Minimum energy path of a potential energy surface












6












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I have calculated the energies of a molecule by varying two parameters (Data points are here data). I want to find the minimum energy path from the point (180.0, 179.99, 21.132) to (124.5, 124.49, 0) using Mathematica.










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  • 3




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    What do you mean by "minimum energy path"? Assuming that your data represents the potential energy of the molecule, every path between two given states requires the same amount of enery. It's called the law of conservation of energy.
    $endgroup$
    – Henrik Schumacher
    19 hours ago












  • $begingroup$
    Okay, after skimming a bit through the literature, "minimum energy path" seems to be a common notion in chemistry. But the sources I found (e.g., arxiv.org/abs/1802.05669, math.uni-leipzig.de/~quapp/wqTCA84.pdf) were very unclear, what exactly is supposed to be minimized... Probably, I will be able to help you after you have exactly specified the optimization problem that you want to have solved.
    $endgroup$
    – Henrik Schumacher
    18 hours ago












  • $begingroup$
    So I think you want the steepest descent path, correct? Assuming the last point is at the bottom of the valley, so to speak.
    $endgroup$
    – MikeY
    14 hours ago






  • 1




    $begingroup$
    @HenrikSchumacher If you plot the data provided and the two points, you obtain this plot; he wants to find the lowest-energy path on the surface that connects those two points, which in this case would be simply the steepest-descent path between the two.
    $endgroup$
    – MarcoB
    14 hours ago










  • $begingroup$
    @MarcoB Yeah, some authors interpret "minimum energy path" as the steepest-descent path. Others do not. So with all this ambiguity, it is in fact hard to help. I'm voting to close the post because of this. (I am going to redraw this vote when OP clarifies.)
    $endgroup$
    – Henrik Schumacher
    14 hours ago


















6












$begingroup$


I have calculated the energies of a molecule by varying two parameters (Data points are here data). I want to find the minimum energy path from the point (180.0, 179.99, 21.132) to (124.5, 124.49, 0) using Mathematica.










share|improve this question











$endgroup$








  • 3




    $begingroup$
    What do you mean by "minimum energy path"? Assuming that your data represents the potential energy of the molecule, every path between two given states requires the same amount of enery. It's called the law of conservation of energy.
    $endgroup$
    – Henrik Schumacher
    19 hours ago












  • $begingroup$
    Okay, after skimming a bit through the literature, "minimum energy path" seems to be a common notion in chemistry. But the sources I found (e.g., arxiv.org/abs/1802.05669, math.uni-leipzig.de/~quapp/wqTCA84.pdf) were very unclear, what exactly is supposed to be minimized... Probably, I will be able to help you after you have exactly specified the optimization problem that you want to have solved.
    $endgroup$
    – Henrik Schumacher
    18 hours ago












  • $begingroup$
    So I think you want the steepest descent path, correct? Assuming the last point is at the bottom of the valley, so to speak.
    $endgroup$
    – MikeY
    14 hours ago






  • 1




    $begingroup$
    @HenrikSchumacher If you plot the data provided and the two points, you obtain this plot; he wants to find the lowest-energy path on the surface that connects those two points, which in this case would be simply the steepest-descent path between the two.
    $endgroup$
    – MarcoB
    14 hours ago










  • $begingroup$
    @MarcoB Yeah, some authors interpret "minimum energy path" as the steepest-descent path. Others do not. So with all this ambiguity, it is in fact hard to help. I'm voting to close the post because of this. (I am going to redraw this vote when OP clarifies.)
    $endgroup$
    – Henrik Schumacher
    14 hours ago
















6












6








6


2



$begingroup$


I have calculated the energies of a molecule by varying two parameters (Data points are here data). I want to find the minimum energy path from the point (180.0, 179.99, 21.132) to (124.5, 124.49, 0) using Mathematica.










share|improve this question











$endgroup$




I have calculated the energies of a molecule by varying two parameters (Data points are here data). I want to find the minimum energy path from the point (180.0, 179.99, 21.132) to (124.5, 124.49, 0) using Mathematica.







differential-equations mathematical-optimization chemistry






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share|improve this question













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share|improve this question








edited 18 hours ago









Henrik Schumacher

54.1k472150




54.1k472150










asked 20 hours ago









sravankumar perumallasravankumar perumalla

1295




1295








  • 3




    $begingroup$
    What do you mean by "minimum energy path"? Assuming that your data represents the potential energy of the molecule, every path between two given states requires the same amount of enery. It's called the law of conservation of energy.
    $endgroup$
    – Henrik Schumacher
    19 hours ago












  • $begingroup$
    Okay, after skimming a bit through the literature, "minimum energy path" seems to be a common notion in chemistry. But the sources I found (e.g., arxiv.org/abs/1802.05669, math.uni-leipzig.de/~quapp/wqTCA84.pdf) were very unclear, what exactly is supposed to be minimized... Probably, I will be able to help you after you have exactly specified the optimization problem that you want to have solved.
    $endgroup$
    – Henrik Schumacher
    18 hours ago












  • $begingroup$
    So I think you want the steepest descent path, correct? Assuming the last point is at the bottom of the valley, so to speak.
    $endgroup$
    – MikeY
    14 hours ago






  • 1




    $begingroup$
    @HenrikSchumacher If you plot the data provided and the two points, you obtain this plot; he wants to find the lowest-energy path on the surface that connects those two points, which in this case would be simply the steepest-descent path between the two.
    $endgroup$
    – MarcoB
    14 hours ago










