Positive exponent help!!!!!?

1 ANSWERS

1. 
   

   I'm going to assume that you need entirely positive exponents, given the title...
   
   You need to reduce these?  Okay...
   
   For the first, (5y^2)/(45y^7)
   
   We can reduce the exponents; dividing exponents means we can subtract them (a^x)/(a^y) = a^(x-y)
   
   We can get rid of the exponent two on top if we subtract two from the bottom... that gets rid of the top exponent!  (5* 1)/(45y^5)
   
   The 1 represents y^0; any number to the zero power is 1.
   
   The coefficients reduce, since both are divisible by five... 5/45 = 1/9
   
   Leaving us with (1)/(9y^5)
   
   :)
   
   Let's press on!
   
   20x^5 * (4x^2)^-2
   
   Negative exponents are the equivalent of dividing by a positive exponent... (a^-x) = (1)/(a^x)  In our case, the second bit is all being raised to a negative power, and the first bit replaces the 1 in the example there.
   
   Doing this, we get (20x^5)/((4x^2)^2)
   
   Let's take care of the lower bit.  Raising a power to a power multiplies them.  Example: (a^x)^y = a^(xy)
   
   2*2 is 4, but the extra power out there also squares the exponent; we need to square the 4, too.  So our lower term is 16x^4.
   
   Now we have (20x^5)/(16x^4)
   
   We know we can reduce fractions by subtracting them, which means that we can eliminate the lower exponent entirely.  5-4 = 1, so...
   
   (20x^1)/(16)
   
   the 20 and 16 reduce, both are divisible by 4, so we finally get (5x)/(4)
   
   Hope that makes sense (^_^;; )

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