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달비

달비

@Thedalbee

유튜브 하는중 https://t.co/0tHToic2s5

Katılım Kasım 2025
101 Takip Edilen24 Takipçiler
Rahul
Rahul@sairahul1·
MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST MUST READ
Rahul@sairahul1

x.com/i/article/2058…

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Tibo@thsottiaux·
We found and fixed two issues that could explain this degradation of the capability of GPT-5.5 in Codex over the last ~ 48 hours. We are monitoring over the coming hours to fully confirm and I will reset usage limits this evening. Apologies and now is the time for /fast maxxing.
Tibo@thsottiaux

Codex team is aware of reports of GPT-5.5 performing worse for some users and investigating. We don't have anything conclusive yet and systems are healthy but we will share updates as we go.

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달비@Thedalbee·
@xguru 그건 팩트... 답변 감사합니다
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구루
구루@xguru·
@Thedalbee 지금까지 해온걸 보면, 저렇게 추가로 준다고 홍보하는 저 월간 크레딧이 얼마나 빨리 소진될지 눈에 선해서요. 정작 내 토큰은 남은게 많은데도 저거 소진되면 자동화 해놓은 것들은 한달의 남은 기간 동안 돈내고 쓰는 방법밖에 없다는 걸로 보여집니다.
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구루@xguru·
월간 크레딧은 좀 심하네요. "claude - p" 로 자동화 했던 사람들 많은데, 다 떠나가겠군요. 전 요즘 코덱스가 메인이라 몇몇 기능때문에 다시 가볼까 했는데, 그냥 코덱스 써야겠네요. 앤트로픽이 요즘 좀 잘하나 싶더니, 계속 똥볼을 거하게 차는중
GeekNews@GeekNewsHada

Claude, 프로그래밍 방식 사용을 "월간 크레딧" 구조로 변경 - 6월 15일부터 Claude 유료 플랜 사용자는 Agent SDK 등 프로그램 방식 사용량에 쓸 월간 전용 크레딧을 청구할 수 있음 - 대상은 Claude Agent SDK, `claude -p`, Claude Code GitHub Actions, … news.hada.io/topic?id=29494

