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Question
the class boundaries should have been: 8.25, 9.55, 10.85, 12.15, 13.45, 14.75. these class boundaries are used as dividers for the bars on the histogram. each class boundary is represented on the horizontal axis below. at the center of each interval is a point represented by a large black dot. drag the five dots to the correct correct correct correct correct heights for the bars of the relative frequency histogram. note: if any relative frequency is zero (0), drag its bar up a bit, then back down to zero so that the value is registered.
To solve this, we need the frequency data (or raw data) to calculate relative frequencies. Since that's missing, here's the general process:
Step 1: Determine Class Intervals
From the boundaries, the intervals are:
- \( 8.25 - 9.55 \)
- \( 9.55 - 10.85 \)
- \( 10.85 - 12.15 \)
- \( 12.15 - 13.45 \)
- \( 13.45 - 14.75 \)
Step 2: Calculate Relative Frequency
For each interval:
\[ \text{Relative Frequency} = \frac{\text{Frequency of Interval}}{\text{Total Number of Observations}} \]
Step 3: Plot Heights
Once relative frequencies are calculated, drag each dot to the y - axis value equal to its interval’s relative frequency. If a relative frequency is 0, follow the note (drag up then down to 0).
Since the raw/frequency data is not provided, we can’t compute exact heights. But the process relies on calculating \( \frac{\text{Frequency}}{\text{Total}} \) for each interval and plotting that value on the y - axis.
If we assume hypothetical frequencies (e.g., total \( n = 10 \), and frequencies for intervals are \( f_1, f_2, f_3, f_4, f_5 \)), the relative frequencies would be \( \frac{f_1}{10}, \frac{f_2}{10}, \dots, \frac{f_5}{10} \), and the dots are placed at those y - values.
For example, if an interval has frequency \( 3 \) and \( n = 10 \), its relative frequency is \( 0.3 \), so the dot is dragged to \( 0.3 \) on the y - axis.
To proceed, you need the frequency (or raw data) for each class interval. Once you have that, apply the relative frequency formula and plot the dots at the corresponding y - axis heights.
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To solve this, we need the frequency data (or raw data) to calculate relative frequencies. Since that's missing, here's the general process:
Step 1: Determine Class Intervals
From the boundaries, the intervals are:
- \( 8.25 - 9.55 \)
- \( 9.55 - 10.85 \)
- \( 10.85 - 12.15 \)
- \( 12.15 - 13.45 \)
- \( 13.45 - 14.75 \)
Step 2: Calculate Relative Frequency
For each interval:
\[ \text{Relative Frequency} = \frac{\text{Frequency of Interval}}{\text{Total Number of Observations}} \]
Step 3: Plot Heights
Once relative frequencies are calculated, drag each dot to the y - axis value equal to its interval’s relative frequency. If a relative frequency is 0, follow the note (drag up then down to 0).
Since the raw/frequency data is not provided, we can’t compute exact heights. But the process relies on calculating \( \frac{\text{Frequency}}{\text{Total}} \) for each interval and plotting that value on the y - axis.
If we assume hypothetical frequencies (e.g., total \( n = 10 \), and frequencies for intervals are \( f_1, f_2, f_3, f_4, f_5 \)), the relative frequencies would be \( \frac{f_1}{10}, \frac{f_2}{10}, \dots, \frac{f_5}{10} \), and the dots are placed at those y - values.
For example, if an interval has frequency \( 3 \) and \( n = 10 \), its relative frequency is \( 0.3 \), so the dot is dragged to \( 0.3 \) on the y - axis.
To proceed, you need the frequency (or raw data) for each class interval. Once you have that, apply the relative frequency formula and plot the dots at the corresponding y - axis heights.