  • $begingroup$
    @MarcoB Yeah, some authors interpret "minimum energy path" as the steepest-descent path. Others do not. So with all this ambiguity, it is in fact hard to help. I'm voting to close the post because of this. (I am going to redraw this vote when OP clarifies.)
    $endgroup$
    – Henrik Schumacher
    14 hours ago
















  • 3




    $begingroup$
    What do you mean by "minimum energy path"? Assuming that your data represents the potential energy of the molecule, every path between two given states requires the same amount of enery. It's called the law of conservation of energy.
    $endgroup$
    – Henrik Schumacher
    19 hours ago












  • $begingroup$
    Okay, after skimming a bit through the literature, "minimum energy path" seems to be a common notion in chemistry. But the sources I found (e.g., arxiv.org/abs/1802.05669, math.uni-leipzig.de/~quapp/wqTCA84.pdf) were very unclear, what exactly is supposed to be minimized... Probably, I will be able to help you after you have exactly specified the optimization problem that you want to have solved.
    $endgroup$
    – Henrik Schumacher
    18 hours ago












  • $begingroup$
    So I think you want the steepest descent path, correct? Assuming the last point is at the bottom of the valley, so to speak.
    $endgroup$
    – MikeY
    14 hours ago






  • 1




    $begingroup$
    @HenrikSchumacher If you plot the data provided and the two points, you obtain this plot; he wants to find the lowest-energy path on the surface that connects those two points, which in this case would be simply the steepest-descent path between the two.
    $endgroup$
    – MarcoB
    14 hours ago










  • $begingroup$
    @MarcoB Yeah, some authors interpret "minimum energy path" as the steepest-descent path. Others do not. So with all this ambiguity, it is in fact hard to help. I'm voting to close the post because of this. (I am going to redraw this vote when OP clarifies.)
    $endgroup$
    – Henrik Schumacher
    14 hours ago










3




3




$begingroup$
What do you mean by "minimum energy path"? Assuming that your data represents the potential energy of the molecule, every path between two given states requires the same amount of enery. It's called the law of conservation of energy.
$endgroup$
– Henrik Schumacher
19 hours ago






$begingroup$
What do you mean by "minimum energy path"? Assuming that your data represents the potential energy of the molecule, every path between two given states requires the same amount of enery. It's called the law of conservation of energy.
$endgroup$
– Henrik Schumacher
19 hours ago














$begingroup$
Okay, after skimming a bit through the literature, "minimum energy path" seems to be a common notion in chemistry. But the sources I found (e.g., arxiv.org/abs/1802.05669, math.uni-leipzig.de/~quapp/wqTCA84.pdf) were very unclear, what exactly is supposed to be minimized... Probably, I will be able to help you after you have exactly specified the optimization problem that you want to have solved.
$endgroup$
– Henrik Schumacher
18 hours ago






$begingroup$
Okay, after skimming a bit through the literature, "minimum energy path" seems to be a common notion in chemistry. But the sources I found (e.g., arxiv.org/abs/1802.05669, math.uni-leipzig.de/~quapp/wqTCA84.pdf) were very unclear, what exactly is supposed to be minimized... Probably, I will be able to help you after you have exactly specified the optimization problem that you want to have solved.
$endgroup$
– Henrik Schumacher
18 hours ago














$begingroup$
So I think you want the steepest descent path, correct? Assuming the last point is at the bottom of the valley, so to speak.
$endgroup$
– MikeY
14 hours ago




$begingroup$
So I think you want the steepest descent path, correct? Assuming the last point is at the bottom of the valley, so to speak.
$endgroup$
– MikeY
14 hours ago




1




1




$begingroup$
@HenrikSchumacher If you plot the data provided and the two points, you obtain this plot; he wants to find the lowest-energy path on the surface that connects those two points, which in this case would be simply the steepest-descent path between the two.
$endgroup$
– MarcoB
14 hours ago




$begingroup$
@HenrikSchumacher If you plot the data provided and the two points, you obtain this plot; he wants to find the lowest-energy path on the surface that connects those two points, which in this case would be simply the steepest-descent path between the two.
$endgroup$
– MarcoB
14 hours ago












$begingroup$
@MarcoB Yeah, some authors interpret "minimum energy path" as the steepest-descent path. Others do not. So with all this ambiguity, it is in fact hard to help. I'm voting to close the post because of this. (I am going to redraw this vote when OP clarifies.)
$endgroup$
– Henrik Schumacher
14 hours ago






$begingroup$
@MarcoB Yeah, some authors interpret "minimum energy path" as the steepest-descent path. Others do not. So with all this ambiguity, it is in fact hard to help. I'm voting to close the post because of this. (I am going to redraw this vote when OP clarifies.)
$endgroup$
– Henrik Schumacher
14 hours ago












3 Answers
3






active

oldest

votes


















10












$begingroup$

Smooth Equations



Let $varphi colon mathbb{R}^d to mathbb{R}$ denote a potential function (e.g., from OP's data file).



