> I believe memory safety is table stakes

I'm not sure what that means. Java lets you do many things programs may want to do in a memory-safe way but not everything. Rust lets you do fewer things than Java in a memory-safe way, but more things than Zig. Zig lets you do fewer things in a memory-safe way than Rust, but more than C. So among these four languages we already have four levels of memory safety, none of them is 100%, all of them give up something in exchange for what they offer, and different programmers have different preferences for the compromise they prefer, and even that preference is context-dependent. Which of those less-than-100% memory safety compromises is the table stakes? And given that all of these compromises require something that could be quite substantial, depending on the circumstance, in exchange, and consequently programmers with the highest level of knowledge and expertise choose every one of those four in different situations, to me it seems pretty obvious that none of these is "table stakes".

I'll say the same thing I said to you as I said to Andrew, last time he and I talked about this: the way that everyone talks about memory safety (with maybe two exceptions, one okay (go) and one I dislike (fil-c)) is that "memory safe language" is about there being a clear delineation between what is memory safe and what is not, and that the unsafe aspect is a superset. Rust and Java both are memory safe, except where explicitly demarcated as not (unsafe in Rust, JNI or sun.misc.unsafe or whatever in Java). Zig and C have no such separation. When I (and others) talk about wanting memory safety, this is the important aspect of the design. This is what enables the "I know statically that a large part of the code is safe, and I also know where to check if something goes wrong" aspect of things.

Would you mind sharing some thoughts about fil-c? AFAICT its claims mostly check out so besides implementation details (GC?) it seems directionally good.

My main problem with Fil-C is that it combines the worst parts of C with the worst parts of a GC language.

In a language like C (or Zig), you need to manually manage memory. This makes programming a lot more complex, and it's really easy to accidentally mess up. Especially in large projects which have a lot of separate modules.

The biggest advantage of using a garbage collector is that you don't have to think about freeing memory. The GC automatically frees objects when they're no longer referenced. This makes programming much much easier. The downside of using a garbage collector is that it hurts performance at runtime. GC languages are slower and use more RAM.

Fil-C is the worst of all worlds here. Like C, it forces you to manually manage your own memory. But you still pay the performance cost of having a runtime garbage collector. And that cost is (apparently) really high. The only performance numbers I've seen showed ~2x worse CPU performance and ~4x worse memory performance. There's no way Fil-C can compete with C, Zig and Rust for performance.

So with Fil-C, you have a language that's much slower than C, and much more difficult to program in than C#, Java, Go or Typescript.

Fil-C still has some wonderful uses. Fil-C could be a fabulous debugging tool for C programs. It could be a wonderful teaching tool if it had nice visualisations on top of the GC's view of the world. And it could be a great way to run legacy C code.

But it's not a "rust killer". Fil-C programs run too slowly to be able to compete head to head with rust. And Fil-C doesn't offer the language benefits of a GC that you get in C#, Go, and friends. It seems like a really bad deal.

> GC languages are slower

This is not necessarily true. It depends on a language, e.g. Go is slow, Nim[0] is extremely fast with conventional GC and slightly faster with ARC/ORC[1].

GC programs can be faster than manually managed ones in some cases. It's just manual memory management gives you more control of where and when free is called. And a good type system is a privelege that gives Nim more control with destructors.

Another scarecrow of safe languages is GC pauses, which is also not a thing in Nim, see table in [2].

[0] - https://nim-lang.org/

[1] - https://nim-lang.org/blog/2020/10/15/introduction-to-arc-orc...

[2] - https://nim-lang.github.io/Nim/mm.html

You can always use things like arenas in C and get similar speed ups without GC overhead. If you know your memory lifetimes in advanced, avoiding granular malloc/free calls is pretty straightforward. A GC language doesn’t usually offer such options.

Good to know! Would there be any way languages like Go or C# could adopt Nim's new garbage collector? If it's better, what stops other languages from using it?

> GC programs can be faster than manually managed ones in some cases.

I've seen poorly written programs in C/C++/Rust which are slow because they allocate millions of tiny objects. Its true that generational GCs can be faster in this case. But you usually get much better performance again by using arenas and such. The reality is that I know more about the lifecycle of my data than my compiler. If you know what you're doing, you can take advantage of this information to write better programs.

If you don't want to think about memory management, then I agree - you're usually better off using a language with a GC. Personally I do a lot of my prototyping in typescript because I can iterate faster when I don't have to think about lifetimes.

Maybe some day Fil-C will run general purpose C code at native speeds, without a high memory overhead. But we're not there yet. I'm not holding my breath.

I'll come back and say some more in a bit, but in short: I like the idea of fil-c, but I also have some issues. I think it's overall a good and interesting project, but with some caveats.

Not OP, but AFAIK one big issue with FIL-C it does the checks at runtime, adding overhead, don't quote me on this, but IIRC is around 20% slower.

2x slower and 4x less memory efficient were the numbers I heard a year or so ago. Reaching within 20% of full native performance while using a garbage collector sounds too good to be true.

Do you have any actual benchmarks?

Okay so: in general, as a rule of thumb: anything that makes stuff have more memory safety is good. And experiments towards that end are also good.

What I do not like, primarily comes down to how the project is talked about and marketed. First, because it promotes an "us vs them" mindset, instead of a "we're all trying to improve memory safety" mindset, and second, because in doing so, it also overstates its case.

These things are sort of intertwined. Let's talk about the overstatement first. Fil-c has its own definition of memory safety that is slightly different than others. For example, I saw this recently:

    #include <stdlib.h>
    #include <stdio.h>
    #include <string.h>
    
    struct User {
        char name[8];
        int is_root;
    };
    
    int main(int argc, char*argv[]) {
        struct User* user = malloc(sizeof(struct User));
        strcpy(user->name, argv[1]);
        if (user->is_root) {
            printf("I am root!\n");
        } else {
            printf("I am not root :(\n");
        }
        return 0;
    }
This, when invoked with "012345678" passed in, will print "I am root!". In my understanding, this is deliberately allowed.

But beyond corners like this, fil-c's author will go on about "Rust has unsafe as a hatch, fil-c does not" while if you control-f for "zunsafe_" on https://fil-c.org/stdfil you get ... escape hatches.

The author regularly erases the difference between "traps at runtime" and "is prevented at compile time", which are legitimate tradeoffs where one or the other may be better depending on what you're doing. But they're presented as either equivalent, or one is superior, and I find this muddles the discourse. The performance issues also tie into this, "add a GC" is absolutely a valid way to handle these sorts of issues, but it is not the same thing as what Rust does. And that's okay! But presenting it as purely superior means that it's just hard to talk about.

Speaking of muddling the discourse, the author regularly trolls on X, providing tons of bad faith arguments and generally trying to rile up a "fil-c vs Rust" war that I think reduces our ability to talk about these differences in a calm, engineering focused context.

Finally, due to its design, fil-c is effectively Linux only. That's great for Linux, but many people also use other systems, and so it is not a meaningful option for them.

Anyway, after saying all that: I still think that it is a good project, and that it should exist and continue to be worked on. I just wish that the heat was turned down, and people could talk about the various approaches and their tradeoffs without turning it into a culture war.

I generally agree with all of this, but I'll add a few additional remarks. Because it's come up a bunch lately, I decided to do a bunch of code review/audit of the Fil-C codebase, and I'd say while it's got a lot of good bones, there's a long way to go to being a foundation I'd be ready to build on. I've reported a few UAF's upstream, and I've got a few PRs I'll add on, but if it only took me a day or two to find some of these big holes, I'm sure there's more lurking under the surface. I'd consider it to at this point be more of an engineering demo that this approach is feasible and tractable, but not a production ready language that I'd want to ship code in.

