It's been tried so many times before, and it never worked.
I myself had preferred to use MySQL because it was so simple and easy to get started and using it.
Until I learned how many MySQL databases were configured without user/password and many instances were reachable over the internet.
Then, eventually products started to move towards "don't even ask the user to set a password, otherwise they will set a stupid password" and just generate the password during installation. This made the user think more before saving that password or changing the password to something less stupid. But better than all that, liability was no longer with the software maker.
If the defaults are more secure than your examples, it's not fair to blame the database or the defaults.
And personally I hate it when software forces security requirements on me. Maybe I don't need an admin password. It's one reason I gave up on selfhosted gitlab - there was no option to reduce password complexity for my users, and those users were only connecting from the local network. The other reason being that it spammed 100GB of logs in a month and was using 11GB of RAM before I'd even gotten around to setting up the first repo.
Have you used LLM tooling? It comes with warnings and explains that the user accepts the risk. Different levels of warning are supplied for the different levels of autonomy you can enable. The user has to understand the risk as they enable it.
This is not a new concept and it’s not an idea the LLM companies invented. It shouldn’t be surprising to anyone.
I don't recall any prior computer software working so badly that it needed a disclaimer like "Claude is AI and can make mistakes" on its front page. Let alone one so costly.
I'm sure I've already got a dozen people reaching for the reply button, but slow down there, cowboy. I don't think it's even remotely as easy to define as people think. We have a reasonable concept of how to lock them down really tightly, no question, and I expect that most of the answers in the "leap to mind" category match that.
But let's say we'd like them to continue functioning the way they do today. I want my agent to be able to hit the web. I want my agent to be able to read out of its assigned directory sometimes. I want it to be able to hit external resources through MCP servers that have no pragmatic way to know what's going on. And probably most importantly of all, I want my AI to be able to grab from three distinct sources, each of which may be nominally safe on its own, and combine things in a way that may make each of those nominally safe things become unsafe. For example, any ability to read a local file and make a remote request becomes a potential exfiltration mechanism, especially when you remember all the sidechannel ways communication can occur.
I agree that shifting everything on to the user is essentially non-functional. But whereas I feel like I have a reasonable answer to a lot of other security-related problems, it isn't even clear to me what the definition of a secure agent is.
There's an effect I need to put a name on someday, where you can get 10 people in a room to agree to a certain series of words, and they will all leave the meeting thinking they agree, but in fact there is no agreement at all because they all have a different definition of the words that were used. In this case, everyone here is going to go "Oh, yes, certainly, AI agents should be secured." But if you sit down with 10 of us to really do the work of defining exactly what that is, you're going to get 10 different answers. There will be overlap, certainly, but when you get down to the nitty-gritty questions like "OK, the user has explicitly asked the agent to do X by accessing Y and the agent has done so and determined that they need to do Z, which the user clicked "allow all" for, and now the agent has decided that it wants to do T, is T fully covered under that "allow all" or not?" you're not going to get anything like universal agreement across the huge range of Xs, Ys, Zs and Ts that could happen and are relevant... and that's still just one question! It's not the totality of what constitutes a "secure agent".
Defining what a "secure agent" even is is really hard because when it comes to agents, the things that fill in the variables are as arbitrarily complicated as human actions. I haven't fully worked this out but it might be reasonable to say that "agent security" is in reality Turing complete, what with the way they so often throw out fully-fledged programs that you have to approve or reject permissions for.
https://en.wikipedia.org/wiki/Capability-based_security
Thus some agents with higher capabilities can only be run with user oversight at the same time.
Some agents can not be run during some part of the day - for example these agents can not run within two hours of office closing time, and cannot run on weekends.
Maybe also the idea of agents writing code - throwing "out fully-fledged programs that you have to approve or reject permissions for."
Would work better with a capabilities based model where you choose capabilities for the program before hand, meaning the capabilities are not written by agent itself, you read through the code, some of it looks hairy but everything is fine, but oh no dumb human missed the part where agent writes to system32! But luckily enough the program you were expecting actually needed no write capabilities and thus when it tries to go past its assigned capabilities that part of the program fails and the exception is registered.
Googling it seems like lots of people have thought this (at least where Capability based security is concerned), which seems reasonable to me as it also seems pretty self-evident it must be this way. Have not really seen anything about time based controls but then that is probably because I'm not devoting a lot of effort as I am just doing a bit of procrastination to build up the energy to finish something off.
I've done some stabby stabs at a design for it, using an AI as the rubber duck. My initial research indicates that the field of "static language that natively supports capabilities" is surprisingly uncovered and there may be a rich field there. E, the closest match, was tied at the hip to Java, which has some advantages but also comes with disadvantages for languages that are trying to do something as exotic as this. Other existing work was on dynamic languages, and hardly rose to the level of "practical for any use" let alone something that could solve our supply chain issues.