We attempt to solve the system
$$
left{
begin{aligned}
gamma(0) &= p,\
operatorname{grad}(varphi)|_{gamma(t)} &= lambda(t) , gamma'(t)quad text{for all $t in [0,1]$,}\
operatorname{grad}(varphi)|_{gamma(1)} &= 0,\
|gamma'(t)| & = mu quad text{for all $t in [0,1]$,}\
mu &= mathcal{L}(gamma).
end{aligned}
right.
$$



Here $gamma colon [0,1] to mathbb{R}^d$ is the curve that we are looking for, $p in mathbb{R}^d$ is the starting point, $mathcal{L}(gamma)$ denotes arc length of the curve, and $mu in mathbb{R}$ and $lambda colon [0,1] to mathbb{R}$ are dummy variables. For the interested reader who wonders why the last two equations are not joined to the single equation $|gamma'(t)| = mathcal{L}(gamma)$: This is done in order to enforce that the linearization of the discretized system (see below) is a sparse matrix. Moreover, these two equations are added for stability and in order to have as many degrees of freedom as equations in the discretized setting.



Discretized equations



Next, we discretize the system. We replace the curve $gamma$ by a polygonal line with $n$ edges and vertex coordinates given by $x_1,x_2,dotsc,x_{n+1}$ in $mathbb{R}^d$ and the function $lambda$ by a sequence $lambda_1,dotsc,lambda_n$ (one may think of this as function that is piecewise constant on edges). Replacing derivatives $gamma'(t)$ by finite differences $frac{x_{i+1}-x_i}{n}$ and by evaluating $operatorname{grad}(varphi)$ on the first $n-1$ edge midpoints, we arrive at the discretized system



$$
left{
begin{aligned}
x_1 &= p,\
operatorname{grad}(varphi)|_{(x_i+x_{i+1})/2} &= lambda_i , tfrac{x_{i+1}-x_{i}}{n}quad text{for all $i in {1,dotsc,n-1}$,}\
operatorname{grad}(varphi)|_{x_{n+1}} &= 0,\
left| tfrac{x_{i+1}-x_{i}}{n} right| & = mu quad text{for all $i in {1,dotsc,n-1}$,}\
mu &= sum_{i=1}^{n} left|x_{i+1}-x_{i}right|.
end{aligned}
right.
$$



Implementation



These are routines for the system and its linearization. While ϕ denotes the potential, and DDϕ denote its first and second derivative, respectively. n is the number of edges and d is the dimension of the Euclidean space at hand.



The code is already optized for performance (direct initialization of SparseArray from CRS data), so hard to read. Sorry.



ClearAll[F, DF];
F[X_?VectorQ] :=
Module[{x, λ, μ, p1, p2, tangents, midpts, speeds},
x = Partition[X[[1 ;; (n + 1) d]], d];
λ = X[[(n + 1) d + 1 ;; -2]];
μ = X[[-1]];
p1 = Most[x];
p2 = Rest[x];
tangents = (p1 - p2) n;
midpts = 0.5 (p1 + p2);
speeds = Sqrt[(tangents^2).ConstantArray[1., d]];
Join[
x[[1]] - p,
Flatten[Dϕ @@@ Most[midpts] - λ Most[tangents]],
Dϕ @@ x[[-1]],
Most[speeds] - μ,
{μ - Total[speeds]/n}
]
];

DF[X_?VectorQ] :=
Module[{x, λ, μ, p1, p2, tangents, unittangents, midpts, id, A1x, A2x, A3x, A4x, A5x, buffer, A2λ, A, A4μ, A5μ},
x = Partition[X[[1 ;; (n + 1) d]], d];
λ = X[[(n + 1) d + 1 ;; -2]];
μ = X[[-1]];
p1 = Most[x];
p2 = Rest[x];
tangents = (p1 - p2) n;
unittangents = tangents/Sqrt[(tangents^2).ConstantArray[1., d]];
midpts = 0.5 (p1 + p2);
id = IdentityMatrix[d, WorkingPrecision -> MachinePrecision];
A1x = SparseArray[Transpose[{Range[d], Range[d]}] -> 1., {d, d (n + 1)}, 0.];
buffer = 0.5 DDϕ @@@ Most[midpts];
A2x = With[{
rp = Range[0, 2 d d (n - 1), 2 d],
ci = Partition[Flatten[Transpose[ConstantArray[Partition[Range[d n], 2 d, d], d]]], 1],
vals = Flatten@Join[
buffer - λ ConstantArray[id n, n - 1],
buffer + λ ConstantArray[id n, n - 1],
3
]
},
SparseArray @@ {Automatic, {d (n - 1), d (n + 1)}, 0., {1, {rp, ci}, vals}}];
A3x = SparseArray[Flatten[Table[{i, n d + j}, {i, 1, d}, {j, 1, d}], 1] -> Flatten[DDϕ @@ x[[-1]]], {d, d (n + 1)}, 0.];
A = With[{
rp = Range[0, 2 d n, 2 d],
ci = Partition[Flatten[Partition[Range[ d (n + 1)], 2 d, d]], 1],
vals = Flatten[Join[unittangents n, -n unittangents, 2]]
},
SparseArray @@ {Automatic, {n, d (n + 1)}, 0., {1, {rp, ci}, vals}}];
A4x = Most[A];
A5x = SparseArray[{-Total[A]/n}];
A2λ = With[{
rp = Range[0, d (n - 1)],
ci = Partition[Flatten[Transpose[ConstantArray[Range[n - 1], d]]], 1],
vals = Flatten[-Most[tangents]]
},
SparseArray @@ {Automatic, {d (n - 1), n - 1}, 0., {1, {rp, ci}, vals}}
];
A4μ = SparseArray[ConstantArray[-1., {n - 1, 1}]];
A5μ = SparseArray[{{1.}}];
ArrayFlatten[{
{A1x, 0., 0.},
{A2x, A2λ, 0.},
{A3x, 0., 0.},
{A4x, 0., A4μ},
{A5x, 0., A5μ}
}]
];


