Four user-reported bugs from the Colombia trip: 1. Santa Marta legs not routing (extract gap). The SAMARTA OSM box had MAXLAT 11.22, which clipped the old town (~11.24 N) so every city point snapped to the same boundary node. Raised it to 11.28 (covers the Malecón + Plaza Colesio). Rebuilt the Colombia extract. 2. "Can't take a taxi / wrong times." The :5003 Colombia router is a *walking* build (foot.lua) and cannot return a driving route, so 'car' legs silently came back as long walks (CTG->hotel showed 105 min). Added a second, *driving* build (car.lua, same cropped OSM) on :5004 and made the /route proxy send driving-profile requests there. Now the airport drop-off is a real 16-min drive, and the walk<->taxi toggle changes the estimate (16 min car vs 105 min walk). 3. Arrival timeline inconsistent. The arrival day's startMin was set from a static ~20-min estimate and never updated when the drop-off actually routed. Added syncArrivalStart(): the start tracks landing + the transfer's (asynchronously routed, mode-dependent) duration, and every stop follows. Lunch no longer lands before the traveller reaches the hotel. 4. Hovering a hotel card zoomed to the other city. renderHotelCard flashed EVERY stay's marker, so a multi-city trip flew the map to the off-screen hotel (and alternated on each hover). Now it flashes only the current day's hotel(s). Also: enrichment used a single global token, so when apply_flight_anchors enriched all days in one pass only the LAST day's legs actually routed (the earlier days bailed on the token check). Made the token per-day so every day's legs route independently, and scoped the background re-renders to the on-screen day. Verified via CDP: 11/11 fix checks + cdp_smoke, cdp_struct (13), cdp_dates (7), cdp_leg (17), cdp_coords (6) all green. Co-Authored-By: Claude <noreply@anthropic.com> |
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| .. | ||
| cmd | ||
| internal | ||
| profiles | ||
| scripts | ||
| go.mod | ||
| README.md | ||
maps/router — route-aware planning primitives
The Go backend for the "search along the route" capability (DESIGN.md, "Driving trips" section). Everything the LLM would otherwise guess about a trip — route shape, travel times, detour costs — is computed here and returned with provenance.
What's in here
internal/geo/ dependency-free geodesy (haversine, point-to-line)
internal/route/ Router interface + backends
- valhalla.go: hosted/self-hosted Valhalla (works today;
no geometry on the hosted instance → chord fallback)
- osrm.go: local OSRM (full geometry; scripts/setup-osrm.sh)
internal/plan/ the primitives:
- stopcost.go: stop_cost = route(A,C via B) − route(A,C)
- optimize.go: optimize_stops (exhaustive ≤10 stops, greedy above)
- corridor.go: corridor = buffer band around the route
cmd/routectl/ manual CLI: route | stopcost | optimize
internal/traffic/ live-traffic pipeline (511NY → Overpass match → speeds)
cmd/traffic/ fetch | match | apply (segment-speed CSV → re-customize)
cmd/bench/ benchmark runner (bench/tasks.json)
bench/tasks.json 5 real NE-corridor tasks with recorded goldens
scripts/setup-osrm.sh self-host OSRM over the NH+MA+CT+NY extract
Zero third-party Go dependencies (stdlib only).
Try it (hosted Valhalla, no setup)
go run ./cmd/routectl route --from 44.054,-71.650 --to 40.729,-73.966
# Lincoln NH → Queens NY: ~5h32m, 531 km, I-93/90/495/290 (NOT via Boston)
go run ./cmd/routectl stopcost --from 44.054,-71.650 --to 40.729,-73.966 \
--stop 42.2767,-71.806:60:cascade \
--stop 43.507,-71.548:50:ladd \
--stop 43.642,-71.156:120:mtmajor
# cascade detour= 6 min (on the I-495 corridor)
# ladd detour=17 min
# mtmajor detour=80 min (off-corridor)
go run ./cmd/routectl optimize --from 44.054,-71.650 --to 40.729,-73.966 --k 2 \
--stop 42.2767,-71.806:60:cascade --stop 43.507,-71.548:50:ladd \
--stop 43.902,-71.64:60:plymouth --stop 42.425,-71.68:60:brewsters
# order: ladd -> cascade detour: 23 min
Tests
go test ./... # unit tests, offline, fast
go test -tags integration ./... # live router (Valhalla by default)
ROUTER_BACKEND=osrm ROUTER_URL=http://localhost:5000 \
go test -tags integration ./... # against local OSRM
The integration tests encode the key regression: the fastest Lincoln→Queens drive stays ≥15 km from Boston (it goes via Worcester, I-90/I-495/I-290). That is exactly the fact an LLM confidently gets wrong.
