ScrollSet Examples

What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.
What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id description speed
Air The most common medium for sound, with speed influenced by temperature, humidity, and pressure 343
Water A denser medium than air, allowing sound to travel faster 1482
Steel A dense and elastic solid, sound travels much faster compared to air and water 5960
Glass A brittle solid with a high speed of sound due to its rigidity 5200
Wood (Oak) A natural solid with varying speed depending on density and elasticity 3850
Aluminum A lightweight and strong metal, widely used in engineering 6320
Rubber A flexible solid with much slower speed of sound compared to metals 1500
Concrete A composite material used in construction, with speed influenced by its density and composition 3200
Copper A highly conductive metal, also known for its high speed of sound 3900
Lead A dense metal with a relatively slower speed of sound due to its softness 1200
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id description level wikipedia
Stock Trading The buying and selling of shares of publicly traded companies Surface
Options Financial instruments that give the buyer the right, but not the obligation, to buy or sell an asset at a predetermined price Surface
Bonds Debt securities issued by entities to raise capital, with a promise to pay back with interest Surface
Forex The market for trading foreign currencies Surface
Black-Scholes A mathematical model for pricing options Basic
CAPM Capital Asset Pricing Model, used to determine the expected return on an asset Basic
Arbitrage The practice of taking advantage of price differences in different markets Basic
Greeks Risk measures for options, including Delta, Gamma, Theta, Vega, and Rho Basic
Stochastic Calculus A branch of mathematics used to model random processes Intermediate
Monte Carlo A statistical technique using random sampling to approximate solutions Intermediate
Volatility Smile A pattern in which options with different strike prices have different implied volatilities Intermediate
Ito's Lemma A key result in stochastic calculus used in the derivation of the Black-Scholes equation Advanced
Brownian Motion A continuous-time stochastic process used to model random movements Advanced
Martingales A class of stochastic processes with specific properties useful in financial modeling Advanced
HJM Heath-Jarrow-Morton framework, a model for the evolution of interest rates Advanced
Malliavin Calculus A branch of mathematics providing tools for differentiating stochastic processes Expert
Levy Processes Stochastic processes with stationary independent increments Expert
Rough Volatility A recent development in financial modeling that captures roughness in volatility paths Expert
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id description formula units
Stress in Beam Determines the internal forces within a beam stress = moment*distanceFromNeutralAxis/secondMomentOfArea NewtonPerSquareMeter
Shear Force in Beam Measures the force that causes parts of a material to slide past each other in opposite directions shearForce = ∫(dMoment/dx) dx Newton
Bending Moment in Beam Calculates the reaction induced in a structural element when an external force is applied, causing the element to bend bendingMoment = ∫(shearForce dx) NewtonMeter
Deflection of Beam Calculates the displacement of a point on the beam under load deflection = load*length^3 / (48*modulusOfElasticity*secondMomentOfArea) Meter
Load-Bearing Capacity Determines the maximum weight the structure can hold loadBearingCapacity = allowableStress * area Newton
Thermal Conductivity Measures the rate at which heat passes through a material heatTransfer = thermalConductivity * area * temperatureDifference / thickness WattPerMeterKelvin
R-Value Indicates the resistance of a material to heat flow rValue = thickness / thermalConductivity SquareMeterKelvinPerWatt
Heat Loss Calculates the total heat loss through a structure heatLoss = area * uValue * temperatureDifference Watt
Concrete Mix Design Determines the proportions of materials in concrete concreteMix = (cement : sand : aggregate : water) Ratio
Roof Slope Determines the pitch of the roof roofSlope = rise / run Ratio
Brick Calculation Estimates the number of bricks needed for a wall numberOfBricks = wallArea / brickArea Integer
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id description formula shortFormula units
Stress in Beam Determines the internal forces within a beam stress = moment*distanceFromNeutralAxis/secondMomentOfArea Οƒ = M*c/I NewtonPerSquareMeter
