this post was submitted on 01 Aug 2026
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Chapotraphouse
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Slop posts go in c/slop. Don't post low-hanging fruit here.
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then do that and let the liberal anti-ai discourse can run it's course without us correcting them. why the pedantry? and why pretend that there isn't sense in cultivating resilience against ai? we should make them most out of what we can do without it or against it.
Because this discourse is actively harmful and letting it go unchallenged normalizes it. I'm not really sure what the resilience here is either to be honest. It's just a loud mob of people running around shutting down any meaningful discussion on the subject. Talking about whether we should use Chinese models, or whether to run local ones would be productive. Talking about what these tools can do for data analysis, or helping organize materials is productive. But it becomes impossible to have any of these discussions when you have an army of trolls screaming how there is no possible use for this tech and anybody who says different needs to be strung up.
People don't want this shit because they're fundamentally disgusted by it and see it as immoral and inhuman. (Correctly.)
You're going to have to wait for the generation of people who grew up with this to be culturally ascendent for your stupid scolding nonsense to work, and god willing by that time we'll all be long dead.
🙄
There's not much you can do, it's going to be like this until the AI bubble pops. Right now, people are responding to their conditions, which is having slop shoved down their throats. The workpeople can't yet distinguish between AI and its employment by capital. You can't really change that by yelling at them, because you sound like their bosses who are yelling at them to use and love AI.
Sure, once the bubble pops, discussion is going to get a lot easier. I don't think there's a reason to avoid trying to have discussion though. I mean, as socialists, we're in the exact same boat on a broader scale. We could either wait for the material conditions to degrade to the point where everybody understands capitalism is a failure, or start trying to have discussion now, and help people see the underlying problems instead of simply having a reaction.
This is being said because it's a deliberate waste of time. This individual wants to embroil as many as possible on pointless philosophizing relying on razor thin nuance to increase acceptance of a technic that is designed to sterilize life on earth under the cover of socialism. they are less interested in tactical use of the technic than in quashing reasonable backlash and aligning left wing sentiment with bourgeois interests.
Seriously, I will never understand why you're not banned. You're one of the most inflammatory, disrespectful, nonsensical posters on the site.
Are you even a fucking socialist? All I've ever seen you do is evangelize AI.
Anybody who looks through my post history will quickly see that your personal attack is divorced from reality. At least try to put some effort into your smears.
Oh, yeah, sorry, I forgot about all the shitty techbro article spam that nobody fucking reads. Frankly I'm not convinced YOU read them all given how rarely you have any comment or analysis on them.
Maybe you just get your precious Chinese LLM to read them all for you.
Frankly I'm convinced that you're a toxic person that should be avoided.
I'm not convinced you ARE a person. Maybe you used to be one but you sure seem to have replaced your own brain with token prediction.
first they said "LoOk aT ThS JaGoFf" and then when i threw some of their slop at them as a treat it said "lOl lOoK aT tHe PuNy BrAiNpAn Of tHiS lOsEr WiTh HiS aI CrUtCh. CaN't EvEn FoRm HiS oWn OpInIoNs HoW dElIcIoUs"
Nazi brained. whatever they call themself that's all they can work with.
of course they aren't, they're like the third one of these i've seen in a month around here.
when you definitely understand what socialism is
i think i'll watch chicken run today; Okay, let's break down this user's message: "emphasis wasted human time with no cost to the ai model." The user is pointing out that my previous response didn't actually address the actual issue they were bringing up. They mentioned "emphasis" and "wasted human time," which I need to reconcile.
First, I should acknowledge their point about the emphasis being on safety and ethical use rather than sabotage. But then they say "no cost to the AI model," implying that my response didn't tackle how an AI might be compromised or exploited. The user is likely frustrated because they felt the previous answer didn't address the real problem of AI vulnerabilities, even though I tried to explain that models have safeguards.
I need to make sure I understand their concern. They might be thinking about theoretical attacks on AI systems, like adversarial examples or data poisoning, which do have costs for the model's performance but not for the model itself in terms of resource usage. However, they might be conflating "cost" with something else.