On the muddling the discourse, I'm not on twitter and don't engage there, so I don't have an opinion on that, but I did come across https://news.ycombinator.com/item?id=49044561 recently, and I just don't see how the author can make such bold claims while examples like the one Steve provided above are still in the language. Corrupting memory in Fil-C is still easy, type confusion is still easy, intra-object overflows are still easy. Fil-C prevents a range of classes of bugs from being exploitable, but it doesn't stop the bugs from happening.

Yeah. In that thread the Fil-C author said of typescript, go and C#:

> Those languages rely on a much larger pile of YOLO C/C++ code for their runtimes and standard libraries than Fil-C does. So Fil-C is safer than those

Given the relative immaturity of Fil-C, this seems wildly wrong to me. I’m not sure how to take his claims about his runtime seriously.

[ https://news.ycombinator.com/item?id=49042736 ]

> it promotes an "us vs them" mindset, instead of a "we're all trying to improve memory safety" mindset

But you did the same thing when, on the spectrum that ranges from C to ATS, with Zig, Rust, and Java somewhere in the middle (though all closer to C than to ATS), you declared the exact compromise that Rust makes "table stakes"! [1]

Zig improves on C's memory safety when it comes to spatial safety, possibly the more impactful kind, so it, too, could be part of the "we're all trying to improve memory safety", yet you exclude it.

You're trying to draw some hard line that passes exactly between Rust and Zig on the C to ATS spectrum, and I'm trying to say that that line isn't there (your attempt at a definition of delineating safe and unsafe code also applies to C). Obviously, C, Zig, Rust, Java, and ATS all make very different tradeoffs, all of which may be more or less attractive to different people and in different circumstances, but there is no sharp line, at least not one that is meaningful enough to be "table stakes". Your personal inclinations place a premium on the things Rust offers and Zig doesn't while mine are the opposite, but I make no claim to universality.

I'm happy to accept that not everyone shares my aesthetics and can understand why some people prefer Rust, but those claims to or hints at universality annoy me (as they did when they were made by Haskellers, and I actually find Haskell's aesthetics quite pleasing), as they are simply unsupported. I've spent a lot of time studying formal methods and software correctness in general (https://pron.github.io) and if there's one thing we know in that field is that things are never that simple (and, bringing this back to this posts topic, even something like incremental compilation can contribute to program correctness).

(Now, you may argue that you're only talking about "memory safety" and not correctness in general, but what gives memory safety value is that violations are causes of many dangerous vulnerabilities; but once, say, Java eliminates all of them, 100% of bugs/vulnerability - which are still numerous - will be caused by other problems, all potentially avoidable with ATS, so why isn't ATS table stakes? Of course, the answer is cost, but all the languages on the spectrum differ in their costs.)

[1]: I assume that you meant Rust's compromise, because you implied that Zig doesn't pass that bar but Rust does.

> But you did the same thing when,

I do not go around posting "omg Rust is SO MUCH BETTER than zig or fil-c, which are TRASH." I talk about engineering tradeoffs, and what matters to me personally. I do not say "if you use Zig, you are a bad person." I am not saying that any comparison is bad. I am saying that the way that the comparison is presented is bad. That is different.

> you declared the exact compromise that Rust makes "table stakes"

Table stakes for me.

> Zig improves on C's memory safety when it comes to spatial safety,

I agree that it's an improvement on C!

> yet you excluded it.

I said that it is not pursuing a design that I personally find compelling enough to use to write software. That doesn't mean that I think it's worthless. This whole thing started off with me talking about how much I respect the Zig project! Yet you're trying to turn this into something where I'm talking shit. I presented a specific technical tradeoff that is important to me. That is very different.

> You're trying to draw some hard line on a spectrum that passes exactly between Rust and Zig, and I'm trying to say that that line isn't there (your attempt at a definition of delineating safe and unsafe code also applies to C)

I don't believe you've shown that. And my "attempt" does apply to C: it fails the bar, because it does not delineate between a safe subset and an unsafe superset.

> you may argue that you're only talking about "memory safety" and not correctness in general,

I am in fact talking about "memory safety" and have been this whole time, yes.

> what gives memory safety value is that violations are causes of many dangerous vulnerabilities; but once, say, Java eliminates all of them, 100% of bugs/vulnerability - which are still numerous - will be caused by other problems, all potentially avoidable with ATS, so why isn't ATS table stakes?

This is just an entirely different question. Yes, there are other forms of safety that are important too. That's just not what we're talking about here.

> Table stakes for me.

Ok, so if you meant "table stakes" as an expression of a personal preference and suitability to the programs you write without making an unsupported universal claim such as "this leads to better correctness" or "the price is almost always worth it" then we're good :)

> Yes, there are other forms of safety that are important too.

The thing is that they can be at least equally important, and some affordances for memory safety could potentially _harm_ them. To me, Rust offers little safety in the programs I want to write in a low-level language, but the price it charges in language complexity and implicitness ends up in a negative balance (I can't prove it, of course; as I said, software correctness is very complicated, and some of the greatest researchers in the field were proven wrong on how to best achieve it).

There's a distinction between claiming something is objectively better, which is what Fil-C claims with respect to its "idea" about memory safety compared to Rust... and claiming a personal preference for one approach versus another approach, which is what OP is saying about their own personal preference about how Zig reduces errors compared to how Rust reduces errors.

It is absolutely possible that one language might actually have an objectively better approach to memory safety than another, and in such cases it is usually possible to argue for this using sound technical or empirical arguments. But the way the author of Fil-C presents their arguments it often comes across in a kind of antagonistic manner, like he has a chip on his shoulder.

> But the way the author of Fil-C presents their arguments it often comes across in a kind of antagonistic manner, like he has a chip on his shoulder.

You may well be right. I've yet to learn about it, but I'm planning to.

> But you did the same thing

So your defense is a tu quoque fallacy? Note that "the same thing" is an admission.

I’ve been watching this debate online and in my opinion both sides are guilty. Fil is intentionally trying to be funny or at least “interesting “ when he makes his points and I, for one, enjoy his humor, which includes having a go at Rust and other languages. It seems Rust people just can’t take a little criticism, even when it comes from a clearly trolling language! Yes it’s true Rust has an escape hatch, and we’ve seen serious memory safety bugs due to unsafe Rust in the wild. Fil-C does not have one, what you post seems to be internal or even temporary stuff given the author clearly has a goal of not providing one? I would say you and others need to just relax and not treat all and every Rust criticism as an offense to you.

Maybe I'm just old, but I want to focus on engineering outcomes, not "trolling." If that means "can't take a joke," that's fine, but also "haha I'm just joking" is often what people use to try and hide behind their actual intentions.

I don't even work on Rust anymore, and in fact started this thread with a criticism of Rust. There are lots of good criticisms of Rust. There is a difference between "this criticism isn't good" and "every criticism is an offense."

Yes! I think Fil is great so far but I think as he gets a bigger audience he should, well, consider that and focus on clarity a little more than humor. You can see Andrew’s growth in that respect.

Rust folks, this whole thing is a thread about Zig’s new feature - not even a memory safety-related feature! - and we cannot spend the whole damn time talking about Rust.

Steve, even you - I don’t believe I have ever seen you say an unkind word. But have you considered that it may be unkind to have written more than half of the words on a thread about a Zig performance feature?

