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| /* | |
| * FFT/IFFT transforms | |
| * AltiVec-enabled | |
| * Copyright (c) 2009 Loren Merritt | |
| * | |
| * This file is part of FFmpeg. | |
| * | |
| * FFmpeg is free software; you can redistribute it and/or | |
| * modify it under the terms of the GNU Lesser General Public | |
| * License as published by the Free Software Foundation; either | |
| * version 2.1 of the License, or (at your option) any later version. | |
| * | |
| * FFmpeg is distributed in the hope that it will be useful, | |
| * but WITHOUT ANY WARRANTY; without even the implied warranty of | |
| * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU | |
| * Lesser General Public License for more details. | |
| * | |
| * You should have received a copy of the GNU Lesser General Public | |
| * License along with FFmpeg; if not, write to the Free Software | |
| * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA | |
| */ | |
| /** | |
| * Do a complex FFT with the parameters defined in ff_fft_init(). | |
| * The input data must be permuted before with s->revtab table. | |
| * No 1.0 / sqrt(n) normalization is done. | |
| * AltiVec-enabled: | |
| * This code assumes that the 'z' pointer is 16 bytes-aligned. | |
| * It also assumes all FFTComplex are 8 bytes-aligned pairs of floats. | |
| */ | |
| void ff_fft_calc_altivec(FFTContext *s, FFTComplex *z); | |
| void ff_fft_calc_interleave_altivec(FFTContext *s, FFTComplex *z); | |
| static void imdct_half_altivec(FFTContext *s, FFTSample *output, const FFTSample *input) | |
| { | |
| int j, k; | |
| int n = 1 << s->mdct_bits; | |
| int n4 = n >> 2; | |
| int n8 = n >> 3; | |
| int n32 = n >> 5; | |
| const uint16_t *revtabj = s->revtab; | |
| const uint16_t *revtabk = s->revtab+n4; | |
| const vec_f *tcos = (const vec_f*)(s->tcos+n8); | |
| const vec_f *tsin = (const vec_f*)(s->tsin+n8); | |
| const vec_f *pin = (const vec_f*)(input+n4); | |
| vec_f *pout = (vec_f*)(output+n4); | |
| /* pre rotation */ | |
| k = n32-1; | |
| do { | |
| vec_f cos,sin,cos0,sin0,cos1,sin1,re,im,r0,i0,r1,i1,a,b,c,d; | |
| cos0 = tcos[k]; | |
| sin0 = tsin[k]; | |
| cos1 = tcos[-k-1]; | |
| sin1 = tsin[-k-1]; | |
| CMULA(0, 0,1,2,3); | |
| CMULA(1, 2,3,0,1); | |
| STORE8(0); | |
| STORE8(1); | |
| revtabj += 4; | |
| revtabk -= 4; | |
| k--; | |
| } while(k >= 0); | |
| ff_fft_calc_vsx(s, (FFTComplex*)output); | |
| ff_fft_calc_altivec(s, (FFTComplex*)output); | |
| /* post rotation + reordering */ | |
| j = -n32; | |
| k = n32-1; | |
| do { | |
| vec_f cos,sin,re,im,a,b,c,d; | |
| CMULB(a,b,j); | |
| CMULB(c,d,k); | |
| pout[2*j] = vec_perm(a, d, vcprm(0,s3,1,s2)); | |
| pout[2*j+1] = vec_perm(a, d, vcprm(2,s1,3,s0)); | |
| pout[2*k] = vec_perm(c, b, vcprm(0,s3,1,s2)); | |
| pout[2*k+1] = vec_perm(c, b, vcprm(2,s1,3,s0)); | |
| j++; | |
| k--; | |
| } while(k >= 0); | |
| } | |
| static void imdct_calc_altivec(FFTContext *s, FFTSample *output, const FFTSample *input) | |
| { | |
| int k; | |
| int n = 1 << s->mdct_bits; | |
| int n4 = n >> 2; | |
| int n16 = n >> 4; | |
| vec_u32 sign = {1U<<31,1U<<31,1U<<31,1U<<31}; | |
| vec_u32 *p0 = (vec_u32*)(output+n4); | |
| vec_u32 *p1 = (vec_u32*)(output+n4*3); | |
| imdct_half_altivec(s, output + n4, input); | |
| for (k = 0; k < n16; k++) { | |
| vec_u32 a = p0[k] ^ sign; | |
| vec_u32 b = p1[-k-1]; | |
| p0[-k-1] = vec_perm(a, a, vcprm(3,2,1,0)); | |
| p1[k] = vec_perm(b, b, vcprm(3,2,1,0)); | |
| } | |
| } | |
| av_cold void ff_fft_init_ppc(FFTContext *s) | |
| { | |
| if (!PPC_ALTIVEC(av_get_cpu_flags())) | |
| return; | |
| s->fft_calc = ff_fft_calc_interleave_vsx; | |
| s->fft_calc = ff_fft_calc_interleave_altivec; | |
| if (s->mdct_bits >= 5) { | |
| s->imdct_calc = imdct_calc_altivec; | |
| s->imdct_half = imdct_half_altivec; | |
| } | |
| } | |