My issue is primarily that the reward for successfully designing a language and creating a community around it is that you're in charge of a language community... and, uh, my personality is not suited for that, that sounds more like something I'd pay to avoid then something I'd spend months and years of hard work to attain.
(My advice to anyone doing this is to spend some time with the AI researchers to find the existing work on the topic, not to just sit down and sketch out your initial ideas and run with them. Learn from the past. Expect this to be weeks and probably months of just thinking and noodling before you get to a design. Also, don't try to hook deeply to an existing language, as tempting as it is. This is way too large an impedance mismatch with existing languages. Any external code has to be treated like a nuclear bomb anyhow.)
In Rust an Option is a separate thing that you need to disambiguate to use. For example:
match result {
// The division was valid
Some(x) => println!("Result: {x}"),
// The division was invalid
None => println!("Cannot divide by 0"),
}
Likewise in Rust, you can't have a null pointer, but you can have an Optional pointer, which is either a pointer to something or is not anything.Firefly seems to have a similar case structure, though the first example I could find is in the Exceptions section: https://www.firefly-lang.org/reference/exceptions
grabOption[T](option: Option[T]): T {
| Some(v) => v
| None => throw(GrabException())
}Deno has something vaguely built in with permissions flags, and old school Blackberry (at least in the J2ME days) had permissions settings for almost everything that an app could do, but again, those are all external to the language design itself.
I wrote a bunch more, but I have a habit to verbosity when capabilities come in which I should attempt to combat, and have deleted it. Crockford says these things better than I can anyhow.
This has massive overlap with a lot of things, like capabilities as implemented by Linux, effects systems, monadic data types as a not-really-very-good capabilities system (Haskellers have been playing with this for years and nobody really loves this approach, many practical problems beyond the scope of this message that would affect any language that tries that approach), dependently-typed programming, and so forth.
It is not a flag, though; flags can't handle that "transitive environment" aspect. It is also granular on the level of the programming language. This would allow you to do things like have your program be given access to a given part of the mobile file system using the mobile OS' permissions, but you could know beyond a shadow of a doubt that the image library you are using can not at any point access the file system, no matter what changes the author makes to it, because you can just look at the capabilities given to the image library and see that file system access is not among them. This is where real opportunity is over the next few years, in my opinion, because supply chain attacks are going to continue to get worse. A neat aspect of this approach is that it makes huge swathes of the ecosystem unattractive targets by statically ensuring that they can't sneak anything in to something that doesn't need file system or network access, so hackers won't even attack those libraries. Thus the ecosystem can concentrate on monitoring just the high-touch libraries that need to access high-risk resources.
(I should make it clear that the image parsing libraries can be passed a file; what I am saying is that they can't spontaneously originate arbitrary file system access in a system like this. Really what they would get is probably a "stream" and they would be forbidden from poking into the stream to see what it is made of, at which point, if some other code handed it a file presumably it meant to do that, but it does not give the image library any ability to do anything else with the filesystem.)
Moreover, if such a benefit was available, that would tend to have people squeeze down those dependencies as much as possible too, e.g., the aforementioned image library. You don't need file system access to parse images, that's just some convenience functions easily worked around that are provided because why not? The number of things that truly need direct high-risk access can actually be surprisingly small, and often, the application can also easily scope the permissions down quite tightly so the HTTP request library is limited in what it can hit, etc.
We actually have some semi-decent stabs at capabilities at the OS level; we can quibble with them but they are there. But inside an OS process, broadly speaking, anything can do anything in the vast majority of programming languages. The only way to be sure that the string concatenation function doesn't start crawling your file system looking for crypto keys is to examine the code, most languages have no ability to tell it that it can't. There are exceptions, like the aforementioned Haskell, that have at least some ability to do this, but this is an HN post, not a complete guide to a major topic. Really this is more about loading the reader up with keywords they can hit Google or an AI with.
The term is overloaded, too; Pony has something it calls "capabilities" but it really resembles more a sort of response to Rust's borrow checker, and if there is a way to lift it into this style of capabilities coherently it isn't clear to me. And even if you did, the entire rest of the ecosystem wouldn't support it, which is one of the reasons why this has to be a new language. You can't bodge this on to the side of an existing language.