Shear Force in Beam Measures the force that causes parts of a material to slide past each other in opposite directions shearForce = ∫(dMoment/dx) dx V = ∫(dM/dx) dx Newton
Bending Moment in Beam Calculates the reaction induced in a structural element when an external force is applied, causing the element to bend bendingMoment = ∫(shearForce dx) M = ∫(V dx) NewtonMeter
Deflection of Beam Calculates the displacement of a point on the beam under load deflection = load*length^3 / (48*modulusOfElasticity*secondMomentOfArea) Ξ΄ = PL^3 / (48EI) Meter
Natural Frequency of Bridge Determines the frequency at which the bridge will naturally vibrate naturalFrequency = (1/2Ο€) * √(stiffness/mass) f_n = (1/2Ο€) * √(k/m) Hertz
Buckling Load Determines the critical load at which a column will buckle criticalLoad = Ο€^2*modulusOfElasticity*secondMomentOfArea / (effectiveLengthFactor*length)^2 P_cr = Ο€^2*EI / (KL)^2 Newton
Tensile Strength Measures the resistance of a material to breaking under tension tensileStrength = load/area Οƒ_t = P/A NewtonPerSquareMeter
Load-Bearing Capacity Determines the maximum weight the bridge can hold loadBearingCapacity = allowableStress * area P = f * A Newton
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id description density hardness growthRate durability moistureContent workability
Douglas Fir Commonly used in construction for its strength and availability 530 660 24 Moderate 12-15% Good
Southern Yellow Pine Known for its high density and strength, often used in heavy construction 580 870 20 Moderate 8-12% Moderate
White Oak Highly durable and resistant to moisture, used for both interior and exterior applications 770 1360 12 High 8-12% Fair
Black Walnut Valued for its workability and aesthetic appeal, commonly used in fine furniture and finishes 610 1010 24 High 8-12% Excellent
Red Maple Versatile and widely available, used for furniture and flooring 630 950 24 Moderate 6-8% Good
Eastern White Pine Lightweight and easy to work with, used in millwork and cabinetry 380 380 36 Low 12-15% Excellent
Western Red Cedar Naturally resistant to decay, used for outdoor applications like decking and siding 390 350 24 High 10-12% Good
Sugar Maple Hard and strong, ideal for flooring and butcher blocks 740 1450 12 Moderate 6-8% Fair
Sitka Spruce Known for its high strength-to-weight ratio, used in aircraft and marine applications 450 510 24 Low 12-15% Good
Ponderosa Pine Widely used in construction for its workability and availability 420 460 18 Low 12-15% Good
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id strength range mediatorParticle interactionType massless unification discoveryYear discoverer mathematicalFormulation experimentalEvidence quantumTheory classicalTheory applications symmetry strengthScale
Gravity 6.6743e-11 Infinity Graviton (theoretical) All particles with mass true Not unified with other forces yet 1687 Isaac Newton F = G * (m1 * m2) / r^2 Cavendish experiment General Relativity (attempts at Quantum Gravity) Newton's Law of Gravitation Orbits, planetary motion, tides Spacetime symmetry 1
Electromagnetic 1 Infinity Photon Charged particles true Unified with weak force (Electroweak theory) 1864 James Clerk Maxwell F = k * (q1 * q2) / r^2 Hertz's experiments on electromagnetic waves Quantum Electrodynamics (QED) Maxwell's Equations Electricity, magnetism, light Gauge symmetry (U(1)) 2
Weak 0.00001 1e-18 W and Z bosons All fermions false Unified with electromagnetic force (Electroweak theory) 1934 Enrico Fermi Described by Fermi's interaction Observed in beta decay Quantum Flavour Dynamics (QFD) Fermi's Theory of Beta Decay Radioactive decay, nuclear fusion Gauge symmetry (SU(2)) 3
Strong 1 1e-15 Gluon Quarks and gluons true Part of Grand Unified Theories (GUTs) 1973 Murray Gell-Mann Described by Quantum Chromodynamics (QCD) Deep inelastic scattering experiments Quantum Chromodynamics (QCD) Does not have a classical counterpart Binding protons and neutrons in nuclei Gauge symmetry (SU(3)) 4
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id yearAppeared creditedTo country importanceRank application impact
Newton's Second Law (F = ma) 1687 Isaac Newton England 1 Classical mechanics Fundamental equation of motion, used in all areas of physics
Maxwell's Equations 1865 James Clerk Maxwell Scotland 2 Electromagnetism Unified electricity, magnetism, and light; basis for modern electrodynamics
SchrΓΆdinger Equation 1926 Erwin SchrΓΆdinger Austria 3 Quantum mechanics Describes the behavior of matter and energy at the atomic and subatomic level
