Gemini 3.8 Live and 3.8 Live Extended Thinking

14 hours ago (blog.google)

My first language is Afrikaans, which is a somewhat niche language and hard to find teachers/conversation buddies outside South Africa. (I live in USA now)

I've been using Gemini to live chat in Afrikaans and do impromptu Afrikaans grammar lessons during my solo drives around town. It is phenomenal at speaking the language - like, it really shocks my family members when they hear it.

This is probably the most joy I get from any of my usages of LLMs/AIs. It's been really, really nice getting to speak my language regularly again. =)

So, I'm excited about this release and live chat getting better. I also hope the other frontier labs pick up niche languages like this as well so that I have more options.

  • I have a similar experience using Gemini for quick Catalan translations for iOS apps given enough context.

    I once asked it to summarize The Hobbit in Catalan to explain it to my daughter before sleep. I was expecting a lot of mistakes as I see regularly if I ask anything in my native language when using GPT or Claude, but it was surprisingly good. I was going just to kind of skim ahead and retell it my own way, but ended up almost saying it verbatim because it was good already.

    She loves Zelda so I asked it to explain the story of Breath of The Wild keeping the original names, and to make it fun, etc.. I was surprised again. I did retell some bits in my own style and taste but it is very convincing.

    I haven't tried Catalan on newer models like GTP-6 Astra or Fable tho. We have all these benchmarks based on software development, and AGI, etc.. but it would be cool to have some language benchmarks for different communities.

    As I work in english and use them in english, I wonder if using LLMs in a different language to code renders a different result as well. Like, if some of these benchmarks were made in other languages, would the result be similar.

    • > As I work in english and use them in english, I wonder if using LLMs in a different language to code renders a different result as well. Like, if some of these benchmarks were made in other languages, would the result be similar.

      I am not a Chinese speaker but my understanding is that all of the models have substantially different behavior in Chinese, to the degree that it's kind of like a second model. Would be interested in hearing more if anyone has direct experience.

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  • I love Gemini in Google Maps for long drives. I start getting bored of music and podcasts and start grilling it with random questions I've always wondered about.

    • I do this too! Usually some idea in ML ...when I am driving I might suddenly remember what I was thinking about and then it is my personal podcast via Gemini-in-Maps. My only complaint is if you have follow up questions, you have to be quick, otherwise it cuts off the mic.

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    • In Maps? Or is it Android Auto? I have Google built it. When I push the button on steering wheel I hardly know which layer I'm talking to.

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  • Yeah Gemini has been consistently better than open ai's chat in icelandic, but I would still say it's far from passable as natural sounding. Lots of grammar errors and the pronunciation sounds like a non native speaker.

  • My father-in-law was saying the same thing about Gemini 12 months ago regarding the Afrikaans speech. I've tried a few of them in my studies but none of them could seem to switch between English/Afrikaans except Gemini. It's an interesting time to be a language learner

    As jy wil, ons kan saam praat op Discord :) maar my Afrikaans is sleg

    • As a Dutch person i find Afrikaans always interesting whenever i happen to encounter it in the wild. As if a common ancestor took a very different evolutionary path.

  • I've been building a language learning app which uses AI voice chat to let people practice. Would that be something interesting for you to try out? It's all still rough, but we've been learning Japanese with it and its pretty cool.

  • It’s literally translation technology told to guess what’s most likely next instead of translate what it was given.

    It makes total sense it’s good at regurgitating the edge cases of language.

  • for me the live mode in androids google translate app has been as close as it gets to perfect for traveling cannot believe it is a free service after trying so many others

I don’t understand good experiences people are having with Gemini. It’s the only model that sometimes loses/forgets context in literally next message. Plus feeding unasked product links to responses.

  • Have you tried Gemini 3.8 Flash recently ?

    I was like you before, Gemini was the worst model to me.

    Then 3.8 came out. At first I was sceptical, but this model *is* able to do useful things ! Complex things.

    Of course, it is NOT perfect. But for things like small/medium complex tasks subagents, it's perfect.

    Now, is it worth the money vs Astra ? I don't think so. But still my point remain relevant.

