Hausdorff_radius']);t=F(cert['tau']);core=F(cert['inner_core_factor']) | |
| for rec in cert['landings']: | |
| v=tuple(map(F,rec['point']));d=D[rec['direction_index']] | |
| for s in it.product((-1,1),repeat=5): | |
| w=tuple(v[i]+h*s[i]+t*d[i] for i in range(5)) | |
| require(all(dot(r,tuple(map(abs,w)))<=core for r in rows),'perturbed landing failed') | |
| ST['perturbed_vertex_landings']+=1;ST['perturbed_absolute_row_checks']+=len(rows) | |
| # A deliberate corruption must be rejected at a recorded witness. | |
| rec=next(r for r in cert['landings'] if any(F(x) for x in r['point'])) | |
| v=tuple(map(F,rec['point']));d=D[rec['direction_index']] | |
| bad=tuple(v[i]-t*d[i] for i in range(5)) | |
| require(any(dot(r,tuple(map(abs,bad)))>1 for r in rows),'mutation was not rejected') | |
| cert['opposite_direction_mutation_rejected']=True | |
| (ROOT/'data/cyclic_certificate.json').write_text(json.dumps(cert,indent=2)+'\n') | |
| return cert | |
| def legacy_atlas(): | |
| j=json.loads((ROOT/'data/legacy_catalogue.json').read_text());out=[] | |
| require(len(j['representatives'])==180 and len(j['certificates'])==360,'catalogue length') | |
| for k,c in enumerate(j['certificates']): | |
| h=tuple(c['facets']);unit=tuple(tuple(F((m>>i)&1) for i in range(5)) for m in h) | |
| pv=orthant_vertices(unit) | |
| if c['body']=='P':rows=unit;points=pv | |
| else: | |
| rows=tuple(v for v in pv if any(v));points=unit | |
| cert=make_certificate(f"{c['body']}_{c['index']:03d}",rows,points,c['pairs']) | |
| cert.update({'legacy_index':c['index'],'legacy_body':c['body'],'support_masks':list(h),'orbit_size':c['orbit_size']}) | |
| out.append(cert) | |
| if (k+1)%60==0:print(f'Exact atlas: {k+1}/360',flush=True) | |
| (ROOT/'data/robust_atlas_360.json').write_text(json.dumps(out,indent=2)+'\n') | |
| return out | |
| def integer_cube_check(): | |
| # Complete n=2,N=14 cube representative of the integer finite-level test. | |
| n,N=2,14;threshold=(4*n-3)*N;margin=4*(n-1)*N | |
| normals=[z for z in it.product(range(-N,N+1),repeat=n) if sum(map(abs,z))==N] | |
| directions=list(it.product((-N,N),repeat=n));count=0 | |
| for y in it.product(range(-N,N+1),repeat=n): | |
| near=[z for z in normals if N*N-sum(a*b for a,b in zip(z,y))<=threshold] | |
| require(any(all(sum(a*b for a,b in zip(z,d))<=-margin for z in near) for d in directions),'integer cube certificate failed') | |
| count+=1 | |
| return {'dimension':n,'N':N,'grid_points':count,'normal_grid_points':len(normals),'point_normal_incidence_tests':count*len(normals),'status':'PASS','scope':'one cube template, not the universal finite statement'} | |
| def main(): | |
| p=argparse.ArgumentParser();p.add_argument('--skip-atlas',action='store_true');args=p.parse_args();start=time.perf_counter() | |
| model=model_certificate();atlas=[] if args.skip_atlas else legacy_atlas();ic=integer_cube_check() | |
| report={'status':'PASS','arithmetic':'integers and fractions.Fraction only','stats':dict(ST),'model_direction_count':model['direction_count'], | |
| 'model_closed_radius':model['closed_Hausdorff_radius'],'model_open_radius':model['open_Hausdorff_radius'], | |
| 'model_margin':model['a'],'model_positive_generators':len(model['positive_generators']), | |
| 'atlas_certificates':len(atlas),'integer_cube_test':ic,'unrestricted_5d_theorem_proved':False, | |
| 'universal_integer_level_completed':None,'elapsed_seconds':round(time.perf_counter()-start,3)} | |
| if atlas: | |
| h=min(F(c['closed_Hausdorff_radius']) for c in atlas) | |
| report.update({'atlas_minimum_closed_radius':str(h),'atlas_direction_count_distribution':dict(sorted(Counter(c['direction_count'] for c in atlas).items())), | |
| 'atlas_minimum_radius_labels':[c['label'] for c in atlas if F(c['closed_Hausdorff_radius'])==h], | |
| 'atlas_labeled_instances':sum(c['orbit_size'] for c in atlas)}) | |
| (ROOT/'verification/primary_report.json').write_text(json.dumps(report,indent=2)+'\n');print(json.dumps(report,indent=2)) | |
| if __name__=='__main__':main() | |