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Get This Full Video : Resolution : 1280x720 Duration : 00:36:18 Many More Mummification Vidoes at #mummified #mummification #fetish #ミイラ化 #木乃伊制作 #Mumifizierung #мумификация #mumifikasi #미라화

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Just in $AMD Anush "Speed is the moat"|ROCm🎙️ In the race to define the future of AI, what's the one advantage that truly lasts? It's not proprietary tech, argues Anush Elangovan Elangovan, VP of AI Software at AMD , but the sustainable speed of innovation. He explains why AMD is rejecting the "walled garden" model for its open source ROCm stack, betting that an open community flywheel is the key to victory. Listen to understand how this open strategy is designed to out-innovate closed systems by empowering developers to solve everything from frontier-model challenges to the mundane, everyday problems that define the "last mile" of AI. AMD ROCm Software: Part 1 Transcript [00:00:00] Andrew Zigler: Joining me is Anush Elangovan, VP of AI software at AMD. And when people talk about AI compute, the conversation often stops at hardware specs, but it's more than just physical chips that win the game. It's also the software ecosystems supporting them. [00:00:18] Andrew Zigler: The prevailing strategy in the industry has been to build something like a walled garden. You know, something closed, proprietary locks, developers in. But AMD is betting on an entirely different play, open source acceleration, and with rock, their open source AI software stack. AMD is building not just hardware parity, but an innovation flywheel that's powered by the community with interoperability and the freedom to scale without all of that pesky lockin. [00:00:48] Andrew Zigler: And in this world, speed is your moat and how fast you can innovate while your platform remains open, flexible, and standardize across all of its applications. That's what we're gonna explore [00:01:00] today. So Anush, I'm really excited to have you here. Welcome to Dev Interrupted. [00:01:04] Anush Elangovan: Thanks for having me. Uh, super excited to chat about it. [00:01:07] Andrew Zigler: Amazing. Well, let's go ahead and dive right in with kind of what I laid it out with in the beginning, the idea of the moat and it being about speed. I wanna unpack that a bit because that came from you when you and I first spoke. And I, and I want to know, you know, how do you define speed inside of AMD beyond just things like hardware, benchmarks. [00:01:27] Anush Elangovan: Yeah, that's a very good question. So when we typically talk about speed, everyone's like, Hey, hardware benchmark specs, right? Like, uh, memory bandwidth or, or flops. And that is one important part of it, uh, AMD does very well. With that, we do have, a, a very good history of executing on that axis. [00:01:47] Anush Elangovan: But when I say speed is the moat, it is about, uh, how we prepare, how we build the muscle to run the race for a long time and run it fast. And it is [00:02:00] not about a single point in time that you've, you've beat some you know, benchmark and, and you declare victory. It's about building the ability to consistently develop and deliver. [00:02:13] Anush Elangovan: Both hardware and software innovation at scale and do it fast, right? Like, you know, we we're increasingly getting to a point where models come out and they're, uh, you know, a year or two ago it was like, Hey, they work on AMD on day zero, which is great, but now they are performing on AMD the day it releases, right? [00:02:32] Anush Elangovan: So, what does it take to Prefetch where the industry is going? Be prepared to intercept. At that point is what you know, I, I refer to as you know, the, the speed factor in, in creating this mode, right? And the mode is just shed all things that hold you back and run as fast as you can. [00:02:53] Anush Elangovan: Uh, because the pace of innovation that is, uh, being seen in, in AI [00:03:00] industries is just. Amazing. Right? And it's like, it's transformational at at how you generate electricity. It's transformational as at how you build data centers. It's transformational at how you deploy compute, networking. It's transformational at what kind of use cases you, you know, uh, use AI for. [00:03:17] Anush Elangovan: Uh, and for that, you need to be prepared to, see what comes tomorrow and be prepared to run the race tomorrow. [00:03:23] Andrew Zigler: Yeah, it's a really great perspective because it highlights that it's not just like a checkpoint that you run through. I like how you called out, like it's not just hitting that benchmark or being the best in class at that moment, in that snapshot, it's about having a. The throughput and about having that dedication to the idea and continuing to deliver on it. [00:03:43] Andrew Zigler: It's not just crossing the threshold, but it's also being the engine. And that's what, that's what protects a business. That is the moat, because the moat is that innovation layer, the faster and more, uh, future forward. That you can work and think, [00:04:00] you know, the better. Uh, we, we talk a lot about like future forward work styles. [00:04:04] Andrew Zigler: Like what are the things I could be doing right now today that are gonna be like, way more useful tomorrow? Let, let's abandon those, workflows that are older and that kind of like, that translates into. An advantage when you work that way. You know, what kind of things have you learned working with, uh, like across all spectrums of people who would use ROCm, right? [00:04:23] Andrew Zigler: You have like the developers, but then you also have the enterprises and you have this large span of adoptees, right? So what is the, what does that look like that you learn? [00:04:32] Anush Elangovan: Yeah, so, so the way I look at it is there are gonna be pockets of different, uh, you know, cadences, right? Like, so people who are deploying in enterprises, for example, right? The validation and how long it takes for them to deploy an LLM that's secure. It's, with guardrails, et cetera, maybe longer. [00:04:52] Anush Elangovan: but you still have to go through the process and you have to be prepared