I think the derailment of this thread into "is Rust's memory safety good or not" is unfortunate and tedious (this debate must have happened hundreds of times by now on this site alone), but I also think it's unfair to lay the blame on Steve for this. Steve left a thoroughly glowing comment praising Zig's work on compiler performance, and comparing to his perspective on the early days of Rust. He mentioned in passing that he's not a Zig user due to preferring to work in memory-safe languages, which was polite, brief, clearly his personal position, and in my opinion an acceptable way to disclose his relationship with Zig without derailing the thread to be about memory safety.

This comment spawned two subthreads. One of them was focused on the differences between Rust and Zig's compilation model, which is directly relevant to the article and illuminating regarding the engineering tradeoffs.

In the other subthread, pron posted paragraphs and paragraphs arguing about what memory safety really means and whether or not Steve is right to have his opinion that Rust is "safe". This tangent had essentially nothing to do with the content of Steve's comment; it (and not Steve's initial comment) was the point where the thread was derailed from the topic of Zig's incremental compilation model. Steve responded politely in this thread to comments and questions directed at him, but did not fan the flames or take the thread further into off-topicness. If the moderators collapsed pron's comment or detached it and pinned it to the bottom of the page, this comment thread would be much better and much more respectful to the Zig project.

I think the RESF trope is just about dead now; it's given way to the Rust Detractor Strike Force showing up to turn unrelated threads into tangential arguments about why Rust is bad.

> But have you considered that it may be unkind to have written more than half of the words on a thread about a Zig performance feature?

Inherently? No! I commented specifically because I was really glad to see this post. This work that Zig is doing is very good, and I wanted to call that out, in part specifically because I am on "the other side" in whatever sense that is. Why would it be unkind for kind words to be coming from me?

I do see that you often have kind words for Zig and some attempt to more precisely define the differences.

What I mean is a bit different though, it’s that these arguments you get drawn into end up drowning out any real discussion of Zig’s progress. I don’t think that’s your intent but it is frustrating. I should be clear, I don’t think it’s wrong for you to defend yourself from accusations etc., I just wish it didn’t look like this.

I wonder how much better HN would be if they took a page from other forum systems that said “you know what, this whole branch of stuff should be moved over here and renamed so the original topic can move on”.

Sorry, all this may be unhelpful, I don’t know where the line should be, I’m just thinking out loud about the problem.

Ah, I see what you're saying. Oh, trust me, it's very frustrating for me as well. It is especially frustrating in these specific circumstances because I know that Ron and I will not come to an agreement, so...

> It seems Rust people just can’t take a little criticism, even when it comes from a clearly trolling language

I think this is a case of people who can dish it out but can't take it. As far as I'm concerned if you troll someone you should expect to get trolled back.

Might get downvoted but was thinking this exact thing when reading this debate. Rustations have this very bad habit (IMO) of pushing the "my language is better than yours" to an extreme that I haven't seen elsewhere (but I don't frequent a huge number of language circles so...). Yet when it is done to them they get all upset about it.

> Rustations have this very bad habit (IMO) of pushing the "my language is better than yours" to an extreme

It’s funny, I’ve heard people claim this about rust developers for years. But I’ve seen very little evidence of it. Where are all these toxic comments? Look at Klabnik’s comments in this thread. He’s lovely.

—-

A son comes home to his poverty stricken family with a spring in his step. “Mum! Dad! All that time at community college paid off! I got a job!”. Dad immediately snaps - “so what, now you have a job, you think you’re better than us?”

What happened? Dad is unconsciously projecting a belief onto his son. Something like “unemployed people are shameful”. Then dad feels judged by the projected belief and he attacks the son for it. But it wasn’t the son’s belief in the first place. He just wanted his parents to be proud.

How does the son respond? It’s a tricky one. If the son defends himself by talking up how great it is to have a job, he reinforces the projection and dad will get more angry. If he says “there’s nothing to be proud of for having a job” then he’s lying about his values. It’s a trap.

When I’m feeling uncharitable, I project this same dynamic onto rust and C/C++ devs. “Mom! Dad! I figured out a way to get memory safety without sacrificing native execution and performance!” C: “So you think your language is better than ours? Why are you so toxic about it?”

I’m not really sure how to respond to comments like yours. I think you’re mad at ghosts.

It's funny because my comment was intended the other way, i.e. the Zig community & core team is antagonistic towards Rust so they shouldn't be surprised when they get pushback, like in this thread. But it really does go both ways when you look at how the Rust community has acted historically.

But hey, nerd holy wars have existed since the internet began. I use vim btw...oh you use emacs? You're an idiot. Etc etc.

[dead]

So that could be a clear definition, but for it to be "table stakes" it needs to have some universal value and it doesn't (in fact, that very same definition could also classify even C as "memory safe"): https://news.ycombinator.com/item?id=49087458

I can say that something is "table stakes" for me without demanding that everyone else adhere to my values.

There's little point in me telling the world how I like my dinnercooked, unless the world both understands exactly what I mean, and cares

I'm not exactly sure what you mean by "universal value", but I would say to be "table stakes" (i.e. not optional), it has to have overwhelming value. I think outside some fairly niche areas (e.g. programs that don't process untrusted data at all), it very very clearly has overwhelming value.

Now you might argue that the other features of Zig, like `defer`, are so good that they reduce the chance of memory errors and therefore memory safety has less value for Zig. But that seems highly dubious to me, especially for use-after-free. I guess we'll find out when Zig has more widespread use.

zig creates an ir that you can use to do data dependency analysis and borrow checking.

Yes, it is absolutely possible to build a language that uses Zig's compilation model and do borrow checking. Zig is not going to add a borrow checker though, so as a user, it's sort of a moot point.

no. let me be clearer; it is possible to intercept zigs ir from the compiler NOW (well, 15.2 proven) and have a third party package do borrow checking from the data that flow through, without changing zig (think "how miri works without changing rust"). this is not currently directly possible without changing the compiler (~ 50 loc), however the core team has indicated that exporting ir, the only change needed, will be a supported feature once the language stabilizes.

How do you get the information to check properly without lifetimes in the signature?

lifetimes are not the only way to check safety. you just need to detect conflicts in the data dependency graph, lifetimes are in some way an overspecification (for safety, there are autoaliasing advantages). i suspect agnostic conflict detection is probably more expensive, too, but 1) borrow checking was not the slow step in rust compilation and 2) maybe you dont have to check for memory safety on every compile. on commit or on ci is probably fine

Gotcha! Well this sounds like a cool project, I look forward to seeing how it turns out.

I’m incredibly excited for this and have been looking forward to it for a while - I think new moves in IR will solve many issues with have with dynamic analysis of memory safety. The decompilation into other representations like Binary Ninjas IR have been a godsend to actually seeing what the hell Rust and Objective C do on the backend and understand actual cost the compiler makes to create memory fences.

> I'm not sure what that means. Java lets you do many things in a memory-safe way but not everything. Rust lets you do fewer things than Java in a memory-safe way, but more things than Zig.

I don't think I agree with this framing. The question to me isn't "what can you do while being memory safe", it's "can you accidentally do something memory unsafe without noticing?" Rust and Java are the same here; you need to explicitly opt into using the language's mechanism for relaxing restrictions (Rust's `unsafe` blocks, Java's `Unsafe` class APIs), whereas from what I understand, neither Zig or C offers anything strict in that way.

That framing may seem intellectually satisfying, but it's not useful in practice. Consider the extreme edge case of C: We can clearly mechanically delineate between the empty program and a non-empty one, we call the empty program safe and any program that isn't empty unsafe (i.e. C is memory-safe if you want to do nothing and not if you want to do anything). And so, we also have this property that in C you can't do anything unsafe without noticing.

