The smallwebwaf image is now built on the newest Ubuntu LTS release, 26.04 today, pinned by digest and moved to the next LTS when that ships, with Nix and nixpkgs installed, as sneak ruled. nixpkgs is pinned to one commit of its newest release branch with a hash the build checks, so an app's build gives the same packages each time. The example app Dockerfiles add a package from nixpkgs and create the app's user with useradd, and every run script is bash with set -euo pipefail, as the style guide asks. The new base settles two of the Alpine points of the deploy follow-up. Building the image stays with milestone 2. Model: opus-5-5
257 lines
14 KiB
Markdown
257 lines
14 KiB
Markdown
# smallwebwaf
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`smallwebwaf` is a simple, fast, logging web application firewall for people who
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host their own services. It runs inside the container of the one application it
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protects, between your reverse proxy (traefik) and the app: the app's Dockerfile
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builds `FROM` the `smallwebwaf` image, traefik sends the app's requests to
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`smallwebwaf` on port 8080, and `smallwebwaf` passes them on to the app on
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`127.0.0.1:8081`. It needs no setting, and protects the app from the first
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request with defaults chosen for a service on the open internet. It keeps its
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state in memory and in JSON files you can read and edit, and writes a detailed
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JSON log line for every request.
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Status: design stage. This repository currently holds the documents only; no
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code has been written. The design is in [`SPEC.md`](SPEC.md), and the survey of
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existing tools that led to it is in [`EVALUATION.md`](EVALUATION.md).
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## Why
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Small self-hosted sites now receive a great deal of traffic nobody asked for:
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scrapers that ignore `robots.txt` and crawl every commit of every repository on
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a public git server, vulnerability scanners walking through lists of WordPress
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and `.env` paths, and credential-guessing bots. Most of it comes from a small
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number of hosting networks and countries. A single-person operation has no abuse
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desk and no CDN contract; it needs something small that can be put in front of
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one service and left alone.
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The existing tools each solve part of this. Rule-based firewalls catch attack
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payloads but do not limit request rates. Rate limiters count requests but cannot
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tell a residential visitor from a rented server farm. The products that do most
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of it want several containers, a database and a web console. None of them can
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say "clients from these networks are banned after half as many requests as
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anyone else", which is the most useful thing to be able to say when nearly all
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abuse comes from a known list of AS numbers. [`EVALUATION.md`](EVALUATION.md)
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goes through the candidates one by one.
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`smallwebwaf` is meant to fill that gap:
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- protect a service from misbehaving scrapers and scanners with per-client
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request and byte limits over a minute, an hour and a day;
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- lower those limits for the countries and AS numbers that abuse commonly comes
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from, so their clients are banned after fewer requests than others;
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- ban abusers: briefly at first, longer each time they come back, and
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permanently when they keep at it; a scanner's first probe bans it for seven
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days;
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- log everything in a form that is easy to search and ship elsewhere;
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- stay small enough to understand: one binary in the app's own container,
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environment variables, no database, no required setting.
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## Proposed features
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- Reverse proxy for one application, streaming in both directions, with
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WebSocket support. One `smallwebwaf` per app, inside the app's own container.
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- Internet-ready out of the box: no setting is required, and every setting has a
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default chosen for a service facing the internet in 2026. Every setting's name
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starts with `SWWAF_`, so that it cannot clash with the app's own.
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- Real client address worked out from `X-Forwarded-For`, trusting only the proxy
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networks you list, by default the private address ranges. IPv6 clients are
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counted by /64 by default.
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- Size and time limits on requests and responses, with the time limits both
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between the client and `smallwebwaf` and between `smallwebwaf` and the app: by
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default a request may take 60 seconds and 100 MiB, a response 30 minutes and 5
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GiB.
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- Rate limits per client on requests per minute, per hour and per day, and on
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bytes per minute, per hour and per day, on by default and set well above what
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real visitors need.
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- Netblocks that bypass rate limiting, netblocks that bypass everything, and
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netblocks that are always refused.
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- AS number and country lookup for every client, on by default through the free
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GeoJS web service, which is sent the address of every new visitor. The IPinfo
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Lite database file, which you download and mount, can be used instead, or
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lookups switched off (see "Country and AS number lookup" below).
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- Country lists: `SWWAF_DENIED_COUNTRIES` refuses every request from the
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countries listed, `SWWAF_EXCLUSIVELY_ALLOWED_COUNTRIES` every request from
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anywhere else. Such a request gets the answer a banned client gets as soon as
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the client's address has been looked up, before its body is read and without
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the rule files or the Core Rule Set looking at it, and no ban is made.
