"More than one version of commitment transaction" must be fixed in node software side, not VLS side
Los mantenedores suelen responder en 2 días
Nadie ha tomado este issue todavía.
Evaluación
- Dificultad
- 4/5
- Tiempo estimado
- 3-5 días
- Aptitud para principiantes
- 48/100
- Tipo de issue
- Error
- Claridad
- Bastante claro
- Estado de actividad
- Tranquilo
- Stack tecnológico
- c
- Área
- backend, distributed-systems
Línea de trabajo
El punto de entrada principal mencionado es sign_commit_part en channeld/channeld.c; rastrea el orden de su notificación y de calc_commitsigs, incluido el recuento de status_debug. Comprueba si openingd/openingd.c se ve afectado, ya que el issue deja esto sin determinar. Se considera terminado cuando la intención de firma se persiste antes de firmar y el comportamiento de reinicio/reintento sigue siendo coherente con policy-commitment-retry-same.
Escrito por el modelo de indexación a partir del texto del issue.
Descripción
Issue: Channel State Splitbrain, And VLS policy-commitment-retry-same
There is a race condition where the CLN node can ask VLS to sign a new
counterparty commitment (to which VLS then signs and responds), then
CLN crashes before it can write the new state to disk.
On restart, CLN will forget about the new state.
It will then channel_reestablish with its peer.
The issue is that the CLN node and the peer can now negotiate another
new state, with a set of HTLCs different from the new state from before
the crash.
However, VLS has already signed new state before the crash, and by its
policy policy-commitment-retry-same, it will reject the signing request
after restart, and there is no way to recover other than to close the
channel.
Fortunately, this state is not a funds-loss event; as far as VLS is
concerned, both the old state and new state are valid, and as far as
CLN (and presumably its counterparty) is concerned, there is only the old
state, and CLN is unable to sign the new state.
In VLS, policy-commitment-retry-same is the policy which requires
that every hsmd_sign_remote_commitment_tx is either the same as the
previous call, or is at the next higher state index.
In this issue, VLS thinks we are alreaady at the new state N, but CLN
and its peer believes the new state is N - 1 and attempt to
re-negotiate a different state index N.
A similar issue exists with rust-lightning.
In rust-lightning, depending on what exactly got saved on disk (it
seems to be dependent on whether the persister is asynchronous or
not), rust-lightning may re-call at state index N - 1, or have a
similar problem with CLN where it re-negotiates a different state
index N.
Incorrect Solution
CLN proposed a solution of "VLS should always just accept signing any
alternate new state N as long as state N - 1 is not invalidated."
This violates the VLS policy policy-commitment-retry-same.
The issue here is that VLS has the goal of "the node can be compromised,
but this will not lead to a funds loss event".
The problem is that VLS signing any alternate new state N (the
solution proposed by CLN) leads to a funds-loss vulnerability
that is exploitable if the counterparty has compromised the node.
The following user story shows the funds-loss vulnerability:
- Actors:
R, the counterparty.- secretly malicious.
A, the node (CLN or rust-lightning).- secretly compromised by
R.
- secretly compromised by
V, the Validating Lightning Signer.
- Start with
Rcommitment at state indexN - 1. Rsendsupdate_add_htlcwithH1with the tiniest amount.Adecides to sign the nextRstateN, and sends
hsmd_sign_remote_commitment_txtoV.Vsigns the new state and sends back the signature in response.
Let us call this state<R.N> H1.Areceives the signature for<R.N> H1and gives it toR.Ris now in possession of<R.N> H1.
APRETENDS TO CRASH.- On "restart",
APRETENDS to performchannel_reestablish
withRat stateN - 1. Rsendsupdate_add_htlcwithH2with the largest possible
amount, to be forwarded elsewhere (to another node owned byR).Arequests, toV, a signature for the nextRstateNwithH2
as the HTLC state.Vsigns the new state due to lack ofpolicy-commitment-retry-same.
Call this signature<R.N> H2.Rsends the revocation for stateR.N - 1.Vnow believes thatH2is "irrevocably committed" and authorizes
its forwarding onwards.Rcompletes the signature for<R.N> H1.- This can confirm, as it is now signed by both
VandR. Vcannot punish it it, because only stateR.N - 1is revoked.Rloses only the tiny amountH1(and it really only gets locked
until timeout) but gains the amount ofH2.RWINS.
- This can confirm, as it is now signed by both
Due to this proposed solution allowing funds loss (and the issue itself
not leading to funds loss, other than the "cost of doing
business" for fees for closing and re-opening channels), VLS rejects
this solution as worse than the problem.
Correct Solution
The correct solution is to write an intent to sign to disk,
before performing the signing.
This is valid as a solution: writing the intent to a log (called
the "write-ahead log" or "intent log") is how all modern
databases implement ACID transactions; Sqlite3 is faster if you
enable WAL mode while still as safe, and CLN often uses Sqlite3
anyway.
Thus, writing the "intent to sign this new state" to the log is
semantically equivalent to "I signed this new state".
Once it has been written and committed to the database, it is
equivalent to atomically having signed the new state.
The advantage is that this is effectively atomic from the point of
view of both VLS and CLN!
Thus, it makes atomic the two operations "make signature" and
"write new state to disk", even if the two operations are done on
different machines:
- Suppose CLN and VLS crash before it can write the intent-to-sign
on disk.
On restart, the view is:- CLN:
N - 1 - VLS:
N - 1 - Both are in synchrony.
- CLN:
- Suppose CLN writes intent-to-sign to disk, but crashes before it
can make the request to VLS.
