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Improving Temperature Sensor Accuracy in the IoT Trainer Kit by Linear Regression Method

机译:通过线性回归方法提高IOT训练器套件中的温度传感器精度

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The rapid development of Internet of Things (IoT) makes people in higher education must train their students to be better prepared in advancing and implementing that topic. Therefore, to improve student comprehension, we need tools such as trainer kit as a learning media. The IoT Trainer Kit has been created in Bandung State Polytechnic called the I-Kit which has many features. Inputs include DHT 11 temperature, humidity sensors and RFID. The controller used is Arduino Nano. Output for features in the trainer kit will appear on the web page. This I-Kit also has several communication devices such as Bluetooth, LoRa, ESP 8266 and SIM 800. However, before using the I-Kit as a learning medium, we must make the features in this trainer kit precision first. But the training kit is also not necessarily reliable, it must be tested and improved for the performance of its features. In this paper, we have improved accuracy of the DHT 11 temperature sensor on the I-Kit. Improvement was carried out using the linear regression method, to find out the correlation between The temperature of the thermometer with the temperature read on the sensor in the trainer's kit. Then this regression equation is entered into the temperature program in Arduino. When comparison is made between error and deviation standard before and after doing regression, the error rate is decrease byd 80.9 % from 7.3 become 1.39. The deviation standard which represents tolerance from sensor decrease 20% from 0.88 becomes 0.704.
机译:事物互联网的快速发展(物联网)使人们在高等教育中必须培养他们的学生在推进和实施该话题方面做好准备。因此,为了提高学生理解,我们需要培训师套件等工具作为学习媒体。 IOT Trainer套件已经在Bandung State Polytechnic中创建,称为I-Kit,具有许多功能。输入包括DHT 11温度,湿度传感器和RFID。使用的控制器是Arduino Nano。 Trainer Kit中的功能输出将显示在网页上。此i-kit还拥有若干通信设备,如蓝牙,LORA,ESP 8266和SIM 800.但是,在使用I-套件作为学习媒体之前,我们必须首先在本培训师套件套件中进行特色。但培训套件也不一定是可靠的,必须进行测试和改进其特征的性能。在本文中,我们在I-套件上提高了DHT 11温度传感器的准确性。使用线性回归方法进行改进,从培训师套件中的传感器上读取温度读取温度计之间的相关性。然后将该回归方程输入Arduino中的温度程序。当在误差和偏差标准之间进行比较之前和之后进行回归后,错误率从7.3变为1.39的误差率为80.9%。表示来自传感器的公差的偏差标准降低20%从0.88变为0.704。

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