Data science/ML/AI
Data science and machine learning hub Python, SQL, stats, ML, deep learning, projects, PDFs, roadmaps and AI resources. For beginners, data scientists and ML engineers 👉 https://rebrand.ly/bigdatachannels DMCA: @disclosure_bds Contact: @mldatascientist
Ko'proq ko'rsatish📈 Telegram kanali Data science/ML/AI analitikasi
Data science/ML/AI (@datascience_bds) Ingliz til segmentidagi kanali faol ishtirokchi. Hozirda hamjamiyat 13 660 obunachidan iborat bo'lib, Texnologiyalar & Aralashmalar toifasida 9 391-o'rinni va Hindiston mintaqasida 31 743-o'rinni egallagan.
📊 Auditoriya ko‘rsatkichlari va dinamika
невідомо sanasidan buyon loyiha tez o‘sib, 13 660 obunachiga ega bo‘ldi.
07 Iyun, 2026 dagi oxirgi ma’lumotlarga ko‘ra kanal barqaror faollikka ega. Oxirgi 30 kunda obunachilar soni 151 ga, so‘nggi 24 soatda esa -5 ga o‘zgardi va umumiy qamrov yuqori darajada qolmoqda.
- Tasdiqlash holati: Tasdiqlanmagan
- Jalb etish (ER): Auditoriya o‘rtacha 7.92% darajada jalb etiladi. Nashrdan keyingi dastlabki 24 soatda kontent odatda umumiy obunachilar sonining 2.33% ini tashkil etuvchi reaksiyalarni to‘playdi.
- Post qamrovi: Har bir post o‘rtacha 1 082 marta ko‘riladi; birinchi sutkada odatda 318 ta ko‘rish yig‘iladi.
- Reaksiyalar va o‘zaro ta’sir: Auditoriya faol: har bir postga o‘rtacha 5 ta reaksiya keladi.
- Tematik yo‘nalishlar: Kontent panda, learning, row, api, ethic kabi asosiy mavzularga jamlangan.
📝 Tavsif va kontent siyosati
Muallif resursni shaxsiy fikrni ifoda etish maydoni sifatida ta’riflaydi:
“Data science and machine learning hub
Python, SQL, stats, ML, deep learning, projects, PDFs, roadmaps and AI resources.
For beginners, data scientists and ML engineers
👉 https://rebrand.ly/bigdatachannels
DMCA: @disclosure_bds
Contact: @mldatasci...”
Yuqori yangilanish chastotasi (oxirgi ma’lumot 08 Iyun, 2026 da olingan) sababli kanal doimo dolzarb va katta qamrovli bo‘lib qoladi. Analitika auditoriya kontent bilan faol hamkorlik qilishini, uni Texnologiyalar & Aralashmalar toifasidagi muhim ta’sir nuqtasiga aylantirishini ko‘rsatadi.
Q[state, action] = Q[state, action] + learning_rate * (
reward + discount_factor * max(Q[next_state]) - Q[state, action])
8️⃣ Challenges:
- Balancing exploration vs exploitation
- Delayed rewards
- Sparse rewards
- High computation cost
9️⃣ Training Loop:
1. Observe state
2. Choose action (based on policy)
3. Get reward & next state
4. Update knowledge
5. Repeat
🔟 Tip: Use OpenAI Gym to simulate environments and test RL algorithms in games like CartPole or MountainCar.
💬 Tap ❤️ for more!import speech_recognition as sr
r = sr.Recognizer()
with sr.Microphone() as source:
print("Speak now...")
audio = r.listen(source)
text = r.recognize_google(audio)
print("You said:", text)
6️⃣ How it Works:
- Audio is captured via microphone
- Converted to waveform → processed via acoustic + language models
- Output: Transcribed text
7️⃣ Preprocessing in Speech Recognition:
- Noise reduction
- Sampling and framing
- Feature extraction (MFCCs)
8️⃣ Challenges:
- Background noise
- Accents and dialects
- Overlapping speech
- Real-time accuracy
🔟 Real-World Use Cases:
- Real-time meeting transcriptions
- Smart home control
- Voice biometrics
- Language learning apps
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Endi mavjud! Telegram Tadqiqoti 2025 — yilning asosiy insaytlari 
