FluentPetFluentPet (Leo Trottier) · 글
HexTile 상의 버튼들은 학습자의 인지 체계 내에서 자동으로 그룹화됨.HexTile 간의 물리적 거리가 가까워도, 서로 다른 타일 위에 있으면 별개의 군집(cluster)으로 인식됨.HexTile 위에 배치하는 것은 학습자가 공간적 범주(spatial categories)를 형성하도록 돕는 핵심 전략임.HexTile은 경계선 역할을 하며, 그 위에 있는 버튼들을 위한 지각적 "컨테이너(containers)"를 형성함.Just-Noticeable Difference (JND)라고 함.JND는 고정된 수치가 아니며, 원래 자극에 대한 비율로 결정됨.Weber's Law를 ΔI/I = k로 공식화함.JND 역치를 넘어야만 별개로 인식됨.dichromatic color vision (이색성 색각)을 가짐: 인간의 3종 원추세포 대비 2종의 원추세포만 보유함.FluentPet의 제한된 color palette(색상 팔레트)는 학습자(반려동물)에게 매우 의미가 있음.spatial resolution(공간 해상도)도 중요함.button(버튼)에 적힌 텍스트 라벨을 읽을 수 없음(애초에 글자를 읽지 못함).soundboard(사운드보드) 사용 시 일반적인 거리인 1~6피트 내에서는 형태, 위치, 색상 대비를 충분히 인지할 수 있음.flicker-fusion rate(플리커 융합 빈도): 인간보다 높아서 급격한 움직임이나 변화에 훨씬 민감함.visual field(시야)를 가지나, binocular overlap(양안 중첩) 범위는 더 좁음.button이 눌렸을 때 빛이 나거나, 발 밑에서 물리적으로 움직이는 등 움직임 피드백을 제공하는 버튼이 정적인 지표보다 학습자에게 더 두드러지게(perceptually salient) 느껴질 수 있음.soundboard를 문제없이 사용할 수 있음.soundboard에 다가갈 때마다 인지 시스템은 놀라운 작업을 수행함.Figure-ground processing(도형-배경 처리): HexTile(헥스타일)로부터 개별적인 button을 분리하여 인식함.Gestalt grouping(게슈탈트 군집화): 여러 button을 공간적인 클러스터(무리)로 조직화함.Weber's Law(베버의 법칙): 색상과 대비 차이가 인식의 임계값을 넘는지 결정함.button 사용.How a Soundboard Becomes a Map of Separate Buttons Apr 24, 2026 By Leo Trottier The perception science that explains how your learner sees their board Before your learner can learn what any button means, their brain has to solve a more basic problem — one so fundamental we rarely think about it. They have to look at a flat surface covered with circular objects and perceive it as a collection of separate, pressable things. Each one distinct from the others and from the surface underneath. This sounds trivial. It isn't. The raw visual data entering your learner's eyes is just a wash of light, shadow, color, and edges. Turning that into "this is a button, and that is a different button" requires sophisticated neural processing that scientists have been studying for over a century — and the principles they've discovered explain a lot about why certain soundboard designs work and others don't. Figure and Ground: The Brain's First Job Every visual scene gets divided, instantly and automatically, into two categories: figure (the object of focus, perceived as having definite shape and appearing "in front") and ground (the background, perceived as shapeless and extending behind). This happens before conscious thought. It's not a decision. It's a reflex. Danish psychologist Edgar Rubin formalized this principle in his 1915 doctoral thesis. Using what became one of psychology's most famous images: the Rubin vase. You see either a white vase or two dark face profiles — never both simultaneously. The image hasn't changed. Your brain's figure-ground assignment has. What determines which element becomes "figure"? Research in perceptual psychology has identified several factors: smaller regions tend to be seen as figure. Enclosed regions win over surrounding ones. Higher-contrast elements pop forward. Convex shapes dominate concave ones. And critically, elements in the lower portion of a visual field are more likely to be perceived as figure — which matters when your learner is looking down at a soundboard on the floor. Every button on a soundboard must register as "figure" against the tile "ground." This happens most reliably when buttons are physically raised above the tile surface, when they differ in color or texture from the tile, and when shadows or depth cues reinforce the separation. A flat sticker on a flat surface? The brain may not parse that as a separate object at all. A raised, rounded button seated in a recessed tile? Figure-ground separation is immediate and effortless. The Laws of Grouping: How Buttons Become Organized Once individual buttons are percei
ved, the brain's next task is organizing them. This is where the Gestalt psychologists come in — a group of German researchers whose work, beginning in the early twentieth century, revealed that perception isn't just a collection of parts. The brain spontaneously organizes elements into structured wholes. Max Wertheimer's foundational 1923 paper described several laws of perceptual grouping, all of which operate on a soundboard: Proximity: Elements close together are perceived as belonging together. Buttons on the same HexTile are automatically grouped in the learner's perception, while buttons on different tiles feel like separate clusters — even if the physical distance is small. This is why keeping related words (food words, activity words) on the same tile helps learners build spatial categories. Similarity: Elements that share visual characteristics — color, shape, size — are grouped. If all food-related buttons are one color and all activity buttons are another, the learner's brain groups them before any learning occurs. The perceptual system does organizational work for free. Continuity: Elements arranged along a line or curve are perceived as related. A row of buttons feels like a sequence. A cluster feels like a group. Common region: Elements enclosed within the same boundary are grouped. Each HexTile functions as a boundary, creating perceptual "containers" for the buttons it holds. These principles have been confirmed