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달비@Thedalbee·
@xguru 아 6월 아니라 7월..
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달비@Thedalbee·
@TeamYouTube Is there any problem on my channel???? I applied for YPP ***3 weeks ago*** and I didn't get any response. please check if everything is on the right track. my channel: @dalbeehq" target="_blank" rel="nofollow noopener">youtube.com/@dalbeehq
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달비@Thedalbee·
@TeamYouTube My Step 2 for YPP has been stuck in 'In Progress' for over 2-3 weeks. Could you please look into this? Channel ID: dalbeehq
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달비@Thedalbee·
영상 7개째에 드디어 17만 조회수 뚫었습니다 올린지 하루만에 수익창출 조건 달성 아직도 잘 실감이 안 나네요 클로드 지피티에 200달러씩 박는 돈이 아까워서 시작했던 유튜브예요. 매주 1회 업로드만 꼭 지키려고 했었는데 드디어 날라가는구나 유튜브가 이런 형식 하라고 점지해줬으니 이쪽만 파겠습니다... 참고로 AI를 썼지만 자동화는 거의 없습니다. 해봤자 프리미어 MCP 자체개발 정도..?
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Stephanie Zhan
Stephanie Zhan@stephzhan·
@karpathy and I are back! At @sequoia AI Ascent 2026. And a lot has changed. Last year, he coined “vibe coding”. This year, he’s never felt more behind as a programmer. The big shift: vibe coding raised the floor. Agentic engineering raises the ceiling. We talk about what it means to build seriously in the agent era. Not just moving faster. Building new things, with new tools, while preserving the parts that still require human taste, judgment, and understanding.
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Tibo
Tibo@thsottiaux·
Don't just reset Codex rate limits for fun, it costs money. Don't just reset Codex rate limits for fun, it costs money. ... but the vibes are good ... I have reset Codex rate limits for ALL paid plans to celebrate a good week and allow everyone to build more with GPT-5.5. Enjoy
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달비@Thedalbee·
Codex가 뱀파이어 서바이벌을 만들어줬습니다...
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달비@Thedalbee·
새로 나온 클로드 디자인 꼭 써보세요. 단, '디자인 시스템'부터 만들어야 합니다. 아무거나 막 누르면 멀리 돌아가요.. (게다가 디자인은 사용량이 적음) 이유? "누구든 디자인을 잘 하게 됩니다, 심지어 코덱스도." 1. 코덱스는 '정해진 틀 위에서의 작업'에 굉장히 능합니다. 2. 그런데, 이 디자인 시스템 자체가 '틀을 정하는' 거예요. 3. 그게 무슨 말이냐? 이게 있으면 "디자인을 못할 수가 없다"는 겁니다. 4. 엥 어떻게? 폰트, 컬러, 곡률, 모션, 버튼, 아이콘, 캐릭터, 상세, 기울기... 뭐 필요한 모든 걸 짜줍니다. 5. 당연히 유저가 할 일은 '난 이게 좋아!'하고 고르는 것 뿐이죠. 클로드가 괜히 "anyone can create good design"이라고 말한 게 아닙니다. 이 anyone에 코덱스도 포함인듯 ㅋㅋ
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달비@Thedalbee·
난 얼마나 멍청한 짓을 한 걸까... > 클로드 코드에 질문합니다 "이거 해볼까?" > 당연히 좋다고 대답하겠죠 "좋네요! 앞으로 쭉 쌓아볼까요?" > 갑자기 궁금해집니다 "지금까지 쌓은 것들은 어떡해?" [클로드는 15분간 모든 파일을 읽었습니다] "대부분의 문서들은 프로젝트 폴더에 있네요." "이건 고유 지식이 아니니 무시해야 합니다." 저는 멍청하게도 이 LLM의 말을 [그대로] 믿었습니다 > 이틀, 사흘, 나흘... Wiki에 무엇이 있을까요? > 30개의 문서가 전부입니다. > 그동안 쌓인 '프로젝트용 문서'가 31개입니다. 4월 6일, 방금 클로드 세션이 터졌습니다. 저는 당연하게도 다시 세션을 켜서 처음부터 하나씩 업무를 설명하기 시작했어요. "잠깐만..." 이제서야 멍청한 인간이 허점을 눈치챘습니다. 카파리가 말한 방법은 '모든 문서를 한 곳에'였습니다. 그렇게 해야만 AI가 모든 것을 알 수 있으니까요. AI가 모든 맥락을 문서를 읽을 수 있도록, 한 곳에 쌓는 것이 그의 가장 큰 목적이었습니다. AI가 "가장" 똑똑해지는 길이죠. 하지만 저는 클로드의 "무시해도 된다"는 말을 너무 믿었던 겁니다.... 하... 한동안 모든 문서를 통합하는데 시간을 보낼 듯합니다.
Andrej Karpathy@karpathy

