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Due to space limitations, we cannot yet present our measurements and
analysis of (1) the rotating woofer port, and (2) the rotating horn
en vivo (within its wooden cabinet enclosure). It is straightforward
to extend our computational model to include these elements as
follows:
- In [8], it is mentioned that an AM ``throb'' is
the main effect of the rotating woffer port. A modulated
lowpass-filter cut-off frequency has been used for this purpose by
others. Our measured data will be used to construct angle-dependent
filtering in a manner analogous to that of the rotating horn, and this
``woofer filter'' runs in parallel with the rotating horn model.
- The Leslie cabinet multiply-reflects the sound emanating from
the rotating horn. The first few early reflections are simply handled
as additional sources in Fig.. We are working to extend the
impulse-response-component separation algorithm of §4.3.1 to
the case of superimposed early reflections in the impulse response,
and preliminary results are promising.
- To qualitatively simulate later, more reverberant
reflections in the Leslie cabinet, we feed a portion of the
rotating-horn and speaker-port signals to separate states of an
artificial reverberator [14]. This reverberator
may be configured as a ``very small room'' corresponding to the
dimensions and scattering characteristics of the Leslie cabinet, and
details of the response may be calibrated using measurements of the
impulse response of the Leslie cabinet. Finally, in order to emulate
the natural spatial diversity of a radiating Leslie cabinet in a room,
``virtual cabinet vent outputs'' can be extracted from the model and
fed into separate states of a room reverberator.
In summary, we use multiple interpolating write-pointers to
individually simulate the early cabinet reflections, and
a ``Leslie cabinet'' reveberator for handling later reflections
more statistically.
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