Einstein's Energy-Mass Equivalence (E = mc^2) 1905 Albert Einstein Germany/Switzerland 4 Special relativity, nuclear physics Relates energy to mass, key to understanding nuclear reactions and energy
Hubble's Law 1929 Edwin Hubble United States 5 Cosmology Established the expansion of the universe, cornerstone of Big Bang theory
Heisenberg's Uncertainty Principle 1927 Werner Heisenberg Germany 6 Quantum mechanics Fundamental limit on precision of measurements at quantum scale
Boltzmann's Entropy Equation 1877 Ludwig Boltzmann Austria 7 Thermodynamics, statistical mechanics Relates entropy to number of microscopic states, foundation of statistical physics
Planck's Energy Quantum 1900 Max Planck Germany 8 Quantum mechanics Introduced the concept of energy quanta, launching quantum theory
Dirac Equation 1928 Paul Dirac England 9 Quantum mechanics, special relativity Relativistic quantum mechanical wave equation, predicted antimatter
Euler's Equation (e^(i*pi) + 1 = 0) 1748 Leonhard Euler Switzerland 10 Complex analysis Relates fundamental constants e, i, pi; considered most beautiful equation
Principle of Least Action 1744 Pierre Louis Maupertuis France 11 Classical mechanics Alternative formulation of mechanics using variational principle
Noether's Theorem 1915 Emmy Noether Germany 12 Theoretical physics Connects symmetries to conservation laws, fundamental to modern physics
Navier-Stokes Equations 1822 Claude-Louis Navier, George Stokes France, Ireland 13 Fluid dynamics Describes motion of viscous fluids, used in aerodynamics, weather, & more
Riemann Hypothesis 1859 Bernhard Riemann Germany 14 Number theory Conjectured rule for distribution of prime numbers, unproven but very important
Gauss's Law 1835 Carl Friedrich Gauss Germany 15 Electrostatics Relates electric field to charge distribution, part of Maxwell's equations
Ampère's Circuital Law 1826 André-Marie Ampère France 16 Magnetostatics Relates magnetic field to electric current, part of Maxwell's equations
Faraday's Law of Induction 1831 Michael Faraday England 17 Electromagnetism Describes how changing magnetic field induces electric field
Boyle's Law 1662 Robert Boyle Ireland 18 Thermodynamics Relates pressure and volume of gas at constant temperature
Fourier's Heat Equation 1822 Joseph Fourier France 19 Heat transfer Describes conduction of heat in solids, used in many applications
Coulomb's Law 1785 Charles-Augustin de Coulomb France 20 Electrostatics Describes force between electric charges, foundation of electrostatics
Kepler's Laws of Planetary Motion 1609 Johannes Kepler Germany 21 Astronomy Describes motion of planets around the Sun, basis for Newton's gravity
Lorentz Force Law 1895 Hendrik Lorentz Netherlands 22 Electromagnetism Describes force on charge moving in electromagnetic field
Biot-Savart Law 1820 Jean-Baptiste Biot, FΓ©lix Savart France 23 Magnetostatics Describes magnetic field generated by electric current
Fermat's Principle of Least Time 1662 Pierre de Fermat France 24 Optics Light travels path that takes least time, explains refraction and reflection
Fresnel Equations 1823 Augustin-Jean Fresnel France 25 Optics Describe reflection and transmission of light at interface between media
Snell's Law 1621 Willebrord Snellius Netherlands 26 Optics Relates angles of incidence and refraction for light crossing boundary
Hooke's Law 1660 Robert Hooke England 27 Mechanics, materials science Linearly relates force and extension in spring, describes elastic materials
Bragg's Law 1913 William Henry Bragg, William Lawrence Bragg England 28 Crystallography Describes condition for diffraction by crystal lattice planes
Carnot's Theorem 1824 Sadi Carnot France 29 Thermodynamics Limits the maximum efficiency of any heat engine
Lagrange's Equations 1788 Joseph-Louis Lagrange Italy/France 30 Classical mechanics Reformulates Newtonian mechanics, basis for Hamiltonian mechanics
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id yearAppeared creditedTo country applications fieldOfPhysics complexity equation
Newton's Second Law 1687 Isaac Newton England 100 Mechanics 2 F = ma
Einstein's Mass-Energy Equivalence 1905 Albert Einstein Switzerland 50 Relativity 5 E = mc^2
SchrΓΆdinger Equation 1926 Erwin SchrΓΆdinger Austria 100 Quantum Mechanics 7 i\hbar\frac{\partial}{\partial t}\psi = \hat{H}\psi
