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Nady [450]
3 years ago
11

PLEASE HELP ASAP!! WILL MARK BRAINLEST

Mathematics
1 answer:
ss7ja [257]3 years ago
7 0

Answer: y=

Step-by-step explanation:

y=mx+b is the slope-intercept form of a line, with m representing the slope and b signifying the y-value of the y-intercept. Because at x=0, y=4, the y-intercept is (0,4), and b=4.

Slope=(y2-y1)/(x2-x1) where (x1, y1) and (x2, y2) are both points on the line

To find the slope of the line, choose two points on the line with whole number coordinates:

(0,4) and (-3,0)

Now, plug these values into the slope formula:

slope=(4-0)/(0-(-3))

slope=\frac{4}{3}

Therefore, m=\frac{4}{3}.

Substitute m and b into y=mx+b:

y=\frac{4}{3} x+4

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3 years ago
Does anyone know this??
atroni [7]

Step-by-step explanation:

sin \: x =  \frac{4}{11}  \\  \\ sin \: x = 0.363636 \\  \\ x = {sin \: }^{ -1}  0.363636 \\  \\ x = 21.323 \\  \\ x \approx \: 21 \degree

6 0
3 years ago
Read 2 more answers
Conner and Jana are multiplying (3⁵6⁸)(3⁹6¹⁰).
ad-work [718]
<h3>Conner work is correct. Jana work is wrong</h3>

<em><u>Solution:</u></em>

<em><u>Given that,</u></em>

<em><u>Conner and Jana are multiplying:</u></em>

(3^56^8)(3^96^{10})

Given Conner's work is:

(3^56^8)(3^96^{10}) = 3^{5+9}6^{8+10} = 3^{14}6^{18}

We have to check if this work is correct

Yes, Conner work is correct

From given,

(3^56^8)(3^96^{10})\\\\3^5 \times 6^8 \times 3^9 \times 6^{10}

Use the following law of exponent

a^m \times a^n = a^{m+n}

Therefore,

3^5 \times 6^8 \times 3^9 \times 6^{10} = 3^5 \times 3^9 \times 6^8 \times 6^{10} = 3^{5+9} \times 6^{8+10} = 3^{14} \times 6^{18}

<em><u>Given Jana's work is:</u></em>

(3^56^8)(3^96^{10}) = 3^{5.9}6^{8.10} = 3^{45}6^{80}

This is incorrect

The powers of same base has to be added. But here, powers are multiplied which is wrong

7 0
3 years ago
Can someone please help me asap!!! I’ll mark brainlist !!
Leni [432]

Answer: 2.4

Step-by-step explanation:

4/5 x 3 = 2 and 3/5

2 and 3/5 converted into decimal is 2.4

You're welcome!

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3 years ago
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Definitely at sams club
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3 years ago
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