soundClass: Sound Classification Using Convolutional Neural Networks
Provides an all-in-one solution for automatic classification of 
    sound events using convolutional neural networks (CNN). The main purpose 
    is to provide a sound classification workflow, from annotating sound events
    in recordings to training and automating model usage in real-life
    situations. Using the package requires a pre-compiled collection of 
    recordings with sound events of interest and it can be employed for: 
    1) Annotation: create a database of annotated recordings, 
    2) Training: prepare train data from annotated recordings and fit CNN models, 
    3) Classification: automate the use of the fitted model for classifying 
    new recordings. By using automatic feature selection and a user-friendly GUI
    for managing data and training/deploying models, this package is intended 
    to be used by a broad audience as it does not require specific expertise in 
    statistics, programming or sound analysis. Please refer to the vignette for
    further information.
    Gibb, R., et al. (2019) <doi:10.1111/2041-210X.13101>
    Mac Aodha, O., et al. (2018) <doi:10.1371/journal.pcbi.1005995>
    Stowell, D., et al. (2019) <doi:10.1111/2041-210X.13103>
    LeCun, Y., et al. (2012) <doi:10.1007/978-3-642-35289-8_3>.
| Version: | 0.0.9.2 | 
| Depends: | shinyBS, htmltools | 
| Imports: | seewave, DBI, dplyr, dbplyr, RSQLite, signal, tuneR, zoo, magrittr, shinyFiles, shiny, utils, graphics, generics, keras, shinyjs | 
| Suggests: | knitr, rmarkdown | 
| Published: | 2022-05-29 | 
| DOI: | 10.32614/CRAN.package.soundClass | 
| Author: | Bruno Silva [aut, cre] | 
| Maintainer: | Bruno Silva  <bmsasilva at gmail.com> | 
| BugReports: | https://github.com/bmsasilva/soundClass/issues | 
| License: | GPL-3 | 
| NeedsCompilation: | no | 
| Materials: | README, NEWS | 
| CRAN checks: | soundClass results | 
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