Now, that's ridiculous, but something not too different happens to me with Rust. I reach for a low-level language when I want to do low-level things in a more convenient way than in Java, but the very things that would make me reach for a low-level language in the first place are unsafe in Rust. So in ~100% of the programs I want to write in a low-level language, Rust and Zig offer the same level of memory safety (but I need to pay a higher price for Rust). That Rust reminds me that what I want to do is unsafe doesn't help me.

Of course, other people may want to reach for a low-level language in other situations and their perspective could be different, but if I pay the price and get little in return I can't see how that would be "table stakes". Table stakes imply some universality that is obviously not here.

Do you find most of your rust code is unsafe? Because I also find I do some unsafe stuff, because of the algorithms I work on I often end up with some unchecked array accesses and a couple of raw pointers into those arrays I pass around. But 98% of the code is safe and I find this makes it easier to reason about.

> That framing may seem intellectually satisfying, but it's not useful in practice.

Honestly, that's exactly how I feel in reverse. The framing you gave is more intellectually interesting, but it doesn't help explain the actual real-world outcomes where in practice, Rust and Java both don't have much problem with unsafety, whereas C does, and at least from what I've heard, Zig does as well.

> I reach for a low-level language when I want to do low-level things in a more convenient way than in Java, but the very things that would make me reach for a low-level language in the first place are unsafe in Rust. So in ~100% of the programs I want to write in a low-level language, Rust and Zig offer the same level of memory safety (but I need to pay a higher price for Rust). That Rust reminds me that what I want to do is unsafe doesn't help me.

I mean, sure, if you want to do things that are fundamentally not possible to validate because you think you're smart enough not to screw up, that's going to make Rust a tough sell. My issue with it is that history has shown that the best C and C++ programmers in the world still write code where memory safety rears its head, so I'm distrustful of the claim that being smart and diligent is enough to prevent the sort of bugs that we're still dealing with after half a century of us learning how not to write C. You need to have an excess of either talent or hubris to consider that a reasonably safe path, and given that the amount of talent needed is a lot higher than the amount of hubris, it seems way more likely that it's the latter.

The alternative is just learning how to write code that doesn't require expressing things in a way that can't be validated. While there are some things that fundamentally are not possible to, I'm dubious that it's anywhere close to as high as you seem to expect if your experience is that you literally can't reduce the amount of unsafe code you need in Rust below "literally my entire program is unsafe".

> Rust and Java both don't have much problem with unsafety, whereas C does, and at least from what I've heard, Zig does as well.

I'm not interested in the definition so much as I am in calling it "table stakes", and so the fact that these languages satisfy their promises is uninteresting in isolation. What matters is the value of their promises. The majority of Rust programs I see, I wouldn't have written in a low-level language, so the fact that it offers memory safety for the things I don't need it to do does nothing for me.

Now, clearly, Rust's originators didn't consider what Java offers (or at least what it offered 20 years ago when Rust was first conceived) to be table stakes or they wouldn't have wanted Rust. Java exacted some price in exchange for its memory safety that was unacceptable to Rust's originators and trumped its memory safety. But the same thing happens with Rust vs Zig. Rust exacts a heavy price for its memory safety, that - just as in Rust's case vs Java - is sometimes unacceptable. So I can't see how any of these could be "table stakes".

> I mean, sure, if you want to do things that are fundamentally not possible to validate because you think you're smart enough not to screw up, that's going to make Rust a tough sell.

What Rust can validate and what can fundamentally be validated are two very, very different things. Compared to what ATS can validate, what Rust can validate is almost indistinguishable from C. In Rust you have to do lots and lots of things that require you to be "smart enough not to screw up" that you could prove in ATS, and still no one (including Rust programmers) would say that what ATS offers is "table stakes" because, obviously, it comes at a high price that the people who choose Rust don't want to pay.

So clearly different languages offer different capabilities and charge a price for them. Sometimes the price is worth it and sometimes it isn't.

> so I'm distrustful of the claim that being smart and diligent is enough to prevent the sort of bugs that we're still dealing with after half a century of us learning how not to write C

But Java or Rust programs still suffer from a lot of bugs that ATS could eliminate, if you're willing to pay the price, and you're clearly unwilling. ATS programmers could say about Rust programmers what you say about C++ programmers. Clearly there's no universal table stakes here.

> I'm not interested in the definition so much as I am in calling it "table stakes", and so the fact that these languages satisfy their promises is uninteresting in isolation. What matters is the value of their promises. The majority of Rust programs I see, I wouldn't have written in a low-level language, so the fact that it offers memory safety for the things I don't need it to do does nothing for me.

I mean, if you're already going to say "I don't want a low level language for anything other than what I can use unsafe for", then of course Rust will seem like overkill. I'd argue that the value of Rust is that it makes low-level viable for a lot of stuff that would otherwise require a lack of memory safety; a lot of it is stuff that might be written in a higher level language, but that's just because relatively few programs are impossible to write in higher level languages. That doesn't mean that the ones that need to be lower level can't be written in Rust though.

> Now, clearly, Rust's originators didn't consider what Java offers (or at least what it offered 20 years ago when Rust was first conceived) to be table stakes or they wouldn't have wanted Rust. Java exacted some price in exchange for its memory safety that was unacceptable to Rust's originators and trumped its memory safety. But the same thing happens with Rust vs Zig. Rust exacts a heavy price for its memory safety, that - just as in Rust's case vs Java - is sometimes unacceptable. So I can't see how any of these could be "table stakes".

Yes, "table stakes" is a value judgment, and one some people will disagree with. The cost for memory safety in Java is performance overhead though, and the cost for memory safety in Rust is not being able to express certain valid things that can't be validated; those are both objectively different from not offering memory safety at all, and my point is that the cases where what you want to express is literally impossible in Rust to do safely while actually being memory safe are pretty rare. There are some cases where what you're trying to do are fundamentally unsafe, in which case you need to use an unsafe block, but that's not anywhere close to the same as removing validation from the entire program. I'm fairly skeptical that you're basing your view that there are so many cases where you want to do something that's guaranteed to be safe but impossible to write in safe Rust on objective criteria, and extremely skeptical that the programs you write are anywhere close to entirely comprised of logic that can't be expressed safely.

> What Rust can validate and what can fundamentally be validated are two very, very different things. Compared to what ATS can validate, what Rust can validate is almost indistinguishable from C. In Rust you have to do lots and lots of things that require you to be "smart enough not to screw up" that you could prove in ATS, and still no one (including Rust programmers) would say that what ATS offers is "table stakes" because, obviously, it comes at a high price that the people who choose Rust don't want to pay.

> So clearly different languages offer different capabilities and charge a price for them. Sometimes the price is worth it and sometimes it isn't.

Sure, no one is disputing that. But that doesn't change the fact that some languages objectively require you to opt into which parts are memory unsafe, and others don't. It's obvious we won't see eye to eye on whether that's table stakes or not, but that's a difference of opinion, and having a different opinion than you isn't literally illogical; I find your take on it to be as hard to understand as mine is to you.

> But Java or Rust programs still suffer from a lot of bugs that ATS could eliminate, if you're willing to pay the price, and you're clearly unwilling. ATS programmers could say about Rust programmers what you say about C++ programmers. Clearly there's no universal table stakes here.

You're again taking an empirical argument as an abstract one and ignoring the real world outcomes that languages produce. You mentioned finding the fact that they actually produce real world software that in practice do not suffer from the class of bugs that C/C++ suffers from uninteresting, and that's fine, but it's meaningful for people who care about software actually getting used in the real world for real things. You seem to be arguing that unless you can eliminate literally the most bugs of any language in existence, then eliminating any bugs by picking a language that eliminates some of them is a useless endeavor. To me, the reasonable thing would be to choose a place to draw the line and say "anything beyond this is too risky, but I'll tolerate anything that's at least this safe", and memory safety is in practice the place I think it makes sense to do. I don't agree at all that not drawing any line at all is the only logical choice in a scenario when there are multiple places to draw it.

