time_stretch: Switch to values of Citra
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		| @@ -32,10 +32,10 @@ std::size_t TimeStretcher::Process(const s16* in, std::size_t num_in, s16* out, | ||||
|     // We were given actual_samples number of samples, and num_samples were requested from us. | ||||
|     double current_ratio = static_cast<double>(num_in) / static_cast<double>(num_out); | ||||
|  | ||||
|     const double max_latency = 1.0; // seconds | ||||
|     const double max_latency = 0.25; // seconds | ||||
|     const double max_backlog = m_sample_rate * max_latency; | ||||
|     const double backlog_fullness = m_sound_touch.numSamples() / max_backlog; | ||||
|     if (backlog_fullness > 5.0) { | ||||
|     if (backlog_fullness > 4.0) { | ||||
|         // Too many samples in backlog: Don't push anymore on | ||||
|         num_in = 0; | ||||
|     } | ||||
| @@ -49,7 +49,7 @@ std::size_t TimeStretcher::Process(const s16* in, std::size_t num_in, s16* out, | ||||
|  | ||||
|     // This low-pass filter smoothes out variance in the calculated stretch ratio. | ||||
|     // The time-scale determines how responsive this filter is. | ||||
|     constexpr double lpf_time_scale = 2.0; // seconds | ||||
|     constexpr double lpf_time_scale = 0.712; // seconds | ||||
|     const double lpf_gain = 1.0 - std::exp(-time_delta / lpf_time_scale); | ||||
|     m_stretch_ratio += lpf_gain * (current_ratio - m_stretch_ratio); | ||||
|  | ||||
|   | ||||
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