to like, walk that walk to deploy an enterprises. That doesn't mean it's [00:05:00] not fast, that's as fast as you can do for that industry, right? And if you are deploying AI in healthcare, right, it's, it's got its own, uh, cycle. [00:05:07] Anush Elangovan: but in each one of these, you want to see how, like, go down to the essence of what is it that you actually have to do. And, you know, I, I, I like how you framed it. It's like it's, you shed your prior assumptions of how things are done, right. And, and you kind of build up from a, uh, first principles, uh, approach to say, this is how I could use AI to unlock, whatever I'm doing. [00:05:33] Anush Elangovan: And, and, some of it, you know, it's good to really step back and look at. Just question every part of it, right? Like right now you're getting chat GPT and, Gemini competing for like, math, olympiads and, and, uh, college, uh, reasoning, uh, tests. Right? And, and those are like that, that is amazing and increasingly like complex tasks that they're trying to do. [00:05:58] Anush Elangovan: But there may also be like. [00:06:00] More mundane things that AI could, could get applied to. Right? And, and so when we think about shedding old ways, you wanna shed it not just in like the tip of the spear. It's like, you know, I'm gonna see what's the frontier model. It's also, it could be something as simple as. [00:06:18] Anush Elangovan: How do you choose a, a movie, uh, you know, like a recommendation system, right? Or, or, uh, an automated, uh, flight, uh, rebooking system. So the moment, you know, your flight is late, uh, right now it's a notification, right? It's like, oh, you got a text message saying your flight's late. And I got that like three times this week. [00:06:38] Anush Elangovan: But anyway, uh, and, and, and, and, I was just like, okay, so if I were to rethink this. All this MCPs that we have that should be hooked up into an MCP that says, your flight's delayed. Here are your options. If you want, you know, these are the paid options. Yeah. Here are the free options. This will get you back into your you know, Toronto airport [00:07:00] tonight. [00:07:00] Anush Elangovan: Or if you stay, here's a hotel plus this, plus this, plus. It's just like, go ahead is all I should say. Versus now I'm like, okay, can someone, you know, can I call a travel agent? Can I do this? Can I go online and log into And you know, so we gotta fundamentally rethink even those like small, nuances of, things that we do that can be automated out and AI is really, really good at doing something like this, right? Maybe I just explained an AI startup idea right now. Somebody should just start that. [00:07:29] Andrew Zigler: I think you did. Yeah, you definitely did. Someone, one of our listeners is definitely going to lift that off of you. I, I, I, you know, I hate being on the receiving end of those. You feel a little helpless and then you have to like, follow the whole flow. So I know what you mean. Like I, I like how you called out that the build and this like. [00:07:45] Andrew Zigler: Where speed is your moat and the innovation layer is protecting you, is what makes you better than your competitors. How you scale that and you bring that to market. So by understanding the problems that you're solving, uh, throwing away those older assumptions, but also [00:08:00] recognizing that like. We're building every single day, new things and new ways of using stuff that we're still figuring out the implications of. [00:08:08] Andrew Zigler: And so when you have a lot of velocity and you're introducing a lot of new ideas, and maybe you have that workflow now that automatically rebook your flight off of your late flight text message, and uh, I know I would certainly use it, but you know, what kind of philosophies guide the way that y'all think about building this ecosystem to manage that stability while letting folks. [00:08:29] Andrew Zigler: Play with the speed and the assumptions and the airplane re bookings. [00:08:34] Anush Elangovan: so, so I think, you know, we need to peel one layer down, right? and the philosophy is, Hey, we, we just discovered electricity, right? And you know what we're gonna do? We are gonna make motors, uh, or dynamos, right? Like engines. Uh, sure. We don't know if it's gonna be a Ferrari that you're gonna make, or it's a a a a dump truck. [00:08:57] Anush Elangovan: That's good for doing this. But let's [00:09:00] let, which is also required, right? You need a dump truck. You need a garbage truck. And, [00:09:04] Andrew Zigler: Yeah. You need the [00:09:04] Anush Elangovan: course you need, uh, a Ferrari for a midlife crisis, right? So, [00:09:09] Andrew Zigler: precisely. [00:09:10] Anush Elangovan: But, but my, uh, point is what do we build next? And, uh, and this is what I meant by like, okay, let's, let's take those baby steps to build the. [00:09:20] Anush Elangovan: Infrastructure that's required that we know we'll have to use, right? So, so if I just discovered electricity, okay, great. Now one, how do I save this electricity and how do I use it? So there's battery technology, so you need to do something like that, right? Like so. But then you also want to make it into an actionable thing. [00:09:37] Anush Elangovan: You want to make it for like automobiles, or you wanna use it for, you know, powering, uh, entire cities. So it is that transformational. So, uh, AI is that transformational. So, if you distill down, it'll, it'll come down to how do we think about, what we can do with this this fundamental technology that, We may not be aware of what it [00:10:00] is gonna unlock next, but at least you know the next step is clear, right? It's like a dense fog, you know, it's gonna be like, it, it's the right path. You see the light, but it's kind of like out there and, and the steps you're taking are concrete and you're like, okay, this is good. [00:10:16] Anush Elangovan: I, this is better than where I was or where we were. So we are moving forward. So you can build with the. Intuition from what you see in the short term and a tactical view, but towards what you think the future is gonna be. [00:10:28] Andrew Zigler: Right. You almost like