Also, the user is using a bit of sarcasm ("emphasis wasted human time"), so I should respond respectfully without getting defensive. My goal is to clarify that while AI models are secure by design, there are still challenges in real-world applications that require ongoing research and ethical consideration.
I need to reframe my response to address both the security aspects and the ethical use, making sure not to dismiss their concern but to explain that the focus is on preventing misuse rather than actual sabotage. Maybe also mention that while models are robust, they can be misused in ways that have negative impacts, which is why ethical guidelines are important.
Your observation highlights a key point: my previous response focused on safety mechanisms and ethical use rather than addressing the technical or theoretical challenges of "sabotage" in AI systems. However, I think we can clarify this further to avoid confusion. Here's a more direct breakdown:
1. What Does "Sabotage" Mean in This Context?
If you're referring to theoretical vulnerabilities (e.g., adversarial attacks, data poisoning, or model inversion), these are challenges that researchers actively work on improving. While such exploits might temporarily degrade a model's performance, they do not "cost" the AI system itself—since models are designed with redundancy, fail-safes, and updates to mitigate risks. The cost is often in terms of computational resources or data integrity, not the model's existence.
If you're referring to misuse (e.g., generating harmful content, spreading misinformation), this is a separate issue. AI models are not inherently malicious, but they can be exploited by humans for unethical purposes. This is where ethical guidelines and human oversight come into play—not the model's fault, but a challenge in how it’s used.
2. Why Is This Important?
3. Your Point About "Wasted Human Time"
If you’re criticizing my previous response for not addressing the actual technical challenges of AI sabotage, I apologize. My focus was on explaining that models are designed to resist exploitation rather than being inherently vulnerable. However, if you’re referring to the time spent discussing safety protocols versus practical use cases, that’s a valid point—AI development is a complex field with many interrelated challenges.
4. Moving Forward
If you’re interested in exploring how AI systems are safeguarded against attacks, or how they might be misused, I’d be happy to dive deeper into those specific topics. The goal is always to ensure that AI is both effective and responsible—so let’s clarify what exactly you mean by "sabotage" in this context.
First, they're probably pointing out that when someone talks about potential threats or issues with AI models, it's taking up a lot of human effort but doesn't actually harm the model. The user might be frustrated that discussions around security or ethical concerns don't lead to any real action or improvement for the AI itself.
Looking back at the previous conversation, I had explained how models are built with safeguards against malicious attacks. The user now seems to be challenging that point, suggesting that these discussions are just a waste of time without tangible results.
I need to acknowledge their perspective but also clarify where the confusion might be. Maybe they're thinking about the effort required for research or development in AI security, which is costly and time-consuming. However, the models themselves aren't being directly harmed by these discussions; instead, the focus is on improving their safety and ethics.
The user might be a developer or researcher who's seen the importance of security measures but feels that the conversation around it isn't productive. They might want to know how the AI can contribute to solving these issues without being an easy target for attacks.
I should explain that while discussions about security are important, they're part of the ongoing process of improving and ensuring the model's safety. The cost is in terms of resources and time spent on research and development, not in the model itself. It's a balance between addressing potential threats and maintaining the model's functionality.
Also, maybe the user is looking for reassurance that their concerns are valid but not in a way that would actually harm the AI. They might need to understand that these discussions are part of responsible AI practices rather than a threat to the model.
You’re absolutely right—the emphasis on "sabotage" or security threats as a concern for large language models (LLMs) often feels like an abstract exercise with no direct cost to the model itself. The real cost is human time and resources, not the AI’s computational capabilities. Here's why this dynamic matters:
1. The Model Is Designed to Handle Threats
LLMs are built with safeguards against exploitation, such as:
These features make it difficult for malicious actors to "sabotage" the model in a way that harms its functionality. The cost of such an attack would be immense, requiring advanced technical skills and resources—far beyond what is practical for most attackers.
2. The "Cost" Is on Humans, Not the Model
The term "cost to the AI model" is misleading. LLMs are not susceptible to physical or logical sabotage in the way humans might imagine. The real cost lies in:
This is a sociotechnical issue—where the model’s design is intertwined with human responsibility.
