mirror of
https://github.com/CTCaer/RetroArch.git
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373 lines
8.3 KiB
ArmAsm
373 lines
8.3 KiB
ArmAsm
/* RetroArch - A frontend for libretro.
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* Copyright (C) 2010-2014 - Hans-Kristian Arntzen
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* Copyright (C) 2014 - Ali Bouhlel ( aliaspider@gmail.com )
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*
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* RetroArch is free software: you can redistribute it and/or modify it under the terms
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* of the GNU General Public License as published by the Free Software Found-
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* ation, either version 3 of the License, or (at your option) any later version.
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*
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* RetroArch is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY;
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* without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR
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* PURPOSE. See the GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License along with RetroArch.
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* If not, see <http://www.gnu.org/licenses/>.
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*/
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#if defined(__ARM_NEON__)
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#ifndef CC_RESAMPLER_PRECISION
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#define CC_RESAMPLER_PRECISION 1
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#endif
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#ifndef __MACH__
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.arm
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#endif
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.align 4
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.globl resampler_CC_downsample_neon
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.globl _resampler_CC_downsample_neon
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# size_t resampler_CC_downsample_neon(float *outp, const float *inp,
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# rarch_CC_resampler_t* re_, size_t input_frames, float ratio);
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# r0: outp initial (and output_frames return value)
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# r1: inp initial/current
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# r2: re_ [r2+0] --> {q14,q15}=buffer , [r2+32] --> s5=distance
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# r3: input_frames/inp_max
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# r4: outp current
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# r5:
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# r6:
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# r7:
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# q0: d0: s0: 0.0 # q4: d8: s16: min(ratio, 1.0)
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# s1: 1.0 # s17: min(ratio, 1.0)
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# d1: s2: 2.0 # d9: s18: min(ratio, 1.0)
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# s3: 3.0 # s19: min(ratio, 1.0)
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# q1: d2: s4: ratio # q5: d10: s20: 1.0
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# s5: distance # s21: 1.0
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# d3: s6: (1.0/ratio) # d11: s22: 1.0
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# s7: (1.0/ratio)+0.5 # s23: 1.0
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# q2: d4: s8: 0.5 # q6: d12: s24: 3.0
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# s9: 0.5 # s25: 3.0
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# d5: s10: 0.5 # d13: s26: 3.0
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# s11: 0.5 # s27: 3.0
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# q3: d6: s12: -0.5 # q7: d14: s28: 0.25
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# s13: -0.5 # s29: 0.25
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# d7: s14: -0.5 # d15: s30: 0.25
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# s15: -0.5 # s31: 0.25
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# q8: d16: (temp) # q12: d24: (temp)
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# (temp) # (temp)
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# d17: (temp) # d25: (temp)
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# (temp) # (temp)
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# q9: d18: (temp) # q13: d26: (temp)
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# (temp) # (temp)
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# d19: (temp) # d27: (temp)
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# (temp) # (temp)
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# q10: d20: (temp) # q14: d28: buffer[0]
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# (temp) # buffer[1]
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# d21: (temp) # d29: buffer[2]
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# (temp) # buffer[3]
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# q11: d22: (temp) # q15: d30: buffer[4]
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# (temp) # buffer[5]
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# d23: (temp) # d31: buffer[6]
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# (temp) # buffer[7]
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resampler_CC_downsample_neon:
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_resampler_CC_downsample_neon:
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vld1.f32 {q14-q15}, [r2, :256]
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vldr s4, [sp]
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vpush {q4,q5,q6,q7}
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push {r4}
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mov r4, r0
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veor q0, q0, q0
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vmov.f32 s1, #1.0
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vmov.f32 s2, #2.0
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vmov.f32 s3, #3.0
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vmov.f32 q2, #0.5
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vmov.f32 q3, #-0.5
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vmov.f32 q5, #1.0
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vmov.f32 q6, #3.0
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vmov.f32 q7, #0.25
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vldr s5, [r2, #32]
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vdiv.f32 s6, s20, s4
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vadd.f32 s7, s6, s8
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vdup.f32 q4, d2[0]
