这个简便算法怎么算???
2个回答
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A = (1+39)*(1+39/2)*(1+39/3)*...*(1+39/50)
= (1+39)*(2+39)/2*(3+39)/3*...*(50+39)/50
= [(1+39)*(2+39)*(3+39)*...*(50+39)]/[1*2*3*...*50]
= (40*41*42*...*89)/(1*2*3*...*50)
同理:
B = (1+50)*(1+50/2)*...*(1+50/39)
= (50*52*...*89)/(1*2*...*39)
所以:
A/B = [(40*41*42*...*89)/(1*2*3*...*50)]/[(50*52*...*89)/(1*2*...*39)]
= [(40*41*42*...*89)/(50*52*...*89)]/[(1*2*3*...*50)/(1*2*...*39)]
= (40*41*42*...*49) / (40*41*42*...*50)
= 1/50
= (1+39)*(2+39)/2*(3+39)/3*...*(50+39)/50
= [(1+39)*(2+39)*(3+39)*...*(50+39)]/[1*2*3*...*50]
= (40*41*42*...*89)/(1*2*3*...*50)
同理:
B = (1+50)*(1+50/2)*...*(1+50/39)
= (50*52*...*89)/(1*2*...*39)
所以:
A/B = [(40*41*42*...*89)/(1*2*3*...*50)]/[(50*52*...*89)/(1*2*...*39)]
= [(40*41*42*...*89)/(50*52*...*89)]/[(1*2*3*...*50)/(1*2*...*39)]
= (40*41*42*...*49) / (40*41*42*...*50)
= 1/50
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分子分母同时乘以1*2*3*...*50 (每个括号依次内分配一个乘数)
分子变为40*41*...*89
分母变为51*52*...*89*(40*41*...50)= 40*41*...*89
因此,原式=1
分子变为40*41*...*89
分母变为51*52*...*89*(40*41*...50)= 40*41*...*89
因此,原式=1
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