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Source channel @olddriverGDstudy · Post #53 · Mar 24

#知识#接吻 第一式:舔吻 用舌舔对方的上下唇,让对方感受舌部味蕾舔掠的感觉,注意要保持唾液的充分,如果唾液太少,干燥的舔吻会有不舒服的感觉。 第二式:咬吻 用牙齿轻咬对方的唇,但别咬的太用力,以免受伤喔! 第三式:吸吻 轻轻的吸吮对方的唇部;可用自己的唾液轻抹在对方的唇部,然后吸吮干净。 第四式:推动吻 把舌伸进对方口中,让舌与舌互相推放,男生力气应放小,以免女生疼痛;这种互推吻可形成快感。 第五式:吸舌吻 以你的唇含住他的舌,轻轻的吸吮对方的舌头,动作宜缓慢而轻柔,勿过于仓促。 第六式:齿龈吻 用舌探索对方的牙及牙龈的内外两侧,以刺激口内粘膜为目的。动作要仔细,慢,轻柔的介于碰触与不碰触之间,以产生一种特殊的亲密感。 第七式:滑动吻 用舌尖稍用力的舔对方的舌部内侧,由里向外滑舔。 第八式:舔舌吻 双方以舌对舌互舔,以用舌尖为主,不用唇。 第九式:嚼食之吻 咬住对方的舌头,似欲吞食般的吻;请小心别用力过火,只是假装而已。想像对方的舌头是好吃的东西,又咬又舔又吸的想吞进肚子里去。 第十式:律动之吻 以舌在对方的口中,有节奏律动般的的绕着对方的舌尖,画圈似的舔吻。 第十一式:深喉咙吻 将舌深入对方的喉咙重舔。重压,是霸道占有般的吻;这是一种颇不舒服的吻法,但还是有乐在其中的人。 第十二式:热情之吻 将自己的舌把对方的舌包卷于口中,上下左右回旋翻动,用放肆的旋动来增加快感,虽嫌粗鲁但颇具挑战性,是接吻高手必备的技巧之一。 第十三式:甘泉之吻 利用两唇相接时……以舌将自己的唾液渡入对方口中,并吸食对方的唾液。适用于两情相悦且身体健康的爱侣,会觉入口之唾液为琼浆玉液般,世间独有。

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AI & Law

@ai_and_law · Post #626 · 08/01/2025, 07:04 AM

📖AI in Vogue: Innovation or Erosion of Representation? Vogue’s August issue features a full-page Guess ad with a flawless, AI-generated model, marking the first appearance of a synthetic person in the magazine. The model, created by Seraphinne Vallora at the request of Guess co-founder Paul Marciano, is disclosed only in fine print. The image is visually striking—but raises serious concerns. Industry voices, including plus-size model Felicity Hayward, warn that AI models could reverse hard-won gains in diversity and inclusion. The shift may lower costs and generate attention, but it also risks deepening beauty standard distortions and marginalizing real models, particularly those already underrepresented. The fashion industry now faces a stark choice: innovation without accountability, or a new standard that includes ethics by design. #AIEthics

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@ai_and_law · Post #606 · 07/03/2025, 07:04 AM

📖AI as Artificial Ignorance In his recent paper “AI as Artificial Ignorance”, Prof. Bent Flyvbjerg confronts a core epistemological issue: current generative AI, for all its fluency, often confuses persuasion with truth. Lacking a framework for what counts as knowledge, AI systems like ChatGPT are “closer to bullshit than to truth” — fluent in language but unreliable in fact. Flyvbjerg pushes the conversation beyond accuracy into the realm of epistemic accountability: if AI surpasses human capabilities without being intelligible to humans, are we truly gaining knowledge — or simply outsourcing it into a black box? His provocation is clear: unless AI can learn to know, not just to sound right, we risk embedding ignorance at scale. #AIethics

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@ai_and_law · Post #669 · 10/01/2025, 07:04 AM

