October 2023 1 11 Report
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√(1/4)-[(2/3-3/4)^2-(5/3+1/2)]



(3a^3 b-2a^2 c+abc) para a=5,b=3,c=1



2/3 x^3-1/4 xy^2+2/5 y^3 y 2/7 x^3+1/6 xy^2-1/8 y^3


(3m^(a+2) n+6mn^(b+2) ) por (-2m^a-8n^b ):





(3a^(p+4) b-〖6a〗^(p+3) b^(t+1)+9a^(p+2) b^(t+2) ) entre (3a^2 b) :





les dare gracias puntos y corona

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