问题 1
Dan Shipper
x.com/danshipperCo-founder of Every who writes about working with AI, tests models on real tasks and explores how AI changes creativity and the skills people value.
AI将如何改变世界?
横向:他们表达的 Doom–Bloom 前景看法。 纵向:变革程度。
Doom–Bloom:100 中的 71。变革程度:100 中的 47。解读范围:横向为 66 至 76,纵向为 33 至 67。这些是解读坐标,而不是事件概率。
尚未估计
他们的模拟回答中关于灾难性风险的信息不足,无法进行估计。
一个核心假设
The future will be shaped not just by raw model capability, but by how people design workflows around these uneven abilities.回答 2
如果这个假设实际并非如此,他们的展望会如何变化?
一个尚未解决的问题
The biggest update would come from sustained evidence in real work that AI systems either can—or cannot—exercise reliable contextual judgment over long, messy tasks.回答 3
什么能帮助他们区分这里各种合理的结果?
什么可能使其改变看法
The biggest update would come from sustained evidence in real work that AI systems either can—or cannot—exercise reliable contextual judgment over long, messy tasks.回答 3
什么证据才足够,又会让他们的观点朝哪个方向转变?
更多详情
预计将带来显著益处,但受到重要条件或分配方面的限制。
66 / 100
在定性尺度上,解读范围为 67 到 67。
预计会出现可控或局部的危害。
32 / 100
在定性尺度上,解读范围为 33 到 33。
根据你的回答得出的暂定估计;较宽的范围表示其他合理解读。
51 / 100
在定性尺度上,解读范围为 0 到 100。
这些解读保留了他们陈述的条件。益处和危害都可能很大。这些范围描述的是我们如何解读他们的模拟回答,而不是统计置信区间。
相似的世界观
模拟世界观与 Dan Shipper 最接近的意见领袖
模拟评估
来源
用于为此模拟用户提供事实依据的文章、访谈和著述。
Argues occasional valuable agent outcomes can sustain useful businesses.

First-party essay index includes late-2025 agent-native apps, creativity and compound engineering; index supports topics only.

Argues neural networks reveal the importance of tacit patterns, intuition and context that cannot be exhausted by explicit symbolic rules; presents a broader philosophical interpretation of intelligence.

Argues AI changes which creative skills humans value without eliminating meaningful human identity. Expects some jobs to change dramatically or disappear and says society should support people learning new skills or finding new roles. His2024 characterization of LLMs as mainly summarizers is historical, not a current capability ceiling.

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