LLM Knowledge Bases Something I'm finding very useful recently: using LLMs to build personal knowledge bases for various topics of research interest. In this way, a large fraction of my recent token throughput is going less into manipulating code, and more into manipulating knowledge (stored as markdown and images). The latest LLMs are quite good at it. So: Data ingest: I index source documents (articles, papers, repos, datasets, images, etc.) into a raw/ directory, then I use an LLM to incrementally "compile" a wiki, which is just a collection of .md files in a directory structure. The wiki includes summaries of all the data in raw/, backlinks, and then it categorizes data into concepts, writes articles for them, and links them all. To convert web articles into .md files I like to use the Obsidian Web Clipper extension, and then I also use a hotkey to download all the related images to local so that my LLM can easily reference them. IDE: I use Obsidian as the IDE "frontend" where I can view the raw data, the the compiled wiki, and the derived visualizations. Important to note that the LLM writes and maintains all of the data of the wiki, I rarely touch it directly. I've played with a few Obsidian plugins to render and view data in other ways (e.g. Marp for slides). Q&A: Where things get interesting is that once your wiki is big enough (e.g. mine on some recent research is ~100 articles and ~400K words), you can ask your LLM agent all kinds of complex questions against the wiki, and it will go off, research the answers, etc. I thought I had to reach for fancy RAG, but the LLM has been pretty good about auto-maintaining index files and brief summaries of all the documents and it reads all the important related data fairly easily at this ~small scale. Output: Instead of getting answers in text/terminal, I like to have it render markdown files for me, or slide shows (Marp format), or matplotlib images, all of which I then view again in Obsidian. You can imagine many other visual output formats depending on the query. Often, I end up "filing" the outputs back into the wiki to enhance it for further queries. So my own explorations and queries always "add up" in the knowledge base. Linting: I've run some LLM "health checks" over the wiki to e.g. find inconsistent data, impute missing data (with web searchers), find interesting connections for new article candidates, etc., to incrementally clean up the wiki and enhance its overall data integrity. The LLMs are quite good at suggesting further questions to ask and look into. Extra tools: I find myself developing additional tools to process the data, e.g. I vibe coded a small and naive search engine over the wiki, which I both use directly (in a web ui), but more often I want to hand it off to an LLM via CLI as a tool for larger queries. Further explorations: As the repo grows, the natural desire is to also think about synthetic data generation + finetuning to have your LLM "know" the data in its weights instead of just context windows. TLDR: raw data from a given number of sources is collected, then compiled by an LLM into a .md wiki, then operated on by various CLIs by the LLM to do Q&A and to incrementally enhance the wiki, and all of it viewable in Obsidian. You rarely ever write or edit the wiki manually, it's the domain of the LLM. I think there is room here for an incredible new product instead of a hacky collection of scripts.

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달비@Thedalbee·
클로드 코드에서 저한테 200달러를 줬습니다... (사실 크레딧임) "서드파티 토큰 물려놓은 거 싹 다 잡겠다"라고 하면서요. 그게 무슨 말이냐? 이제 오픈클로, 에르메스 기타등등 클로드 코드가 아닌 다른 곳에서 클로드로 작업하면 주겨버리겠다라는 뜻임다...
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Elon Musk
Elon Musk@elonmusk·
Banger 😂
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달비@Thedalbee·
@mhp_guy @grok 풀 영상을 볼 가치가 있을까? 어떤 사람이고. 어떤 영상인지 알려줘
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Chris Koerner
Chris Koerner@mhp_guy·
This guy vibecoded an app that landed him a $15,000 customer almost Instantly. A year later, he's made $2.5M This year? He's projected to make $7M Guys, please listen carefully to me with this: - He is not a software developer - He started this with $400 If you are watching this, you are the minority. Stop assuming other people know what you know about AI. You are a first mover. This is 100% possible for anyone else to do. You've gotta check this one out!
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달비@Thedalbee·
깨달았다.... 클로드 코드를 드디어 프리미어 프로에 연결했습니다 그리고 모든 로그를 읽게 해서 제 복제인간? 복제기계?를 만들어볼 생각입니다
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ALEX SUZUKI
ALEX SUZUKI@X_FINALBOSS·
I made >$3.8M in the last 10 months selling digital products Here's how in 15 steps: 1. make X account (5 sec) 2 get verified with blue checkmark $8/mo 3. pick topic: ecom, websites, sales, etc (5 sec) 4. find #1 influencer in that niche (10 sec) 5. gather their tweets, AI generate 300 tweets with claude 6. Use tweethunter to auto post 10 per day 7 Set up auto DM upon reply/like 8. you get 1M+ views minimum per month 9. automatically DM link to product to 500+ people daily 10. AI generate 5x 200 page ebooks in 35 minutes 11. ~400 people view the checkout page 12. u get 20 sales for $500 each. $10K/month profit 13 Upsell for a $2K package after that 14 Add 3-5 affiliate links to generate additional $7K per month passively 15 retire from your job obviously there is more details to this business if u want the full 130 page blueprint on how, comment "PDF" and i'll send. Must be following + Retweet
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