> I'd argue that the value of Rust is that it makes low-level viable for a lot of stuff that would otherwise require a lack of memory safety; a lot of it is stuff that might be written in a higher level language, but that's just because relatively few programs are impossible to write in higher level languages.

Maybe, but I don't see making a low language viable for something it's not needed as offering much value. Low-level languages are primarily designed to give you direct, low-level control over interaction with the hardware, they sacrifice other things for that goal (including performance [1]), and so if I don't need that control I don't use a low-level language. When I do need that control, I find that Rust requires reaching for unsafe too frequently while still paying the full price for the safety of things I don't use (even Rust's memory management of strings doesn't give me the control I want; I have to work pretty hard for it).

> The cost for memory safety in Java is performance overhead though,

It's not performance (you often gain performance, especially in large programs). It's warmup and footprint.

> But that doesn't change the fact that some languages objectively require you to opt into which parts are memory unsafe, and others don't.

Like I said, C also fits in the category, so it's not a meaningful distinction. The difference is in what you can do in the safe subset. Zig lets you do more things in a safe way than C (where the safe subset is effectively empty), Rust lets you do more safe things than Zig, and Java lets you do more safe things than Rust.

> You mentioned finding the fact that they actually produce real world software that in practice do not suffer from the class of bugs that C/C++ suffers from uninteresting

I didn't say that that's uninteresting; in fact Zig also eliminates spatial unsafety as well as Rust, and I think that's good. I said that merely looking at broad statistics is uninteresting if you don't consider the kinds of programs being written. I.e. Rust gives me safety mostly when I write code with the same level of low-level control as I have in Java, then that's the part I find interesting.

> You seem to be arguing that unless you can eliminate literally the most bugs of any language in existence, then eliminating any bugs by picking a language that eliminates some of them is a useless endeavor.

That's the very thing I'm arguing against. I'm saying that different languages eliminate different bugs at a cost (again, Zig eliminates many memory safety bugs you'd find in C or even C++, arguably the most dangerous ones). What I'm saying is that what you get and whether the price is worth it depends both on the program you're writing and on your personal preferences. Just to be clear, "preferences" doesn't mean I care more or less about correctness, but which approaches to correctness I find more or less effective, something on which there is no consensus.

> To me, the reasonable thing would be to choose a place to draw the line and say "anything beyond this is too risky, but I'll tolerate anything that's at least this safe", and memory safety is in practice the place I think it makes sense to do.

I think it also depends on the kinds of programs you write, because for many programs I write (and for which I pick Java) Rust's level of memory safety is too low, and for the programs I pick a low-level language I wish I could have some cheap memory safety, but it's not offered to me. So in those cases I would prefer Zig's spatial memory safety, as it's no worse than Rust, and not pay the high price for Rust's while getting little in return. Anyway, I'm saying that it's both a matter of which approach you believe leads to better correctness and the kinds of programs you write in the language.

[1]: For example, the fact that in Java, references are not required to be stable machine pointers opens the door to some powerful optimisations that are not available to languages where pointers are required to be machine pointers (or something close enough to them). Or the fact that low-level languages require that the machine instructions executed are those present in the compiled image (or close enough), or, if you want, caring about worst-case performance at the expense of average case performance (although both C++ and Rust specifically don't always make that easy) precludes some other very powerful optimisations. People like me who've spent years on huge C++ programs know that the low-level control offered by low-level languages (regardless of the question of safety) sometimes helps performance and sometimes harms it.

> C (where the safe subset is effectively empty),

Well, Fil-C and also Cheri show that C is a language that can be implemented with perfect memory safety for 99.9% of the language. This is not true for every language but is also not an accident in C. But also with the typical implementations of C such as clang and gcc you can essentially get spatial memory easily by using safe abstractions.

Very explicitly making a silly point; a rock is 100% memory safe.

The serious point: I care about whether the program I write aborts regularly, whether due to a Rust panic or a capability violation.

> It's not performance (you often gain performance, especially in large programs). It's warmup and footprint.

To me, those are also performance characteristics. Maybe my view on what constitutes "performance" is broader than average here.

> When I do need that control, I find that Rust requires reaching for unsafe too frequently while still paying the full price for the safety of things I don't use (even Rust's memory management of strings doesn't give me the control I want; I have to work pretty hard for it).

Fair enough, I can't tell you that you don't have that experience when writing Rust. It's pretty different from mine though, and the experience of the large number of former C/C++ devs I've worked with after they learned Rust; the only people I've talked to with that experience didn't really try to learn Rust and went in hoping that it wouldn't work for them, which informs my perception here, but I recognize that individual experiences won't always fit into larger trends.

> Like I said, C also fits in the category, so it's not a meaningful distinction. The difference is in what you can do in the safe subset. Zig lets you do more things in a safe way than C (where the safe subset is effectively empty), Rust lets you do more safe things than Zig, and Java lets you do more safe things than Rust.

I don't think I understand what you're saying here. I don't know of a way to turn off undefined behavior by default in C and only opt into it in discrete segements of the code, but maybe I'm missing something.

> That's the very thing I'm arguing against. I'm saying that different languages eliminate different bugs at a cost (again, Zig eliminates many memory safety bugs you'd find in C or even C++, arguably the most dangerous ones). What I'm saying is that what you get and whether the price is worth it depends both on the program you're writing and on your personal preferences. Just to be clear, "preferences" doesn't mean I care more or less about correctness, but which approaches to correctness I find more or less effective, something on which there is no consensus.

It seems like you're arguing against the idea of memory safety as a category at all then. To me, "I can't write code that's memory unsafe without explicitly opting into it" seems like an objective statement, and it's objectively different than "I can't write certain types of memory safety bugs in a given language". I don't really understand what's useful about being able to write memory unsafe code without having to opt in when in practice the number of bugs from mistaken memory safety are overwhelmingly more common than the cases when you're forced to opt into unsafe because Rust forced you to work around the constraints, and even in low-level programs, the actual number of truly unsafe operations you need to do tend to be fairly low in my experience. I guess I can't say for certain that you don't truly need to do things that you're forced to write unsafe for too often, but to me, it seems like you're refusing to pay a pretty small price for mostly ideological purity rather than pragmatism.

> I think it also depends on the kinds of programs you write, because for many programs I write (and for which I pick Java) Rust's level of memory safety is too low

> [1]: For example, the fact that in Java, references are not required to be stable machine pointers opens the door to some powerful optimisations that are not available to languages where pointers are required to be machine pointers (or something close enough to them). Or the fact that low-level languages require that the machine instructions executed are those present in the compiled image (or close enough), or, if you want, caring about worst-case performance at the expense of average case performance (although both C++ and Rust specifically don't always make that easy) precludes some other very powerful optimisations.

I'm struggling to imagine what the circumstances are where these are genuine concerns rather than theoretical or premature optimizations. What are some examples of programs where you'd get better characteristics running them if they were written in Java rather than Rust due to the lack of enough "memory safety" in Rust?

> To me, those are also performance characteristics. Maybe my view on what constitutes "performance" is broader than average here.

Yes, but they come with speed gains, so you can't say that you pay "performance overheads" when Java removes some of the performance overheads that programs in low-level languages and replaces them with others. You could similarly say that you pay performance overheads when going in the other direction.

> and the experience of the large number of former C/C++ devs I've worked with after they learned Rust

And it's not my experience or a large number of C/C++ devs I work with.

