P(E)=SIGMA 4!P(132,4I0+K-1)[P{132-4I0-K+1,4(I3-I2+I2-I1+I1-I0)-3}]P(137-4I3-K)/137!
{ 0<=K<=3,0<=I0<I1<I2<I3<=34,137-4I3-K>0 }
題看錯,...被任一人(除孔明)得的概率算式如下:
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