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Research Shows: Large Language Models Learn Faster and Smarter from Human Feedback

The research reveals that large language models exhibit strong capabilities in online context learning and can learn to write robot code from human feedback. Through the Language Model Predictive Control (LMPC) framework, the efficiency of adapting LLMs in writing robot code based on human input was successfully improved. Experiments demonstrate that LMPC enhances the success rate of unseen tasks, providing robust support for adaptive learning in robots. The research team, through the application of the LMPC framework, has successfully paved new paths and improved the ability.

7k 3 days ago
Research Shows: Large Language Models Learn Faster and Smarter from Human Feedback

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Gemini 2.5 Flash

Google

Gemini 2.5 Flash

$2.1

Input tokens/M

$17.5

Output tokens/M

1k

Context Length

Hunyuan-TurboS-Vision

Tencent

Hunyuan-TurboS-Vision

$3

Input tokens/M

$9

Output tokens/M

16

Context Length

Qwen_v2.5_3b_Instruct

Alibaba

Qwen_v2.5_3b_Instruct

$1

Input tokens/M

-

Output tokens/M

32

Context Length

Claude 3 Haiku

Anthropic

Claude 3 Haiku

$1.75

Input tokens/M

$8.75

Output tokens/M

200

Context Length

Gemma 2 9B

Google

Gemma 2 9B

$1

Input tokens/M

-

Output tokens/M

-

Context Length

GLM-4

Chatglm

GLM-4

$100

Input tokens/M

$100

Output tokens/M

128

Context Length

Tencent Yuanqi

Tencent

Tencent Yuanqi

$100

Input tokens/M

$100

Output tokens/M

-

Context Length

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