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Read any Noisy Sensor Data and use different types of filters to reduce the noise and convert RAW data to useable data
An excellent training about Hardware
Clean Sensor Data with Filters
Read any Noisy Sensor Data and use different types of filters to reduce the noise and convert RAW data to useable dataSensors and microcontrollers allow us to turn real-life phenomena into simple numerical signals that we can learn from. However, the raw output from the sensor may not be sufficient to extract desired information from. Real hardware is subject to interference and noise from the environment. Filtering is a simple technique that you can use to smooth out the signal, removing noise and making it easier to learn from the sensor output. This course introduces the concept of filters in different types and how to incorporate them into your design. Measurements from the real world often contain noise. Loosely speaking, noise is just the part of the signal you didnt want. Maybe it comes from electrical noise: the random variations you see when calling analogRead on a sensor that should be stable. Noise also arises from real effects on the sensor. Vibration from the engine adds noise. etcFiltering is a method to remove some of the unwanted signals to leave a smoother result. You Will Learn: Why we need to clean noise dataWhat are FiltersHow to implement Filters using Microcontrollers like ArduinoMoving Average FilterAveraging filterRunning average filterExponential filterTurning Filtering equations into actual codeCompare results before and after filteringYou will learn as you practice with real-world examples in this course
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