小学奥数题目:规定运算,A*B=A-B+...
发布网友
发布时间:2024-10-24 12:51
共5个回答
热心网友
时间:2024-11-06 04:47
=99-97+97-95+95-93+······+3-1
+1/(99×97) +1(/97×95) +1/(95×93)+······ +1/(3×1)
=99-1+1/2×(1/99-1/97+1/97-1/95+1/95-1/93+······+1/3-1/1)
=98-1/2×(1/99-1)
=98+1/2×98/99
=98+49/99
=98又49/99
热心网友
时间:2024-11-06 04:46
98.494949494
这是以你前面的等式计算滴(不过感觉你这个等式不对呀,这个赋值只能在编程语言中才能出现)
热心网友
时间:2024-11-06 04:44
解:
原式
=(99-97+1/99x97)+(97-95+1/97x95)+……+(3-1+1/3x1)
=(2+2+2+……+2)+1/2x(2/1x3+2/3x5+……+2/97x99)
=2x48+1/2x(1-1/3+1/3-1/5+……+1/97-1/99)
=96+1/2x(1-1/99)
=96+1/2x(98/99)
=96+49/99
=96又99分之49
热心网友
时间:2024-11-06 04:42
∵ a*b = a-b+1/(a×b)
∴ 99*97 = 99-97 + 1/(99×97) = 99-97 + 1/2 × (1/97 - 1/99)
同理:97*95 = 97-95 + 1/2 × (1/95 - 1/97)
95*93 = 95-93 + 1/2 × (1/93 - 1/95)
..................
3*1 = 3-1 + 1/2 × (1/1 - 1/3)
以上各式相加,得
(99*97)+(97*95)+(95*93)+...+(3*1) = 99-1 + 1/2 × (1/1 - 1/99)
= 98 + 1/2 × 98/99
= 98 + 49/99
热心网友
时间:2024-11-06 04:48
解:原式=2*49+1/1*3+1/3*5....................
=98+(1-1/99)*1/2
=98又49/99
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