Generally, we will not find the CHILD_SA by searching for it with the
outbound SPI (the initiator of the DELETE sent its inbound SPI) - and if
we found a CHILD_SA it would most likely be the wrong one (one in which
we used the same inbound SPI as the peer used for the one it deletes).
And we don't actually want to destroy the CHILD_SA at this point as we
know we already initiated a DELETE ourselves, which means that task
still has a reference to it and will destroy the CHILD_SA when it
receives the response from the other peer.
libcharon_deinit() already calls all the functions we called manually.
Unloading the plugins will not work if charon->initialize() is called
as charon's static plugin features would already be unloaded before the
destroyed members are accessed in destroy() to flush them.
If a called script interacts with the daemon or one of its plugins
another thread might have to acquire the write lock (e.g. to configure a
fallback or set a value). Holding the read lock prevents that, potentially
resulting in a deadlock.
fgetc() returns an int and EOF is usually -1 so when this gets casted to
a char the result depends on whether `char` means `signed char` or
`unsigned char` (the C standard does not specify it). If it is unsigned
then its value is 0xff so the comparison with EOF will fail as that is an
implicit signed int.
This fixes DNS server installation if make-before-break reauthentication
is used as there the new SA and DNS server is installed before it then
is removed again when the old IKE_SA is torn down.
If running resolvconf fails handle() fails release() is not called, which
might leave an interface file on the system (or depending on which script
called by resolvconf actually failed even the installed DNS server).
We don't need them for drop policies and they might even mess with other
routes we install. Routes for policies with protocol/ports in the
selector will always be too broad and might conflict with other routes
we install.
Using the source address to determine the interface is not correct for
net-to-net shunts between two interfaces on which the host has IP addresses
for each subnet.
Other threads are free to add/update/delete other policies.
This tries to prevent race conditions caused by releasing the mutex while
sending messages to the kernel. For instance, if break-before-make
reauthentication is used and one thread on the responder is delayed in
deleting the policies that another thread is concurrently adding for the
new SA. This could have resulted in no policies being installed
eventually.
Fixes#1400.
If a pseudonym changed a new entry was added to the table storing
permanent identity objects (that are used as keys in the other table).
However, the old mapping was not removed while replacing the mapping in
the pseudonym table caused the old pseudonym to get destroyed. This
eventually caused crashes when a new pseudonym had the same hash value as
such a defunct entry and keys had to be compared.
Fixesstrongswan/strongswan#46.
If two CHILD_SAs with mark=%unique are created concurrently they could
otherwise end up with either the same mark or different marks in both
directions.
This is the case for the IKE_SA_INIT and the initial IKEv1 messages, which
are pre-generated in tasks as at least parts of it are used to generate
the AUTH payload. The IKE_SA_INIT message will never be fragmented, but
the IKEv1 messages might be, so we can't just call generate_message().
Fixes#1478.