3 problems found
\(\triangle\) is an operation that takes polynomials in \(x\) to polynomials in \(x\); that is, given any polynomial \(\h(x)\), there is a polynomial called \(\triangle \h(x)\) which is obtained from \(\h(x)\) using the rules that define \(\triangle\). These rules are as follows:
Solution: Claim: If \(f\) is a constant, then \(\triangle f = 0\) Proof: First consider \(f(x) = 1, g(x) = x\) then we must have: \begin{align*} && \triangle (1x) &= 1 \triangle x + x \triangle 1 \tag{iv} \\ &&&= 1 \cdot 1 + x \triangle 1 \tag{i} \\ \Rightarrow && 1 &= 1 + x \triangle 1 \tag{i} \\ \Rightarrow && \triangle 1 &= 0 \\ \Rightarrow && \triangle c &= 0 \tag{iii} \end{align*} \begin{align*} && \triangle (x^2) &= x \triangle x + x \triangle x \tag{iv} \\ &&&= x \cdot 1 + x \cdot 1 \tag{i} \\ &&&= 2x \\ \\ && \triangle (x^3) &= x^2 \triangle x + x \triangle (x^2) \tag{iv} \\ &&&= x^2 \cdot 1 + x \cdot 2x \tag{\(\triangle x^2 = 2x\)}\\ &&&= 3x^2 \end{align*} Claim: \(\triangle h(x) = \frac{\d h(x)}{\d x}\) for any polynomial \(h\) Proof: Since both \(\triangle\) and \(\frac{\d}{\d x}\) are linear (properties \((ii)\) and \((iii)\)) it suffices to prove that: \(\triangle x^n = nx^{n-1}\). For this we proceed by induction. Base cases (we've proved up to \(n = 3\) so we're good). Suppose it's true for some \(n\), then consider \(n + 1\), \begin{align*} && \triangle (x^{n+1}) &= x \triangle (x^n) + x^n \triangle x \tag{iv} \\ &&&= x \cdot n x^{n-1} + x^n \triangle x \tag{Ind. hyp.} \\ &&&= nx^n + x^n \tag{i} \\ &&&= (n+1)x^{n} \end{align*} Therefore it's true for for \(n+1\). Therefore by induction it's true for all \(n\).
\(\lozenge\) is an operation which take polynomials in \(x\) to polynomials in \(x\); that is, given a polynomial \(\mathrm{h}(x)\) there is another polynomial called \(\lozenge\mathrm{h}(x)\). It is given that, if \(\mathrm{f}(x)\) and \(\mathrm{g}(x)\) are any two polynomials in \(x\), the following are always true:
Solution: Claim: If \(f(x) = c\) then \(\lozenge f(x) = 0\) Proof: Consider \(g(x) = x\) then \begin{align*} (1) && \lozenge(f(x)g(x)) &= g(x) \lozenge f(x) + f(x) \lozenge g(x) \\ \Rightarrow && \lozenge(c x) &= x \lozenge f(x) + c \lozenge x \\ (4) && \lozenge(c x) &= c \lozenge x \\ \Rightarrow && 0 &= x \lozenge f(x) \\ \Rightarrow && \lozenge f(x) &= 0 \end{align*} \begin{align*} (1) && \lozenge(x^2) &= x \lozenge x + x \lozenge x \\ (3) &&&= 2 x \cdot 1 \\ &&&= 2x \\ \\ (1) && \lozenge (x^3) &= x^2 \lozenge x + x \lozenge (x^2) \\ &&&= x^2 \cdot \underbrace{1}_{(3)} + x \cdot\underbrace{ 2x}_{\text{previous part}} \\ &&&= 3x^2 \end{align*} Claim: \(\lozenge h(x) = \frac{\d }{\d x} ( h(x))\) for any polynomial \(h\). Proof: (By (strong) induction on the degree of \(h\)). Base case: True, we proved this in the first part of the question. Inductive step: Assume true for all polynomials of degree less than or equal to \(k\). Then consider \(n = k+1\). We can write \(h(x) = ax^{k+1} + h_k(x)\) where \(h_k(x)\) is a polynomial of degree less than or equal to \(k\). Then notice: \begin{align*} && \lozenge (h(x)) &= \lozenge (ax^{k+1} + h_k(x)) \\ (2) &&&= \lozenge (ax^{k+1})+ \lozenge (h_k(x)) \\ &&&=\underbrace{a\lozenge (x^{k+1})}_{(4)}+ \underbrace{\frac{\d}{\d x} (h_k(x))}_{\text{inductive hypothesis}}\\ &&&= a \underbrace{\left (x \lozenge x^k + x^k \lozenge x \right)}_{(1)} + \frac{\d}{\d x} (h_k(x)) \\ &&&= a \left ( x \cdot \underbrace{k x^{k-1}}_{\text{inductive hyp.}} + x^k \cdot \underbrace{1}_{(3)} \right) + \frac{\d}{\d x} (h_k(x)) \\ &&&= (k+1)a x^k + \frac{\d}{\d x} (h_k(x)) \\ &&&= \frac{\d }{\d x} \left ( ax^{k+1} + h_k(x) \right) \\ &&&= \frac{\d }{\d x} (h(x)) \end{align*} Therefore since our statement is true for \(n=0\) and if it is true for \(n=k\) it is true for \(n=k+1\) by the principle of mathematical induction it is true for all \(n \geq 0\)
The set \(S\) consists of \(N(>2)\) elements \(a_{1},a_{2},\ldots,a_{N}.\) \(S\) is acted upon by a binary operation \(\circ,\) defined by \[ a_{j}\circ a_{k}=a_{m}, \] where \(m\) is equal to the greater of \(j\) and \(k\). Determine, giving reasons, which of the four group axioms hold for \(S\) under \(\circ,\) and which do not. Determine also, giving reasons, which of the group axioms hold for \(S\) under \(*\), where \(*\) is defined by \[ a_{j}*a_{k}=a_{n}, \] where \(n=\left|j-k\right|+1\).
Solution: