Proof: lim (sin x)/x | Limits | Differential Calculus | Khan Academy

Описание к видео Proof: lim (sin x)/x | Limits | Differential Calculus | Khan Academy

Using the squeeze theorem to prove that the limit as x approaches 0 of (sin x)/x =1

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Differential calculus on Khan Academy: Limit introduction, squeeze theorem, and epsilon-delta definition of limits.

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