Benchmark
go run ./cmd/bench # valhalla goldens (bench/tasks.json)
go run ./cmd/bench --tasks bench/tasks.osrm.json # local-OSRM goldens
go run ./cmd/bench --record # re-record into the file you're running
Tasks are real OD pairs across NH/MA/CT/NY with real POI candidates and
dwell times. Goldens are per backend+profile (see profile deltas
below): bench/tasks.json carries Valhalla goldens, bench/tasks.osrm.json
local-OSRM goldens. Both currently 26 PASS / 0 FAIL, and both
routers pick the same optimized orders for all 5 tasks despite their
different clocks. Check types:
| type | meaning |
|---|---|
golden_route_min |
direct route time within a recorded band (±10%) |
route_avoids |
route stays ≥ N km from a point (geometry, or bbox when the backend has none) |
stop_free / stop_detour_at_least / stop_detour_band |
computed detour of a candidate vs an expected band |
optimize_order |
the exhaustive optimum matches the recorded order |
crosscheck |
single multi-waypoint route ≈ matrix-summed prediction (≤ maxPct drift) |
Current state: 26 PASS / 0 FAIL on both hosted Valhalla and local OSRM (separate golden files).
Self-hosted OSRM (full geometry, exact corridors) — verified
scripts/setup-osrm.sh is the full, tested path (no sudo, no conan):
deps.sh builds bzip2, Lua 5.2, oneTBB, Boost 1.84 (b2 + hand-rolled
CMake config files — boost release tarballs ship no CMake support) and
osmium-tool; then it builds OSRM 26.4.1, merges the 4 state PBFs
(osrm-extract takes one input), extracts (~8 GB peak RAM, ~4 min),
partitions, customizes, and serves on :5000. Artifacts live in
$HOME/osm-build by default (override with W=).
ROUTER_BACKEND=osrm ROUTER_URL=http://localhost:5000 go test -tags integration ./...
go run ./cmd/routectl route --backend osrm --from 44.054,-71.650 --to 40.729,-73.966
# 6h50m, 514.4 km, 9068 geometry points (exact corridor available)
With OSRM, Route.Geometry is populated, so the corridor is exact
(distances to the actual routed polyline) instead of the chord fallback
used with the hosted Valhalla. This is what makes
search_along_route's spatial pre-filter (PostGIS ST_DWithin on the
corridor polygon in the v1 design) sound.
Profile deltas matter (measured, same OD pair)
| backend | Lincoln NH → 39-84 46th St, Sunnyside |
|---|---|
Valhalla auto |
327 min, 529 km (97 km/h avg) |
OSRM stock car.lua |
406 min, 511 km (76 km/h avg) |
| OSRM US-tuned speed table | 377 min, 526 km (84 km/h avg) |
All three avoid Boston and take the I-93/90/495/290 corridor — same route shape, different clocks.
Why the clocks differ: the times are the profile's speed assumptions,
not measurements. OSRM's stock car.lua lists motorway = 90 km/h
and applies a global speed_reduction = 0.8 → untagged motorway miles
run at ~72 km/h (45 mph). That's a generic/European-flavored default
(90 km/h mirrors the European "unsigned road = 90" convention), and US
interstates are maxspeed-untagged in large stretches, so the default
rules. Re-extracting the same data with a US-tuned table
(profiles/car-us.lua: motorway 135, trunk 130, primary 110, ...
through the same 0.8 factor) closes two-thirds of the gap (406 → 377
min) and even changes the route choice (526 km now — faster
motorways make longer interstates win). Valhalla's auto is simply
calibrated more aggressively (97 km/h average).
Consequences: (a) goldens in the bench files are per backend+profile —
re-record (--record) after switching; (b) any user-facing
arrival-time math must use one backend consistently per trip and say
which; (c) "computed" provenance should carry the profile name,
because two computed numbers for the same leg can differ by 20–25%.
Second dataset: Colombia walking router (:5003) — verified
scripts/setup-osrm-colombia.sh builds a second OSRM instance over the
official foot.lua profile (real walking speeds, ~5 km/h) for the
Colombia trip (Cartagena + Santa Marta boxes).