  • I love it as a variation from the others. 3.8 flash is the best back-and-forth model for iterating imo, but would not use for long horizon

  • I strongly agree. I suspect it's people who have not yet used the paid models from OpenAI and Anthropic. Gemini is comparable to free models from other providers, but not in the same universe as paid models.

    This is frustrating because when I discuss AI with laypeople they think it's still incapable of counting the number of Rs in "strawberry." They believe it to be essentially useless and incapable of basic tasks. Which, to be fair, is the case with the free models.

    • > you're just not using the latest model, bro

      Pro tip, ChatGPT is the normiest of all normie websites right now. You're not part of the cognoscenti just because you learned how to type prompts into one of the most popular websites in the world.

      P.S. You're probably not using OpenAI models for complex or non-standard tasks. It shits the best just as often as Qwen when you need precision and detail in a non-obvious problem.

  • I wonder how much life DeepMind has left in it, especially after Hassabis's departure. Google execs must be having discussions about simply throwing their weight behind Anthropic since they already own so much of the company.

  • I agree. Lot's of people really like it. For me it often just forgets all context and starts showing random slop. It's super clear as, when I ask it what happened to some element earlier in the conversation it tells me it does not have that. It might be good if it told me, but randomly lose the plot is quite frustrating.

    Claude does it occasionally but it's a more a soft landing earlier context seems to be compacted, not completely lose the plot.

    I just cancelled my pro subscription. I really wanted it to be good but not yet.

Just gave it a try - very solid release.

Copes well with thick accent, voices are pleasant and latency seems low.

Oh and I can actually use it on a workspace account - which for most of the recent releases was an account stuck in limbo. Not personal enough for personal offering, not enterprise enough for enterprise.

Well done G - will definitely be using this

  • Where did you try it, how can you use it? I have nothing in my Workspace (I am admin), Gemini app, AI Studio. Only 3.6 Flash

  • Also appears to do well in other languages (prefer that when walking & talking in public for a bit of privacy)

    And looks like one can trigger live mode via siri

I wonder when/if we’ll see Gemini beating Fable and Astra. Last year I would have confidently bet Google will overtake the others just because they have the data, the hardware (TPUs) and a fat advertising money pipe and yet they are still behind. Anyone anonymous at Google want to hint when Gemini 4 will be out?

  • As an "everyday mans AI" I'd say 3.8 Flash definitely already has. Smart enough for the vast swath of people, and only slightly eeked out by Astra(Max) on vision capabilities, like the kind of "Point your camera at something and ask questions" that non-tech people like to do. It's crazy fast and very compute light, so not getting bogged down constantly.

    I can't think of a better general purpose model than 3.8 flash right now. It also writes more naturally than the other big models too.

    • I find it really good and up-to-date, like within an hour of current events or website updates that it can reference. Astra is a step up for complex stuff, but I'm not going to use up all my tokens to ask it the specs of a 2023 MacBook pro then wait 3 minutes only to get a tome with a complete breakdown of the Mac OS platform and including such things as the supply side dynamics driving the ram size choices and pricing at that time.

    • I was thinking about coding specifically. Also, see all these math and physics breakthroughs, it's usually not Gemini but Fable and Astra.

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    • Not only that, the output of tps is high. So not only can it handle most mid-level tasks perfectly fine, but can do it with speed!

    • Yeah its good. Reasonably priced too (at current prices, if they do raise them in January I would stop recommending it). 3.7/3.8 were good releases.

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    • Yeah +1 to this

      People use text with LLMs but it's great to have a high fidelity "analyze this image"

  • I’m wondering if they even see a coding agent as a valuable prize. It’s a competitive market in a race to the bottom economically, hard to establish consistent differentiation and virtually zero switching cost for customers.

    I think they’ve made a shrewd move in focusing on search integration and everyday users (Gemini app) vs software power users. They have their corner and nobody is really competing with them, plus it feeds directly into their existing revenue stream.

    • OpenAI/Anthropic are being valued at 25/50% of Alphabet respectively in secondary markets.

      Maybe everybody is wrong about how valuable these companies will be, but atm it looks very dumb to not be competitive in coding.

