a26b7d1f67
Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
91 lines
3.1 KiB
Markdown
91 lines
3.1 KiB
Markdown
# bikeslop
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A local web app for visualising Garmin cycling GPX files with AI coaching insights powered by a local LLM.
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## Features
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- **Route map** — Leaflet.js map with per-segment polylines coloured by heart-rate intensity zone
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- **Elevation & HR charts** — Chart.js profiles plotted against cumulative distance
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- **Stats sidebar** — distance, duration, speed, elevation gain, avg/max HR, HR zone breakdown (Karvonen)
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- **AI coaching insights** — streaming post-ride feedback from a local LLM (via OpenAI-compatible API)
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- **Garmin sync** — fetch new rides directly from Garmin Connect, including MFA support
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- **Imperial/metric toggle** — persisted in `localStorage`
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## Requirements
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- Python 3.14+
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- [uv](https://github.com/astral-sh/uv)
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- A local OpenAI-compatible LLM server (e.g. [llama.cpp](https://github.com/ggerganov/llama.cpp), [Ollama](https://ollama.com))
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## Setup
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```bash
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# 1. Clone and install dependencies
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git clone https://git.torrtle.co/ryan/bikeslop
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cd bikeslop
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uv sync
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# 2. Drop your GPX files into garmin_gpx_exports/
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# (or use the in-app "Fetch from Garmin" button)
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# 3. Start the server
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LLAMACPP_BASE_URL=http://localhost:8080/v1 uv run uvicorn app:app --reload
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```
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Open http://localhost:8000 in your browser.
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## Configuration
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| Env var | Default | Description |
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| `LLAMACPP_BASE_URL` | `http://localhost:8080/v1` | Base URL of your OpenAI-compatible LLM endpoint |
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The model name is auto-discovered from `GET /v1/models` at startup. If the endpoint is unreachable, insights generation is still available — only that feature degrades.
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## GPX files
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Place `.gpx` files exported from Garmin Connect (or any GPX-compliant device) in the `garmin_gpx_exports/` directory. The app parses all files at startup. Supported data:
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- Track points with `lat`/`lon`/`ele`/`time`
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- Heart rate via the Garmin extension namespace (`ns3:hr`)
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Activities with no track points (e.g. indoor rides) are listed with an "Indoor" badge and shown without a map or charts.
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## Standalone GPX downloader
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`main.py` is a standalone script for bulk-downloading your Garmin Connect cycling activities as GPX files without running the web server:
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```bash
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uv run python main.py
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```
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## API
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| Method | Path | Description |
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| `GET` | `/api/rides` | Summary list of all rides (no track points) |
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| `GET` | `/api/rides/{id}` | Full ride metadata + cached insight |
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| `GET` | `/api/rides/{id}/points` | Full lat/lon/ele/hr array |
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| `POST` | `/api/rides/{id}/insights?rhr=60` | Stream AI coaching insight |
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| `POST` | `/api/insights/generate-all?rhr=60` | SSE stream — generate insights for all rides |
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| `POST` | `/api/fetch-rides` | SSE stream — fetch new rides from Garmin Connect |
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| `POST` | `/api/mfa` | Submit MFA code for an in-progress Garmin session |
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## HR zone boundaries (Karvonen)
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Zones are calculated from your resting HR (configurable in the UI) and the lifetime max HR observed across all rides:
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| Zone | % of HRR |
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| Z1 | < 50% |
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| Z2 | 50–60% |
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| Z3 | 60–70% |
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| Z4 | 70–80% |
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| Z5 | > 80% |
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## License
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MIT
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