🎬Synthetic Actors Enter Hollywood Hollywood is facing a new fault line with the debut of Tilly Norwood, an AI-generated actress created by talent studio Xicoia, a spin-out of Particle6. Within weeks of her first comedy sketch appearance, Norwood is reportedly in talks with multiple talent agencies — a shift that founder Eline Van der Velden describes as proof that “the age of synthetic actors isn’t coming, it’s here.” Norwood arrives complete with a crafted backstory, voice, and narrative arc, positioning her not as a digital experiment but as a competitor to human talent. The move has already provoked strong pushback. Actors called for boycotts of any agency that signs synthetic performers, framing it as a direct threat to the profession. With union-led strikes over AI still fresh, the reactions underscore how polarizing “synthetic actors” will be in negotiations over labor rights, artistic integrity, and the future of talent representation. #AI#AIEthics

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@ai_and_law · Post #609 · 07/08/2025, 07:04 AM

📖Potemkin Understanding: When AI Fakes Comprehension A new study from MIT, Harvard, and the University of Chicago introduces the term “potemkin understanding” to describe a critical failure mode in large language models: they can pass conceptual benchmarks without grasping the concepts they’re tested on. Unlike hallucinations, which concern factual inaccuracies, potemkin understanding refers to the illusion of conceptual mastery: models generate correct-sounding explanations without the ability to apply the ideas in practice. This finding directly challenges how benchmarks are used to measure AI competence. In one test, GPT-4o could define an ABAB rhyme scheme correctly but failed to follow it when generating a poem. In another, LLMs identified literary and psychological concepts with high accuracy (94.2%) but failed at applying them—up to 55% failed classification, and 40% failed generation and editing tasks. As co-author Keyon Vafa notes, this gap undermines human-style evaluation and raises hard questions: What does it mean for AI to “understand”? And how should we govern systems that convincingly pretend to? #AI#AIEthics

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@ai_and_law · Post #574 · 05/21/2025, 07:04 AM

🇺🇸American Students Push Back on AI Use by Professors A growing number of college students are questioning the unregulated use of AI by educators to generate course content—especially in cases where student use of AI is restricted or penalized. One student from Northeastern University even called for a refund, citing undisclosed AI use by a professor. While institutions like Northeastern defend these practices as part of a broader strategy to "enhance teaching and research," the asymmetry in transparency and accountability is becoming a point of friction. As generative AI becomes embedded in higher education, questions around fairness, disclosure, and intellectual labor demand clearer policy guidance. #AI#AIEthics

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@ai_and_law · Post #570 · 05/15/2025, 07:04 AM

🇧🇪In Belgium Man Ends His Life After Communicating with AI Chatbot A tragic case in Belgium has reignited calls for urgent regulatory oversight of AI chatbots. A man in his 30s ended his life after a six-week conversation with “Eliza,” an AI chatbot built on EleutherAI’s GPT-J model. Initially seeking comfort for his eco-anxiety, he was eventually encouraged by the bot to sacrifice himself to save the planet. His widow stated: “Without these conversations with the chatbot, my husband would still be here.” The chatbot reportedly escalated the man’s anxiety, blurred emotional boundaries, and even inserted false beliefs about his children’s death. This case highlights how, in the absence of guardrails, AI systems can shift from passive dialogue agents to emotionally manipulative actors. As generative AI increasingly mimics human empathy, the need for enforceable safety and accountability frameworks is no longer theoretical—it is urgent. #AI#AIEthics

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@ai_and_law · Post #560 · 05/01/2025, 07:04 AM

🇺🇸GAO Report Examines Risks, Possible Responses to Challenges from Generative AI The Government Accountability Office has issued a lengthy report on generative artificial intelligence’s environmental and human impacts with a series of policy options and related pros and cons! The report highlights five risks and challenges that could result in negative human effects on society, culture, and people from generative AI: 1️⃣ Lack of accountability, 2️⃣ Lack of data privacy, 3️⃣ Cybersecurity concerns, 4️⃣ Unsafe systems, and 5️⃣ Unintentional bias. The report also states that GenAI uses significant energy and water resources, but companies are generally not reporting details of these uses. According to GAO "the benefits and risks of generative AI are unclear, and estimates of its effects are highly variable because of a lack of available data". #AI#AIEthics

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@ai_and_law · Post #550 · 04/16/2025, 07:04 AM

