The sum of the squares of four consecutive integers is 366. Approximately what is the average of the three greatest squares?
how would you set this up?
how would you set this up?
dat practice math question
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I think it goes something like this:
(x^1) + (x+1)^2 + (x+2)^2 + (x+3)^2 = 366
Set up to use in Quadratic formula.
This could definetly be wrong though, my math skills are a little rusty. If you have the solution, sometimes it can be easier to work back from that.
Edit: I previously Calclated the wrong number, but you should be able to get the correct answer this way
(x^1) + (x+1)^2 + (x+2)^2 + (x+3)^2 = 366
Set up to use in Quadratic formula.
This could definetly be wrong though, my math skills are a little rusty. If you have the solution, sometimes it can be easier to work back from that.
Edit: I previously Calclated the wrong number, but you should be able to get the correct answer this way
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12x, not 6x.
Also it wants the average of the SQUARES.
Would solve more but gotta go to class.
Also it wants the average of the SQUARES.
Would solve more but gotta go to class.
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I would do it a little differently. I would set it up as (x^2) + (x+1)^2 + (x+2)^2 + (X+3)^2 = 366. Solve for x which would yield 4X^2 + 12X - 352=0 Dividing by 4 all ways gives x^2+3x-88=0. Solve for X gives x=11 or x=-8. So there would give 2 solutions for this problem, either if you use 11 it would be (144+169+196)/3=169.66. If you use -8 it would be (49+36+25)/3=36.66.
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x^2 + (x+1)^2 + (x+2)^2 + (x+3)^2 = 366
4x^2 + 12x + 14 = 366
4x^2 + 12x - 352 = 0
4(x^2 + 3x - 88) = 0
4(x-8)(x+11) = 0
x = 8, -11
(Not -8 and 11 as Klutzy wrote - you swapped them)
Notice how this gives 8,9,10,11 or -11,-10,-9,-8. Thus when you square them and take the largest 3 squares it will be 9^2, 10^2, and 11^2.
This is 81 + 100 + 121 = 302.
Take 302 / 3 and get 100.67.
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It's easier to have:
(n-1)^2 +n^2 + (n+1)^2 +(n+2)^2 = 366
4n^2 + 4n +6 = 366
2n^2+2n +3 = 183 => 2n^2 + 2n = 180 => n^2 +2n = 90 => n(n+1)=90
=> n=9
the average of the three:
(n^2 + (n+1)^2 +(n+2)^2 )/3 = (3 n^2 + 6n + 5)/3 = 99+5/3 ~100.67
(n-1)^2 +n^2 + (n+1)^2 +(n+2)^2 = 366
4n^2 + 4n +6 = 366
2n^2+2n +3 = 183 => 2n^2 + 2n = 180 => n^2 +2n = 90 => n(n+1)=90
=> n=9
the average of the three:
(n^2 + (n+1)^2 +(n+2)^2 )/3 = (3 n^2 + 6n + 5)/3 = 99+5/3 ~100.67
Okay...I suck at math and here this goes, approximate. 10 squared is 100. So the 4 consecutive numbers have to be around 10ish. If you include too many numbers past 10 its greater than 366. Guess and check. 8 squared = 64, 9 squared= 81, 10 squared = 100, 11 squared = 121. Add these up = 366. Then take the average of the last 3.
No need for equation IMO.😎
No need for equation IMO.😎
thats how i did this problem. i initially thought it was 6,7,8,9 but it was way too low, so i decided to do 8,9,10,11 and it was right. using a formula is too time consuming, just guess and check.
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Ugh thats why you dont try solving quadratics in your head.