Application



Let's load the data and make an interpolation function from it. Because DF assumes that ϕ is twice differentiable, we use spline interpolation of order 5.



data = Developer`ToPackedArray[N@Rest[
Import[FileNameJoin[{NotebookDirectory, "data-e.txt"}], "Table"]
]];

p = {180.0, 179.99};
q = {124.5, 124.49};

Block[{x, y},
ϕ = Interpolation[data, Method -> "Spline", InterpolationOrder -> 5];
Dϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 1}]];
DDϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 2}]];
];


Now, we create some initial data for the system: The straight line from $p$ to $q$ as initial guess for $x$ and some educated guesses for $lambda$ and $mu$. I also perturb the potential minimizer q a bit, because that seems to help FindRoot.



d = Length[p];
n = 1000;
tlist = Subdivide[0., 1., n];
xinit = KroneckerProduct[(1 - tlist), p] + KroneckerProduct[tlist , q + RandomReal[{-1, 1}, d]];

p1 = Most[xinit];
p2 = Rest[xinit];
tangents = (p1 - p2) n;
midpts = 0.5 (p1 + p2);

λinit = Norm /@ (Dϕ @@@ Most[midpts])/(Norm /@ Most[tangents]);
μinit = Norm[p - q];
X0 = Join[Flatten[xinit], λinit, {μinit}];


Throwing FindRoot onto it:



sol = FindRoot[F[X] == 0. F[X0], {X, X0}, Jacobian -> DF[X]]; // AbsoluteTiming //First
Xsol = (X /. sol);
Max[Abs[F[Xsol]]]



0.120724



6.15813*10^-10




Partitioning the solution and plotting the result:



xsol = Partition[Xsol[[1 ;; (n + 1) d]], d];
λsol = Xsol[[(n + 1) d + 1 ;; -2]];
μsol = Xsol[[-1]];
curve = Join[xsol, Partition[ϕ @@@ xsol, 1], 2];

{x0, x1} = MinMax[data[[All, 1]]];
{y0, y1} = MinMax[data[[All, 2]]];

Show[
Graphics3D[{Thick, Line[curve]}],
Plot3D[ϕ[x, y], {x, x0, x1}, {y, y0, y1}]
]


enter image description here






share|improve this answer











$endgroup$













  • $begingroup$
    This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
    $endgroup$
    – b3m2a1
    8 hours ago





















9












$begingroup$

Interesting problem. Decided to treat it as a graph problem, rather than fitting an InterpolatingFunction to it and getting descent directions from there. If I knew the graph packages better, I'd do it differently. But this works...



Bring in the data, dropping the header, and plot the grid along with the two points. Note I converted it to a CSV file in Excel first.



data = Import["C:\data-e.csv"] // Rest
ListPointPlot3D[{data, {{180.0, 179.99, 21.132}, {124.5, 124.49, 0}}},
PlotStyle -> {Red, {PointSize[Large], Blue}}
]


enter image description here



Partition your data so it is 181 x 201 points on a grid.



datpar = Partition[data, 201];
Dimensions[datpar]
(* {181, 201, 3} *)


Put it on a regularized grid, to simplify a few things. Now the first two elements of each point will also be its coordinates.



datNorm = Table[{x, y, datpar[[x, y, 3]]}, {x, 181}, {y, 201}];


Here's a messy function that looks at the 9 points in vicinity (includes itself) and finds the lowest value of them (best point). Then it returns that coordinate of that best point. Some checks in there to keep the search with the boundaries. (Cleaned this up in an edit).



bn[{a1_, a2_}] := Most@First@SortBy[
Flatten[
datNorm[[Max[1,a1-1];;Min[181,a1+1], Max[1,a2-1];;Min[201,a2+1]]],
1],
Last]


Now just let it loose from a start point and run it as a fixed point until it stops changing. This will be the steepest descent path to a minimum.



path = FixedPointList[bn[#] &, {1, 201}, 200];


Get back to the orginal problem space



trajectory = datpar[[First@#, Last@#]] & /@ path


Take a look



ListPointPlot3D[{data, trajectory},
PlotStyle -> {Blue, {PointSize[Large], Red}}
]


enter image description here



Using Interpolation, we can look at the streamline...



interp = Interpolation@({{#[[1]], #[[2]]}, #[[3]]} & /@ data)

StreamPlot[
Evaluate[-D[interp[x, y], {{x, y}}]], {x, 90, 180}, {y, 79.99, 179.99},
StreamStyle -> "Segment",
StreamPoints -> {{{{179, 179.9}, Red}, Automatic}},
GridLines -> {Table[i, {i, 90, 180, 1}], Table[i, {i, 80, 180, 1}]},
Mesh -> 50]


enter image description here






share|improve this answer











$endgroup$









  • 1




    $begingroup$
    You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
    $endgroup$
    – b3m2a1
    11 hours ago






  • 1




    $begingroup$
    Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
    $endgroup$
    – b3m2a1
    11 hours ago










  • $begingroup$
    I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
    $endgroup$
    – MikeY
    10 hours ago





















3












$begingroup$

If I understand the problem correctly, we just need to extract the path from StreamPlot, don't we?



