=1/2000-1/2001+1/2001-1/2002+1/2002-1/2003+......+1/2009-1/2010

=1/2000-1/2010

=1/402000

\(\frac{1}{2000+2001}+\frac{1}{2001+2002}+\frac{1}{2002+2003}+...+\frac{1}{2009+2010}\)

\(=\frac{1}{2000}-\frac{1}{2001}+\frac{1}{2001}-\frac{1}{2002}+\frac{1}{2003}-\frac{1}{2003}+...+\frac{1}{2009}-\frac{1}{2010}\)

\(=\frac{1}{2000}-\frac{1}{2010}\)

\(=\frac{1}{402000}\)

\(\frac{1}{2000}\)+2001+\(\frac{1}{2001}\)+ 2002+\(\frac{1}{2002}\)+2003+...+\(\frac{1}{2009}\)+2010

2001,0005+2002,0005+2003,0005+...+2010,0005

Số số hạng là:

(2010,0005-2001,0005)+1=10( số)

Số cặp số hạng là:

10:2= 5 ( cặp)

Tổng từng cặp là: 2001,0005+2010,0005=2002,0005+2009,0005=...=4011,001

Tổng của các số hạng trên là :

4011,001x5=20055,005

\(\frac{1}{2000+2001}+\frac{1}{2001+2002}+\frac{1}{2002+2003}+...+\frac{1}{2009+2010}\)

\(=\frac{1}{2000}-\frac{1}{2001}+\frac{1}{2002}-...+\frac{1}{2009}-\frac{1}{2010}\)

\(=\frac{1}{2000}-\frac{1}{2010}\)

\(=\frac{1}{402000}\)

B = \(\frac{2001}{2002}+\frac{2002}{2003}\)

có: \(\frac{2000}{2001}>\frac{2000}{2001}+2002\)

\(\frac{2001}{2002}>\frac{2001}{2001}+2002\)

Vậy A>B

a) \(1-2-3+4+5-6-7+...+2001-2002-2003+2004\)

  \(=\left(1-2-3+4\right)+\left(5-6-7+8\right)+...+\left(2001-2002-2003+2004\right)\)

  \(=0+0+...+0=0\)

b) \(1+2-3-4+5+6-7-8+...+2001+2002-2003-2004\)

   \(=\left(1+2-3-4\right)+\left(5+6-7-8\right)+...+\left(2001+2002-2003-2004\right)\)

   \(=\left(-4\right)+\left(-4\right)+...+\left(-4\right)\)

   \(=\left(-4\right)\cdot501=\left(-2004\right)\)

A=(1+2-3)+(-4+5+6-7)+(-8+9+10-11)+......(-2000+2001+2002-2003)

A=0+0....+0

A=0

Ta thấy 2-3-4=-5

            6-7-8=-9

           .............

           1998-1999-2000=-2001

=> 1+2-3-4+5+6-7-8+....-1999-2000+2001-2003=1-5+5-9+9-...-2001+2001+2002-2003

=> A= 1+2002-2003=0

Vậy A=0

\(=\left(1+2-3\right)+\left(-4+5+6-7\right)+...+\left(-2000+2001+2002-2003\right)\)

\(=0+0+0+...+0\)

\(=0\)

học tốt

\(\dfrac{x+4}{2000}\) + \(\dfrac{x+3}{2001}\) =\(\dfrac{x+2}{2002}\) + \(\dfrac{x+1}{2003}\)

<=> \(\dfrac{x+4}{2000}\) + 1 + \(\dfrac{x+3}{2001}\) +1 = \(\dfrac{x+2}{2002}\) + 1 + \(\dfrac{x+1}{2003}\) + 1

<=>\(\dfrac{x+4}{2000}\)+\(\dfrac{2000}{2000}\)+\(\dfrac{x+3}{2001}\) \(\dfrac{2001}{2001}\) = \(\dfrac{x+2}{2002}\)+\(\dfrac{2002}{2002}\)+\(\dfrac{x+1}{2003}\)+\(\dfrac{2003}{2003}\)

<=> \(\dfrac{x+4+2000}{2000}\)+\(\dfrac{x+3+2001}{2001}\) = \(\dfrac{x+2+2002}{2002}\)+ \(\dfrac{x+1+2003}{2003}\)

<=> \(\dfrac{x+2004}{2000}\) + \(\dfrac{x+2004}{2001}\) - \(\dfrac{x+2004}{2002}\) - \(\dfrac{x+2004}{2003}\) = 0

<=> (x+2004)(\(\dfrac{1}{2000}\) + \(\dfrac{1}{2001}\) - \(\dfrac{1}{2002}\) -\(\dfrac{1}{2003}\)) = 0

mà \(\dfrac{1}{2000}\) + \(\dfrac{1}{2001}\) - \(\dfrac{1}{2002}\) - \(\dfrac{1}{2003}\) khác 0

nên x+2004=0

=>x=0-2004
=> x = -2004
vậy S = -2004.

Tick nha

1. \(\left(3x-\frac{1}{4}\right).\left(x+\frac{1}{2}\right)=0\)

\(\Rightarrow\orbr{\begin{cases}\left(3x-\frac{1}{4}\right)=0\\x+\frac{1}{2}=0\end{cases}}\)

\(\Rightarrow\orbr{\begin{cases}\frac{1}{12}\\-\frac{1}{2}\end{cases}}\)

2)(x+4)/2000 + (x+3)/2001 = (x+2)/2002 + (x+1)/2003 
<=> (x+4)/2000 + 1 + (x+3)/2001 +1 = (x+2)/2002 + 1 + (x+1)/2003 + 1 (thêm 2 vào mỗi vế ) 
<=> (x+4+2000)/2000 + (x+3+2001)/2001 = (x+2+2002)/2002 + (x+1+2003)/2003 
<=> (x+2004)/2000 + (x+2004)/2001 - (x+2004)/2002 - (x+2004)/2003 = 0 ( chuyển vế ) 
<=> (x+2004)(1/2000 + 1/2001 - 1/2002 - 1/2003) = 0 ( nhóm hạng tử x + 2004) 
vậy biể thức trên bằng 0 tại x+2004 = 0 hoặc 1/2000 + 1/2001 - 1/2002 - 1/2003 = 0 
mà ta dễ thấy 1/2000 + 1/2001 - 1/2002 - 1/2003 khác 0 
nên biểu thức trên bằng 0 tại x+2004=0 
=> x = -2004 
vậy S = { -2004}

1.(3x -1/4) . (x+1/2)=0

Th1:

3x -1/4 =0

3x= 1/4

x= 1/12

Th2:

x+1/2 =0

x= -1/2

Vậy x= 1/12 và x= -1/2

1.

Trường hợp 1: 3x-1/4=0

                      3x=0+1/4=1/4

                      x=1/4:3

                      x=1/4.1/3

                      x=1/12

Trường hợp 2:x+1/2=0

                     x=0-1/2=-1/2

2.Thiếu đề!