Maxwell's Equations 1865 James Clerk Maxwell Scotland 50 Electromagnetism 6 \begin{align*} \nabla \cdot \mathbf{E} &= \frac{\rho}{\epsilon_0} \\ \nabla \cdot \mathbf{B} &= 0 \\ \nabla \times \mathbf{E} &= -\frac{\partial \mathbf{B}}{\partial t} \\ \nabla \times \mathbf{B} &= \mu_0 \mathbf{J} + \mu_0 \epsilon_0 \frac{\partial \mathbf{E}}{\partial t} \end{align*}
Boltzmann Equation 1872 Ludwig Boltzmann Austria 30 Statistical Mechanics 8 \frac{\partial f}{\partial t} + \mathbf{v} \cdot \nabla f + \mathbf{a} \cdot \frac{\partial f}{\partial \mathbf{v}} = \left( \frac{\partial f}{\partial t} \right)_\text{collision}
Planck's Equation 1900 Max Planck Germany 40 Quantum Mechanics 6 E = h\nu
Heisenberg Uncertainty Principle 1927 Werner Heisenberg Germany 20 Quantum Mechanics 5 \Delta x \Delta p \geq \frac{\hbar}{2}
Hubble's Law 1929 Edwin Hubble USA 25 Cosmology 4 v = H_0 d
Fourier Transform 1822 Joseph Fourier France 70 Mathematical Physics 6 \hat{f}(\xi) = \int_{-\infty}^{\infty} f(x) e^{-2\pi i x \xi} \, dx
Lorentz Transformation 1904 Hendrik Lorentz Netherlands 20 Relativity 6 \begin{align*} t' &= \gamma \left( t - \frac{vx}{c^2} \right) \\ x' &= \gamma (x - vt) \end{align*}
Dirac Equation 1928 Paul Dirac UK 30 Quantum Mechanics 9 \left( i\gamma^\mu \partial_\mu - m \right) \psi = 0
Navier-Stokes Equation 1822 Claude-Louis Navier, George Gabriel Stokes France, UK 50 Fluid Mechanics 9 \rho \left( \frac{\partial \mathbf{u}}{\partial t} + (\mathbf{u} \cdot \nabla) \mathbf{u} \right) = -\nabla p + \mu \nabla^2 \mathbf{u} + \mathbf{f}
Ohm's Law 1827 Georg Ohm Germany 100 Electromagnetism 2 V = IR
Hooke's Law 1678 Robert Hooke England 60 Mechanics 2 F = -kx
Kepler's Third Law 1619 Johannes Kepler Germany 30 Astronomy 3 T^2 \propto r^3
Bernoulli's Principle 1738 Daniel Bernoulli Switzerland 50 Fluid Mechanics 4 p + \frac{1}{2}\rho v^2 + \rho gh = \text{constant}
Faraday's Law of Induction 1831 Michael Faraday England 40 Electromagnetism 5 \mathcal{E} = -\frac{d\Phi_B}{dt}
Stefan-Boltzmann Law 1879 Josef Stefan, Ludwig Boltzmann Austria 30 Thermodynamics 5 j^* = \sigma T^4
Lenz's Law 1834 Heinrich Lenz Russia 30 Electromagnetism 4 \mathcal{E} = -\frac{d\Phi_B}{dt}
Coulomb's Law 1785 Charles-Augustin de Coulomb France 50 Electrostatics 3 F = k_e \frac{q_1 q_2}{r^2}
Fermi-Dirac Statistics 1926 Enrico Fermi, Paul Dirac Italy, UK 40 Quantum Mechanics 7 f(E) = \frac{1}{e^{(E - \mu)/kT} + 1}
Bose-Einstein Statistics 1924 Satyendra Nath Bose, Albert Einstein India, Germany 30 Quantum Mechanics 7 f(E) = \frac{1}{e^{(E - \mu)/kT} - 1}
Wien's Displacement Law 1893 Wilhelm Wien Germany 25 Thermodynamics 5 \lambda_\text{peak} T = b
Poisson's Equation 1813 SimΓ©on Denis Poisson France 30 Mathematical Physics 6 \nabla^2 \phi = -\frac{\rho}{\epsilon_0}
Ampère's Law 1826 André-Marie Ampère France 40 Electromagnetism 4 \nabla \times \mathbf{B} = \mu_0 \mathbf{J}
Biot-Savart Law 1820 Jean-Baptiste Biot, FΓ©lix Savart France 30 Electromagnetism 5 d\mathbf{B} = \frac{\mu_0}{4\pi} \frac{I d\mathbf{l} \times \mathbf{\hat{r}}}{r^2}
Kirchhoff's Circuit Laws 1845 Gustav Kirchhoff Germany 50 Electrical Circuits 3 \begin{align*} \sum I = 0 \\ \sum V = 0 \end{align*}
Gibbs Free Energy 1873 Josiah Willard Gibbs USA 30 Thermodynamics 6 G = H - TS
Avogadro's Law 1811 Amedeo Avogadro Italy 30 Chemistry 3 V \propto n
de Broglie Hypothesis 1924 Louis de Broglie France 25 Quantum Mechanics 6 \lambda = \frac{h}{p}
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id averageHibernationDuration bodyTemperatureDrop heartRateReduction breathingRateReduction energySaved habitat diet
Brown Bear 180 10 20 5 50 Forests Omnivorous
Arctic Ground Squirrel 240 60 100 25 60 Tundra Herbivorous
Common Poorwill 120 12 20 5 30 Deserts Insectivorous
European Hedgehog 150 40 50 10 70 Woodlands Insectivorous
Fat-tailed Dwarf Lemur 180 15 15 5 40 Tropical Forests Frugivorous
Box Turtle 150 20 10 2 50 Forests and Grasslands Omnivorous
Big Brown Bat 180 30 100 20 80 Caves and Forests Insectivorous
Alpine Marmot 180 50 90 15 70 Mountains Herbivorous
Raccoon 120 10 30 5 40 Forests and Urban Areas Omnivorous
Eastern Chipmunk 90 10 20 5 30 Forests Omnivorous
Wood Frog 180 30 0 0 60 Wetlands Insectivorous
Snapping Turtle 180 20 10 2 50 Freshwater Omnivorous
Blanding's Turtle 150 20 10 2 50 Freshwater Omnivorous
Garter Snake 180 10 10 5 40 Grasslands Carnivorous
Bumblebee 210 20 10 10 60 Gardens and Meadows Nectar and Pollen
Groundhog 150 40 50 10 70 Fields and Forests Herbivorous
Bear 120 12 10 5 50 Forests and Mountains Omnivorous
Jerboa 180 15 20 5 40 Deserts Herbivorous
Little Brown Bat 180 30 100 20 80 Caves and Forests Insectivorous
Deer Mouse 180 20 10 5 50 Forests and Grasslands Omnivorous
