cos(pai/15)×cos(2pai/15)×cos(3pai/15)×cos(4pai/15)×cos(5pai/15)×cos(6pai/15)×cos(7pai/15)求值
cos(pai/15)×cos(2pai/15)×cos(3pai/15)×cos(4pai/15)×cos(5pai/15)×cos(6pai/15)×cos(7pai/15)求值
數(shù)學人氣:722 ℃時間:2020-07-09 15:00:39
優(yōu)質(zhì)解答
原式=[1/(sinπ/15)]•[sin(π/15)cos(π/15)cos(2π/15)..cos(7π/15)]=[sin(8π/15)/8sin(π/15)]•[cos(3π/15)cos(5π/15)cos(6π/15)cos(7π/15)]=...=[sin(4π/5)/2^7sin(π/5)]=1/128字數(shù)限制...
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