>>65
>Pruss氏の指摘(2013)とほぼ同じことを指摘している(下記)

スレ73 https://rio2016.5ch.net/test/read.cgi/math/1563282025/479-
(引用開始)
479 返信:現代数学の系譜 雑談 古典ガロア理論も読む ◆e.a0E5TtKE [sage] 投稿日:2019/07/23(火) 07:22:12.96 ID:Iq5QMAZ/ [11/16]
>>474 補足

あと、下記が参考になる
(なぜ、mathoverflow>>465 の手法が成立たないのか? ”CONGLOMERABILITY”が成立ってないというのが、数学DR Alexander Pruss氏の指摘(2013)で、それを2018年の著書で詳しく解説している)
スレ65 https://rio2016.5ch.net/test/read.cgi/math/1557142618/750-754
https://books.google.co.jp/books?id=RXBoDwAAQBAJ&;pg=PA77&lpg=PA77&dq=%22conglomerability%22+assumption+math&source=bl&ots=8Ol1uFrjJQ&sig=ACfU3U1bAurNGJm5872wDblskzsSgsU0iA&hl=ja&sa=X&ved=2ahUKEwioiPyV_IPiAhXHxrwKHUeaArUQ6AEwCXoECEoQAQ#v=onepage&q=%22conglomerability%22%20assumption%20math&f=false
Infinity, Causation, and Paradox 著者: Alexander R. Pruss Oxford University Press, 2018
P75
(抜粋)
2.5.3 COUNTABLE ADDITITVITY AND CONGLOMERABILITY
(引用終り)

(mathoverflowの”conglomerability”関連箇所)
https://mathoverflow.net/questions/151286/probabilities-in-a-riddle-involving-axiom-of-choice
Probabilities in a riddle involving axiom of choice Dec 9 '13
 (抜粋)
(Alexander Pruss氏)
<12>
(抜粋)
The probabilistic reasoning depends on a conglomerability assumption・・
But we have no reason to think the event of guessing correctly is measurable with respect to the probability measure induced by the random choice of sequence and index i, and we have no reason to think that the conglomerability assumption is appropriate.
A quick way to see that the conglomerability assumption is going to be dubious is to consider the analogy of the Brown-Freiling argument against the Continuum Hypothesis (see here for a discussion).
http://www.mdpi.com/2073-8994/3/3/636