If you have difficulty in accessing the data in dropbox in the question, try the following:



Import["http://halirutan.github.io/Mathematica-SE-Tools/decode.m"]["http://i.stack.imgur.
com/eDzXT.png"]
SelectionMove[EvaluationNotebook, Previous, Cell, 1];
dat = Uncompress@First@First@NotebookRead@EvaluationNotebook;
NotebookDelete@EvaluationNotebook;

func = Interpolation@dat;

{vx, vy} = Function[{x, y}, #] & /@ Grad[func[x, y], {x, y}];

begin = {180.0, 179.99};
end = {124.5, 124.49};

plot = StreamPlot[{vx[x, y], vy[x, y]}, {x, #, #2}, {y, #3, #4}, StreamPoints -> {begin},
StreamStyle -> "Line", Epilog -> Point@{begin, end}] & @@ Flatten@func["Domain"]


Mathematica graphics



path = Cases[Normal@plot, Line[a_] :> a, Infinity][[1]];

ListPlot3D@dat~Show~Graphics3D@Line[Flatten /@ ({path, func @@@ path}[Transpose])]


Mathematica graphics






share|improve this answer











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    3 Answers
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    3 Answers
    3






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    oldest

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    10












    $begingroup$

    Smooth Equations



    Let $varphi colon mathbb{R}^d to mathbb{R}$ denote a potential function (e.g., from OP's data file).



    We attempt to solve the system
    $$
    left{
    begin{aligned}
    gamma(0) &= p,\
    operatorname{grad}(varphi)|_{gamma(t)} &= lambda(t) , gamma'(t)quad text{for all $t in [0,1]$,}\
    operatorname{grad}(varphi)|_{gamma(1)} &= 0,\
    |gamma'(t)| & = mu quad text{for all $t in [0,1]$,}\
    mu &= mathcal{L}(gamma).
    end{aligned}
    right.
    $$



    Here $gamma colon [0,1] to mathbb{R}^d$ is the curve that we are looking for, $p in mathbb{R}^d$ is the starting point, $mathcal{L}(gamma)$ denotes arc length of the curve, and $mu in mathbb{R}$ and $lambda colon [0,1] to mathbb{R}$ are dummy variables. For the interested reader who wonders why the last two equations are not joined to the single equation $|gamma'(t)| = mathcal{L}(gamma)$: This is done in order to enforce that the linearization of the discretized system (see below) is a sparse matrix. Moreover, these two equations are added for stability and in order to have as many degrees of freedom as equations in the discretized setting.



    Discretized equations



    Next, we discretize the system. We replace the curve $gamma$ by a polygonal line with $n$ edges and vertex coordinates given by $x_1,x_2,dotsc,x_{n+1}$ in $mathbb{R}^d$ and the function $lambda$ by a sequence $lambda_1,dotsc,lambda_n$ (one may think of this as function that is piecewise constant on edges). Replacing derivatives $gamma'(t)$ by finite differences $frac{x_{i+1}-x_i}{n}$ and by evaluating $operatorname{grad}(varphi)$ on the first $n-1$ edge midpoints, we arrive at the discretized system



    $$
    left{
    begin{aligned}
    x_1 &= p,\
    operatorname{grad}(varphi)|_{(x_i+x_{i+1})/2} &= lambda_i , tfrac{x_{i+1}-x_{i}}{n}quad text{for all $i in {1,dotsc,n-1}$,}\
    operatorname{grad}(varphi)|_{x_{n+1}} &= 0,\
    left| tfrac{x_{i+1}-x_{i}}{n} right| & = mu quad text{for all $i in {1,dotsc,n-1}$,}\
    mu &= sum_{i=1}^{n} left|x_{i+1}-x_{i}right|.
    end{aligned}
    right.
    $$



    Implementation



    These are routines for the system and its linearization. While ϕ denotes the potential, and DDϕ denote its first and second derivative, respectively. n is the number of edges and d is the dimension of the Euclidean space at hand.



    The code is already optized for performance (direct initialization of SparseArray from CRS data), so hard to read. Sorry.



    ClearAll[F, DF];
    F[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, midpts, speeds},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);
    speeds = Sqrt[(tangents^2).ConstantArray[1., d]];
    Join[
    x[[1]] - p,
    Flatten[Dϕ @@@ Most[midpts] - λ Most[tangents]],
    Dϕ @@ x[[-1]],
    Most[speeds] - μ,
    {μ - Total[speeds]/n}
    ]
    ];