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This demonstrates putting Tab Separated Values (TSVs) directly in Scroll files.
Although this approach is handy for small datasets, it does not scale as well as ScrollSets.
Hormone_Name Chemical_Formula Min_Level_mmol_L Max_Level_mmol_L Peptide_Hormone Steroid_Hormone Amine_Hormone Half_Life_Minutes Pulsatile_Release Endocrine_Gland_ID
Insulin C₂₅₇Hβ‚ƒβ‚ˆβ‚ƒN₆₅O₇₇S₆ 0.0000365 0.00018 true false false 6 false 4
Glucagon C₁₅₃Hβ‚‚β‚‚β‚…N₄₃O₄₉S 0.00000125 0.000009 true false false 5 false 4
Thyroid hormones (T3 and T4) C₁₅H₁₁Iβ‚„NOβ‚„ (T4), C₁₅H₁₂I₃NOβ‚„ (T3) 0.0012 (T4), 0.0000015 (T3) 0.0023 (T4), 0.0000025 (T3) false false true 10080 (T4), 2880 (T3) false 2
Cortisol C₂₁H₃₀Oβ‚… 0.138 0.69 false true false 60 true 3
Adrenaline (epinephrine) C₉H₁₃NO₃ 0.00000546 0.0000218 false false true 2 false 3
Noradrenaline (norepinephrine) Cβ‚ˆH₁₁NO₃ 0.00000709 0.0000568 false false true 2 false 3
Growth hormone C₉₉₀H₁₅₂₉N₂₆₃O₃₀₀S₇ 3e-7 0.00004 true false false 20 true 1
Testosterone C₁₉Hβ‚‚β‚ˆOβ‚‚ 0.00934 0.0347 false true false 60 false 5
Estrogen Cβ‚β‚ˆHβ‚‚β‚„Oβ‚‚ (Estradiol) 1e-7 4e-7 false true false 1440 false 5
Progesterone C₂₁H₃₀Oβ‚‚ 0.000032 0.00159 false true false 1440 false 5
Prolactin C₁₉₉H₃₁₀N₅₆O₅₉S 8.7e-7 0.0000043 true false false 30 true 1
Oxytocin C₄₃H₆₆N₁₂O₁₂Sβ‚‚ 7e-8 7e-8 true false false 3 true 1
Vasopressin (antidiuretic hormone) C₄₆H₆₅N₁₅O₁₂Sβ‚‚ 2.8e-7 2.8e-7 true false false 10 true 1
Parathyroid hormone C₄₁₁H₆₂₆N₁₀₆O₁₁₀Sβ‚‚ 0.0000043 0.000009 true false false 4 true 6
Calcitonin C₁₄₅Hβ‚‚β‚„β‚€Nβ‚„β‚„Oβ‚„β‚ˆSβ‚‚ 3e-7 0.0000065 true false false 10 false 2
Leptin C₇₇₇H₁₂₁₂N₂₁₂O₂₄₃S₃ 0.0000027 0.000027 true false false 90 false 0
Ghrelin C₁₄₉Hβ‚‚β‚„β‚…Nβ‚„β‚…Oβ‚„β‚ˆ 9.6e-7 0.0000079 true false false 30 true 0
Melatonin C₁₃H₁₆Nβ‚‚Oβ‚‚ 1e-7 5e-7 false false true 40 true 7
Serotonin C₁₀H₁₂Nβ‚‚O 6e-7 0.000002 false false true 10 false 0
Dopamine Cβ‚ˆH₁₁NOβ‚‚ 1e-7 2e-7 false false true 2 false 0
Follicle-stimulating hormone (FSH) C₄₃₇Hβ‚†β‚ˆβ‚‚N₁₂₂O₁₃₄S₁₃ 0.0025 0.021 true false false 180 true 1
Luteinizing hormone (LH) Cβ‚…β‚†β‚ˆH₉₁₂N₁₆₂O₁₇₇S₁₅ 0.008 0.079 true false false 60 true 1
Adrenocorticotropic hormone (ACTH) C₂₀₇Hβ‚ƒβ‚€β‚ˆN₅₆Oβ‚…β‚ˆS 0.000002 0.000022 true false false 10 true 1
Thyroid-stimulating hormone (TSH) C₂₁₂H₃₃₂Nβ‚…β‚ˆO₆₄S₁₀ 0.00045 0.00462 true false false 60 true 1
Erythropoietin (EPO) Cβ‚ˆβ‚β‚…H₁₃₁₇N₂₂₉O₂₄₁Sβ‚… 0.000002 0.00003 true false false 360 false 9
Renin Cβ‚β‚‚β‚ˆβ‚‰H₂₀₂₆N₃₅₂Oβ‚ƒβ‚ˆβ‚€S₆ 6e-7 0.000003 true false false 30 true 10
Aldosterone C₂₁Hβ‚‚β‚ˆOβ‚… 8.3e-7 0.0000097 false true false 30 true 3
Antidiuretic hormone (ADH) C₄₆H₆₅N₁₅O₁₂Sβ‚‚ 2.8e-7 2.8e-7 true false false 10 true 1
Atrial natriuretic peptide (ANP) Cβ‚β‚‚β‚ˆHβ‚‚β‚‚β‚„Nβ‚…β‚€Oβ‚„β‚… 3e-7 6.5e-7 true false false 2 true 11
Brain-derived neurotrophic factor (BDNF) C₂₄₇Hβ‚ƒβ‚ˆβ‚‚Nβ‚†β‚ˆO₇₅S₆ 6e-8 0.000017 true false false 10 false 0
Calcitriol (active form of vitamin D) C₂₇Hβ‚„β‚„O₃ 3.14e-8 1.555e-7 false true false 900 false 12
Cholecystokinin (CCK) C₇₃H₁₁₅N₁₉Oβ‚‚β‚ˆSβ‚‚ 3e-8 2e-7 true false false 5 true 0
Corticotropin-releasing hormone (CRH) Cβ‚‚β‚€β‚ˆHβ‚ƒβ‚‚β‚ˆN₆₀O₆₂Sβ‚„ 4e-8 2e-7 true false false 4 true 8
Dehydroepiandrosterone (DHEA) C₁₉Hβ‚‚β‚ˆOβ‚‚ 0.00324 0.0139 false true false 4320 false 3
Endorphins C₁₇₃H₂₇₁N₅₇O₄₆S 6e-8 6e-7 true false false 7 false 0
Gastrin C₅₁Hβ‚ˆβ‚€Nβ‚β‚ˆOβ‚β‚ˆS₃ 2e-8 4e-7 true false false 6 true 13
Glucagon-like peptide-1 (GLP-1) C₁₅₂Hβ‚‚β‚„β‚‚Nβ‚„β‚„Oβ‚…β‚… 7e-8 5.5e-7 true false false 2 true 14
Growth hormone-releasing hormone (GHRH) C₂₁₇H₃₁₆N₅₆O₅₇ 2e-8 9e-8 true false false 6 true 8
Histamine Cβ‚…H₉N₃ 5e-7 0.000002 false false true 1 false 0
Incretin Cβ‚β‚ˆβ‚‡Hβ‚‚β‚ˆβ‚…N₅₇O₆₂ 4e-8 5.5e-7 true false false 3 true 14
Inhibin C₅₅₇Hβ‚ˆβ‚†β‚†Nβ‚β‚„β‚ˆOβ‚β‚ˆβ‚€S₆ 0.00000175 0.0000026 true false false 100 false 5
Melanocyte-stimulating hormone (MSH) C₇₇H₁₀₉N₂₁Oβ‚‚β‚€ 4e-9 1e-7 true false false 20 false 1
Motilin C₁₁₄Hβ‚β‚‡β‚ˆN₃₂O₃₁Sβ‚‚ 7e-8 2.7e-7 true false false 5 true 13
Neuropeptide Y (NPY) Cβ‚β‚ˆβ‚‰Hβ‚‚β‚ˆβ‚…Nβ‚…β‚…O₅₇ 2e-7 8e-7 true false false 20 false 0
Orexin C₅₆Hβ‚ˆβ‚ƒN₁₃O₁₃ 2e-9 1e-7 true false false 20 true 0
Pancreatic polypeptide (PP) C₁₄₂Hβ‚‚β‚‚β‚„Nβ‚„β‚‚Oβ‚„β‚„ 2e-7 0.000005 true false false 7 true 4
Peptide YY (PYY) C₁₉₄H₂₉₅N₅₇O₅₇ 3e-8 7e-7 true false false 8 true 14
Secretin C₁₃₀Hβ‚‚β‚€β‚…N₃₉Oβ‚„β‚‚ 2e-8 5.5e-7 true false false 5 true 15
Somatostatin C₇₆H₁₀₄Nβ‚β‚ˆO₁₉Sβ‚‚ 5e-8 2.5e-7 true false false 1 false 4
Thyrotropin-releasing hormone (TRH) C₁₆Hβ‚‚β‚‚N₆Oβ‚„ 1.65e-7 8.7e-7 true false false 5 true 8