across species , including in pigeons, fish, and primates. While direct Gestalt research on dogs and cats is limited, the underlying neural mechanisms of perceptual organization are highly conserved across mammals. Your learner's brain is grouping buttons before it understands what any of them do. Just-Noticeable Differences: How Much Contrast Is Enough? Here's where the science gets very practical. In 1834, German physiologist Ernst Heinrich Weber published De Tactu, describing experiments where blindfolded subjects compared weights. He discovered something profound: the smallest difference a person can detect between two stimuli — the just-noticeable difference, or JND — isn't a fixed amount. It's a p roportion of the original stimulus. If you're holding a 100-gram weight, you can notice the addition of about 2 grams. But if you're holding a 1,000-gram weight, you need about 20 grams of change to notice anything different. The ratio stays constant even as the absolute amounts change. Gustav Fechner formalized this mathematically in 1860 as Weber's Law: ΔI/I = k. For button design, Weber's Law means that contrast between buttons
must exceed the learner's JND threshold to be perceived as distinct. Two buttons that are slightly different shades of the same color may fall below threshold — the brain literally cannot tell them apart. Two buttons in clearly different color families (blue versus yellow, for instance) are far above threshold and effortlessly distinguishable. This is where the biology of animal vision becomes directly relevant. Dogs have: dichromatic color vision — two types of cone photoreceptors compared to our three — which means they see the world primarily in blues and yellows. Reds and greens blur together into brownish-gray. Cats have a similar dichromatic palette. A red button and a green button that look completely different to you may be nearly identical to your learner. But a blue button and a yellow button? That contrast is vivid for both dogs and cats. Interestingly, a 2013 study by Kasparson, Badridze, and Maximov found that dogs actually prefer to use color over brightness when discriminating between stimuli — overturning the assumption that color doesn't matter much for dichromatic animals. Their limited color palette is quite meaningful to them. What About Acuity? Color isn't the only visual factor. Your learner's spatial resolution matters too. Dogs have visual acuity of approximately 20/75 — meaning they see from 20 feet what a human with normal vision sees from 75 feet. Cats are in a similar range, roughly 20/100 to 20/200 . Neither species can read the text labels on buttons (not that they would — they can't read). But they can perceive shape, location, and color contrast at the distances involved in soundboard use (typically 1–6 feet). What dogs and cats excel at is motion detection. Both species have higher flicker-fusion rates than humans, meaning they're more sensitive to rapid movements and changes. Dogs also have a wider visual field (approximately 240° versus our 180°), though with less binocular overlap. This means buttons that provide motion feedback — lighting up when pressed, or physically moving under a paw — may be more perceptually salient to your learner than static indicators. And because both species see well in dim light (cats have six to eight times better night vision than humans), soundboards remain usable during the dawn and dusk hours when many learners are most active. Putting It Together Your learner's perceptual system is doing remarkable work every time they approach the soundboard. Figure-ground processing separates individual buttons from tiles. Gestalt grouping organizes buttons into spatial clusters. Weber's Law deter
mines whether color and contrast differences are above threshold. And the specific characteristics of canine and feline vision — dichromatic color, moderate acuity, excellent motion detection — shape what's salient and what's invisible. None of this is "learning" in the way we usually think about it. It's the perceptual infrastructure that makes learning possible. Get the perception right — distinct buttons, meaningful color contrasts, organized spatial layout — and you've cleared the path for everything that follows. References Rubin, E. (1915). Synsoplevede Figurer. Overview Wertheimer, M. (1923). Laws of organization in perceptual forms. Overview Weber, E.H. (1834). De Tactu. Explanation Fechner, G. (1860). Elemente der Psychophysik. Overview Kasparson, A.A., Badridze, J., & Maximov, V.V. (2013). Colour cues proved to be more informative for dogs than brightness. Proceedings of the Royal Society B. PMC Neitz, J., Geist, T., & Jacobs, G.H. (1989). Color vision in the dog. Visual Neuroscience. Related: PMC5717654 Miller, P.E. & Murphy, C.J. (1995). Vision in dogs. JAVMA. -e Share Share Reading next Meet Tiffany and Maple, a German Shepherd who started their button journey at just 3 months old. Apr 16, 2026 Calvin Docking Meet Melissa and Sam: How Buttons Helped Sam Advocate for Himself Jul 27, 2026 Calvin Docking Leave a comment This site is protected by hCaptcha and the hCaptcha Privacy Policy and Terms of Service apply. Name Email Message Submit