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C=\(\frac{101+100+...+3+2+1}{101-100+...+3-2+1}\)
=\(\frac{\left(101+1\right).101:2}{\left(101-100\right)+...+\left(3-2\right)+1}\) (nhóm 2 số hạng ở MS thì sẽ có 51 nhóm và dư 1 số hang )
=\(\frac{102.101:2}{1+...+1+1}\) ( Ms có 51 số 1)
=\(\frac{51.101}{51}\)=101
D=\(\frac{3737.43-4343.37}{2+4+6+...+100}\)
= \(\frac{37.101.43-43.101.37}{2+4+6+..+100}\)
= \(\frac{0}{2+4+6+...+100}\)
=0
Tick mik nha, thks bạn
b, \(3737.43-4343.37=\left(37.101\right).43-\left(43.101\right).37=0\)
suy ra B = 0
c, \(D=\frac{2^{12}\left(13+65\right)}{2^{10}.104}+\frac{3^{10}\left(11+5\right)}{3^9.2^4}=\frac{2^{12}.78}{2^{10}.104}+\frac{3^{10}.16}{3^9.2^4}\)
\(=\frac{2^{12}.2.39}{2^{10}.2^3.13}+\frac{3^{10}.2^4}{3^9.2^4}=\frac{39}{13}+3=6\)
Bài 1:
\(\frac{37.13-13}{24+37.12}=\frac{13.\left(37-1\right)}{2.12+37.12}=\frac{13.36}{12.\left(37+2\right)}=\frac{13.36}{12.39}=\frac{1.3}{1.3}=1\)
Bài 2:
\(\frac{101+100+...+2+1}{101-100+99-98+...+3-2+1}=\frac{\left[\left(101-1\right):1+1\right].\left(101+1\right):2}{\left(101-100\right)+\left(99-98\right)+...+\left(3-2\right)+1}\)\(=\frac{101.102:2}{1.\left[\left(101-1\right):2+1\right]}=\frac{5151}{1.51}=\frac{5151}{51}=101\)
\(\frac{3737.43-4343.37}{2+4+...+100}=\frac{37.101.43-43.101.37}{2+4+...+100}=\frac{0}{2+4+6+...+100}=0\)
\(A=\frac{101+100+99+98+...+3+2+1}{101-100+99-98+...+3-2+1}\)
\(A=\frac{\left(\frac{101-1}{1}+1\right)\left(\frac{101+1}{2}\right)}{\left(\frac{101-1}{2}+1\right)\left(\frac{101+1}{2}\right)-\left(\frac{100-2}{2}+1\right)\left(\frac{100+2}{2}\right)}=\frac{101.51}{51.51-50.51}\frac{101.51}{51}=101\)
C = \(\frac{101+100+99+98+...+3+2+1}{101-100+99-98+...+3-2+1}\)
\(C=\frac{\left(101+1\right).101:2}{1+1+...+1+1}\)
\(C=\frac{5151}{51}\)
\(C=101\)
b) \(D=\frac{3737.43-4343.37}{2+4+6+...+100}\)
\(D=\frac{37.101.43-43.101.37}{2+4+6+...+100}\)
\(D=\frac{0}{2+4+6+...+100}\)
\(D=0\)