📄 siosc.c
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#include "stdio.h"#ifndef mips#include "stdlib.h"#endif#include "xlisp.h"#include "sound.h"#include "falloc.h"#include "cext.h"#include "siosc.h"void siosc_free();typedef struct siosc_susp_struct { snd_susp_node susp; boolean started; long terminate_cnt; boolean logically_stopped; sound_type s_fm; long s_fm_cnt; sample_block_values_type s_fm_ptr; /* support for interpolation of s_fm */ sample_type s_fm_x1_sample; double s_fm_pHaSe; double s_fm_pHaSe_iNcR; /* support for ramp between samples of s_fm */ double output_per_s_fm; long s_fm_n; double table_len; double ph_incr; table_type table_a_ptr; table_type table_b_ptr_ptr; sample_type *table_a_samps; sample_type *table_b_samps; double table_sr; double phase; LVAL lis; long next_breakpoint; double ampramp_a; double ampramp_b; double ampslope;} siosc_susp_node, *siosc_susp_type;/* sisosc_table_init -- set up first two tables for interpolation *//**/void siosc_table_init(siosc_susp_type susp){ sound_type snd; if (!susp->lis) xlfail("bad table list in SIOSC"); snd = getsound(car(susp->lis)); susp->table_b_ptr_ptr = sound_to_table(snd); susp->table_b_samps = susp->table_b_ptr_ptr->samples; susp->lis = cdr(susp->lis); susp->table_sr = snd->sr;}/* siosc_table_update -- outer loop processing, get next table *//**/long siosc_table_update(siosc_susp_type susp, long cur){ long n; /* swap ampramps: */ susp->ampramp_a = 1.0; susp->ampramp_b = 0.0; /* swap tables: */ table_unref(susp->table_a_ptr); susp->table_a_ptr = susp->table_b_ptr_ptr; susp->table_a_samps = susp->table_b_samps; susp->table_b_ptr_ptr = NULL; /* so we do not try to unref it */ if (susp->lis) { sound_type snd; /* compute slope */ susp->next_breakpoint = getfixnum(car(susp->lis)); susp->lis = cdr(susp->lis); n = susp->next_breakpoint - cur; susp->ampslope = 1.0 / n; /* build new table: */ if (!susp->lis) xlfail("bad table list in SIOSC"); snd = getsound(car(susp->lis)); susp->table_b_ptr_ptr = sound_to_table(snd); susp->table_b_samps = susp->table_b_ptr_ptr->samples; if (susp->table_b_ptr_ptr->length != susp->table_len || susp->table_sr != snd->sr) xlfail("mismatched tables passed to SIOSC") ; susp->lis = cdr(susp->lis); } else { /* use only table a */ susp->ampslope = 0.0; susp->next_breakpoint = 0x7FFFFFFF; n = 0x7FFFFFFF; } return n;}void siosc_s_fetch(register siosc_susp_type susp, snd_list_type snd_list){ int cnt = 0; /* how many samples computed */ int togo; int n; sample_block_type out; register sample_block_values_type out_ptr; register sample_block_values_type out_ptr_reg; register double table_len_reg; register double ph_incr_reg; register sample_type * table_a_samps_reg; register sample_type * table_b_samps_reg; register double phase_reg; register double ampramp_a_reg; register double ampramp_b_reg; register double ampslope_reg; register sample_type s_fm_scale_reg = susp->s_fm->scale; register sample_block_values_type s_fm_ptr_reg; falloc_sample_block(out, "siosc_s_fetch"); out_ptr = out->samples; snd_list->block = out; while (cnt < max_sample_block_len) { /* outer loop */ /* first compute how many samples to generate in inner loop: */ /* don't overflow the output sample block: */ togo = max_sample_block_len - cnt; /* don't run past the s_fm input sample block: */ susp_check_term_log_samples(s_fm, s_fm_ptr, s_fm_cnt); togo = MIN(togo, susp->s_fm_cnt); /* don't run past terminate time */ if (susp->terminate_cnt != UNKNOWN && susp->terminate_cnt <= susp->susp.current + cnt + togo) { togo = susp->terminate_cnt - (susp->susp.current + cnt); if (togo == 0) break; } /* don't run past logical stop time */ if (!susp->logically_stopped && susp->susp.log_stop_cnt != UNKNOWN) { int to_stop = susp->susp.log_stop_cnt - (susp->susp.current + cnt); /* break if to_stop == 0 (we're at the logical stop) * AND cnt > 0 (we're not at the beginning of the * output block). */ if (to_stop < togo) { if (to_stop == 0) { if (cnt) { togo = 0; break; } else /* keep togo as is: since cnt == 0, we * can set the logical stop flag on this * output block */ susp->logically_stopped = true; } else /* limit togo so we can start a new * block at the LST */ togo = to_stop; } } { long cur = susp->susp.current + cnt; n = susp->next_breakpoint - cur; if (n == 0) n = siosc_table_update(susp, cur); } togo = MIN(n, togo); n = togo; table_len_reg = susp->table_len; ph_incr_reg = susp->ph_incr; table_a_samps_reg = susp->table_a_samps; table_b_samps_reg = susp->table_b_samps; phase_reg = susp->phase; ampramp_a_reg = susp->ampramp_a; ampramp_b_reg = susp->ampramp_b; ampslope_reg = susp->ampslope; s_fm_ptr_reg = susp->s_fm_ptr; out_ptr_reg = out_ptr; if (n) do { /* the inner sample computation loop */ long table_index; double xa, xb; table_index = (long) phase_reg; xa = table_a_samps_reg[table_index]; xb = table_b_samps_reg[table_index]; *out_ptr_reg++ = (sample_type) (ampramp_a_reg * (xa + (phase_reg - table_index) * (table_a_samps_reg[table_index + 1] - xa)) + ampramp_b_reg * (xb + (phase_reg - table_index) * (table_b_samps_reg[table_index + 1] - xb))); ampramp_a_reg -= ampslope_reg; ampramp_b_reg += ampslope_reg; phase_reg += ph_incr_reg + (s_fm_scale_reg * *s_fm_ptr_reg++); while (phase_reg > table_len_reg) phase_reg -= table_len_reg; /* watch out for negative frequencies! */ while (phase_reg < 0) phase_reg += table_len_reg; } while (--n); /* inner loop */ susp->phase = phase_reg; susp->ampramp_a = ampramp_a_reg; susp->ampramp_b = ampramp_b_reg; /* using s_fm_ptr_reg is a bad idea on RS/6000: */ susp->s_fm_ptr += togo; out_ptr += togo; susp_took(s_fm_cnt, togo); cnt += togo; } /* outer loop */ /* test for termination */ if (togo == 0 && cnt == 0) { snd_list_terminate(snd_list); } else { snd_list->block_len = cnt; susp->susp.current += cnt; } /* test for logical stop */ if (susp->logically_stopped) { snd_list->logically_stopped = true; } else if (susp->susp.log_stop_cnt == susp->susp.current) { susp->logically_stopped = true; }} /* siosc_s_fetch */void siosc_i_fetch(register siosc_susp_type susp, snd_list_type snd_list){ int cnt = 0; /* how many samples computed */ int togo; int n; sample_block_type out; register sample_block_values_type out_ptr; register sample_block_values_type out_ptr_reg; register double table_len_reg; register double ph_incr_reg; register sample_type * table_a_samps_reg; register sample_type * table_b_samps_reg; register double phase_reg; register double ampramp_a_reg; register double ampramp_b_reg; register double ampslope_reg; register double s_fm_pHaSe_iNcR_rEg = susp->s_fm_pHaSe_iNcR; register double s_fm_pHaSe_ReG; register sample_type s_fm_x1_sample_reg; falloc_sample_block(out, "siosc_i_fetch"); out_ptr = out->samples; snd_list->block = out; /* make sure sounds are primed with first values */ if (!susp->started) { susp->started = true; susp_check_term_log_samples(s_fm, s_fm_ptr, s_fm_cnt); susp->s_fm_x1_sample = susp_fetch_sample(s_fm, s_fm_ptr, s_fm_cnt); } while (cnt < max_sample_block_len) { /* outer loop */ /* first compute how many samples to generate in inner loop: */ /* don't overflow the output sample block: */ togo = max_sample_block_len - cnt; /* don't run past terminate time */ if (susp->terminate_cnt != UNKNOWN && susp->terminate_cnt <= susp->susp.current + cnt + togo) { togo = susp->terminate_cnt - (susp->susp.current + cnt); if (togo == 0) break; } /* don't run past logical stop time */ if (!susp->logically_stopped && susp->susp.log_stop_cnt != UNKNOWN) { int to_stop = susp->susp.log_stop_cnt - (susp->susp.current + cnt); /* break if to_stop == 0 (we're at the logical stop) * AND cnt > 0 (we're not at the beginning of the * output block). */ if (to_stop < togo) { if (to_stop == 0) { if (cnt) { togo = 0; break; } else /* keep togo as is: since cnt == 0, we * can set the logical stop flag on this * output block */ susp->logically_stopped = true; } else /* limit togo so we can start a new * block at the LST */ togo = to_stop; } } { long cur = susp->susp.current + cnt; n = susp->next_breakpoint - cur; if (n == 0) n = siosc_table_update(susp, cur); } togo = MIN(n, togo); n = togo; table_len_reg = susp->table_len; ph_incr_reg = susp->ph_incr; table_a_samps_reg = susp->table_a_samps; table_b_samps_reg = susp->table_b_samps; phase_reg = susp->phase; ampramp_a_reg = susp->ampramp_a; ampramp_b_reg = susp->ampramp_b; ampslope_reg = susp->ampslope; s_fm_pHaSe_ReG = susp->s_fm_pHaSe; s_fm_x1_sample_reg = susp->s_fm_x1_sample; out_ptr_reg = out_ptr;
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