CHọn C

X + 197 = 298

X           = 298 - 197

X            = 101

C. 101

Số lớn nhất trong các số 459 495; 459 549; 549 954 và 549 945 là 549 954.

Chọn C.

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a: SHTQ là: \(C^k_{10}\cdot x^{10-k}\cdot\left(\dfrac{2}{x}\right)^k=C^k_{10}\cdot2^k\cdot x^{10-2k}\)

Số hạng ko chứa x tương ứng với 10-2k=0

=>k=5

=>SH đó là 8064

b: SHTQ là; \(C^k_6\cdot x^{6-k}\cdot\left(\dfrac{2}{x^2}\right)^k=C^k_6\cdot2^k\cdot x^{6-3k}\)

Số hạng ko chứa x tương ứng với 6-3k=0

=>k=2

=>Số hạng đó là 60

c: SHTQ là: \(C^k_5\cdot\left(3x^3\right)^{5-k}\cdot\left(-\dfrac{2}{x^2}\right)^k\)

\(=C^k_5\cdot3^{5-k}\cdot\left(-2\right)^k\cdot x^{15-5k}\)

SH chứa x^10 tương ứng với 15-5k=10

=>k=1

=>Hệ số là -810

B

mik đang cần ak

Câu 8 là \(\left(8a^2-\dfrac{1}{2}b\right)^6\) hay \(\left(8a^2-\dfrac{1}{2b}\right)^6\) bạn? (tốt nhất là bạn dùng tính năng gõ công thức toán để đăng đề, hoặc chụp hình gửi đề trực tiếp lên, hiện nay hoc24 đã cho đăng đề bằng hình ảnh)

9.

\(\left(x+8.x^{-2}\right)^9=\sum\limits^9_{k=0}C_9^kx^{9-k}.8^k.x^{-2k}=\sum\limits^9_{k=0}C_9^k8^kx^{9-3k}\)

Số hạng ko chứa x \(\Rightarrow9-3k=0\Rightarrow k=3\)

Số hạng đó là: \(C_9^3.8^3=...\)

\(C^1_n+C^2_n=15\)

=>\(n+\dfrac{n!}{\left(n-2\right)!\cdot2!}=15\)

=>\(n+\dfrac{n^2-n}{2}=15\)

=>2n+n^2-n=30

=>n^2+n-30=0

=>n=5

=>(x+2/x^4)^5

SHTQ là: \(C^k_5\cdot x^{5-k}\cdot\left(\dfrac{2}{x^4}\right)^k=C^k_5\cdot x^{5-5k}\cdot2^k\)

SỐ hạng ko chứa x tương ứng với 5-5k=0

=>k=1

=>Số hạng đó là 5*2=10