Lời giải:

Dãy $x,x+1, x+2,..., 2002$ có số số hạng là:

$\frac{2002-x}{1}+1=2003-x$
Tổng $x+(x+1)+....+2001+2002=\frac{(2002+x)(2003-x)}{2}$

Do đó:

$\frac{(2002+x)(2003-x)}{2}=2002$

$\Rightarrow (2002+x)(2003-x)=4004$

$2002.2003+x-x^2=4004$

$x^2-x-4006002=0$

$(x-2002)(x+2001)=0$

$\Rightarrow x=2002$ hoặc $x=-2001$

Phải cho đề bài chứ. 

(X -10/1994 -1) + (X-8/1996 - 1) + (X-6/1998 - 1)+ (X-4/2000 - 1) + (X-2/2002 - 1) = (X-2002/2 - 1) + (X-2000/4 - 1) + (X-1998/6 - 1) + (X-1996/8 - 1) + (X-1994/10 - 1) 

=> x-2004/1994 + x-2004/1996 + x-2004/1998 + x-2004/2000 + x-2004/2002 = x-2004/2 + x-2004/4 + x-2004/6 + x-2004/8 + x-2004/1994 

=> x-2004/1994 + x-2004/1996 + x-2004/1998 + x-2004/2000 + x-2004/2002 - x-2004/2 -  x-2004/4 - x-2004/6 - x-2004/8 -  x-2004/1994 = 0 

=>  (x - 2004)(1/994 + 1/1996 + 1/1998 + 1/2000 + 1/2002 + 1/2 +  1/4 + 1/6 + 1/8) = 0 

Mà  (1/994 + 1/1996 + 1/1998 + 1/2000 + 1/2002 + 1/2 +  1/4 + 1/6 + 1/8) \(\ne\)0 

=> x - 2004 = 0 

=> x = 2004 

Vậy x = 2004 

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

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

<=>\(\frac{x+2004}{2000}+\frac{x+2004}{2001}=\frac{x+2004}{2002}+\frac{x+2004}{2003}\)

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

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

Do \(\frac{1}{2000}+\frac{1}{2001}-\frac{1}{2002}-\frac{1}{2003}\ne0\)

=>x+2004=0

<=>x=-2004

Vậy x=-2004

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