The country PBF (329 MB) is too big for osmium extract -s complete_ways
on this box (~2 GB free RAM), so crop_pbf.py streams it in three passes
and keeps only the two city boxes (~4.6 MB, 565k nodes / 118k ways, ~3 min).
Verified: Cartagena Getsemaní → Castillo San Felipe routes 7.98 km / 96 min
(≈ 5 km/h). mock/server.js maps ?router=colombia to :5003 and
?router=northeast (default) to :5000, so each trip in the mock is
routed on its own extract.
Notes:
- The cropper drops relations (the foot profile ignores turn restrictions) and node metadata; ways touching a box are kept whole.
- OSRM v26 returns
Okwith distance 0 for out-of-coverage point pairs (notNoTable); the mock treats a zero-distance answer as "adjacent stops" and a no-route answer as fallback-to-estimate. crop_pbf.pyis a from-scratch PBF reader/writer (no PBF library available); framing =[uint32 BE BlobHeader len][BlobHeader][Blob], validated against osmium's own test fixtures andosrm-extract.
Live traffic (511NY → OSRM segment speeds) — verified
OSRM v26 has a first-class mechanism for this: osrm-customize --segment-speed-file speeds.csv (CSV = nodeA,nodeB,km/h, OSM node
pairs) rewrites edge weights and re-customizes the MLD in ~15 s — no
re-extract. The traffic layer is a renamed copy of the dataset
(customize writes the contract files in place; v26 has no
--output-prefix), served by its own osrm-routed process.
internal/traffic + cmd/traffic implement the whole loop:
# 1. pull incidents (needs a 511NY key — 511ny.org → Sign Up →
# account → API key; the key can't be requested programmatically)
go run ./cmd/traffic fetch --key "$FIFTYONE_NY_KEY" --out events.json --raw raw.json
# 2. match each incident to OSM node pairs (Overpass: ways around the
# point; within 150 m the highest-class road wins, so "I-90" beats a
# closer service road) and expand to the affected stretch
go run ./cmd/traffic match --events events.json --out speeds.csv
# 3. copy the base dataset (CoW) + re-customize the traffic layer
go run ./cmd/traffic apply --csv speeds.csv --data $HOME/osm-build/data
# → serve: osrm-routed --algorithm mld --port 5002 $HOME/osm-build/data/northeast-traffic.osrm
Verified end-to-end: a synthetic Road Closed on a 0.87 km I-90
stretch routed at 38 s (static :5000) becomes 142 s on the traffic
layer (:5002) — same path, closure speed. match was tested against
live Overpass data (real OSM node IDs; class-window selection; unknown
event types ignored).
Notes:
- Incident policy speeds are
assumed(policy map ininternal/traffic/policy.go), not measurements. Routes from the traffic layer must carry provenancecomputed(traffic, as_of <fetch time>, policy=assumed)per DESIGN.md R4 — and theas_ofage is a product-visible confidence signal. - Closures at 5 km/h are slow, not blocked. True blocking needs the
--turn-penalty-filemechanism (untested) or a graph edit; 511NY "Road Closed" events should probably map to blocking, not 5 km/h. - Free coverage is patchy: 511NY (NY) + MassDOT (MA, separate application) give incident-level data; there is no free floating-car feed, so per-leg traffic coverage is a confidence tier, not a boolean.
- 511NY API: base
https://511ny.org/api, OData-v3 shape ({"d":[...]}), 10 calls/min throttle.fetchdecodes leniently and archives the raw body for schema confirmation on first live run.
Design notes
- The route is computed, never narrated. No function in this module
returns a time estimate from model knowledge; every number is router
output (
computedprovenance per DESIGN.md R4). - Matrix via pairwise route calls. Valhalla's
sources_to_targetscaps at 150 km, so the common path isBuildMatrix(pairwise/route). OSRM'sTableservice is available for the local backend when a single-call matrix matters. - optimize_stops semantics: the user asked for k stops ("two
hikes"), so the objective minimizes total = detour + dwell + overhead
over ordered subsets of exactly k, with fallback (a) to the best
feasible smaller set when a time budget is given, then (b) to the best
exactly-k ignoring the budget, flagged
Feasible=false. "At most k" without a budget degenerates (zero stops always wins). - Stop coordinates are POI centroids. The router snaps to the network; a 200 m centroid error moves a 531 km route's detour by seconds, not minutes.