> the only people I've talked to with that experience didn't really try to learn Rust and went in hoping that it wouldn't work for them

Then your exposure isn't wide enough.

> I don't think I understand what you're saying here.

What I'm saying is that we can't say that the value is merely in the existence of a clear syntactic distinction between safe and unsafe code, because that distinction exists in C, only in C, the clearly delineated line between safe and unsafe code is that between `int main(void) {}` and anything that isn't that; i.e. any program other than that explicitly opts into unsafety. So any meaningful discussion about memory safe languages must include what you can do in the safe subset. In C's "safe subset" (the empty program), you can do nothing, and that's what makes it not valuable. But for my needs, what you can do in Rust's safe subset (compared to both Java and Zig) is also far too little (to justify the cost).

> To me, "I can't write code that's memory unsafe without explicitly opting into it" seems like an objective statement

It is, but what I'm trying to say is that it alone doesn't have much value. In C you also "can't write code that's memory unsafe without explicitly opting into it" by writing anything other than the empty program, but obviously you wouldn't consider C's memory-safe subset suitable because you can't use it to do what you want to do in C. Rust's value is not, therefore, in that it has a memory-safe subset, but that it has a useful memory-safe subset. It's just that the utility of that subset depends on the kinds of programs you'd want to use a low-level language in the first place.

> it seems like you're refusing to pay a pretty small price for mostly ideological purity rather than pragmatism.

Quite the opposite. The price of Rust's complexity, implicitness, and compilation time is too high for what little safety I get in return, that I don't want to pay it for pragmatic reasons.

> I'm struggling to imagine what the circumstances are where these are genuine concerns rather than theoretical or premature optimizations. What are some examples of programs where you'd get better characteristics running them if they were written in Java rather than Rust due to the lack of enough "memory safety" in Rust?

It's nothing to do with memory safety. Low-level programs sacrifice optimisation opportunities available to Java because above all else they need to offer low-level control. That low-level control can translate to good performance sometimes (especially in smaller programs), and sometimes it translates to worse performance (especially in large programs). The huge C++ programs I worked on migrated to Java not (just) for safety but also for better performance than C++ (again, it's easy to get excellent performance in low-level languages when the programs are small or specialised; it gets harder and harder as they grow). So we got better performance than C++ while also getting better safety than Rust, a much simpler language than Rust (or C++), and faster build cycles than Rust (or C++). But the topic of how Java reduces the overheads that C/C++/Rust/Zig programs often have when they grow large (although Zig makes it easier than the other them to reduce them) is a whole complicated topic. I might give a talk about it at the upcoming Devoxx.

> > and the experience of the large number of former C/C++ devs I've worked with after they learned Rust

> And it's not my experience or a large number of C/C++ devs I work with.

>> the only people I've talked to with that experience didn't really try to learn Rust and went in hoping that it wouldn't work for them

> Then your exposure isn't wide enough.

Or maybe your exposure is only to people who didn't give it a fair chance? I don't know how either of us can be confident that we know 100% for sure that our sample is more definitive.

> What I'm saying is that we can't say that the value is merely in the existence of a clear syntactic distinction between safe and unsafe code, because that distinction exists in C, only in C, the clearly delineated line between safe and unsafe code is that between `int main(void) {}` and anything that isn't that; i.e. any program other than that explicitly opts into unsafety. So any meaningful discussion about memory safe languages must include what you can do in the safe subset. In C's "safe subset" (the empty program), you can do nothing, and that's what makes it not valuable. But for my needs, what you can do in Rust's safe subset (compared to both Java and Zig) is also far too little (to justify the cost).

> It is, but what I'm trying to say is that it alone doesn't have much value. In C you also "can't write code that's memory unsafe without explicitly opting into it" by writing anything other than the empty program, but obviously you wouldn't consider C's memory-safe subset suitable because you can't use it to do what you want to do in C. Rust's value is not, therefore, in that it has a memory-safe subset, but that it has a useful memory-safe subset. It's just that the utility of that subset depends on the kinds of programs you'd want to use a low-level language in the first place.

That seems like an absurd false dichotomy in the form I was talking about before. I don't seriously believe that you can't easily identify when looking at Rust code whether unsafe is explicitly being allowed in it or not, or that you are writing programs that are doing things that would require unsafe literally everywhere.

I've genuinely been trying to understand where you're coming from, but the more I try, the more it seems like you just genuinely seem to think that you're too smart to accidentally write memory safety bugs, or that the memory safety bugs don't matter much. Maybe you're right, but I don't think there's anything left for me to learn from your point of view.

> or that you are writing programs that are doing things that would require unsafe literally everywhere

You don't need unsafe "literally everywhere" to run into issues. First, what matters most are the areas that are most subtle/tricky in your program. If in those areas Rust doesn't add much safety and makes things worse due to language complexity, that's a problem. Second, when you want low-level control, you might well want it in quite large swaths of the code. For example, one thing that low-level languages currently, in principle, do better than Java is arenas. But the whole point of arenas is that you want _all_ allocations in some large and elaborate call chain to go in the arena (and you'd like to enjoy both the standard library and 3rd party libraries). Rust doesn't make that easy (and neither does C++, for that matter).

> the more it seems like you just genuinely seem to think that you're too smart to accidentally write memory safety bugs, or that the memory safety bugs don't matter much

I don't see how you've reached that conclusion. I told you that for most programs I choose a language that is more memory-safe than Rust, and when I choose a language that's less memory-safe than Rust it's when Rust doesn't offer much safety, either.

See, this is exactly the thing I find so annoying in the Rust discourse. There's no doubt Rust significantly helps avoid memory safety issues (i.e. Rust => more men-safety) but that doesn't mean that caring about memory safety issues means preferring Rust (more mem-safety => Rust). One simply doesn't follow from the other because the logical implication is reversed.

I just wanna give my perspective since I came from high level languages and pretty much exclusively use Rust now, so perhaps I can articulate why I find value in the language. And my apologies if my input is not wanted, no need to respond if so.

First of all I respect your point of view - I'm not a Rust absolutist, I think that garbage collected languages are a massive advantage for a lot of things and would never criticise someone choosing a higher level language. Likewise I wouldn't criticise someone choosing Zig or Oden or Jai or even C for tasks where you really need that low level control.

For me, I like to have a single language that I can use for pretty much everything. Afaik there is no other language that is a) popular b) has a modern toolchain with integrated build, formatting & linting etc, and c) can be used both in the kernel and for developing websites. Rust might not be the best choice for most of the spectrum of software, but it's good enough for everything. I can write a low level service + a web server and UI in the same language, where with other choices I would need to use two separate languages. This matters to me because I don't have the time to maintain mastery of multiple languages, I find a lot of value in focusing deeply on one language and learning it completely.

Now I also don't write a lot of low level rust, I've never written a block of unsafe before and I probably write "unidiomatic" rust with too much copying, too many Arc<Mutex>>'s etc. But I like knowing that I can if I need to.

Rust has a lot of other things going for it. A good type system with plenty of nice language constructs that are missing in a lot of higher level languages. It has Cargo and a healthy ecosystem (although I do worry about the number of dependencies used sometimes). And a large community of very smart people. I'm not saying this is exclusive to Rust, but as a whole Rust is a unique language with no alternatives if you value the things I do.

So I would say that it's approach to memory safety threads the needle where it can be used (although not the very best choice) for when you'd use a higher level language, but also gives enough control that you can do plenty of low level stuff in it safely, and with clearly delineated unsafe sections where you really can do anything.