    DF[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, unittangents, midpts, id, A1x, A2x, A3x, A4x, A5x, buffer, A2λ, A, A4μ, A5μ},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    unittangents = tangents/Sqrt[(tangents^2).ConstantArray[1., d]];
    midpts = 0.5 (p1 + p2);
    id = IdentityMatrix[d, WorkingPrecision -> MachinePrecision];
    A1x = SparseArray[Transpose[{Range[d], Range[d]}] -> 1., {d, d (n + 1)}, 0.];
    buffer = 0.5 DDϕ @@@ Most[midpts];
    A2x = With[{
    rp = Range[0, 2 d d (n - 1), 2 d],
    ci = Partition[Flatten[Transpose[ConstantArray[Partition[Range[d n], 2 d, d], d]]], 1],
    vals = Flatten@Join[
    buffer - λ ConstantArray[id n, n - 1],
    buffer + λ ConstantArray[id n, n - 1],
    3
    ]
    },
    SparseArray @@ {Automatic, {d (n - 1), d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A3x = SparseArray[Flatten[Table[{i, n d + j}, {i, 1, d}, {j, 1, d}], 1] -> Flatten[DDϕ @@ x[[-1]]], {d, d (n + 1)}, 0.];
    A = With[{
    rp = Range[0, 2 d n, 2 d],
    ci = Partition[Flatten[Partition[Range[ d (n + 1)], 2 d, d]], 1],
    vals = Flatten[Join[unittangents n, -n unittangents, 2]]
    },
    SparseArray @@ {Automatic, {n, d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A4x = Most[A];
    A5x = SparseArray[{-Total[A]/n}];
    A2λ = With[{
    rp = Range[0, d (n - 1)],
    ci = Partition[Flatten[Transpose[ConstantArray[Range[n - 1], d]]], 1],
    vals = Flatten[-Most[tangents]]
    },
    SparseArray @@ {Automatic, {d (n - 1), n - 1}, 0., {1, {rp, ci}, vals}}
    ];
    A4μ = SparseArray[ConstantArray[-1., {n - 1, 1}]];
    A5μ = SparseArray[{{1.}}];
    ArrayFlatten[{
    {A1x, 0., 0.},
    {A2x, A2λ, 0.},
    {A3x, 0., 0.},
    {A4x, 0., A4μ},
    {A5x, 0., A5μ}
    }]
    ];


    Application



    Let's load the data and make an interpolation function from it. Because DF assumes that ϕ is twice differentiable, we use spline interpolation of order 5.



    data = Developer`ToPackedArray[N@Rest[
    Import[FileNameJoin[{NotebookDirectory, "data-e.txt"}], "Table"]
    ]];

    p = {180.0, 179.99};
    q = {124.5, 124.49};

    Block[{x, y},
    ϕ = Interpolation[data, Method -> "Spline", InterpolationOrder -> 5];
    Dϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 1}]];
    DDϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 2}]];
    ];


    Now, we create some initial data for the system: The straight line from $p$ to $q$ as initial guess for $x$ and some educated guesses for $lambda$ and $mu$. I also perturb the potential minimizer q a bit, because that seems to help FindRoot.



    d = Length[p];
    n = 1000;
    tlist = Subdivide[0., 1., n];
    xinit = KroneckerProduct[(1 - tlist), p] + KroneckerProduct[tlist , q + RandomReal[{-1, 1}, d]];

    p1 = Most[xinit];
    p2 = Rest[xinit];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);

    λinit = Norm /@ (Dϕ @@@ Most[midpts])/(Norm /@ Most[tangents]);
    μinit = Norm[p - q];
    X0 = Join[Flatten[xinit], λinit, {μinit}];


    Throwing FindRoot onto it:



    sol = FindRoot[F[X] == 0. F[X0], {X, X0}, Jacobian -> DF[X]]; // AbsoluteTiming //First
    Xsol = (X /. sol);
    Max[Abs[F[Xsol]]]



    0.120724



    6.15813*10^-10




    Partitioning the solution and plotting the result:



    xsol = Partition[Xsol[[1 ;; (n + 1) d]], d];
    λsol = Xsol[[(n + 1) d + 1 ;; -2]];
    μsol = Xsol[[-1]];
    curve = Join[xsol, Partition[ϕ @@@ xsol, 1], 2];

    {x0, x1} = MinMax[data[[All, 1]]];
    {y0, y1} = MinMax[data[[All, 2]]];

    Show[
    Graphics3D[{Thick, Line[curve]}],
    Plot3D[ϕ[x, y], {x, x0, x1}, {y, y0, y1}]
    ]


    enter image description here






    share|improve this answer











    $endgroup$













    • $begingroup$
      This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
      $endgroup$
      – b3m2a1
      8 hours ago


















    10












    $begingroup$

    Smooth Equations



    Let $varphi colon mathbb{R}^d to mathbb{R}$ denote a potential function (e.g., from OP's data file).



    We attempt to solve the system
    $$
    left{
    begin{aligned}
    gamma(0) &= p,\
    operatorname{grad}(varphi)|_{gamma(t)} &= lambda(t) , gamma'(t)quad text{for all $t in [0,1]$,}\
    operatorname{grad}(varphi)|_{gamma(1)} &= 0,\
    |gamma'(t)| & = mu quad text{for all $t in [0,1]$,}\
    mu &= mathcal{L}(gamma).
    end{aligned}
    right.
    $$



    Here $gamma colon [0,1] to mathbb{R}^d$ is the curve that we are looking for, $p in mathbb{R}^d$ is the starting point, $mathcal{L}(gamma)$ denotes arc length of the curve, and $mu in mathbb{R}$ and $lambda colon [0,1] to mathbb{R}$ are dummy variables. For the interested reader who wonders why the last two equations are not joined to the single equation $|gamma'(t)| = mathcal{L}(gamma)$: This is done in order to enforce that the linearization of the discretized system (see below) is a sparse matrix. Moreover, these two equations are added for stability and in order to have as many degrees of freedom as equations in the discretized setting.



