Please Help me Simplify?

4 ANSWERS

1. 
   

   First factor out the expressions........
   
   (2x+3)(x-2)/(x-1)(x-2) divided by (2x+3)(x+1)/3(x+1)(x-1) becomes
   
   (2x+3)/(x-1) divided by (2x+3)/3(x-1) which of course is 3

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2. 
   

   (2x^2-x-6)/(x^2-3x+2) = (2x + 3)(x - 2)/(x - 2)(x - 1)--------> remove x - 2
   
   (2x + 3)/(x - 1)
   
   (2x^2+5x+3)/(3x^2-3) = (2x + 3)(x + 1)/(3(x + 1)(x - 1)----> remove x + 1
   
   (2x + 3)/3(x - 1)
   
   {(2x + 3)/(x - 1)} / {2x + 3)/3(x - 1)} -------> when dividing by faction, just inverse multiply
   
   {(2x + 3)/(x - 1)} * {3(x - 1)/(2x + 3)}----> remove x - 1 and 2x + 3
   
   1/1 * 3/1 = 3

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3. 
   

   [(2x^2-x-6)/(x^2-3x+2)]/[(2x^2+5x+3)/(3x...
   
   To divide fractions, multiply the big numerator by the reciprocal of the big denominator
   
   [(2x^2-x-6)/(x^2-3x+2)] [(3x^2 - 3)/(2x^2 + 5x + 3)]
   
   Now factor where possible to see what cancels
   
   {[(x - 2)(2x + 3)]/[(x - 1)(x - 2)]} {[3(x + 1)(x - 1)]/[(2x + 3)(x + 1)}
   
   3
   
   If you have trouble with the harder factoring
   
   2x^2 - x - 6
   
   ac = 2(-6) = -12
   
   Factors of -12 that add to -1 are +3 & -4
   
   2x^2 + 3x - 4x - 12 {rewrite for grouping}
   
   x(2x + 3) - 2(3x + 3)
   
   (x - 2)(2x + 3)

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4. 
   

   (2x+3)(x-2)/(x-2)(x-1) * 3(x+1)(x-1)/(2x+3)(x+1)
   
   = 3
   
   

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