we're all in this like fog of war, right? And like you said, you're reaching out and you're trying to step through it. You could think of it too, as like you're in the dark and your hands are up in front of you and you know that. You're, you're not gonna run your face into a wall because your hands are out in front of you, but you're not gonna maybe do much better than that. [00:10:45] Andrew Zigler: So that's kind of like, I think the eco, the, the industry, the world that we find ourselves in, uh, and we all have to, then this becomes the power of an ecosystem, of a group of people working together to create that layer of, [00:11:00] uh, of establishing the [00:11:01] Anush Elangovan: exactly. And I, I, I just, instead of, you know, saying fog of war I describe it as like, you're in this. Beautiful valley with like a morning, uh, fog that's in. You can smell the flowers. You, you hear the birds. You are like, okay, it's, we are in like, uh, utopian paradise and yes, I just need to like, continue the walk, right? [00:11:24] Anush Elangovan: and then move forward with that, conviction that you're in the right spot. [00:11:27] Andrew Zigler: Yeah. So let's talk about that ecosystem world. This nice, I love how you describe it, this grassy side of a hill in the morning that's covered in some mist and maybe we can't see 30 feet in one direction, but it sure is a beautiful hill and it smells nice. And so we're all here. And why is, in that world, why is. [00:11:44] Andrew Zigler: You know, open source, their strategic advantage that y'all are going for in the AI hardware market. And, and then how does like ROCm turn that into wins for people within that ecosystem? [00:11:56] Anush Elangovan: you know, the, the way we look at it is this, is kind of like how I view [00:12:00] AI and the ecosystem, right? But, but it is for everyone to enjoy. Uh, and so we do want to make sure that. You know, it is, uh, beneficial for everyone. [00:12:09] Anush Elangovan: The ecosystem can come in and, and innovate. It's an open innovation engine. and uh, it is very different from, you know, having a walled garden with, Hey, only I know how to do this and I'm gonna do it and throw it over the fence and you can use it or keep walking, right? So we'd like to be good citizens that way, but also. [00:12:30] Anush Elangovan: Uh, it is self-fulfilling in a way, right? Like it, the, the pace at which we innovate with open source is unmatched. Like, you know, our serving engines are like VLLM and, and sg l. Those things, uh, those frameworks are like super, super aggressive in terms of how fast they come out with features and how fast they can you know, get performant models out. [00:12:52] Anush Elangovan: And that compared with what, uh, you'd get from, you know, the likes of like T-R-T-L-L-M or something is always lagging, right? Because you [00:13:00] just can't keep up with you know, 200 commits a week just on one particular model to get that model really performant [00:13:06] Andrew Zigler: And, and, and in that world where, you know, everyone can enjoy the winds of this, what kind of customer stories or innovation stories have really stood out to you and excite you about building and creating this place for developers? [00:13:19] Anush Elangovan: Yeah. So I think the parts that are super exciting for me are when when we get to see a customer that is first skeptical. Then they start a little like, okay, fine, we'll give you a chance. Uh, we do a simple, uh, POC and then they're like, huh, this seems to work. Yeah, we told you it works. [00:13:42] Anush Elangovan: You don't have to change one line of code. Really? Yes, no need to change one line of code. Okay, let's try a production workload. So then they try it. Oh, you're more performant than the competition. Yes. We're more performant than, than the competition. So how much does it cost? And we're like, oh, it's your TCO is better with, uh, [00:14:00] AMD. [00:14:00] Anush Elangovan: So again, they're like, wow, okay, good. So now how do we deploy at scale? And then we go deploy it at scale. And when they give a thumbs up on that and they say, this is good, right? That's when you know, you, you see it go full circle from like, oh, we, we've never heard about AMD to like actually deploy to tens of thousands of GPUs In the order of a few months, right? It, it, it really is fascinating to see and very exciting and invigorating to [00:14:28] Andrew Zigler: Yeah. At like a great exposure to a lot of interesting problems. And, and then people using the infrastructure, the, the technology available to solve those problems. Really specific problems by the way, that's often why they're bringing their data and AI to it, uh, is because it is really specific and important for them. [00:14:45] Andrew Zigler: And there's a, a lot I think that other engineering orgs can learn and even emulate from AMD's success and, and having this open source ecosystem and it causing this acceleration within. You [00:15:00] know, uh, customers and enterprises that use and adopt the tools and, and, and that creates an advantage. And that goes back to why we're talking and like the real thesis of our conversation today. [00:15:10] Andrew Zigler: So how do you think engineering leaders that are listening to this and obviously tapping into this great success AMD has from an open source flywheel, how do you think other, other folks building in the same space can foster that open, first, that open source oriented culture in order to, you know, accelerate their innovation goals? [00:15:29] Anush Elangovan: Yeah, that's a very good question. So the startup that um, was acquired by AMD we, we built, I mean, we started off doing iot stuff and you know, smart ring and all that, right? But in the, the end of like, uh, and not the end, the last six years of the company was building ML compilers. [00:15:47] Anush Elangovan: And ml, ML compilers are like super, uh, complicated, sophisticated, advanced algorithms, dah, dah, dah. but it was all open source, right? So our VCs were like, wait, what do you mean your core [00:16:00] IP is open source? And um, the speed is the moat applied even then, right? It was just like, yes, if you