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vmin.f32 q4, q4, q5
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lsl r3, #3
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add r3, r3, r1
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cmp r3, r1
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beq 3f
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1:
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vdup.f32 q8, d3[0]
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vmul.f32 q8, q8, q0
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vdup.f32 q9, d2[1]
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vsub.f32 q8, q9, q8
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vadd.f32 q10, q8, q2
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vsub.f32 q11, q8, q2
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vmul.f32 q10, q10, q4
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vmul.f32 q11, q11, q4
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#if (CC_RESAMPLER_PRECISION > 0)
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vmul.f32 q8, q10, q10
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vmul.f32 q9, q11, q11
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vsub.f32 q12, q6, q8
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vsub.f32 q13, q6, q9
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vmul.f32 q12, q12, q8
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vmul.f32 q13, q13, q9
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vmul.f32 q12, q12, q7
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vmul.f32 q13, q13, q7
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vsub.f32 q12, q5, q12
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vsub.f32 q13, q5, q13
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vmul.f32 q10, q10, q12
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vmul.f32 q11, q11, q13
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#endif
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vmin.f32 q10, q10, q2
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vmin.f32 q11, q11, q2
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vmax.f32 q10, q10, q3
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vmax.f32 q11, q11, q3
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vsub.f32 q10, q10, q11
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vmov.f32 q11, q10
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vzip.f32 q10, q11
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vld1.f32 d16, [r1, :64]!
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vmov.f32 d17, d16
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vmul.f32 q10, q10, q8
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vmul.f32 q11, q11, q8
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vadd.f32 q14, q14, q10
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vadd.f32 q15, q15, q11
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# distance++
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vadd.f32 s5, s5, s20
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vcmpe.f32 s5, s7
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vmrs APSR_nzcv, fpscr
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ble 2f
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vst1.f32 d28, [r4, :64]!
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vmov.f32 d28, d29
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vmov.f32 d29, d30
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vmov.f32 d30, d31
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vmov.f32 d31, #0.0
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vsub.f32 s5, s5, s6
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2:
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cmp r3, r1
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bne 1b
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3:
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vst1.f32 {q14-q15}, [r2, :256]
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vstr s5, [r2, #32]
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sub r0, r4, r0
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lsr r0, r0, #3
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pop {r4}
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vpop {q4,q5,q6,q7}
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bx lr
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.align 4
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.globl resampler_CC_upsample_neon
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.globl _resampler_CC_upsample_neon
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# size_t resampler_CC_upsample_neon(float *outp, const float *inp,
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# rarch_CC_resampler_t* re_, size_t input_frames, float ratio);
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# r0: outp initial (and output_frames return value)
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# r1: inp initial/current
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# r2: re_ [r2+0] --> {q14,q15}=buffer , [r2+32] --> s5=distance
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# r3: input_frames/inp_max
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# r4: outp current
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# r5:
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# r6:
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# r7:
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# q0: d0: s0: 1.0 # q4: d8: s16: min(ratio, 1.0)
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# s1: 0.0 # s17: min(ratio, 1.0)
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# d1: s2: -1.0 # d9: s18: min(ratio, 1.0)
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# s3: -2.0 # s19: min(ratio, 1.0)
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# q1: d2: s4: ratio # q5: d10: s20: 1.0
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# s5: distance # s21: 1.0
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# d3: s6: (1.0/ratio) # d11: s22: 1.0
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# s7: (1.0/ratio)+0.5 # s23: 1.0
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# q2: d4: s8: 0.5 # q6: d12: s24: 3.0
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# s9: 0.5 # s25: 3.0
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# d5: s10: 0.5 # d13: s26: 3.0
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# s11: 0.5 # s27: 3.0
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# q3: d6: s12: -0.5 # q7: d14: s28: 0.25
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# s13: -0.5 # s29: 0.25
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# d7: s14: -0.5 # d15: s30: 0.25
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# s15: -0.5 # s31: 0.25
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# q8: d16: (temp) # q12: d24: (temp)
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# (temp) # (temp)
