计算(1)-40-28-(-19)+(-24)(2)(1?112?38+712)×(?24)(3)-32-[22÷(-1)-13]×(-2)÷(-1)2
计算(1)-40-28-(-19)+(-24)(2)(1?112?38+712)×(?24)(3)-32-[22÷(-1)-13]×(-2)÷(-1)2008(4)化简求...
计算(1)-40-28-(-19)+(-24)(2)(1?112?38+712)×(?24)(3)-32-[22÷(-1)-13]×(-2)÷(-1)2008(4)化简求值.2xy2-[5x-3(2x-1)-2xy2]+1,其中x=2,y=?12.
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(1)-40-28-(-19)+(-24)
=-40-28+(+19)+(-24)
=-40-28+19-24
=-73;
(2)(1?1
?
+
)×(?24)
=1×(-24)-
×(-24)-
×(-24)+
×(-24)
=-24+36+9-14
-38+45
=7;
(3)原式=-9-[4÷(-1)-13]×(-2)÷1=-9-[-4-13]×(-2)÷1
=-9+17×(-2)÷1
=-9+(-34)
=-43;
(4)2xy2-[5x-3(2x-1)-2xy2]+1
=2xy2-[5x-6x+3-2xy2]+1
=2xy2-5x+6x-3+2xy2+1
=2xy2+x-2
当x=2,y=?
时,原式=2×2×(?
)2+2-2=2×2×
+2-2=1.
=-40-28+(+19)+(-24)
=-40-28+19-24
=-73;
(2)(1?1
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| 12 |
=1×(-24)-
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| 3 |
| 8 |
| 7 |
| 12 |
=-24+36+9-14
-38+45
=7;
(3)原式=-9-[4÷(-1)-13]×(-2)÷1=-9-[-4-13]×(-2)÷1
=-9+17×(-2)÷1
=-9+(-34)
=-43;
(4)2xy2-[5x-3(2x-1)-2xy2]+1
=2xy2-[5x-6x+3-2xy2]+1
=2xy2-5x+6x-3+2xy2+1
=2xy2+x-2
当x=2,y=?
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