Interesting! Looks like a race condition (with a 1ms window) during squawk allocation (the process that gives each aircraft a 4 digit identifier for ATC purposes) caused data corruption. They present that window as being small but 1ms is a decent chunk of time in our work lol
More specifically: it sounds like something which was supposed to be an atomic operation was split into two by the preempting task, with corruption happening because that task also interacted with the same piece of (now-temporarily-invalid) data.
Would be interesting if the report actually got into the details. The curiously specific "approx. 1ms window" sounds like an off-the-shelf memory race condition in combination with a preempting thread, for which 1ms is an absolute eternity and Guaranteed To Happen By Tuesday This Week™. But the "database corruption" sounds like database IDs being generated from timestamps with 1ms granularity.
> The incident was triggered by a valid manual request for a squawk code. This manual request was made correctly and there was nothing abnormal or invalid about the associated flight plan.
> While this request was being processed, the NAS received a message for a higher priority activity to be undertaken which resulted in the squawk code allocation being paused while the system processed the higher priority message. Switching between different activities in response to prioritised requests is a normal function of the system; however, when the processing of the squawk allocation request resumed, the software defect meant it did not resume correctly and the resulting output was corrupted.
> The reason this scenario has not occurred before is because:
> 1. The defect existed in a specific subsection of code within a software module, with an exposure window estimated as approximately one millisecond.
> 2. For the fault to occur, a higher-priority request had to arrive during that exact millisecond while the original request was part-way through updating a value.
> 3. Had the higher-priority request arrived even one millisecond earlier or later, the update would have completed normally.
> Post-incident investigation has identified that when processing of the squawk allocation request resumed, the data associated with it had been corrupted and affected some subsequent flight data updates.
Testing isn't an effective way to catch most race conditions. Code reviews, static analysis, and rigorous enforcement of concurrent coding standards is usually a better approach.
Or maybe even just reviewing logic that is subject to pre-emption.
Maybe I'm being too harsh.. on the plus side the system has at least failed hard every time there's been a fault. Nobody has died. But it's been 3 times now in the past couple of years, and two of those times resulted in over 2000 flights cancelled and days of backlog, and misery for hundreds of thousands. It's really not acceptable.
Very interesting. I spent a large part of my career in aerospace and never considered this failure mode before. It makes me wonder: how long is the pathological code allocation time? A few seconds, at most? We're talking about flight identification codes that are normally assigned upon takeoff and change at most a handful of times during a flight.
I assume the "manual request" is an aircraft squawking 7700 or similar, but why does the system need to interrupt an in-flight allocation in the first place? Any controllers here have insight?
One would think it would be sufficient to do something single threaded like
there will be some other tasks in the system that need time guarantees around when they get scheduled for very important (safety?) reasons. so when these higher priority tasks show up the lower priority tasks get suspended.
if they could guarantee hard bounds on how long low priority tasks take to complete they could implement your scheduling algorithm. but i think in reality the low priority tasks are either not boundable or they if they do have a provable bound the bound is too high.
A few years back, NATS went down because a flight plan waypoint confused the system and it crashed. They had to manually find the problematic flight plan, remove it and start the whole system back up.
Considering the last issue they encountered, it looks like in more than one place, there is no error catching and graceful resolution for those errors.
I would assume a system of such importance to handle issues without hiccups and alert the operators of what did not work. Like “this input caused this problem”, not just crash.
Back in 2023 when the previous issue happened, it didn't actually "crash", it detected what it perceived as an inconsistency (which was due to invalid waypoint logic for waypoint codes in multiple countries) and put itself in "maintenance mode".
> While this request was being processed, the NAS received a message for a higher priority activity to be undertaken which resulted in the squawk code allocation being paused while the system processed the higher priority message. Switching between different activities in response to prioritised requests is a normal function of the system; however, when the processing of the squawk allocation request resumed, the software defect meant it did not resume correctly and the resulting output was corrupted.
> The reason this scenario has not occurred before is because:
> 1. The defect existed in a specific subsection of code within a software module, with an exposure window estimated as approximately one millisecond.
> 2. For the fault to occur, a higher-priority request had to arrive during that exact millisecond while the original request was part-way through updating a value.
> 3. Had the higher-priority request arrived even one millisecond earlier or later, the update would have completed normally.
> Post-incident investigation has identified that when processing of the squawk allocation request resumed, the data associated with it had been corrupted and affected some subsequent flight data updates.
Well, that's comforting to know.
BBC: "Flight chaos caused by software defect in space of a millisecond, report says"
Sky: "'Millisecond' software error caused air traffic outage that grounded thousands of flights"
The Guardian: "Flight chaos for hundreds of thousands was caused in ‘millisecond’ by software error"
Sounds like pure bad luck.
Maybe I'm being too harsh.. on the plus side the system has at least failed hard every time there's been a fault. Nobody has died. But it's been 3 times now in the past couple of years, and two of those times resulted in over 2000 flights cancelled and days of backlog, and misery for hundreds of thousands. It's really not acceptable.
You don't know that.
How often does that original request happen per day? How often does the higher priority activiry take?
If the original request happens 864 times a day and the high priority request ten times, there's a 1 in 25 chance it will happen in a given year.
Seriously, for 2026 this is pure amateur hour with no excuse.
I assume the "manual request" is an aircraft squawking 7700 or similar, but why does the system need to interrupt an in-flight allocation in the first place? Any controllers here have insight?
One would think it would be sufficient to do something single threaded like
or whatever, but they're not and I'm curious why.if they could guarantee hard bounds on how long low priority tasks take to complete they could implement your scheduling algorithm. but i think in reality the low priority tasks are either not boundable or they if they do have a provable bound the bound is too high.
It doesn’t make sense to have other non-code allocation things competing for queue space with code allocations.
Considering the last issue they encountered, it looks like in more than one place, there is no error catching and graceful resolution for those errors.
I would assume a system of such importance to handle issues without hiccups and alert the operators of what did not work. Like “this input caused this problem”, not just crash.