Answer to Question #218160 in Abstract Algebra for PRIYANKA

Question #218160

Let G=fg:R--li:g(x)=ax+b,a,b EQ,a# 01. Check whether or not G is a group with respect to the composition of mappings. For f(x) = 2x + 3, find all g bilong toG such that fog=gof

Expert's answer

Let "f,g,h\\in G" where

"f(x)=a_1x+b_1,g(x)=a_2x+b_2, \\\\h(x)=a_3x+b_3,a_1,b_1,a_2,b_2,a_3,b_3\\in \\mathbb{R}"

Consider

"f\\circ g(x)=a_1(a_2x+b_2)+b_1=a_1a_2x+a_1b_2+b_1"

Clearly, "a_1a_2,a_1b_2+b_1\\in \\mathbb{R}" since the sum of product of real numbers is also a real number. Hence "f\\circ g\\in G".

Next,

"g\\circ h(x)=a_2(a_3x+b_3)+b_2=a_2a_3x+a_2b_3+b_2"

So consider

"f\\circ(g\\circ h)(x)=a_1(a_2a_3x+a_2b_3+b_2)+b_1 \\\\=a_1a_2a_3x+a_1a_2b_3+a_1b_2+b_1 \\\\=a_1a_2(a_3x+b_3)+a_1b_2+b_1 \\\\=(f\\circ g)\\circ h(x)"

Next, let "e\\in G" such that "e(x)=x". Then we have

"g\\circ e(x)=a_2(e(x))+b=a_2x+b_2=g(x)=a_2x+b_2=e(g(x)) \\\\=e\\circ g(x)"

Finally, let "k(x)=\\dfrac{x}{a_2}-\\dfrac{b_2}{a_2}" where "a\\neq 0". Clearly, "k\\in G". Now consider

"g\\circ k(x)=a_2\\left(\\dfrac{x}{a_2}-\\dfrac{b_2}{a_2}\\right)+b_2=x-b_2+b_2=x \\\\=e(x)"

Similarly,

"k\\circ g(x)=\\dfrac{a_2x+b_2}{a_2}-\\dfrac{b_2}{a_2}=x=e(x)"

Since "G" satisfies all the conditions of a group, we therefore conclude that "G" is a group.

Let "g(x)=ax+b" where "a,b\\in \\mathbb{R}". Suppose "f\\circ g=g\\circ f". Then we have

"2(g(x))+3=g(2x+3) \\\\\n\\Rightarrow 2(ax+b)+3=a(2x+3)+b \\\\\n\\Rightarrow 2ax+2b+3=2ax+3a+ab"

By comparing the terms of both sides of the equation above, we have

"2b+3=3a+ab \\Rightarrow a(b+3)=2b+3 \\\\ \\Rightarrow a=\\dfrac{2b+3}{b+3}"

where "b\\neq -3".

Hence we have the set

"\\{f \\in G | f(x)=ax+b \\text{ where }a=\\dfrac{2b+3}{b+3},b \\neq -3\\}"

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Answer to Question #218160 in Abstract Algebra for PRIYANKA

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