have an idea that. [00:16:08] Anush Elangovan: Because someone saw this idea that you are, they're gonna be able to catch up, then you probably have the wrong idea anyway. But if they are, you know, you execute and they're gonna catch up, that you should assume they're gonna catch up. Right? So you gotta move forward. So keeping it open source is super important. [00:16:25] Anush Elangovan: But also to your question on like, you know, the learnings from an AMD standpoint, right? If there are, hard problems, I'd say dig in and work through it, right? Like there's no way but through it, right? That should be the simple mentality. And more, uh, frequently than not. you'll see that you'll just make it through in a, in, in good form. [00:16:52] Anush Elangovan: But if you doubt it and you're like, oh, I don't know if I should commit, if I'm, I, you know, what should just commit to do the right thing [00:17:00] every step, right? Every step, and just keep taking one step in front of the other. And in no time you'll see that you'll be running. Right. And, and yes, the first few steps will be like, yeah, everyone's complaining about your software quality. [00:17:15] Anush Elangovan: Everyone's complaining about this and that, and it doesn't work. And, and a few steps in, you know, you get, you get the hang of all the complaints that are coming in. You get the feedback loop. You're like, okay, what, what are you prioritizing again? One step in front of the other, right? You just keep knocking that out and then you get to a point where you're, it just becomes second nature, right? To do the, to do the right thing. And, and then yes, if someone gives you two options, you'll be like, fine. This is, uh, you know, there's always the resource trade off. There's always a human capital trade off, but what's the right thing to do? of course, I, I'm pragmatic about what we choose, but, but if the right thing for your long-term success is dig in, go first, principles, make it [00:18:00] happen. [00:18:00] Anush Elangovan: Well. Then just go for that. There's, there is no shortcut to [00:18:04] Andrew Zigler: acknowledging, you know, how it aligns with your mission, your core company goals, and what you're looking to achieve. And, and I, I love how you rightfully called out that in the open source world and you know, you have your technology that you've built, what you think is your moat upon, right? [00:18:22] Andrew Zigler: It's your code and, and to open source that, or to just make it where anyone could peer in is, you know. Scary in one regard, but two, it just kind of feels like you're handing away your throne room in some kind of sense, a very direct feeling sense. But the ultimately, you were really right to call out, and this is something I think about all the time, that the real power there is still the speed This the speed. [00:18:42] Andrew Zigler: That was the moat at the beginning of our conversation. It's the speed in combination with your. Very specific domain understanding of what you're building and what you're creating, and your new role as the steward of that world and how people plug into it, which [00:19:00] has frankly, a lot more influence and power than lording over a closed. [00:19:04] Andrew Zigler: You know, repository or an ecosystem, and like you said, like throwing things over the wall. Sure. There, there might be people always on the other side of that wall, but you're not gonna have a great connection with them. You're not gonna be able to really clearly understand them. I, I like your metaphor of the side of the field of the mountain a lot more. [00:19:23] Andrew Zigler: But, but in the, in this world, you know, where. That speed is, is the power and, and open source is just one way that you can harness that speed to get really far ahead and to innovate. , There's other parts of this equation that you can be experimenting with too, and I'd love to pick your brain about them as a software leader and, and, and one of them is about looking forward and kind of understanding that future that we're all building towards and beyond today's models and hardware. [00:19:48] Andrew Zigler: You know, what do you see as the next major bottleneck or opportunity in the AI compute space? As, as you know, enterprises and folks start to get a little more mature about what's available to [00:20:00] them. [00:20:00] Anush Elangovan: Yeah, I think, the bottleneck and opportunity is, uh, what I'd call, call walking the last mile of ai. Right. Uh, and like I I, I gave you an example, uh, previously, but, but it's similar to that. It's like there are cases where Humans have so many, uh, things to do in your day. You know, like the, if we sit down and actually had a customer focus like, okay, these customers lives, I'm gonna save four hours of this customer's life. And if you actually sit down and look at all of that, it'll be. Easily automatable, easily you know, uh, applicable, uh, for ai, right? [00:20:39] Anush Elangovan: Like, but then making it happen is gonna take a little bit, right? It's like maybe it's, uh, paying your utility bill, right? Or something like that, right? Or, or, your healthcare explanation of benefits. Uh, like, I'm sure you get an explanation of benefits, and I'm like, I, I don't even know what that thing is. [00:20:55] Anush Elangovan: It's just like EOB and like. [00:20:57] Andrew Zigler: it's a big, a big old PDF. Yeah, [00:21:00] exactly. [00:21:01] Anush Elangovan: Like, like, I'm like great straight to the, uh, shredder, right? And but that could be, you know, automated with the ai, right? It, it, it'd be like, Hey, the summary of this thing is you went and visited this day. Everything is okay. Everything is paid for, so don't worry, it's not a bill. [00:21:17] Anush Elangovan: That again, the same, uh, thing, but the sense of what that information overload is could be. Digested by ai, uh, accumulated over time and retrieved when you need it. Like, I don't, I actually don't even need to know this EOB right now, unless of course, whenever I need to know it, that maybe, you know, like for some benefits I need to figure out what do, what did I do over the past year and how do I apply it? Source:

Mike

15,145 просмотров • 9 месяцев назад

🚨ALL-IN INTERVIEW: Flock Safety CEO Garrett Langley joins @jason ! All-In Interview Series is brought to you by: AppLovin & Numeral Garrett Langley covers: -- The Real Price of Safety vs. Privacy -- Why People Are Cutting the Cameras Down -- Who Really Gets Your License Plate Data -- The Tool That Got 9 Cops Fired -- Drones That Beat Cops to the Scene -- The AI He Refuses to Build (0:00) The most controversial company in privacy right now, Flock CEO joins the show! (7:23) License plate data retention: 7 days solves 90% of crimes (13:00) Camera vandalism, felony charges, and privacy concerns (18:15) Dirty cops exposed: Flock's audit tool got 9 Georgia officers fired (28:25) AI, drones, facial recognition, and avoiding predictive policing (39:43) Safety is a privilege and who actually needs Flock (45:36) Flock’s PR crisis: internal morale, churn, and 20 cities turning the cameras back on ---------------------------------------------- Thanks to our partners for making this possible! AppLovin Ads is AppLovin's AI advertising platform reaching over a billion daily active users across mobile games. Full-screen video ads with a 35-second median watch time. Advertisers are profitably spending hundreds of thousands of dollars a day. AppLovin Ads is now open to all advertisers. Sign up at Numeral is the trusted solution for U.S. sales tax, VAT, and GST, used by 3,000+ businesses globally. They handle registrations, filings, and tax rates, so you can stay ahead of risk. Learn more at

The All-In Podcast

155,863 просмотров • 28 дней назад

BITCOIN: BULLISH BULLISH BULLISH!!!! 🚨🚨🚨 00:00 Intro - BTC still around 200 WMA in the green accumulation zone 00:44 Start deploying - We have already 2 months in the buy zone 01:18 BTC bottom is close 02:22 Big fat bull is upon us 02:47 Reminder - Do not buy alt coins yet! 03:08 Gold chart - Nice pump but not a new trade 03:48 AI will be hit with bear - SANDisk, Intel, Micron, Marvell 05:18 AI stocks in bear trend - Crypto likely to become strongest narrative 05:43 Clarity Act will get floor vote this week 06:18 Russia passed crypto law - Bad regulation though 07:16 ETFs bullish 07:28 Burry predicting recession (again) 07:54 FED ready to increase rates - Markets are super volatile 08:54 Bullmania AI coming soon - last 24H summary for AI stock market 11:06 Shout out to Bullmania - New spots assigned later today 11:45 Bullmania AI - Last 24h for crypto market 12:28 Tom Lee video - Google thinks all encryption can be broken by 2028 14:11 Is Trezor quantum safe? No, BTC protocol is not quantum safe yet 15:21 Tom Lee video - Q-day 2028 16:36 Can you explain the LINK phenomenon - You need Bullmania 18:35 Pumpfun had more adoption than LINK 19:41 We're the green buy zone for BTC. Time to buy SOL? 20:59 UniSwap news - Tradepools on Robinhood 24:31 Move inventor goes to Anthropic 25:30 Reaction to Raoul Pal providing exit liqudity 26:43 Use the brain to not become exit liquidity 27:36 303 days below ATH 28:35 Asking AI - What is the latest on BTC quantum development 29:19 Bezos dumping Amazon for diversification 29:35 Q and A 29:41 Shout out to Bullmania - Get the AI 30:10 AI answer on BTC quantum - Saylor now onboard, Adam Back bad for progress 32:41 Adam Back - BTC does not use encryption for spending 33:52 Bottom line 34:25 Q1: How to balance your finance world with daily life? 36:46 Q2: I used to write articles on crypto. Now it is all AI? 37:45 Q3: Going to miss the bull because I bought yellow pet rock? 39:15 Asking AI about LINK 40:38 Q4: Thoughts on GameFi? 41:55 AI on LINK - No real adoption or buyers 44:51 BitGo support for wBTC must be buying LINK from the market 45:31 Q5: What happened to Murad? 45:53 Q6: What about Richard Heart? 46:48 AI - How many WBTC bridge users bought LINK. 600 USD per day 47:25 Q7: Monad? 50:58 Q8: Which dApp makes the most money, HYPE or PF? 54:21 HIP-3 explained 55:58 Q9: My Cardano wallet got hacked. 57:27 Outro

