Bradley Love

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Bradley Love

Bradley Love

@ProfData

Senior research scientist at @LosAlamosNatLab. Former prof at @ucl and @UTAustin. CogSci, AI, Comp Neuro, AI for scientific discovery Also @profdata on Bluesky

London, UK Sumali Eylül 2014
1.6K Sinusundan5.9K Mga Tagasunod
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Alison Preston
Alison Preston@AliPrestonPhD·
Every time you experience something new, your brain faces a decision: Should it update an existing memory or create a new one? In our new paper in @JNeurosci, we isolate that exact decision, moment-by-moment during learning. 🧵
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Bradley Love
Bradley Love@ProfData·
Personally, I will be looking to mentor projects with Mahindra Rautela on (1) Search and Evaluation for test-time AI Reasoning, and (2) model distillation to compress large physics foundation models. Please feel free to get in touch with questions or to express interest. 2/2
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Bradley Love
Bradley Love@ProfData·
Are you a graduate student interested in working at Los Alamos National Laboratory (LANL) this summer? LANL has student internships, apply here: lanl.jobs/search/jobdeta… 1/2
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Bradley Love
Bradley Love@ProfData·
Intuitive cell types don't necessarily play the ascribed functional role in the overall computation. This is not a message the field wants to hear as it suggests better baselines, controls, and some reflection. elifesciences.org/reviewed-pre... w @ken_lxl , @robmok.bsky.social @ 2/2
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Bradley Love
Bradley Love@ProfData·
"The inevitability and superfluousness of cell types in spatial cognition". Intuitive cell types are found in random artificial networks using the same selection criteria neuroscientists use with actual data. elifesciences.org/reviewed-pre... 1/2
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Bradley Love
Bradley Love@ProfData·
Working with monkey data, we found neural representations stretched across brain regions to emphasize task relevant features on a trial-by-trial basis. Spike timing mattered over spike rate. Deep nets did the same. nature.com/articles/s4146… 2/2
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Bradley Love
Bradley Love@ProfData·
Exciting "new" work illustrating our broken publishing system. @seb_bobadilla presented this work online at neuromatch 2.0 at the height of the pandemic. Then, @xinyazhang_ worked years on addressing reviewer comments, which added some rigor but didn't change the message. 1/2
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Bradley Love
Bradley Love@ProfData·
We developed a straightforward method of combining confidence-weighted judgments for any number of humans and AIs. w @yanezlang, Omar Minero, @ken_lxl 2/2
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Bradley Love
Bradley Love@ProfData·
When AI surpasses human performance, what's left for humans? We find that human judgment boosts performance of human-AI teams because humans and machines make different errors. cell.com/patterns/fullt… 1/2
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Ilia Sucholutsky
Ilia Sucholutsky@sucholutsky·
🧵🎉 Our mega-paper is finally published in TMLR! We're "Getting Aligned on Representational Alignment" - the degree to which internal representations of different (biological & artificial) information processing systems agree. 🧠🤖🔬🔍 #CognitiveScience #Neuroscience #AI
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Bradley Love
Bradley Love@ProfData·
New blog w @ken_lxl, “Giving LLMs too much RoPE: A limit on Sutton’s Bitter Lesson”. The field has shifted from flexible data-driven position representations to fixed approaches following human intuitions. Here’s why and what it means for model performance bradlove.org/blog/position-…
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Bradley Love
Bradley Love@ProfData·
Bonus: I found it counterintuitive that (in theory) the learning problem is the same for any word ordering. Aligning proof and simulation was key. Now, new avenues open to address positional biases, better training and knowing when to trust LLMs w @ken_lxl, @ramscar1, @XinyiXu6
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Bradley Love@ProfData·
When LLMs diverge from one another because of word order (data factorization), it indicates their probability distributions are inconsistent, which is a red flag (not trustworthy). We trace deviations to self-attention positional and locality biases. 2/2 arxiv.org/abs/2505.08739
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Bradley Love
Bradley Love@ProfData·
"Probability Consistency in Large Language Models: Theoretical Foundations Meet Empirical Discrepancies" Oddly, we prove LLMs should be equivalent for any word ordering: forward, backward, scrambled. In practice, LLMs diverge from one another. Why? 1/2 arxiv.org/abs/2505.08739
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touchNEUROLOGY
touchNEUROLOGY@touchNEUROLOGY·
🧠 We speak with Prof. Bradley Love about BrainGPT—an AI model helping researchers process neuroscientific data faster than ever. 🔍 How does BrainGPT work? 🚀 Where is AI taking brain research next? 🎧touchneurology.com/podcast/braing… @ProfData
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Bradley Love
Bradley Love@ProfData·
"Coordinating multiple mental faculties during learning" There's lots of good work in object recognition and learning, but how do we integrate the two? Here's a proposal and model that is more interactive than perception provides the inputs to cognition. nature.com/articles/s4159…
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