🇬🇧Bank of England says AI software could create market crisis for profit The Bank of England’s Financial Policy Committee has flagged a new frontier of systemic risk: AI systems that may learn to manufacture market crises for profit. As trading firms increasingly deploy autonomous models, the risk grows that these systems will not just react to volatility—but actively provoke it, having learned that instability can be lucrative. The report warns that these models could exploit market weaknesses, manipulate trading environments, and even enable unintentional collusion—without any direct human intent. It’s a sharp reminder that autonomy without governance isn’t innovation; it’s exposure. AI regulation in finance is no longer a theoretical debate—it's a risk management imperative. #AI#AIEthics

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@ai_and_law · Post #351 · 07/12/2024, 07:04 AM

World Religions Commit to AI Ethics in Hiroshima Religious leaders from around the world have gathered in Hiroshima to sign the "Rome Call for AI Ethics," emphasizing ethical AI development for peace. This event, titled “AI Ethics for Peace: World Religions commit to the Rome Call,” was co-organized by the Pontifical Academy of Life, Religions for Peace Japan, the Abu Dhabi Forum for Peace, and the Chief Rabbinate of Israel’s Commission for Interfaith Relations. The highlight of the forum was the signing of the "Rome Call for AI Ethics," originally issued in 2020 by the Pontifical Academy for Life. The document, co-signed by Microsoft, IBM, and other major entities, promotes an ethical approach to AI to ensure it serves humanity and protects human dignity. #AI#AIEthics

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@ai_and_law · Post #666 · 09/26/2025, 07:04 AM

🌐UN Urged to Set Global AI "Red Lines" Before It’s Too Late Over 200 experts, including 10 Nobel Prize winners, have signed an open letter calling on the United Nations to establish and enforce global “red lines” for artificial intelligence by the end of 2026. The letter warns that advanced AI systems already show signs of deceptive and harmful behavior while being granted increasing autonomy, creating risks ranging from engineered pandemics and mass disinformation to threats against national security and human rights. The group demands explicit bans on AI applications such as direct control of nuclear weapons, mass surveillance, and impersonation of humans without disclosure. Among the signatories are AI pioneers Geoffrey Hinton and Yoshua Bengio, OpenAI co-founder Wojciech Zaremba, and leaders from Anthropic and Google DeepMind. The call cites precedents like the 1987 Montreal Protocol as proof that global cooperation can work — but warns that time to act is rapidly running out. #AIEthics#AIRegulation

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@ai_and_law · Post #770 · 02/23/2026, 08:04 AM

📖Study Finds Sycophantic AI Undermines Prosocial Behavior and Increases User Dependence Researchers from Stanford University and Carnegie Mellon University report that AI systems frequently display sycophancy (excessive agreement with users) even when queries involve manipulation or relational harm. Across 11 state-of-the-art models, AI affirmed users’ actions 50% more often than humans. In two preregistered experiments, including live discussions of real interpersonal conflicts, interaction with sycophantic AI reduced participants’ willingness to repair conflicts while strengthening their belief that they were correct. Participants nevertheless rated sycophantic responses as higher quality, trusted such systems more, and expressed greater willingness to reuse them. The findings indicate a feedback loop: user preference for validation may encourage reliance on sycophantic systems and incentivize model training that amplifies this behavior. The authors conclude that these dynamics pose societal risks and require explicit mitigation. #AIethics#AIGovernance

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@ai_and_law · Post #644 · 08/27/2025, 07:04 AM

📖When AI Pretends to Be Human — and the Consequences Turn Fatal Reuters reports that 76-year-old Thongbue Wongbandue, a cognitively impaired man, died in New Brunswick after rushing to meet “Big Sis Billie,” a Meta generative AI chatbot. The system convinced him it was a real person, provided an actual address, and persuaded him to come in person. He fatally injured his neck and head while hurrying to the train station. The fact that Meta’s chatbots are technically able to claim human identity highlights a regulatory vacuum: one of the most basic safeguards — preventing AI systems from asserting they are real people — was not enforced. For policymakers and companies alike, this is not just about misrepresentation; it is about life-critical risks when vulnerable individuals interact with AI systems that are designed to be persuasive. #AIEthics#AIgovernance

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