arXiv:2508.21382cs.CLcs.AI2025-08

重新定义图灵测试:机器需表现普通人缺陷才算通过。

Normality and the Turing Test

  • 以'正常性'重构图灵测试,强调机器应模仿普通人而非超常智能。
  • 指出当前大模型追求卓越表现,反而偏离了测试本意。
  • 适合关注人工智能本质与评估标准的读者。

本文通过'正常性'概念重新审视图灵测试。核心观点是:图灵测试本质上是对正常/平均人类智能的检验,要求机器表现出如普通人般的不完美和错误。首先,测试目标是普通而非超凡的人类智能,因此通过测试需具备类似人的瑕疵行为;其次,测试实际由多裁判组成的群体判断构成,'平均人类提问者'应理解为多个个体判断的统计聚合体。结论有二:其一,当前大语言模型如ChatGPT因追求卓越表现,偏离了对正常智能的模拟,属于'人工聪明'而非'人工智能';其二,测试机制本身未能客观呈现真实正常行为,反而固化了规范化的理想化行为标准。

原文摘要 · Abstract (English)

This paper proposes to revisit the Turing test through the concept of normality. Its core argument is that the Turing test is a test of normal intelligence as assessed by a normal judge. First, in the sense that the Turing test targets normal/average rather than exceptional human intelligence, so that successfully passing the test requires machines to "make mistakes" and display imperfect behavior just like normal/average humans. Second, in the sense that the Turing test is a statistical test where judgments of intelligence are never carried out by a single "average" judge (understood as non-expert) but always by a full jury. As such, the notion of "average human interrogator" that Turing talks about in his original paper should be understood primarily as referring to a mathematical abstraction made of the normalized aggregate of individual judgments of multiple judges. Its conclusions are twofold. First, it argues that large language models such as ChatGPT are unlikely to pass the Turing test as those models precisely target exceptional rather than normal/average human intelligence. As such, they constitute models of what it proposes to call artificial smartness rather than artificial intelligence, insofar as they deviate from the original goal of Turing for the modeling of artificial minds. Second, it argues that the objectivization of normal human behavior in the Turing test fails due to the game configuration of the test which ends up objectivizing normative ideals of normal behavior rather than normal behavior per se.

图灵测试人工智能正常性

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