mirror of
https://github.com/ggerganov/llama.cpp.git
synced 2025-01-02 14:54:35 +00:00
184 lines
5.1 KiB
Plaintext
184 lines
5.1 KiB
Plaintext
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/**
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* Copyright (c) 2023 Nomic, Inc. All rights reserved.
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*
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* This software is licensed under the terms of the Software for Open Models License (SOM),
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* version 1.0, as detailed in the LICENSE_SOM.txt file. A copy of this license should accompany
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* this software. Except as expressly granted in the SOM license, all rights are reserved by Nomic, Inc.
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*/
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#version 450
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#extension GL_EXT_shader_16bit_storage: require
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#extension GL_EXT_shader_8bit_storage: require
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#extension GL_EXT_shader_explicit_arithmetic_types_float16: require
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#extension GL_EXT_shader_explicit_arithmetic_types_int8: require
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#extension GL_EXT_shader_explicit_arithmetic_types_int16: require
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#extension GL_EXT_control_flow_attributes: enable
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#define QK4_0 32
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#define QR4_0 2
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#define QK4_1 32
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#define GELU_COEF_A 0.044715
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#define SQRT_2_OVER_PI 0.79788456080286535587989211986876
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#ifndef QK_K
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#define QK_K 256
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#endif
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#if QK_K == 256
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#define K_SCALE_SIZE 12
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#else
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#define K_SCALE_SIZE 4
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#endif
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#define BM 128
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#define BN 128
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#define BK 8
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#define TM 8
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#define TN 8
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#define u8BufToU16(buf, idx) (((uint16_t(buf[idx + 1]) << 8)) | buf[idx])
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#define u8BufToFloat16(buf, idx) uint16BitsToHalf u8BufToU16(buf, idx)
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#define u8BufToU32(buf, idx) (((uint32_t u8BufToU16(buf, idx + 2) << 8 | buf[idx + 1]) << 8) | buf[idx])
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#define u8BufToFloat(buf, idx) uintBitsToFloat u8BufToU32(buf, idx)
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#define sizeof_block_q4_0 0x12
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#define sizeof_block_q4_1 0x14
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struct block_q4_0 {
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float16_t d;
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uint8_t qs[QK4_0 / 2];
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};
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struct block_q4_1 {
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float16_t d;
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float16_t m;
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uint8_t qs[QK4_1 / 2];
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};
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#ifndef QK_K
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#define QK_K 256
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#endif
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#if QK_K == 256
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#define K_SCALE_SIZE 12
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#else
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#define K_SCALE_SIZE 4
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#endif
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struct block_q2_K {
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uint8_t scales[QK_K/16]; // scales and mins, quantized with 4 bits
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uint8_t qs[QK_K/4]; // quants
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float16_t d; // super-block scale for quantized scales
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float16_t dmin; // super-block scale for quantized mins
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};
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// 84 bytes / block
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struct block_q3_K {
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uint8_t hmask[QK_K/8]; // quants - high bit
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uint8_t qs[QK_K/4]; // quants - low 2 bits
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#if QK_K == 64
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uint8_t scales[2];
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#else
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uint8_t scales[K_SCALE_SIZE]; // scales, quantized with 6 bits
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#endif
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float16_t d; // super-block scale
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};
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#if QK_K == 64
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typedef struct {
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float16_t d[2]; // super-block scales/mins
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uint8_t scales[2];
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uint8_t qs[QK_K/2]; // 4-bit quants
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} block_q4_K;
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#else
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struct block_q4_K {
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float16_t d; // super-block scale for quantized scales
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float16_t dmin; // super-block scale for quantized mins
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uint8_t scales[K_SCALE_SIZE]; // scales and mins, quantized with 6 bits
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uint8_t qs[QK_K/2]; // 4--bit quants
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};
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#endif
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#if QK_K == 64
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struct block_q5_K {
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float16_t d; // super-block scales/mins
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int8_t scales[QK_K/16]; // 8-bit block scales
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uint8_t qh[QK_K/8]; // quants, high bit
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uint8_t qs[QK_K/2]; // quants, low 4 bits
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};
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#else
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struct block_q5_K {
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float16_t d; // super-block scale for quantized scales
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float16_t dmin; // super-block scale for quantized mins
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uint8_t scales[3*QK_K/64]; // scales and mins, quantized with 6 bits
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uint8_t qh[QK_K/8]; // quants, high bit
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uint8_t qs[QK_K/2]; // quants, low 4 bits
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};
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// 176 bytes / block
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#endif
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struct block_q6_K {
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uint8_t ql[QK_K/2]; // quants, lower 4 bits
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uint8_t qh[QK_K/4]; // quants, upper 2 bits
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int8_t scales[QK_K/16]; // scales, quantized with 8 bits
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float16_t d; // super-block scale
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};
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// 210 bytes / block
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layout(local_size_x = 1) in;
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layout (binding = 0) readonly buffer tensorIn { float in_[]; };
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layout (binding = 1) writeonly buffer tensorOut { float out_[]; };
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layout (push_constant) uniform parameter {
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uint inOff;
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uint outOff;
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uint n_past;
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int n_dims;
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int mode;
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float freq_base;
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float freq_scale;
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uint nb00;
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uint nb01;
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uint nb02;
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uint nb03;
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int ne0;
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uint nb0;
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uint nb1;
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uint nb2;
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uint nb3;
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} pcs;
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void main() {
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const uint i3 = gl_WorkGroupID.z;
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const uint i2 = gl_WorkGroupID.y;
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const uint i1 = gl_WorkGroupID.x;
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const bool is_neox = (pcs.mode & 2) != 0;
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const float theta_scale = pow(pcs.freq_base, -2.0/pcs.n_dims);
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const uint p = ((pcs.mode & 1) == 0 ? pcs.n_past + i2 : i2);
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float theta = pcs.freq_scale * float(p);
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if (!is_neox) {
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for (uint i0 = 0; i0 < pcs.ne0; i0 += 2) {
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const float cos_theta = cos(theta);
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const float sin_theta = sin(theta);
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theta *= theta_scale;
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const uint src = uint((i3*pcs.nb03 + i2*pcs.nb02 + i1*pcs.nb01 + i0*pcs.nb00) / 4) + pcs.inOff; // Based from in
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const uint dst_data = uint((i3*pcs.nb3 + i2*pcs.nb2 + i1*pcs.nb1 + i0*pcs.nb0) / 4) + pcs.outOff; // Based from out_
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const float x0 = in_[src];
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const float x1 = in_[src+1];
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out_[dst_data] = x0*cos_theta - x1*sin_theta;
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out_[dst_data+1] = x0*sin_theta + x1*cos_theta;
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}
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} else {
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// TODO: implement
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}
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}
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