159 lines
8.2 KiB
Markdown
159 lines
8.2 KiB
Markdown
As part of [the `lnd` 0.3-alpha
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release](https://github.com/lightningnetwork/lnd/releases/tag/v0.3-alpha), we
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have addressed [issue 20](https://github.com/lightningnetwork/lnd/issues/20),
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which is RPC authentication. Until this was implemented, all RPC calls to `lnd`
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were unauthenticated. To fix this, we've utilized
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[macaroons](https://research.google.com/pubs/pub41892.html), which are similar
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to cookies but more capable. This brief overview explains, at a basic level,
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how they work, how we use them for `lnd` authentication, and our future plans.
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## What are macaroons?
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You can think of a macaroon as a cookie, in a way. Cookies are small bits of
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data that your browser stores and sends to a particular website when it makes a
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request to that website. If you're logged into a website, that cookie can store
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a session ID, which the site can look up in its own database to check who you
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are and give you the appropriate content.
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A macaroon is similar: it's a small bit of data that a client (like `lncli`)
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can send to a service (like `lnd`) to assert that it's allowed to perform an
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action. The service looks up the macaroon ID and verifies that the macaroon was
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initially signed with the service's root key. However, unlike a cookie, you can
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*delegate* a macaroon, or create a version of it that has more limited
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capabilities, and then send it to someone else to use.
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Just like a cookie, a macaroon should be sent over a secure channel (such as a
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TLS-encrypted connection), which is why we've also begun enforcing TLS for RPC
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requests in this release. Before SSL was enforced on websites such as Facebook
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and Google, listening to HTTP sessions on wireless networks was one way to
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hijack the session and log in as that user, gaining access to the user's
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account. Macaroons are similar in that intercepting a macaroon in transit
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allows the interceptor to use the macaroon to gain all the privileges of the
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legitimate user.
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## Macaroon delegation
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A macaroon is delegated by adding restrictions (called caveats) and an
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authentication code similar to a signature (technically an HMAC) to it. The
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technical method of doing this is outside the scope of this overview
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documentation, but the [README in the macaroons package](../macaroons/README.md)
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or the macaroon paper linked above describe it in more detail. The
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user must remember several things:
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* Sharing a macaroon allows anyone in possession of that macaroon to use it to
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access the service (in our case, `lnd`) to do anything permitted by the
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macaroon. There is a specific type of restriction, called a "third party
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caveat," that requires an external service to verify the request; however,
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`lnd` doesn't currently implement those.
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* If you add a caveat to a macaroon and share the resulting macaroon, the
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person receiving it cannot remove the caveat.
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This is used in `lnd` in an interesting way. By default, when `lnd` starts, it
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creates three files which contain macaroons: a file called `admin.macaroon`,
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which contains a macaroon with no caveats, a file called `readonly.macaroon`,
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which is the *same* macaroon but with an additional caveat, that permits only
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methods that don't change the state of `lnd`, and `invoice.macaroon`, which
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only has access to invoice related methods.
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## How macaroons are used by `lnd` and `lncli`.
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On startup, `lnd` checks to see if the `admin.macaroon`, `readonly.macaroon`
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and `invoice.macaroon` files exist. If they don't exist, `lnd` updates its
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database with a new macaroon ID, generates the three files `admin.macaroon`,
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`readonly.macaroon` and `invoice.macaroon`, all with the same ID. The
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`readonly.macaroon` file has an additional caveat which restricts the caller
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to using only read-only methods and the `invoice.macaroon` also has an
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additional caveat which restricts the caller to using only invoice related
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methods. This means a few important things:
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* You can delete the `admin.macaroon` and be left with only the
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`readonly.macaroon`, which can sometimes be useful (for example, if you want
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your `lnd` instance to run in autopilot mode and don't want to accidentally
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change its state).
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* If you delete the data directory which contains the `macaroons.db` file, this
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invalidates the `admin.macaroon`, `readonly.macaroon` and `invoice.macaroon`
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files. Invalid macaroon files give you errors like `cannot get macaroon: root
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key with id 0 doesn't exist` or `verification failed: signature mismatch
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after caveat verification`.