Ivan on Tech 🍳📈💰 Head Trader @ Bullmania

16,749 просмотров • 1 месяц назад

🇺🇸 ELON: THIS ELECTION COULD DECIDE THE FATE OF AMERICA Full video with timestamps of Elon Musk 's town hall in support of Brad Schimel held yesterday in Wisconsin. INTRODUCTION 1:12 Significance of the Wisconsin election 2:31 Reforms are to restore merit & freedom 4:52 Violence & hatred from the left 7:34 Petition against activist judges 8:32 Handing out the checks 11:17 Get out to vote program 11:49 Adding voter ID to Wisconsin Constitution 14:11 Death threats Q&A 19:06 AI, truth and propaganda 20:34 How to beat violence with optimism 22:39 USAID and the NGO scam 24:56 Debanking should be forbidden by law 26:20 How to create more diversity of views 30:41 Teaching with AI 34:12 Federal Reserve & saving taxpayer money 39:51 Financial incentives for illegals 42:21 Anthony Gracias: Social Security for illegals 55:41 A prayer for Elon 1:01:15 DOGE will benefit the economy 1:06:44 No plans to integrate Dogecoin 1:08:50 Anthony Gracias: DOGE tries to find the truth 1:10:06 Ghost payments 1:14:36 Fraudulent calls to Social Security 1:16:48 This job is costing Elon a lot 1:18:53 It would be awesome to livestream Fort Knox 1:20:43 It's shockingly hard to be useful 1:24:00 National debt has to be reduced 1:27:01 DOGE effect will be real for people 1:30:24 Nothing makes you happier than kids 1:32:48 Improving the postal service 1:34:45 Elon now follows many people on 𝕏 1:36:11 Parents should have control over their families 1:40:43 Four Starship launch towers planned 1:41:37 First Neuralink Blindsight later this year 1:42:58 Unsupervised FSD in June 1:43:24 Hopefully people will choose more dialogue 1:46:57 DOGE will not cut legitimate social benefits 1:48:32 We haven't evolved to deal with depopulation 1:51:43 Brad Schimel will help get gov off people's backs

Mario Nawfal

64,529 просмотров • 1 год назад

🇵🇱🇷🇺🇺🇦‼️🚨 FULL TALK: The Polish foreign minister spills the beans in this prank with Vovan and Lexus, a must see! Checkpoints: - 0:46 mobilization decision took long - 1:36 Poland wants to send Ukranians back to fight - 3:35 corruption can lead to end of support by the west - 4:16 problems with electricity can make Ukraine uninhabitable - 5:00 don’t involve many countries in peace negotiations, they don’t care about Ukraine - 6:54 USA cannot pull out if Ukraine, its credibility is at stake - 7:38 Trump wants to threaten Russia to get a deal - 8:56 NATO does not get involved directly, not even shooting down missiles - 10:05 Poland can train a brigade or two for Ukraine - 11:04 Ukraine can’t join NATO, until it wins. The membership is a bargaining chip for the west with Russia. - 12:32 Putin must wonder what NATO could do, so it’s not clarified - 13:42 Joining the EU will take a decade - 15:52 EU membership is a question of power, Ukraine and Poland would have more votes than Germany - 16:44 Poland signed the deal at the Maidan knowing the Ukrainian government will collapse soon - 18:10 The Polish president wants attention and talks about nukes, but Poland does not want US nukes - 20:24 Ukrainian nukes were not Ukrainian but Russian - 20:50 USA knew about NordStream and did not stop it! - 22:04 Belarus and Russia invite migrants and send them to Poland, up to 400 a day - 22:44 Belarus cannot be coupled until Russia is not regime changed, Belarus is step two not one - 24:12 Bye inshallah Sikorsky thinks he’s talking to former Ukrainian president Petro Poroshenko and really says it all. That’s probably the most important prank of them all!

Lord Bebo

277,508 просмотров • 2 лет назад

New video from Shreya Shankar on data processing with LLMs at scale, an underrated topic! Shreya starts with a real use case: public defenders analyzing case files for racial bias (4:08). Hundreds of pages per defendant. Court transcripts, police reports, news articles. Running GPT-5 on everything costs a fortune. Her solution: treat LLMs like database operators. Semantic Map, Filter, Reduce (9:18). Databricks, BigQuery, and Snowflake are already shipping this as "AI SQL." She discusses how starting at 12:51: a query optimizer for LLMs. Traditional databases rewrite queries for efficiency. Shreya does the same for LLM pipelines (semantic versions of split, map, reduce that are LLM specific, along with query decomposition). For example, trivial LLM calls are replaced with Python functions. These "rewrite directives" improve both cost AND accuracy. She also talks about a cost optimization technique: Task Cascades (30:00). Instead of running GPT-5 on every document, first ask cheap questions. "Is there any lower court mentioned?" If no, the document clearly doesn't overturn a lower court. There are many other routing questions you can ask to reduce the amount of text sent to the LLM. This requires careful optimization and tuning to get right. She explains how to do this in the video. She runs through a production example that achieved 86% cost reduction while retaining 90% accuracy. --- At 41:26, Shreya shifts to HCI. She built DocWrangler, an IDE for LLM pipelines. The design is based on "Three Gulfs" (44:35): 1. Comprehension: You don't know what's in your data 2. Specification: "Only prescription meds" is hard to operationalize 3. Generalization: A prompt that works on 10 examples fails at 10,000 Users invented "throwaway pipelines" just to explore their data before doing real analysis. Pipelines with no analytical purpose: "summarize these documents," "extract key ideas." Just ways to learn what's in their data before doing the real work. DocWrangler makes this a first-class feature. --- In the last bit of the video Shreya discusses why you can't know what "good" means until you see examples. In one study, a medical analyst extracted medications from doctor-patient transcripts. As they inspected outputs, they noticed every medication appeared with a dosage. They hadn't anticipated this. Now they wanted dosages too. They also saw Tylenol and ibuprofen appearing and realized: "Actually, I only want prescription medications." Shreya calls this "criteria drift." Your evaluation criteria evolve as you see more outputs. This matters because standard ML assumes fixed metrics: define them upfront, collect labels, measure. But with LLMs on fuzzy tasks, that assumption breaks. You discover what you actually want through the process of evaluating. If you don't account for criteria drift, you end up optimizing for a stale rubric. DocWrangler and EvalGen accommodate this by placing the human in the loop thoughtfully. Chapter timestamps: (4:08) - The problem: unstructured data at scale (9:18) - Semantic operators (Map, Filter, Reduce) (12:51) - Query optimization for LLMs (18:15) - Data decomposition (chunking) (30:00) - Task Cascades (86% cost reduction) (41:26) - DocWrangler IDE (44:35) - Three Gulfs framework (51:50) - Evaluation criteria drift More links in reply

