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Ta có:2012/2010=1+1/2011+1/2012 (1)
Thay (1) vào A, ta có:
2010/2011+2011/2012+1+1/2011+1/2012
= (2010/2011+1/2011) + 1+ (2011/2012+1/2012)
=1+1+1=3=51/17
suy ra A>51/17
Ta có B=1/3+1/4+...+1/17(có 15 sh)
B=(1/17+1/3).15:2
B=50/17(2)
Từ (1) và (2)=>A>B
\(10A=\frac{2012^{2013}+10}{2012^{2013}+1}=\frac{2012^{2013}+1+9}{2012^{2013}+1}=1+\frac{9}{2012^{2013}+1}\)
\(10B=\frac{2012^{2012}+10}{2012^{2012}+1}=\frac{2012^{2012}+1+9}{2012^{2012}+1}=1+\frac{9}{2012^{2012}+1}\)
Vì \(\frac{9}{2012^{2013}+1}
ta co A=\(\frac{2012^{2012}+1}{2012^{2013}+1}< \frac{2012^{2012}+1+2011}{2012^{2013}+1+2011}\)=\(\frac{2012^{2012}+2012}{2012^{2013}+2012}=\frac{2012\left(2012^{2011}+1\right)}{2012\left(2012^{2012}+1\right)}\)
=>A<B
A=2010/2011+2011/2012+2012/2010
=(1-1/2011)+(1-1/2012)+(1+2/2010)
=3+(1/2010-1/2011)+(1/2010-1/2012) >3
B=1/3+1/4+1/5+...+1/17
=(1/3+1/4)+(1/5+...+1/9)+(1/10+...+1/17)
<1/2*2+1/5*5+1/8*8=3
B<3 =>A>B(dấu*thay thế cho dấu nhân nha)
A = 1 + 2012 + 2012^2 + ... + 2012^71 + 2012^72
2012A = 2012 + 2012^2 + 2012^3 + ... + 2012^72 + 2012^73
2012A - A = ( 2012 + 2012^2 + 2012^3 + ... + 2012^72 + 2012^73) - ( 1 + 2012 + 2012^2 + ... + 2012^71 + 2012^72)
2011A = 2012^73 - 1 = B
=> A = 2012^73 - 1/2011
=> A < B
Ta thấy :A = 1+2012+20122+20123+...+201272
=> 2012A = (1+2012+20122+20123+...+201272)*2012
=> 2012A = 2012+20122+20123+20124+...+201272+20122013
=> 2012A = (1+2012+20122+20123+...+201272)+201273-1
=> 2012A = A+201273-1
=> 2011A = 201273-1
=> A = (201273-1) : 2011
Mà [(201273-1) : 2011] < (201273-1)
=> A < B
2012A = (1+2012+20122+20123+...+201272).2012
=> 2012A = 2012+20122+20123+20124+...+201272+20122013
=> 2012A = (1+2012+20122+20123+...+201272)+201273-1
=> 2012A = A+201273-1
=> 2011A = 201273-1
=> A = (201273-1) : 2011
Mà [(201273-1) : 2011] < (201273-1)
=> A < B