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You can also run `lnd` with the `--no-macaroons` option, which skips the
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creation of the macaroon files and all macaroon checks within the RPC server.
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This means you can still pass a macaroon to the RPC server with a client, but
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it won't be checked for validity. Note that disabling authentication of a server
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that's listening on a public interface is not allowed. This means the
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`--no-macaroons` option is only permitted when the RPC server is in a private
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network. In CIDR notation, the following IPs are considered private,
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- [`169.254.0.0/16` and `fe80::/10`](https://en.wikipedia.org/wiki/Link-local_address).
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- [`224.0.0.0/4` and `ff00::/8`](https://en.wikipedia.org/wiki/Multicast_address).
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- [`10.0.0.0/8`, `172.16.0.0/12` and `192.168.0.0/16`](https://tools.ietf.org/html/rfc1918).
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- [`fc00::/7`](https://tools.ietf.org/html/rfc4193).
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Since `lnd` requires macaroons by default in order to call RPC methods, `lncli`
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now reads a macaroon and provides it in the RPC call. Unless the path is
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changed by the `--macaroonpath` option, `lncli` tries to read the macaroon from
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the network directory of `lnd`'s currently active network (e.g. for simnet
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`lnddir/data/chain/bitcoin/simnet/admin.macaroon`) by default and will error if
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that file doesn't exist unless provided the `--no-macaroons` option. Keep this
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in mind when running `lnd` with `--no-macaroons`, as `lncli` will error out
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unless called the same way **or** `lnd` has generated a macaroon on a previous
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run without this option.
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`lncli` also adds a caveat which makes it valid for only 60 seconds by default
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to help prevent replay in case the macaroon is somehow intercepted in
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transmission. This is unlikely with TLS, but can happen e.g. when using a PKI
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and network setup which allows inspection of encrypted traffic, and an attacker
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gets access to the traffic logs after interception. The default 60 second
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timeout can be changed with the `--macaroontimeout` option; this can be
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increased for making RPC calls between systems whose clocks are more than 60s
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apart.
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## Using Macaroons with GRPC clients
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When interacting with `lnd` using the GRPC interface, the macaroons are encoded
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as a hex string over the wire and can be passed to `lnd` by specifying the
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hex-encoded macaroon as GRPC metadata:
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GET https://localhost:8080/v1/getinfo
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Grpc-Metadata-macaroon: <macaroon>
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Where `<macaroon>` is the hex encoded binary data from the macaroon file itself.
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A very simple example using `curl` may look something like this:
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curl --insecure --header "Grpc-Metadata-macaroon: $(xxd -ps -u -c 1000 $HOME/.lnd/data/chain/bitcoin/simnet/admin.macaroon)" https://localhost:8080/v1/getinfo
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Have a look at the [Java GRPC example](/docs/grpc/java.md) for programmatic usage details.
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## Creating macaroons with custom permissions
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The macaroon bakery is described in more detail in the
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[README in the macaroons package](../macaroons/README.md).
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## Future improvements to the `lnd` macaroon implementation
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The existing macaroon implementation in `lnd` and `lncli` lays the groundwork
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for future improvements in functionality and security. We will add features
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such as:
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* Improved replay protection for securing RPC calls
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* Macaroon database encryption
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* Root key rotation and possibly macaroon invalidation/rotation
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* Additional restrictions, such as limiting payments to use (or not use)
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specific routes, channels, nodes, etc.
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* Accounting-based macaroons, which can make an instance of `lnd` act almost
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like a bank for apps: for example, an app that pays to consume APIs whose
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budget is limited to the money it receives by providing an API/service
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* Support for third-party caveats, which allows external plugins for
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authorization and authentication
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With this new feature, we've started laying the groundwork for flexible
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authentication and authorization for RPC calls to `lnd`. We look forward to
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expanding its functionality to make it easy to develop secure apps.
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