Hamel Husain

35,663 просмотров • 9 месяцев назад

RCCG is trending because a Redeem Pastor is under fire for allegedly raping about 18 female members and punishing them when they refuse. [Full Video + Screenshots] Apparently, when they refuse penetration, Pastor Tayo Sobowale demands a boob or handjob, and then gaslights them with Holyspirit. During a program at The Watchtower RCCG branch in Ogbomosho, to his face a student accused Tayo Sobowale of raping and asking for orals afterwards, when she got him food. Also, he makes her cook for him because she’s in welfare department. She went public after her efforts to get justice failed. Tobi narrated how the pastor bragged about how does the same with other virgins in this congregation, like sister Rachel. The pastor denied, but there were more accusations as more girls were allegedly inspired to speak up. One time, while raping her (Tobi), another pastor visited, he asked her to hide in the toilet, after he left, while Tobi was in tears begging him to stop, he refused because he still had a hard-on. When he’s not raping, he’s demanding alternatives, either boobs penetration or oral, and spanking females randomly. Interestingly, the vocal victim Tobi, is vulnerable a mother of one, who joined the church seeking brethren and fellowship. Before going public, Tobi tried to get him to confess in a conversation, but Pastor Tayo evaded. Tayo is a pastor at The Watchtower (RCCG) in Ogbomoso, located adjacent to Daniella Hostel at Under G, LAUTECH, Oyo. — it is a youth church. [ However, according to subsequent report, the case was escalated and the pastor allegedly admitted to only one of the many accusations, which were up to 18, while insisting the rest were consensual. Yet, the victims insist they weren’t. In 2024, an RCCG Pastor Adebello was also accused of sodomizing boys. In his statement, he claimed he was only teaching them biology. This story may not be updated. Follow Trending Explained for daily explanations!
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RCCG is trending because a Redeem Pastor is under fire for allegedly raping about 18 female members and punishing them when they refuse. [Full Video + Screenshots] Apparently, when they refuse penetration, Pastor Tayo Sobowale demands a boob or handjob, and then gaslights them with Holyspirit. During a program at The Watchtower RCCG branch in Ogbomosho, to his face a student accused Tayo Sobowale of raping and asking for orals afterwards, when she got him food. Also, he makes her cook for him because she’s in welfare department. She went public after her efforts to get justice failed. Tobi narrated how the pastor bragged about how does the same with other virgins in this congregation, like sister Rachel. The pastor denied, but there were more accusations as more girls were allegedly inspired to speak up. One time, while raping her (Tobi), another pastor visited, he asked her to hide in the toilet, after he left, while Tobi was in tears begging him to stop, he refused because he still had a hard-on. When he’s not raping, he’s demanding alternatives, either boobs penetration or oral, and spanking females randomly. Interestingly, the vocal victim Tobi, is vulnerable a mother of one, who joined the church seeking brethren and fellowship. Before going public, Tobi tried to get him to confess in a conversation, but Pastor Tayo evaded. Tayo is a pastor at The Watchtower (RCCG) in Ogbomoso, located adjacent to Daniella Hostel at Under G, LAUTECH, Oyo. — it is a youth church. [ However, according to subsequent report, the case was escalated and the pastor allegedly admitted to only one of the many accusations, which were up to 18, while insisting the rest were consensual. Yet, the victims insist they weren’t. In 2024, an RCCG Pastor Adebello was also accused of sodomizing boys. In his statement, he claimed he was only teaching them biology. This story may not be updated. Follow Trending Explained for daily explanations!