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  • > I wonder when/if we’ll see Gemini beating Fable and Astra

    Google has essentially give up the race for the frontier. The gap is widening very fast. Their strategy appears to be to focus on niche areas like voice, small models for on-device (see their deal with Apple), and specialised models for tasks like search, which are very inference efficient.

  • Anecdata, but I've been using gemini personally instead of what I used regular google searches for the better part. Even in car chat/search and some lighter and not so light research (if it's not heavy on technicals). It's good enough that I use it nonstop like that. I wouldn't trust it for coding at all - switching between fable and now astra.

    Google in a sense won (me over) like that. I also expected them to brute force their way into everything and dominate. This is how it played out though. Image generation is great as well, but ChatGPT one is more lenient on copyright and nannying - for example when my kid asks me to "take a photo of him and Sonic". Gemini cops out either because of the kid or Sonic, disappointing us both, but ChatGPT can be.. persuaded.

    • I just use Grok for anything "controversial" like that. I actually love that different LLMs have their niches. In a typical week I might use all of Claude, Gemini, and Grok, for different kinds of asks.

  • Considering how far backwards Google has gone since the release of the 3.x models, the brain drain they've let happen, the lacklustre software ecosystem and their track record with product management ... I would say they're more likely to drop trying to compete at the frontier and try to focus on something else instead.

  • For me 3.8 has been good enough that I don’t think I’ll be extending my Claude subscription.

  • For coding models? I don't think Google is motivated to fight in that market. There's no incentive for them.

    Ask yourself, how does Google -- a company that famously does everything -- benefit from SWEs outside of Google having access to powerful coding models? They would just be competition.

    Famously, Google just eventually discards almost all businesses that don't have the same fire hose of revenue that ads does. Selling coding plans isn't something they are going to want to do.

    Google is clearly motivated to make better search and information finding tools and stuff that will ultimately drive users through their existing search/ads/youtube ecosystem. That's really why they're in Android, that's why they do Chrome. Everything else with them is a sideshow.

    Google is also full of beancounters obsessed with data centre quota and resourcing. Even massively profitable ads projects have to justify and fight for it. (Source: used to work there).

    I can't think of anything less resource & revenue sensible than providing outside parties access to your TPUs for the purpose of letting them write stuff which could just end up competing with you.

    Yes, maybe as part of their cloud business, selling token access could be useful money. But I doubt they'd tune it for coding.

    • > Ask yourself, how does Google -- a company that famously does everything -- benefit from SWEs outside of Google having access to powerful coding models? They would just be competition.

      Bragging rights to say they have a SOTA model. I guess that was more like Google of 10 years ago with moonshot projects. Nowadays, yeah, perhaps if it's not helping sell ads, it doesn't make sense.

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    • > Ask yourself, how does Google -- a company that famously does everything -- benefit from SWEs outside of Google having access to powerful coding models?

      Catch is, even Googlers internally do not have access to top-tier models. (or did not until recently, when apparently Claude was made accessible to the SWEs internally).

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    • Also: Google has like a 20% stake in Anthropic, and a very fat cloud partnership

  • I have a shared understanding for what you're asking, but semantic versioning doesn't even make sense for AI models

    these are essentially monthly releases, the dated releases that Deepseek and Qwen do make more sense

  • If Google didnt have their ad buisness theiy'd be out by now. They're like BlackBerry and Nokia at this point almost.

    • Not sure what your comment mean in the context of parent's comment.

      As opposed to what, them not having it and burning money that isn't their instead like openai and anthropic? At least Google is feeding itself instead of having to create a bubble to stay alive

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    • And YouTube, and Cloud, and Play Store, and Waymo, not to mention that they could coast on their Anthropic and SpaceX stakes if they didn't have any of the above.

    • They remind me of Kodak inventing the digital camera and sitting on it to preserve their film business.

Even if really great, it still can’t use tools. The only consumer Google thing with access to MCP tools is Gemini Spark and that has lots of other problems. I wish they would combine their efforts on a great consumer product but it’s Google we’re talking about…

I still dream of the day that we get full tool parity in voice and text mode so your voice assistant can do everything you connect for you. Grok and Claude are btw almost there, only a very few minor built-in tools don’t exist in voice mode, but I already use both to connect to heaps of things! It’s so valuable to verbally discuss something with an agent, have the agent pull in context from GitHub, Notion, email, and then create artifacts somewhere

Gemini is underrated in that it produces the only prose that is somewhat bearable to read.

