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Published:2025/11/7 19:03:46

意見クラスタリングって最強!ITビジネスをアゲる話🎉✨

超要約: 意見のまとまり方を数式で解明!ITでビジネスをブチ上げろー!

ギャル的キラキラポイント✨

● FJモデル(意見形成の数式モデル)をアップデートしたんだって!すごい! ● ネットワークの構造が、意見のグループ分けに影響するってこと! ● IT業界で、顧客と仲良くなったり、新しいサービス作ったりできるかも!

詳細解説

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Opinion Clustering under the Friedkin-Johnsen Model: Agreement in Disagreement

Aashi Shrinate / Twinkle Tripathy

The convergence of opinions in the Friedkin-Johnsen (FJ) framework is well studied, but the topological conditions leading to opinion clustering remain less explored. To bridge this gap, we examine the role of topology in the emergence of opinion clusters within the network. The key contribution of the paper lies in the introduction of the notion of topologically prominent agents, referred to as Locally Topologically Persuasive (LTP) agents. Interestingly, each LTP agent is associated with a unique set of (non-influential) agents in its vicinity. Using them, we present conditions to obtain opinion clusters in the FJ framework in any arbitrarily connected digraph. A key advantage of the proposed result is that the resulting opinion clusters are independent of the edge weights and the stubbornness of the agents. Finally, we demonstrate using simulation results that, by suitably placing LTP agents, one can design networks that achieve any desired opinion clustering.

cs / eess.SY / cs.SY