@cozybaaby: Comment "baby" if you want it🩵🫧 #Baby#babysuit#fyp #babygirl #babylove Bath time used to be the hardest part of my day… now it might actually be the easiest. 👶🛁✨

CozyBaby™
CozyBaby™
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Region: BR
Friday 28 August 2026 11:49:52 GMT
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v.p.v1215
very :
donde l0s encuentro necesito uno🥰
2026-09-17 04:20:20
0
diellzabeqaa
Diellza beqa :
How to fold it
2026-08-28 17:02:12
0
monicadecarolis1
Monica de carolis :
baby
2026-09-02 11:33:28
0
cindypiraquive278
cindypiraquive278 :
como son
2026-09-06 15:05:01
0
nadinevanderschoo
nadinevanderschoo :
bayby
2026-08-30 14:47:27
0
gettygurl.31
gettygurl.31 :
Baby
2026-08-28 17:09:24
0
nadinevanderschoo
nadinevanderschoo :
comment le commander
2026-08-30 14:47:06
0
aisitin.fr.002
aisitin.fr.002 :
🥰🥰🥰
2026-08-28 12:30:52
0
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**DeepSeek-OCR:** A novel vision encoder architecture for compressing text into visual representations while achieving high OCR accuracy. - [GitHub Repository](https://github.com/deepseek-ai/DeepSeek-OCR) - [Research Paper](https://www.arxiv.org/pdf/2510.18234) Let’s discuss DeepSeek-OCR, an innovative open-source model by Deepseek for optical character recognition (OCR). This paper presents an exciting approach to using images to encode textual information more efficiently. Instead of converting long documents into thousands of tokens for LLMs, **DeepSeek‑OCR converts entire pages into images**, which are then compressed into a smaller set of “vision tokens.” This method results in 7–20x fewer tokens compared to traditional text representation and maintains impressive accuracy—97% at 10x compression and about 60% at 20x. ### Key Components: 1. **DeepEncoder:** - Combines: - **SAM-base** (Segment Anything) — local attention for perception. - **CLIP-large** — global semantic understanding. - Incorporates a **16× convolutional token compressor** that fuses these components to extract features, tokenize them, and compress the information. 2. **Decoder:** - Named Deepseek-3B-MoE, this transformer-based model takes the vision tokens and decodes them back into text. This suggests a new paradigm where large documents may be stored as compressed visual representations rather than lengthy token sequences—a development that could significantly enhance compute efficiency, reduce memory usage, and lower latency when processing multi-page documents like PDFs or research papers. #DeepLearning #ComputerVision #AIResearch #Innovation #Tokenization #VisualRepresentation #MachineLearningModel #OpenSourceAI #OCRTechnology #EfficiencyInComputing
**DeepSeek-OCR:** A novel vision encoder architecture for compressing text into visual representations while achieving high OCR accuracy. - [GitHub Repository](https://github.com/deepseek-ai/DeepSeek-OCR) - [Research Paper](https://www.arxiv.org/pdf/2510.18234) Let’s discuss DeepSeek-OCR, an innovative open-source model by Deepseek for optical character recognition (OCR). This paper presents an exciting approach to using images to encode textual information more efficiently. Instead of converting long documents into thousands of tokens for LLMs, **DeepSeek‑OCR converts entire pages into images**, which are then compressed into a smaller set of “vision tokens.” This method results in 7–20x fewer tokens compared to traditional text representation and maintains impressive accuracy—97% at 10x compression and about 60% at 20x. ### Key Components: 1. **DeepEncoder:** - Combines: - **SAM-base** (Segment Anything) — local attention for perception. - **CLIP-large** — global semantic understanding. - Incorporates a **16× convolutional token compressor** that fuses these components to extract features, tokenize them, and compress the information. 2. **Decoder:** - Named Deepseek-3B-MoE, this transformer-based model takes the vision tokens and decodes them back into text. This suggests a new paradigm where large documents may be stored as compressed visual representations rather than lengthy token sequences—a development that could significantly enhance compute efficiency, reduce memory usage, and lower latency when processing multi-page documents like PDFs or research papers. #DeepLearning #ComputerVision #AIResearch #Innovation #Tokenization #VisualRepresentation #MachineLearningModel #OpenSourceAI #OCRTechnology #EfficiencyInComputing

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