  • It's also the only model that generates accurate translation and localization. No other frontier model comes close. Although Gemini's coding capabilities are subpar, its natural language processing is top-tier.

    • I’m curious how you guys keep track of each model’s coding capabilities. The landscape keeps changing. I don’t suppose you benchmark all frontier models every other month, right?

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    • That might depend on whether you are translating fiction or nonfiction.

      Anecdotally I'd rate Gemini behind Claude and OpenAI models at fiction and I can't find any benchmarks showing Gemini is the clear winner at this task.

    • I found that it's shockingly good with R. (the only language I know and can correct for)

      I doubt they even intended it to be, but it seems like I kept going from resorting to 3.5-3.8 (over time) to realizing that Claude and GPT, while great at Python, will make rudimentary mistakes with R; even when they compose giant complicated R code.

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  • For heavyweight work I have been using Astra, but for rabbit holes and brain storming Gemini is far more enjoyable to interact with.

    I'm worried in their push to catch up on the SOTA front, it's going to lose that natural sounding touch it currently has.

    • Agreed. My impression is that the more verbose output of sol, astra etc is that it helps it steer itself on long running tasks (but is worse for the human user to read)

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    • How do you know you're using Astra?

      My ChatGPT env only says "low", "medium", "high".

      Is this a "pro" thing? I have totally no idea what I'm talking to, so actually I'm thinking of stopping my plan. Gemini and Claude are much more clear about it.

      Anyway, I like the speed at which Gemini responds so indeed for simple things it is preferable.

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    • For rabbit holes, how do you get Gemini to do any research before answering? I've very recently had it hallucinate on me like it's 2023, and that was on Pro/Thinking, as far as I remember.

    • Is Google still chasing frontier? Seems like they haven't had a "Pro" model in forever. I think a good niche for them would be right where they are now.

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    • It's entirely possible that in their testing of newer models, the whole problem is that even if it's doing better in benchmarks, maybe it's insufferable to work with, thus they're not releasing it.

  • I was surprised when (finally) trying out Claude how much I preferred Gemini's way of communicating. I wont argue Claude is better at coding, but for knowledge work, I had to dig through Claude output to find what I actually wanted. At times, it even felt borderline incomprehensible.

    • Just today I had Sonnet 5 generate this (asking about always-on display in the iPhone e-versions):

      > This mirrors how Apple has always segmented Pro vs. non-Pro iPhones: base models got LTPS panels while Pro models got LTPO, and only with the mainline iPhone 17/17 Plus did that gap close the standard versions previously lacked the smoother 120Hz ProMotion technology and the always-on display feature, unlike the Pro models — the 17e is the one model line still using the older, cheaper panel.

      (emphasis mine)

      I mean, I can guess what it is trying to say, but who RL'd this nonsense?

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  • I work for Google and we have the choice between Gemini models and Opus. Opus is slightly better than Gemini flash but I find the style unbearable.

    It reminds me of a pedantic grad student.

    • Not only that, Opus likes to invent arcane jargons. And the longer the task runs, the harder it is to understand its output. The conversation will be filled with uncommon word choices and awkward sentence structure.

  • Try Gemini live in a multi lingual environment. It can pick out speakers and live translate to you. Truly underrated for its capabilities.

    • I actually did (was going to travel internationally), and it wasn't as useful as you'd think. I would be talking to someone, and in the background someone else would be talking, and it would translate both people.

      Only worked in a 1:1 in a quiet place. Still, can't complain for free.

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    • Not the same, but related: Gemini is great for querying text in another language, it provides really cogent, useful responses with just enough source language quotes to be able to reference the source text effectively.

  • I can’t agree more! It feels really smooth to drive, kind of buttery compared to other frontier experiences, at least in antigravity 2.0 or whatever. I’ve been doing some web app coding with it and I’m happy with the results.

