Mean Squared Displacement: Difference between revisions

MEAN SQUARED DISPLACEMENT EQUATIONS

• Δ mean squared displacement (MSD)
• d dimensions
• D diffusion rate
• k σ of sampling distribution that yields D (µ=0)
• µⁿ mean of half normal distribution with σ = k
• λ mean length of the diagonal XY step
• λᵃ mean X & Y step size components of λ
  • 2a² = λ²
  • λ = √2*a
  • a = λ/√2
  • also: λᵃ * .797 = µⁿ
• Λᵈ scalar constant multiplied with k, λ, or λᵃ converting D to 0.D
  • Λᵈ = reciprocal of √10
  • 1.0/√10 = .31623 = 0.D
  • 0.1/√10 = .031623 = 0.0D

• FOR D = 0.5

• Δ = 2.0
• k = 1.0
• µⁿ = 0.7979
• λ = 1.4142
• λᵃ = 1.0

• FOR D = 5.0

• Δ = 20 (/10 = 2)
• k = 3.1623 (* .31623 = 1.0)
• µⁿ = 2.5231
• λ = 4.4721 (* .31623 = 1.4142)
• λᵃ = 3.1623 (* .31623 = 1.0)

• FOR D = 0.3

• Δ = 1.2
• k = 0.7746
• µⁿ = 0.6180
• λ = 1.0954
• λᵃ = 0.7746

• FOR D = 3.0

• Δ = 12 (/10 = 1.2)
• k = 2.4495 (* .31623 = .7746)
• µⁿ = 1.9544
• λ = 3.4641 (* .31623 = 1.0955)
• λᵃ = 2.4495 (* .31623 = 0.7746)

MSD Explained

• m = 2d*D
• k = sqrt(d * D)
• λ = k * √2 / √π
• λ = (2d * D)0.5
• λᵃᵇ = √(2λ²)/2

• m is mean squared displacement
• d is dimensions (2)
• D is diffusion rate
• k is σ of sampling distribution that yields D (µ=0)
• λ is mean of half normal distribution with σ = k
• λ is the mean length of the XY step
• λᵃᵇ is the step size for both X and Y is λᵃᵇ

In statistical mechanics, the mean squared displacement (MSD or average squared displacement) is the most common measure of the spatial extent of random motion; one can think of MSD as the amount of the system "explored" by a random walker.

Albert Einstein in a study of Brownian motion and he showed that the mean square of the distance traveled by particle following a random walk is proportional to the time elapsed. This relationship can be written as:

r²=2d•D•t

• r² MSD
• d dimensions
• D diffusion coefficient (diffusion rate)
• t time step

The next important equation is the standard deviation of the diffusion rate distribution. It would be more convenient to call this the step size distribution but the two values are not exactly proportional. That equation is given as:

k = sqrt(d * D * t)

• k σ or standard deviation of the diffusion rate distribution
• d dimensions
• D diffusion coefficent
• t time step

Knowing k we can then generate random steps from a normal distribution with a mean µ = 0 and sd σ = k pulling a value from this distribution for both the X and Y dimensions for each step. In Matlab this would look like:

xyds = k * randn(2,Ndots);

This will generate a random walk with a diffusion rate = D and MSD = 2d•D. We might also be interested in the average step size that is being generated from this distribution to create such a diffusion rate. This can be done by taking the mean absolute value of the generated steps:

mStep ≈ mean(mean(abs(xyds),2))

The analytical solution to this problem however is the mean µ of the half normal distribution, with a standard deviation σ = k :

λ = k * √2 / √π

• mS = k*sqrt(2)/sqrt(pi)

However, this value cannot be used as the X and Y step size, if you're expecting to get back to D. What you need is the Pythagorean length of the XY combined step. Einstein solved this too:

λ = (4 * D)^.5;

mSt = sqrt((2*ld^2))/2;

I'm simulating Brownian motion. Each particle (dot) in the simulation take a random size step in a random direction. This is in 2D. Each iteration, a dot gets passed 2 values, a random step size for the X direction and Y direction. Voila! Brownian motion.

Now to characterize this motion. This wasn't an easy task, until this really smart dude came along and provided a few theorems. Albert Einstein showed that the mean square of the distance traveled by particle following a random walk is proportional to the time elapsed. This relationship can be written as (and hopefully the unicode looks like r^2 and not r2.. I won't put integers directly after variables):

• r² = 2d*D*t

• r² = mean squared displacement MSD (µm²)
• d = number of dimensions
• D = diffusion coefficient (µm²/s)
• t = time elapsed between each measurement (1 s)

Why is the mean squared displacement good to know? Well, creating Brownian motion is easy (like I mentioned above), but simulating Brownian motion based on real-life observations is not so easy. This is because we can't directly observe the step size (the distance traveled between particle collisions), but we can observe the MSD. Ultimately I'd like to estimate the average step size, but having a good estimate of the diffusion rate (D) would suffice for making a simulation based on real-life observations.

Say we're observing a particle through a microscope diffusing along a flat surface (d=2), and each second (t = 1) we write down its displacement (for both X and Y), squaring each value (**see footnote). When we're done, we can calculate the mean of these values and find that MSD=8 µm². We can now find D using the equation above.

