OLMoE-1B-7B-Instruct is a Mixture-of-Experts LLM with 1B active and 7B total parameters released in September 2024 (0924) that has been adapted via SFT and DPO from
OLMoE-1B-7B
. It yields state-of-the-art performance among models with a similar cost (1B) and is competitive with much larger models like Llama2-13B-Chat. OLMoE is 100% open-source.
Install
transformers
from source
until a release after
this PR
&
torch
and run:
from transformers import OlmoeForCausalLM, AutoTokenizer
import torch
DEVICE = "cuda"if torch.cuda.is_available() else"cpu"# Load different ckpts via passing e.g. `revision=kto`
model = OlmoeForCausalLM.from_pretrained("allenai/OLMoE-1B-7B-0924-Instruct").to(DEVICE)
tokenizer = AutoTokenizer.from_pretrained("allenai/OLMoE-1B-7B-0924-Instruct")
messages = [{"role": "user", "content": "Explain to me like I'm five what is Bitcoin."}]
inputs = tokenizer.apply_chat_template(messages, tokenize=True, add_generation_prompt=True, return_tensors="pt").to(DEVICE)
out = model.generate(inputs, max_length=100)
print(tokenizer.decode(out[0]))
"""<|endoftext|><|user|>Explain to me like I'm five what is Bitcoin.<|assistant|>Bitcoin is like a special kind of money that you can use to buy things online. But unlike regular money, like dollars or euros, Bitcoin isn't printed by governments or banks. Instead, it's created by a special computer program that helps people keep track of it.Here's how it works: imagine you have a bunch of toys, and you want to"""
kto
: Ablation using KTO instead of DPO. This branch is the checkpoint after 5,000 steps with the RMS optimizer. The other
kto*
branches correspond to the other checkpoints mentioned in the paper.
Evaluation Snapshot
Task (→)
MMLU
GSM8k
BBH
Human-Eval
Alpaca-Eval 1.0
XSTest
IFEval
Avg
Setup (→)
0-shot
8-shot CoT
3-shot
0-shot
0-shot
0-shot
0-shot
Metric (→)
EM
EM
EM
Pass@10
%win
F1
Loose Acc
OLMo-1B (0724)
25.0
7.0
22.5
16.0
-
67.6
20.5
-
+SFT
36.0
12.5
27.2
21.2
41.5
81.9
26.1
35.9
+DPO
36.7
12.5
30.6
22.0
50.9
79.8
24.2
37.4
OLMo-7B (0724)
50.8
32.5
36.9
32.3
-
80.8
19.6
-
+SFT
54.2
25.0
35.7
38.5
70.9
86.1
39.7
49.3
+DPO
52.8
9.0
16.6
35.0
83.5
87.5
37.9
49.1
JetMoE-2B-9B
45.6
43.0
37.2
54.6
-
68.2
20.0
-
+SFT
46.1
53.5
35.6
64.8
69.3
55.6
30.5
50.4
DeepSeek-3B-16B
37.7
18.5
39.4
48.3
-
65.9
13.5
-
+Chat
48.5
46.5
40.8
70.1
74.8
85.6
32.3
57.0
Qwen1.5-3B-14B
60.4
13.5
27.2
60.2
-
73.4
20.9
-
+Chat
58.9
55.5
21.3
59.7
83.9
85.6
36.2
57.3
OLMoE (This Model)
49.8
3.0
33.6
22.4
-
59.7
16.6
-
+SFT
51.4
40.5
38.0
51.6
69.2
84.1
43.3
54.0
+DPO
51.9
45.5
37.0
54.8
84.0
82.6
48.1
57.7
Citation
@misc{muennighoff2024olmoeopenmixtureofexpertslanguage,
title={OLMoE: Open Mixture-of-Experts Language Models},
author={Niklas Muennighoff and Luca Soldaini and Dirk Groeneveld and Kyle Lo and Jacob Morrison and Sewon Min and Weijia Shi and Pete Walsh and Oyvind Tafjord and Nathan Lambert and Yuling Gu and Shane Arora and Akshita Bhagia and Dustin Schwenk and David Wadden and Alexander Wettig and Binyuan Hui and Tim Dettmers and Douwe Kiela and Ali Farhadi and Noah A. Smith and Pang Wei Koh and Amanpreet Singh and Hannaneh Hajishirzi},
year={2024},
eprint={2409.02060},
archivePrefix={arXiv},
primaryClass={cs.CL},
url={https://arxiv.org/abs/2409.02060},
}
Runs of allenai OLMoE-1B-7B-0924-Instruct on huggingface.co
6.9K
Total runs
-225
24-hour runs
-212
3-day runs
321
7-day runs
880
30-day runs
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