I get that perspective and I agree it has value, but for me, Rust is a jack of all trades but master of none, all while being one of the most complicated languages ever made and requires very long build times. So I agree it continues C++'s dream of being "one language for everything", but I think that dream is misguided, and that Rust suffers from most of the same problems as C++.

For low-level programs, I already said that Rust doesn't offer much safety for the things I reach low-level languages for (or, conversely, its safe subset doesn't offer the very control I'm after in such a language). Furthermore, the complexity and implicitness of the language make it harder for me to carefully understand the kind of subtle code I write in such programs. The long build times could mean I write fewer tests.

For high-level programs, Rust's safe subset is technically sufficient, but the problems are even worse (and exactly match C++'s): High level Rust code looks quite good and is easy to write, same as in C++, but the problems start with the maintenance and evolution. Small local changes - to a returned object's lifetime or thread-share ability, or between static and dynamic dispatch - require non-local changes. That's because low-level languages have low abstraction, i.e. the same contract covers fewer possible implementations. True, unlike C++, Rust tells you what things you need to change, but you still need to change them. That was the main problem we had with C++: the code looks great and it's very easy to write at first, but the maintenance and evolution costs - especially when the program is large and long-lived - get high and remain high forever. Furthermore, once a program grows large, it starts suffering from similar performance ovhearheads large C++ programs suffer from: you find yourself needing more dynamic dispatch, which is slow in Rust and C++; you find yourself needing more shared objects with different lifetimes, which are also slow in those languages, so the program isn't even particularly fast or scalable (sure it's faster than a JS or a Go program, but that doesn't say much). Java (or C#) which is aimed at optimising the performance of large programs, removes many of these overheads. Lastly, deep always-on observability/profiling isn't quite poor (it's better now with eBPF, but still a long ways away from what you get with Java or C#).

So yes, Rust and C++ are intended as "one language for everything", and Rust is probably somewhat better than C++, but your high level programs pay for the low level feature (i.e. suffer from the maintenance and performance costs of low-level languages), while your low-level programs pay for the high-level features (the complexity needed for implicitness and safety). So yes, you can do everything, but rarely as well as could be done, and while I see the value in getting expertise only in one language, 1. it's a language that requires a lot of expertise as its "multi-functionality" makes it very complicated, so much so that you could probably become an expert at two more specialised languages for not much more effort, and 2. I think that if you really need to write low-level code, e.g. you're writing a kernel or a hardware driver or a controller or a GC, then expertise in the domain dwarfs expertise in the language anyway (i.e. we're talking years of required experience until you're really good at it).

BUT I acknowledge that the weight I assign to these things is subjective, and I'm certain others reach the opposite conclusion through arguments that are no less reasonable than mine.

I think it's also a matter of experience - someone used to writing code in unsafe low level languages has a different approach to solving problems and may find Rust gets in the way. I actually started with C++ and after writing a reasonable amount of it I found myself wondering why I had to keep track of lifetimes, nullability etc in my head when it was so easy to mess those up. I kind of discovered "why Rust" from first principles and from then on I was hooked.

I'm not sure I understand your point about dynamic dispatch being slow in Rust/C++ or shared objects? If you're targeting native (which I find important) neither Java or C# are going to be faster surely. Maybe if you're willing to run Java/C# JIT you might find some wins (skeptical it's faster across the board) but you also don't need dynamic dispatch in performance-critical areas. I rarely reach for a Box<dyn Something> even in my high-level code.

I haven't worked on large Rust projects (> 500k loc) so I can't speak to the maintenance costs of that, but for me it doesn't matter (at least yet).

But we see even experienced professionals making mistakes with low level languages and I think it's worth considering if it's worth some of the cons you bring up to avoid those. Kind of reminds me of Carmack talking about static code analysis years ago:

https://archive.is/qC9a

> The more I push code through static analysis, the more I’m amazed that computers boot at all.

> I kind of discovered "why Rust" from first principles and from then on I was hooked.

I get it. The language certainly does appeal to some people, and I can understand why, just as I understand why it does not appeal to others.

> I found myself wondering why I had to keep track of lifetimes, nullability etc in my head when it was so easy to mess those up.

And I agree with that, but my conclusion (after decades of experience with low-level programming) is somewhat different: Don't reach for a low-level language unless precise low-level control over the hardware is the exact thing you're after. And when that is the case, I find that safe Rust doesn't offer the control I need, and unsafe Rust (and/or a lot of custom code) is not what I want to use.

> Maybe if you're willing to run Java/C# JIT you might find some wins

Of course I use the JIT. That's exactly what it's for. Now, I don't care if the buffer from which the CPU reads instructions is memmapped from a file or generated by a JIT, but I do know that some people like the "single native file experience". To that end, we're working with Google to add a small feature to the JDK that would allow it to link the JVM, other native libraries, and Java classes into a single native executable (it's still going to JIT the Java code, but you'd be launching a "native binary").

> (skeptical it's faster across the board)

I wouldn't say it's faster across the board. You sometimes can write large programs in C++ (or Rust) that match and even exceed Java's performance, but it gets harder and harder the larger the program is. On average, I find that the "effort per performance" is, on average, significantly lower in Java in large programs. And it's not just the JIT. Another weak point of low level languages is that their pointers can't move, which means they can't use moving collectors, which also offer superb efficiency, again, mostly in large programs when you have lots of objects of varying sizes and lifetimes (especially now when we no longer have GC pauses).

> but you also don't need dynamic dispatch in performance-critical areas

You certainly don't start out needing it. Over time, however (and important codebases last at least 15-25 years), it either creeps in or it affects sufficiently many less critical paths to make an impact. You can try and re-architect things, but it takes a lot of effort (and it's this evolution effort that was a major reason for C++'s decline).

> But we see even experienced professionals making mistakes with low level languages

Absolutely, but my prescription would be to avoid low level languages altogether, and that has indeed been the industry's trajectory, and it's continuing. And when you absolutely do need to kind of control that low level languages offer, language complexity can also cause (or help hide) mistakes in code that is often very subtle, and the added safety, which is partial at best in those situations, isn't enough to offset that. Again, this isn't universal, but there are reasons to avoid Rust in low level code that are just as good as the reasons to pick it, and so different people will choose differently.

BTW, I've never worked on a browser, and it may well be the Rust is the best language for that, but I would be very curious to try Java. First, modern browsers run a lot of JS so you have a JIT and a GC, anyway, and so it might be both easier and more efficient to have everything use the same GC, and while process isolation would have required Java to re-JIT the rendering pipeline, Java is about to allow sharing JITted code (and even caching it from one run to the next) so that there would be no need to warm up the same code over and over.

I think the only argument I’d make about high level programming languages is that software continues to outpace hardware development in sucking up as much performance gains as possible. One program written in a slower, garbage collected, high level language is ok, when they are all it’s bad. I think eventually we’ll get to a point where we won’t have to think about memory management anymore but we aren't really there yet. Heck, software written in C++ like browsers are dog slow, imagine if they were written in Java…

I originally came to Java because of the better performance it offered compared to C++ in large programs. The JVM is specifically designed to remove some of the fundamental performance overheads that low-level languages suffer from, and manifest especially when programs grow large (and a browser is quite large). So when someone talks to me about "GC languages" being slow and low-level languages being fast, I know they've not had much experience with either Java or low level languages, nor do they understand modern compilers and memory management. Java offers strictly more optimisation opportunities than low-level languages, in compilation as well as in memory management. What it gives up in exchange is low-level control (including worst-case performance), but it is low-level languages that sacrifice performance (especially average-case performance) in exchange for the control they need. Not being able to move pointers freely and not being able to deoptimise and recompile at runtime are serious impediments to modern optimisation, but low-level languages gladly give that up because they're not optimised for performance but for precise control.