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This demonstrates putting Tab Separated Values (TSVs) directly in Scroll files.
Although this approach is handy for small datasets, it does not scale as well as ScrollSets.
Name Transverse Longitudinal Medium Required Propagation Speed (m/s) Min Frequency (Hz) Max Frequency (Hz) Common Sources Primary Uses or Effects Key Characteristics Examples Impact on Environment/Humans
Electromagnetic Waves True False False 299792458 Varies Varies Sun, radio transmitters Communication, medical imaging, cooking Can travel in vacuum and through transparent media Radio broadcasts, X-rays Varies; UV can cause skin cancer
Sound Waves False True True 343 20 20000 Vibrating objects Communication, music, sonar Travels through elastic media Talking, concerts, ultrasound imaging Noise pollution can affect health and well-being
Seismic Waves True True True 3500 Varies Varies Earthquakes, explosions Earthquake engineering, oil exploration Can cause significant ground movement Earthquakes, nuclear testing Can cause extensive property damage and loss of life
Gravitational Waves True False False 299792458 0.0001 Varies Colliding black holes, neutron stars Astronomy, testing theories of gravity Ripples in spacetime Facilitated by LIGO and other observatories None known; mostly relevant for astrophysics
Thermal Waves False True True Varies Varies Varies Heating elements, sun Heating, climate control Move through conduction, convection, or radiation Heat in homes, atmospheric heat waves Heat waves can cause health issues and environmental stress
Chemical Waves False True True Varies Varies Varies Chemical reactions Chemical processing, biological signaling Propagation of reaction and diffusion Calcium waves in cells, Belousov-Zhabotinsky reaction Can be critical in biological processes
Combustion Waves False True True Varies Varies Varies Fire, explosions Fire safety, controlled burns Propagation of fire through combustible materials Wildfires, controlled burns Can cause massive destruction and pollution
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This demonstrates putting Tab Separated Values (TSVs) directly in Scroll files.
Although this approach is handy for small datasets, it does not scale as well as ScrollSets.
Natural Disaster Description Measurement Scale Min Max
Hurricane A tropical cyclone with sustained winds of 74 mph (119 km/h) or higher Saffir-Simpson Hurricane Wind Scale 1 5
Earthquake Sudden shaking of the Earth's surface caused by the release of energy Moment Magnitude Scale (MMS) 0 10
Tsunami A series of ocean waves caused by underwater disturbances, such as earthquakes Tsunami Intensity Scale 1 6
Tornado A violently rotating column of air that extends from a thunderstorm to the ground Enhanced Fujita (EF) Scale 0 5
Volcanic Eruption The release of lava, ash, and gases from a volcano Volcanic Explosivity Index (VEI) 0 8
Wildfire An uncontrolled fire in a natural area, often caused by lightning or human activity Burned Area 0 Varies
Flood An overflow of water that submerges land that is usually dry Flood Severity 0 Varies
Drought A prolonged period of abnormally low rainfall, leading to a water shortage Palmer Drought Severity Index (PDSI) -10 10
Landslide The movement of rock, earth, or debris down a slope due to gravity Landslide Velocity Scale 1 7
Avalanche A rapid flow of snow down a slope, often triggered by weather or human activity Avalanche Danger Scale 1 5
Blizzard A severe snowstorm with high winds and low visibility Regional Snowfall Index (RSI) 1 5
Hailstorm A storm that produces hailstones, which are balls of ice that fall from the sky TORRO Hailstorm Intensity Scale H0 H10
Heat Wave A prolonged period of excessively hot weather Heat Index (HI) 80Β°F Varies
Cold Wave A prolonged period of excessively cold weather Wind Chill Index Varies Varies
Dust Storm A strong wind that carries large amounts of dust and debris Dust Storm Intensity 0 Varies
Sinkhole A depression or hole in the ground caused by the collapse of the surface layer Sinkhole Size 0 Varies
Limnic Eruption A rare type of natural disaster where dissolved carbon dioxide suddenly erupts from deep lake water No Scale - -
Meteor Impact The collision of a meteoroid, asteroid, or comet with the Earth's surface Torino Impact Hazard Scale 0 10
Solar Flare A sudden, rapid, and intense variation in brightness on the Sun's surface Solar Flare Classification System (X-class) A1 X28+
Geomagnetic Storm A temporary disturbance of the Earth's magnetosphere caused by solar wind shock waves NOAA Space Weather Scale for Geomagnetic Storms G1 G5