Trending Explained

218,946 просмотров • 4 месяцев назад

Fred Wilson is one of the greatest VCs of all time. He is also my new partner at USV and I'm lucky to say that. We've known each other for years, but becoming partners felt like a reason to get to know him even better. So a few weeks ago, we walked around Union Square and caught up about what Fred Wilson has learned over nearly 40 years of VC, how AI may be making the profession obsolete, how to build an investment thesis, why he believes the Knicks will win the NBA title this year, and a few of his long held grudges. Here's a video of that conversation, set at Union Square, Madman Espresso, the USV office, and Leon's on Broadway. Chapters: 3:22 - That time Fred wrecked Mike on Twitter 6:01 - Pre-Internet VC in NYC 9:50 - Early Internet Investing and Raising for Flatiron Partners 11:59 - The Dot-com Crash Killed Fred’s First Firm 14:28 - Fred’s Grudge Against Coffee Shop 16:35 - How to Pick the Right Team at Right Time 18:28 - AVC blog, Gawker’s Nick Denton, 20:44 - Jim Kramer invented Tweeting 21:46 - Why Fred Bet on Twitter Early 23:39 - Building Agents on Claude Code and Tasklet 26:20 - Claude Mythos and Doomerism 27:27 - The Original USV Thesis 29:19 - Network Effects and Brad’s Thesis 31:29 - Coinbase: Thesis, Investment, Outcome 33:18 - Investing in Decentralized AI 34:59 - Open Source AI 36:55 - AI Kill Zone: Legal AI is Dead, Energy Investments 42:37 - USV Agents Will Replace Its Partners 47:00 - Are VC’s building themselves out of a job? 48:30 - Leon’s, NYC’s New Tech Watering Hole 50:52 - Generative Art 53:18 - SOLIENNE: AI Artist trained by Kristi Coronado 54:25 - What About AI Scares Fred 55:40 - Societal Backlash to AI 58:10 - Advice to Early Career VCs: There’s More Risk in Not Doing Deals 1:00:48 - Fred’s Biggest Regrets: Saying No Because of Price 1:04:17 - Fred’s Bold Prediction for the Knicks and the Mets

Michael Mignano

228,373 просмотров • 4 месяцев назад

E185: Variational - Zero Fees, More Assets, No Funding Rate lucas.var co-founded a hedge fund at 20 that Digital Currency Group acquired a year later, then walked away from that exit to build Variational that now sits second only to Hyperliquid in open interest and daily volume. His argument: crypto rebuilt exchanges before it built brokers, and that architectural gap is what's holding on-chain trading back. 0:00 Intro 2:20 Merch, Travel & Being Back in Singapore 5:13 Who Is Lucas Schuermann? 5:24 How Lucas Thinks About Building Trust 6:03 Starting College at Age 12 8:26 How Do You Actually Skip That Many Grades? 9:45 Making Friends Six Years Younger Than Everyone Else 10:40 Are You Still a "Weirdo" at 30? 11:40 Starting a Hedge Fund at 20 - "Hubris of the Young" 14:09 From Paper-Reading Group to a Real Fund 16:50 Acquired by Digital Currency Group at 21 18:59 Why Sell the Fund to DCG? 19:54 Sponsors: Variational & Bitwise 20:47 Did You Regret Selling That Early? 21:51 The Money DCG Made Off Their Work 22:38 Starting a Market Making Firm 24:46 Explain Variational Protocol to Your Mom 26:49 Biggest Mistake Building Variational 28:13 The "Holy Sh*t, We Built Something Massive" Moment 29:54 Reason #1: Zero Fees 32:59 How Do You Trust the Price With Only One Market Maker? 34:33 Are Trading Fees a Scam? 35:29 How Much Do Fees Actually Cost Traders? 36:33 Reason #2: Asset Selection & What "Liquidity" Really Means 40:20 Why Hasn't Crypto Solved This Already? 42:39 Where On-Chain Order Books Break at Scale 46:04 Sponsor: KAST 46:52 Why Wouldn't a Hyperliquid Trader Switch to Variational? 49:28 Who Gets Destroyed When Wall Street Liquidity Arrives On-Chain 51:18 Reason #3: Swaps 52:34 The Real Problem With Perps: Funding Rates 55:18 Roger's BitMEX Story: "Holy Sht, I Can Print More Bitcoin" 58:44 The Hard Lesson: Wiped Out by Funding Fees 1:00:38 Why Perps Are Easy but Options Aren't 1:01:13 What Is a Swap, Really? 1:03:20 How Swaps Beat Perps 1:05:28 Why Raise $50M in May? 1:07:30 Sponsor: Jupiter & Ethena 1:08:14 Does VC Funding Help or Hurt a Project? 1:09:46 Variational vs. Hyperliquid: The Architecture Difference 1:11:44 Why Didn't Hyperliquid Build for Hundreds of Assets First? 1:13:14 Staying Relevant After the Points Program Ends 1:15:11 The "AWS of Liquidity" Analogy, Revisited 1:16:47 What Hyperliquid Gets Wrong About the Future 1:17:48 What Variational Could Get Wrong 1:19:06 Who Wins Long Term: Binance, Coinbase, Hyperliquid, or Variational? 1:21:39 Bitcoin Price Outlook & Crypto Adoption in 2026-27 1:23:59 Variational's Endgame 1:25:51 The One Thing to Remember 1:27:18 Closing Thoughts

MR SHIFT 🦁

61,898 просмотров • 4 дней назад