Math IOQM

Q1. Show that (1 - 1/2^2)(1 - 1/3^2)....(1 - 1/(n+1)^2) = n+2/2n+2 S1. Easy to show via induction. Other way via telescopic cancellations: Kth term is (k^2 - 1)/k^2 = (k-1)(k+1)/k^2 = (k-1)/k.(k+1)/k Now separate out k-1/k and k+1/k terms and multiply: 2-1/2 * 3-1/3 * 4-1/4 .... n/n+1 = 1/n+1 2+1/2 * 3+1/3 ... n+2/n+1 = n+2/2 Hence proved. Q2. Show that: S2. Short method: r*nCr = n*(n-1)C(r-1) and take sigma simply. Longer method:  2^(n-1) = (n-1)C0 + (n-1)C1... (n-1)C(n-1) (n-1)Ck *n = nCk*(n-k) How? n * (n-1)!/k!(n-1-k)! = n! /k!(n-k-1)! But (n-k-1)! = (n-k)!/(n-k) So n * (n-1)!/k!(n-1-k)! = (n-k)n! /k!(n-k)! = nCk*(n-k) So n*2^(n-1) = n *2^(n-1) = n*[(n-1)C0 + (n-1)C1... (n-1)C(n-2)+ (n-1)C(n-1)] = nC0 * (n-0) + nC1*(n-1) ... nC(n-2)*(2)+ nC(n-1)*(1) It can be rewritten as: = nCn*n + nC1 * (n-1) ... nC2 * 2 + nC1 * 1 = (r = 1 to n)Sigma(r*nCr) = (r = 0 to n)Sigma(r*nCr) Hence proved. Q3. S3. Quite simple. Let the given sum be S. 3S = 1.3^2 + 2.3^3... n.3^(n+1) S-3S = 3 + 3^2 ......

Q1. Prove that: 1/15 <  1.3.5.7...99/2.4.6.8...100  < 1/10 S1. We will use the property that n/n+1 < n+1/n+2 i.e. as the integer 'k' increases k/k+1 keeps becoming larger. It is easy to prove it by cross multiplication: n(n+2) < (n+1)^2 => 0 < 1. Let's rewrite it as: 1/2 * 3/4 * 5/6 ... 99/100 = P Let Q = 2/3 * 4/5 ....98/99 * 100/101 Both P,Q have 50 fractions each. And each fraction of P is less than its corresponding fraction in Q. So P < Q Multiply both sides by P. P^2 < PQ = 1/2 * 2/3 * 3/4 .... 100/101 = 1/101 P^2 < 1/101 => P^2 < 1/100 => P < 1/10 Now for the other part where we have to prove that P > 1/15 P = 1/2 *(3/4 * 5/6 * ... 99/100) R = 2/3 * 4/5 ... 98/99 => P > R/2 2P> R 2P^2 > P.R = 1/2 * 2/3 * 3/4 ... 99/100 = 1/100 P^2 > 1/200 P^2 > 1/225 P > 1/15 H.P.

Q1.  S1. A is 3x2 so B will be 2x3. Rank(A) = 2 so it's possible to create I2 which has rank 2. Now let B = a b c, d e f Now when we multiply BA and equate with I2 we will have 4 equations for 6 variables. So 2 variables will be free and hence there will be infinite such matrices. Rank(I_3) = 3 Rank(AC) = min(Rank(A),Rank(C) = 2 So it's not possible since ranks don't match. Q2. Prove that a square row echelon matrix M is either the identity matrix I, or else its bottom row is zero. S2. If we start with the top left element as the first pivot element, then each subsequent row needs to have the pivot element to its right. So if we keep shifting the column and row by 1 we will just manage to take row echelon matrix by using the bottom left element. If at any step we take more than 1 step right, than one or more rows at bottom will have to be zero rows. Q3. S3. We need to convert the given matrix to Identity matrix. It is possible since both columns are independent. R2 - 2R...