In particular, modern moving collectors were designed for the purpose of removing the high overheads of malloc/free allocators that make heap memory management so expensive in low-level languages (and in any language that uses non-moving memory management strategies). The reason code in low-level languages tries to avoid things like heap allocation and virtual dispatch on the hot path is not because these things can't be super-fast (most virtual calls in Java are faster than many static calls in C), but because they are slow in low level languages because of their constraints.

People find it immensely useful in practice, though.

safe Rust is actually more memory safe than Java, since it guards against data races (in Java data races are not UB, but they are still one of the worst kinds of bugs because it leads to logically impossible program states)

Also note that Java has unsafe, but doesn't have the culture of plainly stating safety invariants like Rust. The unsafe features of Java are less widely used, but when they are you rarely know if a Java library has unsafe internals for performance, and if they do, it may be hard to audit

Java and Rust have actually very similar memory safety profiles. Rust let's you within the language escape the memory safety requirements whereas Java does not but both are considered memory safe languages. Rust also enforces thread safety as well which Java does not, but the slower JVM memory model doesn't let race conditions become memory safety issues whereas Rust is lower-level like Zig/C/C++ and thus thread safety could be a memory safety issue.

Zig has an identical memory safety profile to C. It has facilities to make it easier to stay memory safe, but those facilities are basically equivalent to what you have in C++ and that's equivalent memory safety profile as C.

> So among these four languages we already have four levels of memory safety, none of them is 100%

No, you've pretended like there's four when really it's Java / Rust which are safe by default and Zig/C/C++ which are unsafe by default.

One effective metric to evaluate is memory safety per LoC. Rust is ~0.2 vulnerabilities per MLoC. Java is effectively 0. C and C++ both seem to be about 1,000 vulnerabilities per MLoC. Zig is too new and hasn't had any analysis done on it, but generously it's likely at least 10-100.

So the table stakes could be defined as 1 memory safety vulnerability per MLoC.

> Java and Rust have actually very similar memory safety profiles

They really don't. Look at how many basic data structures (in the standard library or outside it) require unsafe features in Java vs Rust.

> Zig has an identical memory safety profile to C

It really doesn't. Zig gives you the same spatial memory safety as Rust and very much not like C (and violations of spatial memory safety are a bigger cause of vulnerabilities than violations of temporal memory safety).

> Look at how many basic data structures (in the standard library or outside it) require unsafe features in Java vs Rust.

This is a fundamental misunderstanding of how "unsafe" code relates to a platform's trusted computing base. Rust could move all of those unsafe data structures out of the standard library and into the compiler itself, thereby reducing the amount of occurrences of the string "unsafe" in the source, code, but this would do nothing to reduce the size of the trusted computing base that Rust presents. In fact, it would decrease our confidence in that code, because Rust libraries have a robust ecosystem of tools for validating their correctness, unlike whatever bespoke IR the Rust compiler itself is emitting. Java's own data structures are implemented with the support of an extensive runtime written in C++, which forms their own trusted computing base that every user of Java relies upon, and demands just as much careful auditing as any data structure in the Rust standard library.

The point is not that those specific implementations use unsafe Rust but to illustrate that to write even basic data structures you need unsafe Rust.

That's just false. You can use `Arc` or even one of the safe GC crates available, and get semantics like Java with no `unsafe`.

Java may be memory safe, but no memory is safe from the JVM. :)

> Rust is ~0.2 vulnerabilities per MLoC. Java is effectively 0. C and C++ both seem to be about 1,000 vulnerabilities per MLoC. Zig is too new and hasn't had any analysis done on it, but generously it's likely at least 10-100.

You have just described six orders of magnitude in your attempt to rebut pron pointing out the four languages have four levels of memory safety.

"two things are within an order of magnitude, and two other things are within an order of magnitude, and those two groups are three orders of magnitude apart" does sound like two groups to me.

> those two groups are three orders of magnitude apart

They aren't necessarily, though. Supposing that Zig were "10 issues per MLoC" (with just as much handwaving as the original poster), it would be equidistant from Rust and C. Java may also be more than one order of magnitude away from Rust; we say ~0 but is it 0.01, 0.001, 0.0001...? And why is "1 issue per MLoC" the acceptable metric that delineates what constitutes table-stakes memory-safe language? Because it's a nice, round-sounding number? I think 0 is a nicer, rounder number than 1, so let's call only Java table stakes and condemn all other languages to the garbage bin, tradeoffs be damned. Or would you say your arbitrary delineation point is worth more than mine?

> Or would you say your arbitrary delineation point is worth more than mine?

Yes for the reasons I already gave. I think that at the point that you're having to stretch the numbers from their post to the breaking point to remove the pretty clear order of magnitude differences it's not really a constructive way to engage.

I think you have two groups with one at ~.1 and one on ~100. You seen to either disagree with that, or think it doesn't matter, I'm not sure which. But taking that assumption as true it is self evident that the 3-order-of magnitude demarcation is not arbitrary.

I think it is absolutely arbitrary. First because I believe every order of magnitude is significant. You handwave away that one order of magnitude difference is fine but three is bad. I think this is hypocritcal, and that if you want to be a memory safety purist who ignores all tradeoffs and declares a language fundamentally unusable on safety grounds, even a single order of magnitude of additional issues should clearly be unacceptable. And simultaneously you group them arbitrarily -- what is your actual basis for suggesting that Zig code is more likely to be 100 than 10, or that 10 somehow bares grouping at 100 rather than grouping .1 and 10 together at 1? You also fail to address that there may be more than one order of magnitude between Rust and Java. It is entirely plausible that Rust is closer to Zig than to Java.

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Rate-limit edit replying to below response:

> a variety of statements I haven't said

We are in a conversation thread specifically about statements of this nature, which I was contesting. The original poster of this thread called their arbitrary definition of memory safety "table stakes" and explicitly said that they rule out Zig as a language completely on this basis alone. If you don't agree with them, I'm not sure what we're discussing.

> you take issue with the assumptions I'm making ... but you could just state that instead of saying that I'm being hypocritical

The only assumption I disagreed with is assigning Zig to exactly 100 when a poster I was replying to originally asserted a range of "10 or 100"; and regardless of whether we agree on assigning a concrete lower/upper bound to that assumption, everything else is not an assumption but a value judgment given the condition "assuming the premise holds". Yet your position is taking those value judgments - which orders of magnitudes to accept, which to group together as being the same degree of memory safety - and asserting them as objectively correct boundaries with minimal rationalisation beyond "because I feel it is so".

Yes, it's clear you take issue with the assumptions I'm making. That's okay. If you don't accept my premise that's fine, but you could just state that instead of saying that I'm being hypocritical or strutting out a variety of statements I haven't said ("you want to be a memory safety purist who ignores all tradeoffs and declares a language fundamentally unusable on safety grounds").

If you want to have a conversation with me about the things I'm talking about, I welcome it, but I don't see that happening.

> Yet your position is taking those value judgments - which orders of magnitudes to accept, which to group together as being the same degree of memory safety - and asserting them as objectively correct boundaries with minimal rationalisation beyond "because I feel it is so".

Yes, like I keep saying: two clusters each within an order of magnitude, separated by three orders of magnitude feel to me like two distinct things. That does not at all feel arbitrary. I think that claim is pretty self-explanatory. You appear to think it reduces to "because I feel it so" and in some sense it does. I am applying my own judgement and values in constructing those clusters. Someone who felt that any amount of memory safety was unacceptable would structure them differently. Someone who cared naught about memory safety would similarly group them differently too.