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Matching Artificial Reverb Settings to Unknown Room Recordings: a Recommendation System for Reverb Plugins

机译:将人工混响设置与未知房间的录音相匹配:混响插件的推荐系统

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For creating artificial room impressions, numerous reverb plugins exist, and are often controllable by many parameters. To efficiently create a desired room impression, the sound engineer must be familiar with all the available reverb setting possibilities. Although plugins are usually equipped with many factory presets for exploring available reverb options, it is a time-consuming learning process to find the ideal reverb settings to create the desired room impression, especially if various reverberation plugins are available. For creating a desired room impression based on a reference audio sample, we present a method to automatically determine the best matching reverb preset across different reverb plugins. Our method uses a supervised machine-learning approach and can dramatically reduce the time spent on the reverb selection process.
机译:为了创建人为的房间印象,存在大量的混响插件,并且通常可以通过许多参数来控制它们。为了有效地创建所需的房间印象,声音工程师必须熟悉所有可用的混响设置可能性。尽管插件通常配备了许多出厂预设来探索可用的混响选项,但是要找到理想的混响设置以创建所需的房间印象是一个耗时的学习过程,尤其是在有各种混响插件可用的情况下。为了基于参考音频样本创建所需的房间印象,我们提出了一种自动确定跨不同混响插件的最佳匹配混响预设的方法。我们的方法使用监督的机器学习方法,可以大大减少在混响选择过程中花费的时间。

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