  Q1. Second principle of induction: prove that for all natural numbers n, (3 + sqrt(5))^n + (3 - sqrt(5))^n is divisible by 2^n. Let S_n = (3 + sqrt(5))^n + (3 - sqrt(5))^n a = 3 + rt(5) b = 3 - rt(5) a+b = 6 ab = 4 a,b are roots of x^2 - 6x + 4 = 0 => x^2 = 6x - 4 Multiply both sides with x^(n-1) => x^(n+1) = 6x^(n) - 4x^(n-1) replace x with a,b and add them together S_{n+1} = 6S_{n} - 4S_{n-1} For n=1,2 Sn = 6,28, i.e. divisible by 2^1,2^2 Using second principle of induction assume it's true till S_{k} including S_{k-1} and below. Then S_{k+1} = 6S_{k} - 4S_{k-1}. So it's divisible by 2^(k+1) H.P. Q2. x + y = a + b x^2 + y^2 = a^2 + b^2 Prove or disprove that x^n + y^n = a^n + b^n for all n >= 3. S2. We can prove it by induction but there is a simpler way. (x+y)^2 = (a+b)^2 will give us xy = ab. Let a,b be roots of: t^2 -(a+b)t + ab = 0 And x,y be roots of: t^2 -(x+y)t + xy = 0 Both these polynomials have same coefficients and hence they are same by definition. =...

S1. Let a = sqrt(2014) => 4029 = 2a^2 + 1 Equation becomes: ax^3 - (2a^2 + 1).x^2 + 2 = 0 ax^3 - x^2 - 2a^2.x^2  + 2 = 0 x^2(ax -1) - 2(a^2x^2 - 1) = 0 x^2(ax -1) - 2(ax + 1)(ax - 1) = 0 (ax - 1)(x^2 - 2ax - 2) = 0 x = 1/a is one root. x^2 - 2ax - 2 = 0 gives x = [2a +-sqrt(4a^2 + 8)]/2 = a +- sqrt(a^2 + 2) So the 3 roots are: a > 1 1/a (middle) a + sqrt(2 + a^2) (biggest) a - sqrt(2 + a^2) (smallest since negative) So x2 = 1/a Answer = 2 Q2. S2. Take 4 to LHS and get: x/x-3 + x/x-5 ... = x^2 - 11x => x = 0 is one solution => x/x-3 + x/x-5 ... = x - 11 Now combine 3,19 and 5,17 terms 1/x-3 + 1/x-19 = 2x - 22/(x-3)(x-19) 1/x-5 + 1/x-17 = 2x - 22/(x-5)(x-17) => 2(x-11)[1/(x-3)(x-19) + 1/(x-5)(x-17)] = x-11 => x = 11 is another root. Now 1/(x-3)(x-19) + 1/(x-5)(x-17) = 1/2 1/(x^2 - 22x + 57) + 1/(x^2 - 22x + 85) = 1/2 Let x^2 - 22x + 57 = u => 1/u + 1/(u + 28) = 1/2 => 2(2u + 28) = u^2 + 28u = 4u + 56 => u^2 + 24u - 56 = 0 u = [-24 +-sqrt(24*24 + 4*56)]/2...

Q1. For any integer a, show the following: (a) gcd(2a+1,9a+4)=1. (b) gcd(5a+2,7a+3)=1. (c) If a is odd, then gcd(3a,3a+2)=1.  S1. (a) Using Euclid algorithm: (2a+1,9a+4) = (2a+1,a) = (1,a) = 1 (b) (5a+2,7a+3) = (5a+2,2a+1) = (a,2a+1) = (a,1) = 1 (c) (3a,3a+2) = (3a,2) Since 3a is odd => gcd = 1 Q2. If  a∣bc, then show that a∣ gcd(a,b) gcd(a,c) S2. Using Bezout's identity: gcd(a,b) = d1 = m1a + m2b gcd(a,c) = d2 = n1a + n2c d1.d2 = m1.n1.a^2 + m1.n2.ac + n1m2ab + m2n2bc We need to show that d1d2 = ak. Each term in d1.d2 is div by a except m2n2bc but we know that bc is div by a. H.P. Q3. Use the Euclidean Algorithm to obtain integers x and y s.t. (a)  gcd(56,72)=56x+72y. (b) gcd(24,138)=24x+138y. (c) gcd(119,272)=119x+272y. (d) gcd(1769,2378)=1769x+2378y. S3. (a) (56,72) = (56,72-56.1=16) = (56-16*3 = 8,16) = 8 8 = 56-(72 - 56.1)*3  = 56*4 - 3*72 = 224-216 (b) gcd(24,138) = 24,138-24*5 = 24,18 = 24-18,18 = 6,18 = 6 (138-24*5)*(-1) + 24 = 24*6 - 138*1 = 144-138 ...