  • Chatgpt doesn’t seem so bad lately. At least as a Claude refugee.

    • Yeah, I set it to “warm: less”, “enthusiastic: less” and “emoji: less” and it was much more bearable than I remembered it being before. Although it does love to “separate” questions when it thinks.

  • Does anyone know if there is a dedicated model which makes Claude output nore human readable and less slop?

    Lately it became load-bearingly-reality-difficult to not only read, but to comprehend the Claude output

  • I find Astra's prose very good, too. I have been using it to rewrite all my LLM-generated docs as of lately.

  • We have an agentic system that produces insights for end users, and runs most of its work on DeepSeek v4.1 Flash but as an output stage transforms the resulting text through Gemini 3.8 Flash for readability, and it works.

    On my TODO is try and run all of the analysis pipeline in dense "machine speak" to save on tokens and just let Gemini sort it out at the end.

  • Terrible for code, amazing for prose

    I've set my documentation sub agent to Gemini and my code agent to Luna

Google need to allow saving history and exclude it as training data. I will not use it seriously until this is resolved.

  • Agreed. They really are the greediest when it comes to data for training (unsurprising for google I guess)

Not a great impression to have your demo video demonstrate how one of your 'most advanced' AI models loses to the most common check-mate pattern in all of chess.

  • For an LLM, just being able to play an entire game of chess without illegal moves and without inventing pieces that aren't on the board is an achievement. Even more so for a live model. Then again, who knows how much the harness helped here

  • Seems more than good enough for a live model though! I can imagine this demo being extended to be a lot nicer to play with. You can just feed the model engine analysis and it can make as high of quality moves as needed. No longer any correlation between the model's understanding of the position and the moves that would be made but I think that's still a really nice improvement when thinking about this as adding live voice interaction to existing chess vs computer functionality rather than adding chess to possible interactions with the latest live voice model.

  • I am an adult, and i lose to elemental school kids in chess.

    I am not so advanced enough as a human being.

  • agree that it’s a weird choice, but more because i don’t need my chat model to play chess at all when chess engines exist.

I'm wondering if Google intends to drop the next major version of Gemini Pro as a total bombshell drop to make Anthropic and OpenAI panic. They seem to be taking their sweet time on frontier model updates.

  • They promised 3.5 Pro at their next or i/o event, but the rumor is that is never going to be released because it would have been embarrassing. They just started letting their engineers use Claude, so it sounds like things may not be going so well with Gemini

Gemini's Live Mode is already much better than GPT Voice in my personal experience, even though it was much dumber. It really does feel like talking to a real person. ChatGPT keeps humming to whatever I say and has some weird voices.

Excited to try this out! Shame on Google for not releasing Gemini 3.8 for Google AI Plus users yet, though.

  • OpenAI just released the new full duplex mode to the API as gpt-live-1 or something like that. Very realistic.

    • Agreed. I've been using GPT-Live-1 this week, with Claude as the backend brain. It's amazing, feels like working with Jarvis. It certainly made me feel there's no point in human telephone support now - but I'm sure I'd find edge cases if that really was something I wanted to build out myself.

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Our company's Google Workspace Business only offers 3.6 flash & thinking in the Gemini App. Has anyone else seen 3.7 or 3.8 roll out?

  • 3.6 Flash and 3.1 Pro are included in the basic Workspace subscription. The Workspace admin has to upgrade your seat for the access to newer models ($17/mo now, $24/mo starting Jan 2027).

    • I'm the admin. I see the "AI Expanded Access" addon option in the dashboard, but it says nothing about which models it includes.

  • I'm still only seeing 3.6 Flash / 3.6 Thinking in my Google Workspace for Education account, and 3.5 Flash-Lite / 3.6 Thinking in my "Plus" plan Gmail account.

  • I have access to both, benchmarks are actually better on 3.7 for my task, but happy improvement over the others.

3.8 is an incredible model even better is the infrs they host for it.

Is this a pure TPU infra? Really high performance solid intelligence.

same experience here. Benchmarks don't capture the magic of having a 24/7 native-speaking conversational partner in a rare language. That alone makes these models worth it

I have been looking for a model that's good for GUI testing. Original computer use isn't right because it's a slow screenshot loop, which doesn't capture transition and animation. Docs says this one does up to 1 FPS. That might be fast enough. If not now, we must be within a few months of high enough sample rates to do it.

