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Helen [10]
4 years ago
5

2. What is 0.03249 in scientific notation?

Mathematics
1 answer:
Afina-wow [57]4 years ago
6 0

Answer:

3.249 X 10^-2

Step-by-step explanation:

2.

\huge 0.03249 = 3.249 \times  {10}^{ - 2}  \\

3.

\huge 715 \times  {10}^{3}  = 715000 \\

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3 years ago
Let f(x) = x^2 + 4x - 31. for what value of a is there exactly one real value of x such that f(x) = a?
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This value of "a" is exactly the y-coordinate of the vertex of the parabola
y = x%5E2+%2B+4x++-+31.

To find it, complete the square:

x%5E2+%2B+4x++-+31 = %28x%2B2%29%5E2+-+4+-+31 = %28x%2B2%29%5E2+-+35.

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Determine the rule for the number pattern and use it to find the missing values.
Kaylis [27]

9514 1404 393

Answer:

  Each term in the pattern will be odd.

Step-by-step explanation:

The first differences are ...

  7 -3 = 4

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These differ by 4, and the second is double the first.

These relationships between the first differences give rise to two possible sequences: a) an exponential sequence; b) a quadratic sequence. We can use a graphing calculator to find the coefficients of each of the patterns.

<u>Exponential Sequence</u>

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<u>Quadratic Sequence</u>

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Based on the above, the only thing we can say about these sequences is that they are all odd numbers.

Clearly, the 10th term is not 30. 7 is not a multiple of 3, so that observation fails immediately. 15 is not prime, so that observation also fails immediately.

_____

<em>Additional comment</em>

The differences of first differences are called "second differences". The differences of those are "third differences". and so on. If you keep taking differences of a sequence described by a polynomial, the n-th differences being constant means the sequence is described by an n-th degree polynomial.

Here, if we assume the 2nd differences are constant at 4, then the sequence is described by a 2nd-degree polynomial. (Similarly, constant first-differences are described by a 1st-degree polynomial--a linear function.)

If sequential levels of differences are all exponential sequences, then the sequence itself is an exponential sequence. As here, it may have a vertical offset. The base of the exponential will be the common ratio of the differences. (Here, the first differences have a ratio of 8/4 = 2, so the sequence could be exponential with a base of 2.)

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