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Coding Projects

Coding Projects

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Find projects for almost all Programming Languages for free ! šŸ§‘ā€šŸ’»

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šŸ“ˆ Telegram kanali Coding Projects analitikasi

Coding Projects (@coding_projects) Ingliz til segmentidagi kanali faol ishtirokchi. Hozirda hamjamiyat 14 722 obunachidan iborat bo'lib, Texnologiyalar & Aralashmalar toifasida 8 703-o'rinni va Hindiston mintaqasida 28 346-o'rinni egallagan.

šŸ“Š Auditoriya koā€˜rsatkichlari va dinamika

невіГомо sanasidan buyon loyiha tez oā€˜sib, 14 722 obunachiga ega boā€˜ldi.

06 Iyul, 2026 dagi oxirgi ma’lumotlarga koā€˜ra kanal barqaror faollikka ega. Oxirgi 30 kunda obunachilar soni -103 ga, soā€˜nggi 24 soatda esa 0 ga oā€˜zgardi va umumiy qamrov yuqori darajada qolmoqda.

  • Tasdiqlash holati: Tasdiqlanmagan
  • Jalb etish (ER): Auditoriya oā€˜rtacha 0% darajada jalb etiladi. Nashrdan keyingi dastlabki 24 soatda kontent odatda umumiy obunachilar sonining N/A% ini tashkil etuvchi reaksiyalarni toā€˜playdi.
  • Post qamrovi: Har bir post oā€˜rtacha 0 marta koā€˜riladi; birinchi sutkada odatda 0 ta koā€˜rish yigā€˜iladi.
  • Reaksiyalar va oā€˜zaro ta’sir: Auditoriya faol: har bir postga oā€˜rtacha 0 ta reaksiya keladi.

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Muallif resursni shaxsiy fikrni ifoda etish maydoni sifatida ta’riflaydi:
ā€œFind projects for almost all Programming Languages for free ! šŸ§‘ā€šŸ’»ā€

Yuqori yangilanish chastotasi (oxirgi ma’lumot 07 Iyul, 2026 da olingan) sababli kanal doimo dolzarb va katta qamrovli boā€˜lib qoladi. Analitika auditoriya kontent bilan faol hamkorlik qilishini, uni Texnologiyalar & Aralashmalar toifasidagi muhim ta’sir nuqtasiga aylantirishini koā€˜rsatadi.

14 722
Obunachilar
Ma'lumot yo'q24 soatlar
-247 kunlar
-10330 kunlar
Postlar arxiv
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Python Notes By Yadnyesh!.pdf8.43 MB

Sometimes reality outpaces expectations in the most unexpected ways. While global AI development seems increasingly fragmented, Sber just released Europe's largest open-source AI collection—full weights, code, and commercial rights included. āœ… No API paywalls. āœ… No usage restrictions. āœ… Just four complete model families ready to run in your private infrastructure, fine-tuned on your data, serving your specific needs. What makes this release remarkable isn't merely the technical prowess, but the quiet confidence behind sharing it openly when others are building walls. Find out more in the article from the developers. GigaChat Ultra Preview: 702B-parameter MoE model (36B active per token) with 128K context window. Trained from scratch, it outperforms DeepSeek V3.1 on specialized benchmarks while maintaining faster inference than previous flagships. Enterprise-ready with offline fine-tuning for secure environments. GitHub | HuggingFace | GitVerse GigaChat Lightning offers the opposite balance: compact yet powerful MoE architecture running on your laptop. It competes with Qwen3-4B in quality, matches the speed of Qwen3-1.7B, yet is significantly smarter and larger in parameter count. Lightning holds its own against the best open-source models in its class, outperforms comparable models on different tasks, and delivers ultra-fast inference—making it ideal for scenarios where Ultra would be overkill and speed is critical. Plus, it features stable expert routing and a welcome bonus: 256K context support. GitHub | Hugging Face | GitVerse Kandinsky 5.0 brings a significant step forward in open generative models. The flagship Video Pro matches Veo 3 in visual quality and outperforms Wan 2.2-A14B, while Video Lite and Image Lite offer fast, lightweight alternatives for real-time use cases. The suite is powered by K-VAE 1.0, a high-efficiency open-source visual encoder that enables strong compression and serves as a solid base for training generative models. This stack balances performance, scalability, and practicality—whether you're building video pipelines or experimenting with multimodal generation. GitHub | GitVerse | Hugging Face | Technical report Audio gets its upgrade too: GigaAM-v3 delivers speech recognition model with 50% lower WER than Whisper-large-v3, trained on 700k hours of audio with punctuation/normalization for spontaneous speech. GitHub | HuggingFace | GitVerse Every model can be deployed on-premises, fine-tuned on your data, and used commercially. It's not just about catching up – it's about building sovereign AI infrastructure that belongs to everyone who needs it.

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