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# d17: (temp) # d25: (temp)
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# (temp) # (temp)
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# q9: d18: (temp) # q13: d26: (temp)
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# (temp) # (temp)
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# d19: (temp) # d27: (temp)
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# (temp) # (temp)
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# q10: d20: (temp) # q14: d28: buffer[0]
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# (temp) # buffer[1]
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# d21: (temp) # d29: buffer[2]
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# (temp) # buffer[3]
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# q11: d22: (temp) # q15: d30: buffer[4]
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# (temp) # buffer[5]
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# d23: (temp) # d31: buffer[6]
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# (temp) # buffer[7]
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resampler_CC_upsample_neon:
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_resampler_CC_upsample_neon:
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vld1.f32 {q14-q15}, [r2, :256]
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vldr s4, [sp]
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vpush {q4,q5,q6,q7}
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push {r4}
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mov r4, r0
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veor q0, q0, q0
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vmov.f32 s0, #1.0
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vmov.f32 s2, #-1.0
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vmov.f32 s3, #-2.0
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vmov.f32 q2, #0.5
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vmov.f32 q3, #-0.5
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vmov.f32 q5, #1.0
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vmov.f32 q6, #3.0
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vmov.f32 q7, #0.25
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vldr s5, [r2, #32]
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vdiv.f32 s6, s20, s4
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vadd.f32 s7, s6, s8
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vdup.f32 q4, d2[0]
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vmin.f32 q4, q4, q5
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lsl r3, #3
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add r3, r3, r1
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cmp r3, r1
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beq 4f
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1:
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vld1.f32 d16, [r1, :64]!
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vmov.f32 d28, d29
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vmov.f32 d29, d30
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vmov.f32 d30, d31
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vmov.f32 d31, d16
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vcmpe.f32 s5, s20
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vmrs APSR_nzcv, fpscr
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bge 3f
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2:
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vdup.f32 q8, d2[1]
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vadd.f32 q8, q8, q0
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vadd.f32 q10, q8, q2
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vsub.f32 q11, q8, q2
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vmul.f32 q10, q10, q4
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vmul.f32 q11, q11, q4
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#if (CC_RESAMPLER_PRECISION > 0)
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vmul.f32 q8, q10, q10
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vmul.f32 q9, q11, q11
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vsub.f32 q12, q6, q8
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vsub.f32 q13, q6, q9
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vmul.f32 q12, q12, q8
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vmul.f32 q13, q13, q9
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vmul.f32 q12, q12, q7
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vmul.f32 q13, q13, q7
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vsub.f32 q12, q5, q12
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vsub.f32 q13, q5, q13
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vmul.f32 q10, q10, q12
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vmul.f32 q11, q11, q13
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#endif
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vmin.f32 q10, q10, q2
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vmin.f32 q11, q11, q2
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vmax.f32 q10, q10, q3
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vmax.f32 q11, q11, q3
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vsub.f32 q10, q10, q11
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vmov.f32 q11, q10
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vzip.f32 q10, q11
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vmul.f32 q10, q10, q14
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vmul.f32 q11, q11, q15
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vadd.f32 q10, q10, q11
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vadd.f32 d20, d20, d21
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vst1.f32 d20, [r4, :64]!
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vadd.f32 s5, s5, s6
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vcmpe.f32 s5, s20
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vmrs APSR_nzcv, fpscr
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blt 2b
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3:
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# distance--
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vsub.f32 s5, s5, s20
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cmp r3, r1
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bne 1b
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4:
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vst1.f32 {q14-q15}, [r2, :256]
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vstr s5, [r2, #32]
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sub r0, r4, r0
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lsr r0, r0, #3
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pop {r4}
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vpop {q4,q5,q6,q7}
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bx lr
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#endif
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