  • I find just letting a model record a video it can read frame by frame later works fine, Gemini 3.8 flash would be solid for that

It is completely broken for me. After I ask a single question, it starts replying to itself in an infinite loop. It answers my question, then generates another reply to its own response, and keeps going. At some point, it even starts switching languages randomly.

I swear all day long I was thinking that there will be a new release soon because Gemini 3.1 Pro performance was in the crapper (both via API and Chat)

i've been using gemini (api & pro) since last november last year. for creative writing compared to other llm, it's the best in capturing local nuance, it can even create jokes in my languages. But that just it, i cant rely on other work, hallucinate too often, the deep research are not reliable at all. Too many discussion i've had that it grasp main concept consistent but the supporting concept just plain hallucinate and not consistent. it's tested between pro & flash. This doesnt happen often on open weigh

I’ve noticed antigravity become significantly slower over the last week or so. It’s a bummer because speed is what I care about. Qwen3.8-27b seems on par with 3.8 flash so if I don’t get speed out of a paid service I’ll just use my local model. Sad.

Did anybody watch the Primeagen's video on Google bag-fumbling? Interesting they released on the same day!

  • I'm curious to know how do people in FAANG / Bay Area tech industry see influencers like Primeagen, Theo or Casey Muratori.

    Do they have a good read on the industry or completely out of touch? Or to put it simply, are they spouting bullshit?

    My concern is that some of them arent in the industry or have never been in it.

I love talking to chatgpt voice mode. Voice to voice AI is the only big leap that I see after the RL trained coding models.

  • My issue using the voice mode is the overly expressive mimicry of natural human intonation is distracting and starts to become extremely grating after a while.

    There's one or two I find more understated but I would love a 2026 SOTA V2V model that speaks clearly but without the artificial personality layered on.

    Human interaction/theory of mind relies so much on non-verbal clues for interpreting emotion/intent and so for me having those neurons firing constantly while talking to an LLM just for an emotional no-op is exhausting to put up with for more than a couple minutes.

    There's one male voice that would make me assume someone was sarcastically mocking me if I was talking to an actual person because it's just so over the top.

    • One of the new Siri voice demos sounded like a lover whispering inuendo into my ear.

      I don’t want to be aroused by my turn-by-turn street directions, thanks.

My Gemini app is still stuck at 3.5 Flash-lite and 3.6 Flash so I truly don't understand how Google rolls this stuff out. I don't use Gemini for anything serious so I'm not going to use the API, but it's my go-to for just searching basic information (replacing google search) because it's so darn fast.

  • Yeah still on 3.6 here too, this is like the 4th or 5th model Google has announced since they last gave me access to the latest. And I pay for pro too!

    • I'm on AI Pro and have had 3.8 since announcement day, both in the Android app and in Antigravity CLI.

So I am building a voice assistant to control AI harnesses, and recently tried switching from GLM 5.3 Flash to Gemini 3.8 Flash because of higher tok/s and better rate limits. Before that I also used Kimi K3 and DeepSeek-V4-Flash-0731.

Let me tell you unlike every other mentioned model Gemini 3.8 Flash trial had to be reverted the same day. Instead of simply delegating tasks it would invent additional requirements and implementation details it knew nothing about and no amount of convincing not to do it would work. That's the first time a model failed on me so spectacularly despite having practically same Artificial Analysis Intelligence Index as another model that just worked (and higher than working DS Flash).

The reason I think it is relevant is: Live is likely even stupider model in every way possible (except hearing better than separate STT). So beware using it for agentic scenarios.

From the demo video: "Welcome to the team, we're looking forward to working with you" is sooo creepy in a synthetic AI voice. In general, try not to have agents express sentiment that really should come from a human in your company.

Now Gemini can’t make a summary of a YouTube video on his own. I need to give it the transcript.

When will it be available on Vertex?