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id speed yearInvented passengers range
High-speed rail 268 1964 1000 1500
Maglev train 375 1984 1000 500
Hyperloop (proposed) 760 2013 28 900
Concorde (retired) 1354 1969 100 4500
Boeing 747 614 1969 660 9800
Lockheed SR-71 Blackbird (retired) 2193 1964 2 3200
Space Shuttle (retired) 17500 1981 7 500
SpaceX Crew Dragon 17500 2020 7 500
Virgin Galactic SpaceShipTwo 2500 2018 6 50
Blue Origin New Shepard 2500 2015 6 60
Bugatti Chiron Super Sport 300+ 304 2019 2 300
Hennessey Venom GT 270 2010 2 400
Koenigsegg Agera RS 278 2015 2 600
ThrustSSC (land speed record car) 763 1997 1 50
North American X-15 (retired) 4520 1959 1 200
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id appeared wikipedia creators openSource
JavaScript 1995 https://en.wikipedia.org/wiki/JavaScript Brendan Eich true
Python 1991 https://en.wikipedia.org/wiki/Python_(programming_language) Guido van Rossum true
Java 1995 https://en.wikipedia.org/wiki/Java_(programming_language) James Gosling true
C++ 1979 https://en.wikipedia.org/wiki/C%2B%2B Bjarne Stroustrup true
C# 2000 https://en.wikipedia.org/wiki/C_Sharp_(programming_language) Microsoft true
PHP 1995 https://en.wikipedia.org/wiki/PHP Rasmus Lerdorf true
Swift 2014 https://en.wikipedia.org/wiki/Swift_(programming_language) Apple Inc. true
Go 2009 https://en.wikipedia.org/wiki/Go_(programming_language) Robert Griesemer, Rob Pike, Ken Thompson true
Kotlin 2011 https://en.wikipedia.org/wiki/Kotlin_(programming_language) JetBrains true
Ruby 1995 https://en.wikipedia.org/wiki/Ruby_(programming_language) Yukihiro Matsumoto true
Rust 2010 https://en.wikipedia.org/wiki/Rust_(programming_language) Graydon Hoare true
Scala 2004 https://en.wikipedia.org/wiki/Scala_(programming_language) Martin Odersky true
TypeScript 2012 https://en.wikipedia.org/wiki/TypeScript Microsoft true
Dart 2011 https://en.wikipedia.org/wiki/Dart_(programming_language) Lars Bak, Kasper Lund true
Elixir 2011 https://en.wikipedia.org/wiki/Elixir_(programming_language) JosΓ© Valim true
Clojure 2007 https://en.wikipedia.org/wiki/Clojure Rich Hickey true
Haskell 1990 https://en.wikipedia.org/wiki/Haskell_(programming_language) Lennart Augustsson, Dave Barton, Brian Boutel, Warren Burton, Joseph Fasel, Kevin Hammond, Ralf Hinze, Paul Hudak, John Hughes, Thomas Johnsson, Mark Jones, Simon Peyton Jones, John Launchbury, Erik Meijer, John Peterson, Alastair Reid, Colin Runciman, Philip Wadler true
Lua 1993 https://en.wikipedia.org/wiki/Lua_(programming_language) Roberto Ierusalimschy, Waldemar Celes, Luiz Henrique de Figueiredo true
Perl 1987 https://en.wikipedia.org/wiki/Perl Larry Wall true
R 1993 https://en.wikipedia.org/wiki/R_(programming_language) Ross Ihaka, Robert Gentleman true
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id organism diameter low median high
Mitochondria human 1000 200 500 2000
Chloroplast plant 6000 20 40 100
Nucleus human 6000 1 1 2
Golgi Apparatus human 1200 10 20 50
Endoplasmic Reticulum human 120 1 1 5
Ribosome human 25 10000 50000 100000
Lysosome human 1200 50 200 500
Peroxisome human 500 100 300 500
Vacuole plant 30000 1 1 3
Centrosome human 700 1 2 2
Smooth Endoplasmic Reticulum human 120 1 1 5
Rough Endoplasmic Reticulum human 150 1 1 5
Nucleolus human 2500 1 1 4
Plasmodesmata plant 50 1000 5000 10000
Mitosome protozoa 500 5 10 20
Hydrogenosome protozoa 500 5 10 20
Glyoxysome plant 300 100 200 300
Chromoplast plant 2000 2 5 10
Amyloplast plant 2000 5 10 30
Elaioplast plant 1000 10 20 50
Periplastidial compartment (PPC) plant 100 5 15 30
Flagellum protozoa 200 1 1 10
Cilium human 250 10 50 100
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id distance spectralType apparentMagnitude absoluteMagnitude radialVelocity mass
Proxima Centauri 4.24 M5.5Ve 11.13 15.6 -22.204 0.1221
Alpha Centauri A 4.37 G2V -0.01 4.38 -21.4 1.1
Alpha Centauri B 4.37 K1V 1.33 5.71 -18 0.907
Barnard's Star 5.96 M4.0Ve 9.54 13.22 -110.51 0.144
Sirius A 8.66 A1V -1.46 1.42 -5.5 2.02
Sirius B 8.66 DA2 8.44 11.34 -5.5 1.018
Luyten 726-8 A 8.73 M5.5Ve 12.52 15.46 -32.5 0.102
Luyten 726-8 B 8.73 M6Ve 13.05 16.24 -25 0.1
Ross 154 9.69 M3.5Ve 10.44 13.92 -9.6 0.17
Ross 248 10.32 M5.5Ve 12.29 15.8 -81 0.136
Epsilon Eridani 10.48 K2V 3.73 6.18 15.5 0.82
Lacaille 9352 10.73 M0.5V 7.34 10.58 -37 0.45
Ross 128 11 M4V 11.15 14.79 -30 0.168
EZ Aquarii A 11.08 M5Ve 12.87 16.47 -60 0.13
EZ Aquarii B 11.08 M5Ve 12.87 16.47 -60 0.13
EZ Aquarii C 11.08 M5Ve 12.87 16.47 -60 0.13
