Challenge: Visualize Temperature Sensor Data
In previous chapters, you explored how to store engineering sensor data efficiently using Python lists and how to create basic plots to visualize that data. These skills are essential for engineers who need to monitor, analyze, and present sensor readings from equipment or processes. By combining structured data storage with clear visualizations, you can quickly spot patterns, trends, and anomalies in your measurements. This chapter challenges you to apply these concepts to a real-world scenario: visualizing a day's worth of temperature sensor data from a factory.
Swipe to start coding
You are given a list of 24 hourly temperature readings from a factory sensor. Store these readings in a list and create a visualization using matplotlib that meets the following requirements:
- Plot the temperature values against the corresponding hour of the day.
- Add labels to the x-axis ("Hour") and y-axis ("Temperature in °C").
- Set the plot title to "24-Hour Temperature Profile".
- Highlight the maximum temperature point in red and the minimum temperature point in blue.
- Ensure all data is hardcoded; do not use input statements.
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Challenge: Visualize Temperature Sensor Data
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In previous chapters, you explored how to store engineering sensor data efficiently using Python lists and how to create basic plots to visualize that data. These skills are essential for engineers who need to monitor, analyze, and present sensor readings from equipment or processes. By combining structured data storage with clear visualizations, you can quickly spot patterns, trends, and anomalies in your measurements. This chapter challenges you to apply these concepts to a real-world scenario: visualizing a day's worth of temperature sensor data from a factory.
Swipe to start coding
You are given a list of 24 hourly temperature readings from a factory sensor. Store these readings in a list and create a visualization using matplotlib that meets the following requirements:
- Plot the temperature values against the corresponding hour of the day.
- Add labels to the x-axis ("Hour") and y-axis ("Temperature in °C").
- Set the plot title to "24-Hour Temperature Profile".
- Highlight the maximum temperature point in red and the minimum temperature point in blue.
- Ensure all data is hardcoded; do not use input statements.
Løsning
Tak for dine kommentarer!
single