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a+1分之a+a+1分之1=?(a+1)²分之a+(a+1)²分之1(x-1)²分之5-(x-1)²分之5x...
a+1分之a+a+1分之1=? (a+1)²分之a+(a+1)²分之1 (x-1)²分之5-(x-1)²分之5x
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=a/(a+1)+1/(a+1)
=(a+1)/(a+1)
=1
=a/(a+1)²+1/(a+1)²
=(a+1)/(a+1)²
=1/(a+1)
(x-1)²分之5-(x-1)²分之5x
=(5-5x)/(x-1)²
=-5(x-1)/(x-1)²
=-5/(x-1)
=(a+1)/(a+1)
=1
=a/(a+1)²+1/(a+1)²
=(a+1)/(a+1)²
=1/(a+1)
(x-1)²分之5-(x-1)²分之5x
=(5-5x)/(x-1)²
=-5(x-1)/(x-1)²
=-5/(x-1)
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a+1分之a+a+1分之1
=(a+1)/(a+1)
=1
(a+1)²分之a+(a+1)²分之1
=(a+1)/(a+1)²
=1/(a+1)
(x-1)²分之5-(x-1)²分之5x
=(5-5x)/(x-1)²
=-5(x-1)/(x-1)²
=-5/(x-1)
=(a+1)/(a+1)
=1
(a+1)²分之a+(a+1)²分之1
=(a+1)/(a+1)²
=1/(a+1)
(x-1)²分之5-(x-1)²分之5x
=(5-5x)/(x-1)²
=-5(x-1)/(x-1)²
=-5/(x-1)
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a/(a+1)+1/(a+1)
=(a+1)/(a+1)=1
a/(a+1)²+1/(a+1)²
=(a+1)/(a+1)²
=1/(a+1)
5/(x-1)²-5x/(x-1)²
=5(1-x)/(x-1)
=-5(x-1)(x-1)
=-5/(x-1)
=5/(1-x)
=(a+1)/(a+1)=1
a/(a+1)²+1/(a+1)²
=(a+1)/(a+1)²
=1/(a+1)
5/(x-1)²-5x/(x-1)²
=5(1-x)/(x-1)
=-5(x-1)(x-1)
=-5/(x-1)
=5/(1-x)
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