On restart, the view is:- CLN:
N - VLS:
N - 1 - On restart, CLN sees the intent-to-sign and calls VLS to make
the request to signN.
This is accepted by VLS because it is a state advancement
fromN - 1toN.
- CLN:
- Suppose CLN writes intent-to-sign to disk and is able to make the
request to VLS, but VLS crashes before it can sign and updates its
own disk.
On VLS restart, the view is:- CLN:
N - VLS:
N - 1 - The CLN-VLS integration code will repeat the last request that
has not been responded to on reconnection.
This is the same request that signsN, which is accepted by
VLS as a state advancement.
- CLN:
- Suppose VLS signs and writes to disk, but crashes before it can
send the response to CLN.
On VLS restart, the view is:- CLN:
N - VLS:
N - As noted, the CLN-VLS integration code will repeat the last
request on reconnection of VLS.
As this request is the same as the request VLS received before
crashing, this passespolicy-commitment-retry-same.
- CLN:
- Suppose VLS is able to respond to CLN, but CLN crashes before it
can send the signature in acommitment_signed.
On restart, the view is:- CLN:
N - VLS:
N - On restart, CLN will see the intent-to-sign on disk, and re-do
the signing.
This is the same request as what VLS received before, which
passespolicy-commitment-retry-same.
Then CLN will use the signature for
connection_reestablish.
- CLN:
In CLN, the primary change is to move the call to calc_commitsigs,
in sign_commit_part of channeld/channeld.c, to after the code
that notifies the master.
The only dependency on the output of calc_commitsigs appears to be a
tal_count(htlc_sigs) in the status_debug message, which can be
replaced with tal_count(txs) - 1; otherwise, the outputs of
calc_commitsigs seems to only be used to generate the actual
commitment_signed message.
calc_commitsigs accepts txs as non-const, but does not appear
to actually modify it.
The commit_sig argument is an output, and is the only other
non-const pointer amongst its arguments.
I am uncertain if openingd/openingd.c also needs modifications.
Expanding View
There are four different things that a signer has to handle for the
channel state advancement:
- Our commitment:
- Validate signature from counterparty for
N. - Provide revocation to counterparty for
N - 1.
- Validate signature from counterparty for
- Counterparty commitment:
- Provide signature to counterparty for
N. - Validate revocaation from counterparty for
N - 1.
- Provide signature to counterparty for
Uniquely, this splitbrain phenomoenon only affects the "provide
signature to counterparty for N".
- Validate signature from counterparty for
N.- If the counterparty makes signatures for different
Nstates
instead of just a singleNstate, that means the counterparty is
opening itself to the vulnerability described here. - This means that this is not a funds loss for us at least.
- VLS can safely replace its own state with the latest signature and
latest state from the counterparty or node.
- If the counterparty makes signatures for different
- Provide revocation to counterparty for
N - 1.- The revocation key is independent of any HTLCs or other state.
- The only validation VLS makes here is to ensure that "validate
signature from counterparty" has been done.
- Validate revocation from counterparty for
N - 1.- The revocation key is independent of any HTLCs or other state.
- CLN can repeat this request to VLS any number of times and the
result will be the same each time (i.e. fully idempotent).
Thus, changes are unnnecessary in CLN for the other parts.
- Lenguaje dominante
- C
- Estrellas
- 3.1k
- Forks
- 1k
- Merge medio
- 3 d 10 h
- PR fusionados (30 d)
- 40
Preparar el entorno
- Incluye un Dockerfile o un archivo de Docker Compose
- Tiene una plantilla de pull request
- Sin guía de contribución
Primeros pasos
- Lee el issue completo y luego la guía de contribución del proyecto.
- Comenta en el issue que vas a ocuparte — evita que dos personas hagan lo mismo.
- Haz un fork del repositorio y trabaja en una rama.
- Abre un pull request que haga referencia al número del issue.
Más de ElementsProject/lightning
-
Dificultad 1/5 Menos de una hora Aptitud para principiantes 90/100
ElementsProject/lightning#9593 ·
Los mantenedores suelen responder en 2 días
-
Dificultad 2/5 1-3 horas Aptitud para principiantes 68/100
ElementsProject/lightning#9322 ·
Los mantenedores suelen responder en 2 días
-
Dificultad 2/5 1-3 horas Aptitud para principiantes 68/100
ElementsProject/lightning#9206 ·
Los mantenedores suelen responder en 2 días
-
Dificultad 2/5 1-3 horas Aptitud para principiantes 68/100
ElementsProject/lightning#9187 · 1 comentario · 1 reacción ·
Los mantenedores suelen responder en 2 días
-
QA
Dificultad 1/5 Menos de una hora Aptitud para principiantes 88/100
ElementsProject/lightning#9117 · 2 comentarios ·
Los mantenedores suelen responder en 2 días
Todos los issues de ElementsProject/lightning
Issues similares
-
Linux notifications: the default action's ' ' label shows as a blank button in xfce4-notifydAbierto
Dificultad 2/5 1-3 horas Aptitud para principiantes 72/100
kovidgoyal/kitty#10625 ·
Los mantenedores suelen responder en 1 día
-
Feature Status: Needs Triage
Dificultad 2/5 1-3 horas Aptitud para principiantes 73/100
Los mantenedores suelen responder en 1 día
-
docs
Dificultad 2/5 1-3 horas Aptitud para principiantes 68/100
Los mantenedores suelen responder en 1 día
-
Dificultad 2/5 1-3 horas Aptitud para principiantes 68/100
Los mantenedores suelen responder en 1 día
-
Dificultad 2/5 1-3 horas Aptitud para principiantes 82/100
RubyMetric/chsrc#396 ·