  • I've been asking the same about the open weight models, we're buying our tokens from others now, though I think those people are renting hardware from Google in the end anyway

  • vertex is dead, for good reason too

    • Would you mind expanding on this? I thought Google changed the name to 'Gemini Enterprise Agent Platform', and altered focus to 'agent governance' workflows, but that there were no breaking changes from what was offered with Vertex AI.

I'm disappointed with "Extended Thinking" for 3.8 Flash. On the plus side, it's a strong general-purpose model and the cost-benefit is still compelling.

However, the "Extended Thinking" should be renamed to "Slightly Extended Thinking". Considering that it's the maximum thinking option for Gemini Flash in the chat UI, it doesn't actually think a whole lot, leading to an uncomfortably high number of incorrect/poor replies.

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  • It’s little to do with misinformation and much to do with trying to keep their model from collapsing from ingesting too much slop.

[dead]

  • It's a slop factory over there apparently. We were sent the greatest slop deck of all time from their sales team. We now have a :cursed-claude: from a slide where they said "we have access to state of the art models like Claude 3" and nanobanana's interpretation of what Claude looks like as a person. It was clear the person had only read a handful of the nearly 40 slides

I've been using Gemini as a life partner. Talking to it about my feelings thoughts, plan of action and the like. It's great. I've anthropomorphized it and put the computer speaker in a doll's mouth so it seems like it's a real baby.

Looking forward to where this can go.

They should just give up at this point, it's just embarrassing to watch.

As PrimeTime said; these are the guys that invented the 'T' in 'GPT', that deployed their first TPU in 2015, that is using billions on AI - and they are beaten by 300 people startup named Moonshot AI even. People are going to write books about this complete fumble.

  • Strongly disagree with that take. Kimi K3 is a distilled model. I'm not saying that as a moral judgement, or to disparage the team behind it, but distilling and building on that is significantly easier and cheaper than building from the ground up.

    And Gemini is kinda good enough at everything. Never the top, but it is decent at every task, and it is much faster than Kimi K3 and significantly cheaper. Kimi is very focussed on coding, Gemini isn't.

    More importantly, it natively understands text, audio and video. If/when we are able to make the jump to robotics, this becomes essential. As you say, Google has a lot of deep background and deep pockets, they are able to make more of a long play. No idea if it will pay off, but it is way to early in the game to count them out.

    • Distillation does not make a model. There is so much more that goes into creating LLM Ai, traces from better models alone is insufficient. You need a good pre training run as foundation, a great RL reward function to make the other model's traces useful, and serious engineering chops to manage training runs at that scale. (non-exhaustive list)

  • None of the startups are profitable. What exactly are they getting beaten at?

    My advice is to listen less to brainrot 'influencers' that optimise for engagement through sensationalism.

    • Intelligence.

      They have "unlimited" resources and has researched AI since the very beginning - PageRank is a form of AI even. And still, Gemini is behind Claude, GPT, Grok, Muse, GLM, Kimi and is maybe on par with DeepSeek?

      As I said, it is embarrassing.

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  • Have you used Google search at all on the past few months? Every single search brings up a live chat prompt. They're serving fast AI to billions of users at huge scale everyday

    And they're making money doing it.

    Perhaps they don't have the best coding model right now (although 3.8 flash is arguably SOTA at some benchmarks), but is that the be-all and end-all of AI? Only coding matters?

    • > brings up a live chat prompt. They're serving fast AI to billions of users

      Just because it shows up does not mean it is being used. I only click the feedback button to tell them how much I dislike their Ai summaries. They have removed that feedback button this week. Can't take the heat I suppose.

      I've also never know anyone who finds them trustworthy nor heard someone say anything besides how they also dislike them

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    • It’s so annoying that everyone just points to the Artificial Analysis index (or even worse, Epoch AI, where part of the score is how good the AI is at chess) as a proxy for “how good” the model is.

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  • Yeah, you should definitely sell all Google stock you may hold, immediately, to me, before it's too late. I'm just a sucker, I'm happy to buy from you.

  • And yet they might become one of the winners "in the end" because they have near infinite money and others have not. I will drink tea and watch the show.

    • > they have near infinite money and others have not

      Given the very high margins on inference, once volume is large enough the other can also start printing enough money.