• 8 µm² = (2*2) * D µm²/s * 1 s
• 8 µm²/s = 4 * D µm²/s
• 2 µm²/s = D µm²/s

Sweet, we have the diffusion rate. We can now use this value to make a simulation of our empirical observations.... But how? The simulation needs random step sizes, not a diffusion rate. Einstein figured this out too. He determined that the standard deviation (σ=k) of the distribution of random steps is:

k = sqrt(d * D * t)

From our observations:

k = sqrt(2*2*1) = 2

Now all we have to do is pull random values from a normal distribution with µ=0 σ=2 for each X and Y step size. If I do that and run a simulation - lets do 100 steps for 100 particles. boom:

Sweet, it worked! D = 2.0

We could stop there. But we're curious... What was the average step size it was creating to get that D? So we make a subroutine to track that information. We find that the average of the absolute values of the step sizes for each iteration are coming out one by one:

1.48, 1.61, 1.56, 1.51, 1.68

The average of all those values is around 1.59 Why? We can take a more analytical approach. Since we are using the absolute value of each step to calculate the mean step size, we are essentially sampling from a half normal distribution. The mean of a half normal distribution is:

µ = σ * sqrt(2) / sqrt(pi)

Our standard deviation was 2.

2*sqrt(2) / sqrt(pi) = 1.5958

Nice, that's pretty much what we got (1.59).

So, to recap, we started with a diffusion rate D=2, which, using Einstein's equation, helped us determine we needed to generate a bunch of steps from a distribution µ=0 σ=2 which resulted in a bunch of steps that were +/- 1.59 on average. Then as a check, we took the mean square of all 100 steps for each particle and calculated D which turned out to be 2.02 so everything worked as planned.

We could stop there, but will we? Of course not. Let's do one last check, to see if we completely understand what's going on. Say we don't know D or MSD. In fact, we don't have any real-life empirical information to go on. Perhaps all we want to do is generate some random walks, and if we're interested, we can use those walks to calculate the diffusion coefficient (D). Let's make 100 particles take 100 steps with a step size of 1.5958 (randomly negative or positive), aka the average step size from our experiment above.

Before we do this, any guess what D is gunna turn out to be?

D = 1.27

No! No! No!

Duh! This value cannot be used as the X and Y step size, if you're expecting to get back to D. What you need is the Pythagorean length of the XY combined step. Einstein solved this too. But first, a recap:

• m = 2d*D
• k = sqrt(d * D)
• λ = k * √2 / √π
• λ = (2d * D)0.5

• m is mean squared displacement
• d is dimensions (2)
• D is diffusion rate
• k is σ of sampling distribution that yields D (µ=0)
• λ is mean of half normal distribution with σ = k
• λ is the mean length of the XY step

See our new equation there: λ = (2d * D). Now, all we have to do to get the X and Y step length values, is to calculate what two values equals λ when using the Pythagorean theorem:

• a²+b²=λ²

since 'a' and 'b' can be the same value, lets just use:

• 2a² = λ²

and solve for 'a'

• λᵃᵇ = √(2λ²)/2

so the step size for both X and Y is λᵃᵇ

Notes

Finding the MSD of the simulation is (a trivial task) using a Matlab toolbox (see video below). The target extrasynaptic MSD was 0.1 ^µm²⁄_s (from Choquet ^FIG: {{#info: {{{2}}} CLICK AWAY FROM IMAGE TO CLOSE }}). Scaling the model PSD size and distance between synapses to real-world values based on the target MSD is not a trivial task, and may actually be related only indirectly. Just because a particle moves quickly, does not mean it moves from A to B quickly - it depends on how much stuff there is to collide with. Linear estimates have shown that glycine receptor movements along dendrites at a speed of 1–2 µm/min (.016-.008 µm/s) ^FIG: {{#info: {{{2}}} CLICK AWAY FROM IMAGE TO CLOSE }}

First, the randomly generated step-size was scaled to produce an MSD of 0.1 ^units²⁄_step using the Matlab Brownian motion toolbox. Second, the dimensions of the model need to be scaled. It was found that an XY random step-size of µ=0.4 (σ=.2) units produced an MSE ≈ 0.1 ^units²⁄_step. Next, the arbitrary 0.4 units need to be given meaning...

Given movements along dendrites at a speed of 1–2 µm/min (.016-.008 µm/s) observation, we can use a derivation of the MSD equation to help scale the model. The root-mean-square distance after N unit steps, with a step length of (L) is:

• d = L*sqrt(N)

In order to travel a distance d, N steps are required by this equation

• N = (d/L)²
• N = (1000 nm /400 nm)² = 6.25
• N = (2000 nm /400 nm)² = 25
• N = (4000 nm /400 nm)² = 100

• Lets say a particle is traveling linearly at a rate of 1 µm / 100 s
• And takes between 6-25 steps to cover 1-2 µm.

here are several good resources for explaining and calculating MSD:

• wolfram alpha
• Democritus
• Matlab toolbox

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