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\(A=\frac{1001^{1001}}{1002^{1002}}=\frac{1001^{1000}.1001}{1002^{1001}.1002}\)
\(B=\frac{1001^{1001}+101101}{1002^{1002}+101202}=\frac{1001.1001^{1000}+1001.101}{1002.1002^{1001}+1002.101}\)
\(=\frac{1001\left(1001^{1000}+101\right)}{1002\left(1002^{1001}+101\right)}\)
Xét \(\frac{1001^{1000}+101}{1002^{1001}+101}\)\(-\frac{1001^{1000}}{1002^{1001}}\)
\(=\frac{1002^{1001}\left(1001^{1000}+101\right)-1001^{1000}\left(1002^{1001}+101\right)}{\left(1002^{1001}+101\right).1002^{1001}}\)
\(=\frac{1002^{1001}.1001^{1000}+1002^{1001}.101-1001^{1000}.1002^{1001}-1001^{1000}.101}{\left(1002^{1001}+101\right).1002^{1001}}\)
\(=\frac{101\left(1002^{1001}-1001^{1000}\right)}{\left(1002^{1001}+101\right).1002^{1001}}>0\)
=> \(\frac{1001^{1000}+101}{1002^{1001}+101}\)\(>\frac{1001^{1000}}{1002^{1001}}\)
=> \(\frac{1001\left(1001^{1000}+101\right)}{1002\left(1002^{1001}+101\right)}>\frac{1001^{1000}.1001}{1002^{1001}.1002}\)
=> \(B>A\)
\(\frac{1000x1003}{1001x1002}\),\(\frac{1001x1002}{1003x1001}\),\(\frac{1000x1002}{1003x1001}\)
0.999998006 ,0.999002991 ,0.998004986
vậy \(\frac{1000x1003}{1001x1002}\)là ps lớn nhất
1)Ta có: A= 2004/2005=1- 1/2005 B=2005/2006=1- 1/2006 1/2005>1/2006 =>1- 1/2005 < 1- 1/2006
Vậy A<B.
2)Tương tự như trên,1001/1002<1002/1003
Ta có: 1/1500 = 1/1500
1/1001 > 1/1500
1/1002 > 1/1500
1/1003 > 1/1500 => 1/1001 + 1/1002 + 1/1003 + ... + 1/1499
. . . . . . . . . . . > 1/1500 + 1/1500 + 1/1500 + ... + 1/1500 (499 số hạng 1/1500)
1/1499 > 1/1500 > 499/1500
=> 1/1001 + 1/1002 + 1/1003 + ... + 1/1500 > 499/1500 + 1/1500 = 500/1500 = 1/3
Vậy 1/1001 + 1/1002 + 1/1003 + ... + 1/1500 > 1/3
k cho mình nha! Cảm ơn!