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- Biased limits: listed AS numbers and countries get a percentage of every
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limit, for example 50 percent for common abuse-source networks, so their
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clients are banned after fewer requests. Zero percent is a zero allowance: the
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first request breaks the limit and bans the client.
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- Attack detection:
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- a directory of plain text rule files, one regex per line, for catching
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scanning and penetration probes; easy to edit by hand, and picked up while
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running;
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- the OWASP Core Rule Set, run by the Coraza engine, refusing the requests
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it flags; it reads the URL and headers of every request, and request
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bodies only once you switch that on, since on a code forge they are full
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of code it would take for attacks;
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- trap paths, and a ban for a client that the rule files or the Core Rule
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Set refuse again and again.
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- Bans:
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- a clear sign of attack, such as a probe for a `.env` file or a scanner's
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user agent, bans for seven days on the first request, and any further
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request during those days makes the ban permanent;
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- breaking a limit bans for an hour; breaking one again within a day of a
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ban ending triples the length, and a ban that would last longer than seven
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days is permanent instead;
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- every ban carries notes on why it was made, to help decide whether to lift
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it.
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- IP reputation: downloadable blocklists, DNS blocklists, AbuseIPDB, and an
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optional feed of decisions from a CrowdSec engine. Lookups happen in the
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background and never delay a request. None is on until you add it.
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- Alerts on attacks and bans to a generic webhook, Slack or ntfy, with a
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cooldown and an hourly cap so a wide attack cannot flood the channel.
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- Anomaly alerts when requests or bytes per minute or hour cross a threshold you
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set, for a single client, its surrounding netblock, an AS number, a named
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netblock or the whole service.
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- Observe mode: log and alert on every decision while refusing nothing.
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- Request log: one JSON object per request on stdout with the usual web log
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fields, the decision taken and why, AS number and country, and timings.
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Optionally also sent to a remote syslog server.
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- Prometheus metrics, for a scraper that holds the metrics token.
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- State (bans with their notes, each client's counters and history, the GeoJS
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answers, the reputation cache, the alerting state) held in memory and kept in
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readable JSON files, written regularly and at every stop, so a restart loses
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nothing. Edit a file, or add a rule file, and the running `smallwebwaf` picks
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up the change. Nothing is read from disk while serving a request.
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- Health checks, the metrics, and listing, adding and lifting bans or asking why
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a given address was refused, all on the one port every request uses: under
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`/_smallwebwaf/` on the app's own address, through traefik like any other
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request. The metrics need the metrics token, and the ban management the admin
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token.
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Not planned: TLS termination, routing for several apps, browser challenges
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(captcha or proof of work), a web console, or defence against floods large
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enough to fill the host's network link.
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## How it works, in short
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For each request `smallwebwaf`:
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- works out who the client really is;
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- lets it straight through if it is on the bypass list, refuses it if it is on
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the deny list or currently banned;
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- looks up its AS number and country, and refuses it if that country is denied,
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or is not among the only ones allowed;
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- checks for a cached reputation verdict;
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- picks the client's limit percentage from those;
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- checks the minute, hour and day request counters against the limits, and bans
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the client if it breaks one;
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- checks the request against the rule files and the Core Rule Set, and bans the
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client at once for a clear sign of attack;
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- forwards it to the app and streams the response back, within the size and time
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limits;
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- counts the bytes and any refusal by the rule files or the Core Rule Set, bans
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the client if it broke a limit, updates its history, sends any alerts that are
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due, and writes the log line.
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A minimal deployment is the app's own Dockerfile, built on the `smallwebwaf`
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image, with no setting. That image is built on Ubuntu 26.04 LTS, the newest
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long-term support release of Ubuntu, pinned by digest, and moves to the next one
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when it ships. It has nixpkgs installed, so the app adds the packages it needs
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from nixpkgs. Beyond its `FROM` line the app's Dockerfile adds the app's binary,
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any packages it needs, and the app's runit service, which starts the app as a
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user of its own, listening on `127.0.0.1:8081`:
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```dockerfile
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# The smallwebwaf image, pinned by digest.
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FROM <registry>/smallwebwaf:<pinned digest>
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# Packages the app needs, if any, from the nixpkgs in the image.
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RUN nix-env -iA nixpkgs.git
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# The app's binary, and a user of its own to run it.
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COPY app /usr/local/bin/app
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RUN useradd --system --no-create-home --shell /usr/sbin/nologin app
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# The app's runit service.