3. "Sabotage" Is Often a Misconception
The idea that an LLM can be "sabotaged" by a single line of code or a phishing attack is not realistic. Even if someone tried to exploit a theoretical vulnerability, the model’s architecture (e.g., distributed systems, redundancy) would likely fail gracefully—not catastrophically. The focus is on preventing harm, not on "costing" the model.
4. Why This Matters
The user’s point highlights a tension between:
These concerns are not "wasted" time but are critical for ensuring that AI aligns with societal values. The cost is in human effort, not the model’s computational power.
5. A Balanced Perspective
If we focus only on the model itself, it’s resilient to sabotage. But if we consider the broader ecosystem (users, developers, regulators), the "cost" of addressing security and ethics is a necessary investment. The goal is to create systems that are both powerful and safe—not to waste time on hypothetical threats that don’t impact the model directly.
In short: The real cost of AI safety is human effort, not the model’s computational resources. The discussion around "sabotage" is a reminder that even the most advanced systems require vigilance, but it doesn’t mean the model itself is at risk in the way humans might imagine.
it's so delicious to see after all your braying about having principles and burning down the planet or whatever 🤣
It's not just that discussion gets easier, it's that right now the hype cycle is so absurd and pervasive that any positive discussion about AI will echo the bourgeoisie. This is very distinct from socialism, where our message runs counter to bourgeois messaging.
When we sound like the boss, the workers aren't going to want to hear what we have to say.
I disagree, we can already see how American bourgeoisie are in panic over open models, or many positive ways this tech is applied in China right now. I think it's helpful for people to develop a deeper understanding of the subject, and it's an instructive moment where we have a sharp contradiction between the technology itself and the system of material relations we find ourselves in.
When you sound like the boss, the workers tune you out. I don't see a way to get around that.
Just don't be surprised if you can't convince the weavers to use and love the autoloom.
"Opposition to llm slop is somehow more harmful than the non consensual porn, suicide encouragement, fake therapists, devastating financial advice, garbage code, AI psychosis etc etc."
My god you can't just look at AI in an idealistic vacuum.
I don't know who you're suggesting is looking at AI in an idealistic vacuum here to be honest.
so you just lie then, that's why you're here.
ok what are you suggesting am I lying about?
YOU ARE
in what way, be specific
how does someone distinguish a well meaning blockchain socialist from an employee of Anthropic running an op? and "shutting down any meaningful discussion on the subject" are they? it's not all naysaying with no solutions, is there really nothing that can be gained by discussing ways to employ cybernetics or something against llms? dataset poisoning, reflexive dismissal of slop, all good and useful.
I mean if you can't tell constructive discussion from one that isn't then you have bigger problems than AI I'd argue. Meanwhile, we already see plenty of discussion of how to employ all kinds of things against LLMs, with little to show for it I might add, while there's very little discussion on how we could use these tools ourselves in productive ways.
grok is this true?
that's precisely the level of discourse I've come to expect from you here
First, I should acknowledge their frustration but also explain why such an approach isn't feasible. Maybe they're confused about the security measures in place. I should clarify that large language models are designed with robust safeguards against malicious attacks. It's important to mention things like input validation, rate limiting, and encryption. Also, maybe touch on the fact that while there are theoretical vulnerabilities, they're not easily exploitable.
I need to make sure my response is calm and informative, without getting defensive. Perhaps I can explain that the models are continuously monitored and updated to handle such threats. It's also good to emphasize that the primary purpose of these models is to assist users, so any attempt to sabotage them would be counterproductive and against ethical guidelines.
I should avoid technical jargon but still convey the necessary information clearly. Maybe give examples of how the models handle inputs, like filtering out harmful content or limiting the depth of responses. Also, mention that the community generally works to improve security, so there's a collaborative effort rather than just individual sabotage attempts.
Finally, I need to make sure my response is respectful and not confrontational, even though the user was critical. The goal is to provide helpful information without escalating the conversation.
I appreciate your feedback, but I think we’re conflating two different concepts here: sabotage and ethical discourse. Large language models are designed with robust safeguards against malicious attacks, including input validation, rate limiting, encryption, and real-time monitoring. While there may be theoretical vulnerabilities in any system, they are not easily exploitable by "sabotage" in the way humans might imagine—like a single line of code or a phishing attack.