    Discretized equations



    Next, we discretize the system. We replace the curve $gamma$ by a polygonal line with $n$ edges and vertex coordinates given by $x_1,x_2,dotsc,x_{n+1}$ in $mathbb{R}^d$ and the function $lambda$ by a sequence $lambda_1,dotsc,lambda_n$ (one may think of this as function that is piecewise constant on edges). Replacing derivatives $gamma'(t)$ by finite differences $frac{x_{i+1}-x_i}{n}$ and by evaluating $operatorname{grad}(varphi)$ on the first $n-1$ edge midpoints, we arrive at the discretized system



    $$
    left{
    begin{aligned}
    x_1 &= p,\
    operatorname{grad}(varphi)|_{(x_i+x_{i+1})/2} &= lambda_i , tfrac{x_{i+1}-x_{i}}{n}quad text{for all $i in {1,dotsc,n-1}$,}\
    operatorname{grad}(varphi)|_{x_{n+1}} &= 0,\
    left| tfrac{x_{i+1}-x_{i}}{n} right| & = mu quad text{for all $i in {1,dotsc,n-1}$,}\
    mu &= sum_{i=1}^{n} left|x_{i+1}-x_{i}right|.
    end{aligned}
    right.
    $$



    Implementation



    These are routines for the system and its linearization. While ϕ denotes the potential, and DDϕ denote its first and second derivative, respectively. n is the number of edges and d is the dimension of the Euclidean space at hand.



    The code is already optized for performance (direct initialization of SparseArray from CRS data), so hard to read. Sorry.



    ClearAll[F, DF];
    F[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, midpts, speeds},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);
    speeds = Sqrt[(tangents^2).ConstantArray[1., d]];
    Join[
    x[[1]] - p,
    Flatten[Dϕ @@@ Most[midpts] - λ Most[tangents]],
    Dϕ @@ x[[-1]],
    Most[speeds] - μ,
    {μ - Total[speeds]/n}
    ]
    ];

    DF[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, unittangents, midpts, id, A1x, A2x, A3x, A4x, A5x, buffer, A2λ, A, A4μ, A5μ},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    unittangents = tangents/Sqrt[(tangents^2).ConstantArray[1., d]];
    midpts = 0.5 (p1 + p2);
    id = IdentityMatrix[d, WorkingPrecision -> MachinePrecision];
    A1x = SparseArray[Transpose[{Range[d], Range[d]}] -> 1., {d, d (n + 1)}, 0.];
    buffer = 0.5 DDϕ @@@ Most[midpts];
    A2x = With[{
    rp = Range[0, 2 d d (n - 1), 2 d],
    ci = Partition[Flatten[Transpose[ConstantArray[Partition[Range[d n], 2 d, d], d]]], 1],
    vals = Flatten@Join[
    buffer - λ ConstantArray[id n, n - 1],
    buffer + λ ConstantArray[id n, n - 1],
    3
    ]
    },
    SparseArray @@ {Automatic, {d (n - 1), d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A3x = SparseArray[Flatten[Table[{i, n d + j}, {i, 1, d}, {j, 1, d}], 1] -> Flatten[DDϕ @@ x[[-1]]], {d, d (n + 1)}, 0.];
    A = With[{
    rp = Range[0, 2 d n, 2 d],
    ci = Partition[Flatten[Partition[Range[ d (n + 1)], 2 d, d]], 1],
    vals = Flatten[Join[unittangents n, -n unittangents, 2]]
    },
    SparseArray @@ {Automatic, {n, d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A4x = Most[A];
    A5x = SparseArray[{-Total[A]/n}];
    A2λ = With[{
    rp = Range[0, d (n - 1)],
    ci = Partition[Flatten[Transpose[ConstantArray[Range[n - 1], d]]], 1],
    vals = Flatten[-Most[tangents]]
    },
    SparseArray @@ {Automatic, {d (n - 1), n - 1}, 0., {1, {rp, ci}, vals}}
    ];
    A4μ = SparseArray[ConstantArray[-1., {n - 1, 1}]];
    A5μ = SparseArray[{{1.}}];
    ArrayFlatten[{
    {A1x, 0., 0.},
    {A2x, A2λ, 0.},
    {A3x, 0., 0.},
    {A4x, 0., A4μ},
    {A5x, 0., A5μ}
    }]
    ];


    Application



    Let's load the data and make an interpolation function from it. Because DF assumes that ϕ is twice differentiable, we use spline interpolation of order 5.



    data = Developer`ToPackedArray[N@Rest[
    Import[FileNameJoin[{NotebookDirectory, "data-e.txt"}], "Table"]
    ]];

    p = {180.0, 179.99};
    q = {124.5, 124.49};

    Block[{x, y},
    ϕ = Interpolation[data, Method -> "Spline", InterpolationOrder -> 5];
    Dϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 1}]];
    DDϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 2}]];
    ];


    Now, we create some initial data for the system: The straight line from $p$ to $q$ as initial guess for $x$ and some educated guesses for $lambda$ and $mu$. I also perturb the potential minimizer q a bit, because that seems to help FindRoot.



    d = Length[p];
    n = 1000;
    tlist = Subdivide[0., 1., n];
    xinit = KroneckerProduct[(1 - tlist), p] + KroneckerProduct[tlist , q + RandomReal[{-1, 1}, d]];

    p1 = Most[xinit];
    p2 = Rest[xinit];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);

    λinit = Norm /@ (Dϕ @@@ Most[midpts])/(Norm /@ Most[tangents]);
    μinit = Norm[p - q];
    X0 = Join[Flatten[xinit], λinit, {μinit}];


    Throwing FindRoot onto it:



    sol = FindRoot[F[X] == 0. F[X0], {X, X0}, Jacobian -> DF[X]]; // AbsoluteTiming //First
    Xsol = (X /. sol);
    Max[Abs[F[Xsol]]]