(Plus, IMHO, there are some other ideas this may shake loose. Programming languages seem to be in a rut right now. My crack in my previous message about sum types and such isn't really about those things but the way almost every language going by is just a respelling of previous languages, churning over some other iteration of "The Perfect 2015 Language" that is already covered by any number of existing projects. I don't know that there's a lot of room there anymore. We need something big. Once you try something big the design will inevitably lead to other interesting things nobody else is trying either. Capabilities is one distinct possibility... like I said, if you dig in to the history you will discover there are entire huge segments of the capabilities space that haven't even been tried. If nothing else, if you are a PL nerd, I guarantee it'll be fun to explore those spaces that almost nobody has covered. No criticism intended to those who have, who have done a good job. It just hasn't been enough people and enough exploration to truly map the space.)
The best case would be putting an agent in a VM and mounting the working directory there. Then you can allow it to run somewhat arbitrary actions while still being able to turn off the vm and restart it in a clean state.
The issue is, of course, that it doesn't fully prevent all possible problems an agent can cause. exfiltration is, IMO, basically impossible to stop. LLMs are exfiltration machines. The basic premise of all of them is "send us your code and a prompt and we'll do something good with it. But also if an agent decides run a command which installs a worm on a device on the network, you are hosed.
As if the most valuable thing on my pc was running a program on the gpu or the printer as opposed to my email account.
More security conscious admins will at least segment their creds and implement four eyes principles somewhere, but were are back at square one of "asking user for confirmation".
Larger orgs, even if by necessity, segment their human agents, their creds and plaster four eyes principle liberally. But this relies on safeguards against agents colluding and ignoring some inputs, which sounds a bit scary for artificial agents.
Say you implement some swarm of agents, where access-enabled sub-agents are extremely restricted with system prompts and some access filtering. Then none of the agents in the swarm should be able to spawn themselves, otherwise a rogue agent can overwrite any safeguards. That, again, leaves the user with manually approving/denying network requests / hosts / sessions.
While I don't like anthropomorphising LLMs, the problem domain seems quite damn close to that of a key person going rogue within an org. The general solution seems to be liberal amounts of trust and ~~sweet compensation~~ gaslighting about replaceability.
Yes, I think that's very related. Humans can be punished for their crimes but they can also experience benefits that have no applicability to an LLM, so for a first approximation we can cancel those. It is very similar to trying to secure a human.
We have more experience with that, but even then it's a hard problem too.
github.com/brianv0/formwork
You should be easily able to hide/lock down files, network, and MCP tools from an agent and it shouldn’t be up to the agent.
Locking that down to nothing is trivial for any harness: just don't expose those to the LLM.
The tricky part is allowing access to those.
Bc the "give a check by hand" or the "unbound discipline" never works.
The more things you need to be aware of at the same time, the more mistakes you are going to make due to cognitive overload.
The common harnesses also have some sandbox functionality, which although imperfect actually does help contain the blast radius for a lot of things.
The common harnesses also support remote development over SSH, which I and many others use to contain development to a virtual machine.
If your complaint is that LLMs can execute tool calls then you’re never going to be happy with any of these solutions and this turns into another generic anti-LLM complaint.
This is such an unserious approach.
Like I said above, some people will never be happy with LLMs being allowed to do anything and nothing is going to make them happy about it.
It’s only fair to discuss what the real current status of these systems is. Every time I highlight that things are actually being done, the goalposts move again. There is no possible solution which will satisfy someone who has zero tolerance for letting an LLM execute tool calls because they will always find something.
Thats fine, theres still a chance it fails.
> There is no possible solution which will satisfy someone who has zero tolerance for letting an LLM execute tool calls because they will always find something.
This is generally correct, security goes completely out of the window with this stuff. It will/currently is a security disaster and theres no actual solution to it.
I think you’re overestimating the revenue generated by this. Having a separate LLM with a cached input prompt check commands is a trivial adder. The only reason it comes up is because they explain to users that it comes out of their plan. So someone on a $20/month plan is going to hit their limits marginally, though mostly negligibly, faster.
If you think they’re sitting in a conference room scheming about making their main models worse on purpose to collect a few extra cents, that’s just baseless conspiracy. They have more to gain or lose based on main model performance.
In fact it might actually be the solution that works.
Imagine if an intelligent agent (in service of the user) had to approve every new outbound connection, system call shape, filesystem command, etc. that arbitrary software wanted to make.
From what I've seen most auto-approvers in coding harnesses either auto-approve or auto-reject, with no middle ground of escalating the decision to the user, and breaking down the pros and cons for the decision.
Just bringing it up because you're right, in software that's considered a bad pattern (rightfully so).
The "user[s] on both sides" of ATC conversions have passed through the filters of rigorous training and certification. They also happen to communicate in a DSL designed to minimize misunderstandings, the DSL just happens to be based on English.