61 Cygni A 11.4 K5V 5.2 7.49 -64.3 0.67
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id type invented resolution wikipedia applications keyAdvancements inventorDeveloper
Optical Microscope Optical 1590 200 https://en.wikipedia.org/wiki/Optical_microscope General biological and medical microscopy Improved lens quality and microscope design for better image clarity and detail. Zacharias Janssen (attributed)
Electron Microscope Electron 1931 0 https://en.wikipedia.org/wiki/Electron_microscope Cellular biology, materials science, virology Enhanced magnification and resolution, allowing visualization of structures at the atomic level. Ernst Ruska and Max Knoll
Scanning Tunneling Microscope Scanning Probe 1981 0 https://en.wikipedia.org/wiki/Scanning_tunneling_microscope Surface science, nanotechnology Ability to image surfaces at the atomic level. Gerd Binnig and Heinrich Rohrer
Confocal Microscope Optical 1957 200 https://en.wikipedia.org/wiki/Confocal_microscopy 3D imaging of biological samples Provides optical sectioning capability to observe multiple layers within specimens. Marvin Minsky
Atomic Force Microscope Scanning Probe 1986 0 https://en.wikipedia.org/wiki/Atomic_force_microscopy Nanotechnology, surface engineering Can image non-conductive materials, providing a three-dimensional surface profile. Gerd Binnig, Calvin Quate, Christoph Gerber
Fluorescence Microscope Optical 1911 200 https://en.wikipedia.org/wiki/Fluorescence_microscope Biological sciences, medical diagnostics Uses fluorescence and phosphorescence to study properties of organic or inorganic substances. Oskar HeimstΓ€dt
Phase Contrast Microscope Optical 1934 200 https://en.wikipedia.org/wiki/Phase_contrast_microscopy Live cell imaging without staining Enhances contrast in transparent and colorless samples. Frits Zernike
Transmission Electron Microscope Electron 1933 0 https://en.wikipedia.org/wiki/Transmission_electron_microscopy Material science, cancer research, virology Capable of imaging at a significantly higher resolution than light microscopes, down to the level of atomic structures. Ernst Ruska
Scanning Electron Microscope Electron 1942 1 https://en.wikipedia.org/wiki/Scanning_electron_microscope Materials research, forensic examinations, biological research Produces high-resolution images of a sample surface, revealing detailed topography. Manfred von Ardenne
Digital Microscope Optical 1980 200 https://en.wikipedia.org/wiki/Digital_microscope Education, industrial inspection, clinical research Integration with digital cameras and computers for enhanced imaging and analysis. Various contributors
Stereo Microscope Optical 1671 10000 https://en.wikipedia.org/wiki/Stereo_microscope Manufacturing, botany, entomology Provides a three-dimensional viewing experience by using two separate optical paths. Cherubin d'Orleans
X-ray Microscope X-ray 1946 50 https://en.wikipedia.org/wiki/X-ray_microscopy Material sciences, paleontology Uses X-rays to penetrate samples and create images of the internal structure. Raymond Castaing
Cryo-Electron Microscopy Electron 1975 0 https://en.wikipedia.org/wiki/Cryo-electron_microscopy Structural biology, virology Allows imaging of samples at cryogenic temperatures, preserving native state. Jacques Dubochet, Joachim Frank, Richard Henderson
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What is a ScrollSet? Read the one page paper | Tutorial | Convert a CSV to Scrollset
Note: these ScrollSets were generated by LLMs without extensive human review.

Concepts

id classDescription commonAlgorithms
O(1) Execution time remains constant regardless of input size. Finding array element by index, adding a node to the head of a linked list
O(log n) Execution time grows logarithmically in proportion to the input size. Binary search
O(n) Execution time grows linearly with the input size. Linear search, traversing an array
O(n log n) Execution time grows linearly and logarithmically with the input size. Quick sort, merge sort
O(n^2) Execution time grows quadratically with the input size. Bubble sort, selection sort, insertion sort
O(n^3) Execution time grows cubically with the input size. Naive matrix multiplication
O(2^n) Execution time grows exponentially based on the input size. Brute force solutions for the traveling salesman problem, recursive calculation of Fibonacci numbers
O(n!) Execution time grows factorially based on the input size. Solving the traveling salesman problem via brute force, generating all permutations of a set
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