※ 引述《ccccc7784 (龍王號)》之銘言:
: 如圖,求角B,中間為線段AB的中線
: 感謝各位老師
: https://i.imgur.com/1axYEnW.jpeg
因為35 > tan(1/2) ~ 26.565度
所以∠B為鈍角
令AB中點D,∠B的補角 = θ
設∠DCB = k,AB = 2a,CD = R√2
tan(35) = R/(R + a) => R/a = 1/[cot(35) - 1] ~ 2.3356409
tanθ = R/(R - a)
=> tan(k) = tan(θ-45) = 1/[2(R/a) - 1] ~ 0.27238
=> k = 15.2366度
=>∠B = 135 - k ~ 119.76
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