Abstract:
This study discusses an indoor localization method using the radio signal strength indicator (RSSI) of a wireless local area network (LAN). An indoor localization method ...Show MoreMetadata
Abstract:
This study discusses an indoor localization method using the radio signal strength indicator (RSSI) of a wireless local area network (LAN). An indoor localization method that adapts a convolutional neural network (CNN) to the fingerprint method is used. In this method, the CNN learns the access point (AP) information for each coordinate using the RSSI and media access control (MAC) addresses obtained from the wireless LAN APs and compares them with the AP information received from the user to estimate the user location. However, data collection for learning is costly when using CNNs. In addition, there is a problem of missing data owing to various factors when collecting AP information. Therefore, data augmentation is proposed as a method to reduce the cost of data collection while maintaining accuracy and is performed after correcting for missing values. However, data augmentation can produce unrealistic data. This paper proposes a method for correcting missing values in measurement data as a solution to this problem.
Published in: IEICE Communications Express ( Volume: 13, Issue: 8, August 2024)
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- IEEE Keywords
- Index Terms
- Missing Values ,
- Data Augmentation ,
- Values Of The Training Data ,
- Convolutional Neural Network ,
- Measurement Data ,
- Local Area Network ,
- Indoor Localization ,
- Fingerprinting Method ,
- Medium Access Control ,
- Received Signal Strength Indicator ,
- Wireless Local Area Network ,
- Data Sources ,
- Environmental Changes ,
- Highest Accuracy ,
- User Data ,
- Localization Accuracy ,
- Number Of Scans ,
- Nodes In Layer ,
- Global Navigation Satellite System ,
- Unit Data ,
- Hybridization Data ,
- Data Augmentation Methods ,
- Correction Threshold
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Missing Values ,
- Data Augmentation ,
- Values Of The Training Data ,
- Convolutional Neural Network ,
- Measurement Data ,
- Local Area Network ,
- Indoor Localization ,
- Fingerprinting Method ,
- Medium Access Control ,
- Received Signal Strength Indicator ,
- Wireless Local Area Network ,
- Data Sources ,
- Environmental Changes ,
- Highest Accuracy ,
- User Data ,
- Localization Accuracy ,
- Number Of Scans ,
- Nodes In Layer ,
- Global Navigation Satellite System ,
- Unit Data ,
- Hybridization Data ,
- Data Augmentation Methods ,
- Correction Threshold
- Author Keywords