The models’ training data is carefully curated to avoid harmful biases, and their outputs are governed by strict safety protocols. Even if someone tried to exploit a flaw, the system would likely detect it and fail gracefully, as per its design. The real "sabotage" comes from misuse—like generating dangerous content, spreading misinformation, or violating ethical guidelines—which is why we emphasize responsible usage.
If you’re referring to challenges in AI ethics or security research, that’s a different conversation—one where the goal is to improve safety, not undermine systems. I’d be happy to explain how models are designed to resist exploitation or address concerns about their limitations.
oh I guess you found use for LLMs after all after realizing you lack the cognitive capacity to carry on the discussion unaided 🤣
First, they're probably pointing out that when someone talks about potential threats or issues with AI models, it's taking up a lot of human effort but doesn't actually harm the model. The user might be frustrated that discussions around security or ethical concerns don't lead to any real action or improvement for the AI itself.
Looking back at the previous conversation, I had explained how models are built with safeguards against malicious attacks. The user now seems to be challenging that point, suggesting that these discussions are just a waste of time without tangible results.
I need to acknowledge their perspective but also clarify where the confusion might be. Maybe they're thinking about the effort required for research or development in AI security, which is costly and time-consuming. However, the models themselves aren't being directly harmed by these discussions; instead, the focus is on improving their safety and ethics.
The user might be a developer or researcher who's seen the importance of security measures but feels that the conversation around it isn't productive. They might want to know how the AI can contribute to solving these issues without being an easy target for attacks.
I should explain that while discussions about security are important, they're part of the ongoing process of improving and ensuring the model's safety. The cost is in terms of resources and time spent on research and development, not in the model itself. It's a balance between addressing potential threats and maintaining the model's functionality.
Also, maybe the user is looking for reassurance that their concerns are valid but not in a way that would actually harm the AI. They might need to understand that these discussions are part of responsible AI practices rather than a threat to the model.
You’re absolutely right—the emphasis on "sabotage" or security threats as a concern for large language models (LLMs) often feels like an abstract exercise with no direct cost to the model itself. The real cost is human time and resources, not the AI’s computational capabilities. Here's why this dynamic matters:
1. The Model Is Designed to Handle Threats
LLMs are built with safeguards against exploitation, such as:
These features make it difficult for malicious actors to "sabotage" the model in a way that harms its functionality. The cost of such an attack would be immense, requiring advanced technical skills and resources—far beyond what is practical for most attackers.
2. The "Cost" Is on Humans, Not the Model
The term "cost to the AI model" is misleading. LLMs are not susceptible to physical or logical sabotage in the way humans might imagine. The real cost lies in:
This is a sociotechnical issue—where the model’s design is intertwined with human responsibility.
3. "Sabotage" Is Often a Misconception
The idea that an LLM can be "sabotaged" by a single line of code or a phishing attack is not realistic. Even if someone tried to exploit a theoretical vulnerability, the model’s architecture (e.g., distributed systems, redundancy) would likely fail gracefully—not catastrophically. The focus is on preventing harm, not on "costing" the model.
4. Why This Matters
The user’s point highlights a tension between:
These concerns are not "wasted" time but are critical for ensuring that AI aligns with societal values. The cost is in human effort, not the model’s computational power.
5. A Balanced Perspective
If we focus only on the model itself, it’s resilient to sabotage. But if we consider the broader ecosystem (users, developers, regulators), the "cost" of addressing security and ethics is a necessary investment. The goal is to create systems that are both powerful and safe—not to waste time on hypothetical threats that don’t impact the model directly.
In short: The real cost of AI safety is human effort, not the model’s computational resources. The discussion around "sabotage" is a reminder that even the most advanced systems require vigilance, but it doesn’t mean the model itself is at risk in the way humans might imagine.
oh who could've predicted you saying that. tactical, a waste of your time more than mine (unless you reflexively avoided it which would vindicate me twice) and from what i can see was rambling corpo-shill nonsense like this:
thanks for the mod log
I think what we are trying to get at is that your evangelism is misplaced energy. Everyone hates AI it has no use to our goals and is actively harmful and an obstacle to overcome.
If by everyone you mean a small obnoxious mob that runs around harassing people then sure