`(""^(8) C_(0) )/(6) - ""^(8) C_1 + ""^(8) C_(2) . 6-""^(8) C_3 . 6^2 + ... + ""^(8) C_(8) .6^(7)` is equal to (i) `0` (ii) `6^7` (iii) `6^5` (iv) `(5^8)/(6)`

""^(15)C_(8) + ""^(15)C_(9) - ""^(15)C_(6) - ""^(15)C_(7) is equal to ………. .

""^(15)C_(9)-_""^(15)C_(6)+""^(15)C_(7)-^(15)C_(8) equals to

If .^(n)C_(8)=.^(n)C_(6) , then find .^(n)C_(2) .

Evaluate the following: (i) 7! - 6! (ii) (8!)/(6!)

Factorise : a^(6) - 7a^(3) - 8

Given "^(8)C_(1)x(1-x)^(7)+2*^(8)C_(2)x^(2)(1-x)^(6)+3*^(8)C_(3)x^(3)(1-x)^(5)+...+8*x^(8)=ax+b , then a+b is (a) 4 (b) 6 (c) 8 (d) 10

._(6)^(14)C and ._(8)^(16) O are ………..

Let 3^(a) = 4, 4^(b) = 5, 5^(c) = 6, 6^(d) = 7, 7^(e) = 8 and 8^(f) = 9 . The value of the product (abcdef), is

On nuclear chlorination, C_(8), H_(10) (A) gives a product (B) which may be oxidised to C_(8) H_(5)O_(4)Cl(C). (A) may alos be chlorinated to give C_(8) H_(8) Cl_(2)(D), C_(8) H_(6)Cl_(4)(E) , and C_(8) H_(4) Cl_(6)(F). (D), (E) and (F) on hydrolysis give halogen-free compounds (G), (H) , and (I) , respectively. With CrCO_(2)Cl_(2), (A) gives C_(8) H_(6)O_(4) which is identiacla with (I) . Identify wtih (I) . Identify the varioius compounds (A) to (J) .

The value of ( .^7C_0 + ^7C_1)+( .^7C_1+ ^7C_2)+....+(.^7C_6+ ^7C_7) is (A) 2^7-1 (B) 2^8-2 (C) 2^8-1 (D) 2^8