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OpenDAS
ktransformers
Commits
01655f75
Commit
01655f75
authored
Feb 13, 2025
by
cuichengyi
Browse files
fix typo in README.md
parent
a0c16db3
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README.md
README.md
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doc/en/DeepseekR1_V3_tutorial.md
doc/en/DeepseekR1_V3_tutorial.md
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README.md
View file @
01655f75
...
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@@ -43,10 +43,10 @@ https://github.com/user-attachments/assets/ebd70bfa-b2c1-4abb-ae3b-296ed38aa285
-
**[NEW!!!] Local 671B DeepSeek-Coder-V3/R1:**
Running its Q4_K_M version using only 14GB VRAM and 382GB DRAM(
[
Tutorial
](
./doc/en/DeepseekR1_V3_tutorial.md
)
).
-
Prefill Speed (tokens/s):
-
KTransf
e
rm
or
: 54.21 (32 cores) → 74.362 (dual-socket, 2×32 cores) → 255.26 (optimized AMX-based MoE kernel, V0.3 only) → 286.55 (selectively using 6 experts, V0.3 only)
-
KTransf
o
rm
ers
: 54.21 (32 cores) → 74.362 (dual-socket, 2×32 cores) → 255.26 (optimized AMX-based MoE kernel, V0.3 only) → 286.55 (selectively using 6 experts, V0.3 only)
-
Compared to 10.31 tokens/s in llama.cpp with 2×32 cores, achieving up to
**27.79× speedup**
.
-
Decode Speed (tokens/s):
-
KTransf
e
rm
or
: 8.73 (32 cores) → 11.26 (dual-socket, 2×32 cores) → 13.69 (selectively using 6 experts, V0.3 only)
-
KTransf
o
rm
ers
: 8.73 (32 cores) → 11.26 (dual-socket, 2×32 cores) → 13.69 (selectively using 6 experts, V0.3 only)
-
Compared to 4.51 tokens/s in llama.cpp with 2×32 cores, achieving up to
**3.03× speedup**
.
-
Upcoming Open Source Release:
-
AMX optimizations and selective expert activation will be open-sourced in V0.3.
...
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doc/en/DeepseekR1_V3_tutorial.md
View file @
01655f75
...
...
@@ -39,10 +39,10 @@ https://github.com/user-attachments/assets/ebd70bfa-b2c1-4abb-ae3b-296ed38aa285
-
**[NEW!!!] Local 671B DeepSeek-Coder-V3/R1:**
Running its Q4_K_M version using only 14GB VRAM and 382GB DRAM.
-
Prefill Speed (tokens/s):
-
KTransf
e
rm
or
: 54.21 (32 cores) → 74.362 (dual-socket, 2×32 cores) → 255.26 (optimized AMX-based MoE kernel, V0.3 only) → 286.55 (selectively using 6 experts, V0.3 only)
-
KTransf
o
rm
ers
: 54.21 (32 cores) → 74.362 (dual-socket, 2×32 cores) → 255.26 (optimized AMX-based MoE kernel, V0.3 only) → 286.55 (selectively using 6 experts, V0.3 only)
-
Compared to 10.31 tokens/s in llama.cpp with 2×32 cores, achieving up to
**27.79× speedup**
.
-
Decode Speed (tokens/s):
-
KTransf
e
rm
or
: 8.73 (32 cores) → 11.26 (dual-socket, 2×32 cores) → 13.69 (selectively using 6 experts, V0.3 only)
-
KTransf
o
rm
ers
: 8.73 (32 cores) → 11.26 (dual-socket, 2×32 cores) → 13.69 (selectively using 6 experts, V0.3 only)
-
Compared to 4.51 tokens/s in llama.cpp with 2×32 cores, achieving up to
**3.03× speedup**
.
...
...
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