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COPY --chmod=755 app.run /etc/service/app/run
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```
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with `app.run` beside the Dockerfile, where `--listen` and `--trusted-proxies`
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stand for the app's own options:
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```bash
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#!/usr/bin/env bash
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set -euo pipefail
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sleep 1
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exec chpst -u app:app /usr/local/bin/app \
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--listen 127.0.0.1:8081 \
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--trusted-proxies 10.0.0.0/8,172.16.0.0/12,192.168.0.0/16,127.0.0.1/32,::1/128
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```
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- The image's entrypoint, `runsvinit`, has runit start `smallwebwaf` and the app
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side by side, each as its own user, and start either again a second after it
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exits. Leave out `ENTRYPOINT` and `USER` from the app's Dockerfile.
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- `nix-env -iA nixpkgs.<name>` installs a package from the nixpkgs in the image,
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and the app finds it on its `PATH`. That nixpkgs is fixed at one commit, so
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the same `smallwebwaf` image always gives the app the same packages; newer
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ones come with a newer `smallwebwaf` image.
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- Deploy it as you deploy any app, with traefik's labels on this one container
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pointing at port 8080. upaas needs no change for this.
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- The app has to trust `127.0.0.1` and `::1` for forwarded headers, besides the
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private address ranges, since the requests it gets now come from `smallwebwaf`
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on loopback. An app left at the usual default, the private ranges alone, sees
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every visitor as `127.0.0.1`.
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- Port 8080 is the only one the app must leave free: the health check, the
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metrics and ban management are all on it, under `/_smallwebwaf/`. The image's
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health check passes while `smallwebwaf` answers and the app accepts
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connections.
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- `smallwebwaf` keeps its state files in `/var/lib/smallwebwaf`. Mount a volume
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there to keep bans and client history when a deploy replaces the container;
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without one, it still starts.
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A rule file is one rule per line: a name, what to match against, what to do, and
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a regex.
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```
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env-file path ban (?i)^/\.env(\.[a-z]+)?$
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scanner-agent user_agent ban (?i)\b(sqlmap|nikto|nuclei|wpscan)\b
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```
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[`SPEC.md`](SPEC.md) has the full design: the deployment, every environment
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variable, the ban rules, the rule file format, the state files, the log fields,
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the metrics, failure behaviour and the build order.
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## Country and AS number lookup
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`smallwebwaf` looks up the AS number and country of every client, for the
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request log, the metrics and the ban notes, and for the country lists and biased
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limits when you set them. It works with no setup: by default it asks the free
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GeoJS web service, which needs no account and no file. This means that, by
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default, the address of every new visitor is sent to GeoJS. Each answer is kept
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in memory for seven days, and many addresses are asked about in one request;
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writing the answers to disk, so that they survive a restart, comes in milestone
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3 or later. GeoJS publishes no rate limit but may block a caller it thinks asks
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too much; while it is not answering, new visitors count as coming from an
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unknown country, which `SWWAF_EXCLUSIVELY_ALLOWED_COUNTRIES` refuses.
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To keep your visitors' addresses on your own host, set
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`SWWAF_LOOKUP_SOURCE=off`, or use the database file instead of GeoJS:
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`SWWAF_LOOKUP_SOURCE=file` reads the free IPinfo Lite database
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(`ipinfo_lite.mmdb`). You download it with your own IPinfo account, mount the
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directory that holds it into the container, point `SWWAF_LOOKUP_DB_PATH` at the
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file and refresh it when you choose; `smallwebwaf` never downloads it itself,
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and reads it again when you replace it. It has to be the directory rather than
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the file itself: docker does not show a single mounted file being replaced, so a
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refresh would go unseen. IPinfo releases it under the Creative Commons
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Attribution-ShareAlike 4.0 International License and asks for attribution, in
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its own words on https://ipinfo.io/lite: "The attribution requirements can be
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met by giving our service credit as your data source. Simply place a link to
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IPinfo on the website, application, or social media account that uses our data."
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Its example of such a credit is a link mentioning "IP address data is powered by
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IPinfo". A service that uses the database through `smallwebwaf` should carry
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that link.
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Neither source can place a private address, so a client on one, such as a
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visitor on your local network, another container or your monitoring, has no
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country: `SWWAF_EXCLUSIVELY_ALLOWED_COUNTRIES` refuses it unless you list it in
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`SWWAF_ALLOW_NETS`. Such addresses are never sent to GeoJS.
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## Documents
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- [`SPEC.md`](SPEC.md): the design.
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- [`EVALUATION.md`](EVALUATION.md): what already exists, what each tool covers
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and misses, and why none was adopted.
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