    0.120724



    6.15813*10^-10




    Partitioning the solution and plotting the result:



    xsol = Partition[Xsol[[1 ;; (n + 1) d]], d];
    λsol = Xsol[[(n + 1) d + 1 ;; -2]];
    μsol = Xsol[[-1]];
    curve = Join[xsol, Partition[ϕ @@@ xsol, 1], 2];

    {x0, x1} = MinMax[data[[All, 1]]];
    {y0, y1} = MinMax[data[[All, 2]]];

    Show[
    Graphics3D[{Thick, Line[curve]}],
    Plot3D[ϕ[x, y], {x, x0, x1}, {y, y0, y1}]
    ]


    enter image description here






    share|improve this answer











    $endgroup$













    • $begingroup$
      This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
      $endgroup$
      – b3m2a1
      8 hours ago
















    10












    10








    10





    $begingroup$

    Smooth Equations



    Let $varphi colon mathbb{R}^d to mathbb{R}$ denote a potential function (e.g., from OP's data file).



    We attempt to solve the system
    $$
    left{
    begin{aligned}
    gamma(0) &= p,\
    operatorname{grad}(varphi)|_{gamma(t)} &= lambda(t) , gamma'(t)quad text{for all $t in [0,1]$,}\
    operatorname{grad}(varphi)|_{gamma(1)} &= 0,\
    |gamma'(t)| & = mu quad text{for all $t in [0,1]$,}\
    mu &= mathcal{L}(gamma).
    end{aligned}
    right.
    $$



    Here $gamma colon [0,1] to mathbb{R}^d$ is the curve that we are looking for, $p in mathbb{R}^d$ is the starting point, $mathcal{L}(gamma)$ denotes arc length of the curve, and $mu in mathbb{R}$ and $lambda colon [0,1] to mathbb{R}$ are dummy variables. For the interested reader who wonders why the last two equations are not joined to the single equation $|gamma'(t)| = mathcal{L}(gamma)$: This is done in order to enforce that the linearization of the discretized system (see below) is a sparse matrix. Moreover, these two equations are added for stability and in order to have as many degrees of freedom as equations in the discretized setting.



    Discretized equations



    Next, we discretize the system. We replace the curve $gamma$ by a polygonal line with $n$ edges and vertex coordinates given by $x_1,x_2,dotsc,x_{n+1}$ in $mathbb{R}^d$ and the function $lambda$ by a sequence $lambda_1,dotsc,lambda_n$ (one may think of this as function that is piecewise constant on edges). Replacing derivatives $gamma'(t)$ by finite differences $frac{x_{i+1}-x_i}{n}$ and by evaluating $operatorname{grad}(varphi)$ on the first $n-1$ edge midpoints, we arrive at the discretized system



    $$
    left{
    begin{aligned}
    x_1 &= p,\
    operatorname{grad}(varphi)|_{(x_i+x_{i+1})/2} &= lambda_i , tfrac{x_{i+1}-x_{i}}{n}quad text{for all $i in {1,dotsc,n-1}$,}\
    operatorname{grad}(varphi)|_{x_{n+1}} &= 0,\
    left| tfrac{x_{i+1}-x_{i}}{n} right| & = mu quad text{for all $i in {1,dotsc,n-1}$,}\
    mu &= sum_{i=1}^{n} left|x_{i+1}-x_{i}right|.
    end{aligned}
    right.
    $$



    Implementation



    These are routines for the system and its linearization. While ϕ denotes the potential, and DDϕ denote its first and second derivative, respectively. n is the number of edges and d is the dimension of the Euclidean space at hand.



    The code is already optized for performance (direct initialization of SparseArray from CRS data), so hard to read. Sorry.



    ClearAll[F, DF];
    F[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, midpts, speeds},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);
    speeds = Sqrt[(tangents^2).ConstantArray[1., d]];
    Join[
    x[[1]] - p,
    Flatten[Dϕ @@@ Most[midpts] - λ Most[tangents]],
    Dϕ @@ x[[-1]],
    Most[speeds] - μ,
    {μ - Total[speeds]/n}
    ]
    ];

    DF[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, unittangents, midpts, id, A1x, A2x, A3x, A4x, A5x, buffer, A2λ, A, A4μ, A5μ},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    unittangents = tangents/Sqrt[(tangents^2).ConstantArray[1., d]];
    midpts = 0.5 (p1 + p2);
    id = IdentityMatrix[d, WorkingPrecision -> MachinePrecision];
    A1x = SparseArray[Transpose[{Range[d], Range[d]}] -> 1., {d, d (n + 1)}, 0.];
    buffer = 0.5 DDϕ @@@ Most[midpts];
    A2x = With[{
    rp = Range[0, 2 d d (n - 1), 2 d],
    ci = Partition[Flatten[Transpose[ConstantArray[Partition[Range[d n], 2 d, d], d]]], 1],
    vals = Flatten@Join[
    buffer - λ ConstantArray[id n, n - 1],
    buffer + λ ConstantArray[id n, n - 1],
    3
    ]
    },
    SparseArray @@ {Automatic, {d (n - 1), d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A3x = SparseArray[Flatten[Table[{i, n d + j}, {i, 1, d}, {j, 1, d}], 1] -> Flatten[DDϕ @@ x[[-1]]], {d, d (n + 1)}, 0.];
    A = With[{
    rp = Range[0, 2 d n, 2 d],
    ci = Partition[Flatten[Partition[Range[ d (n + 1)], 2 d, d]], 1],
    vals = Flatten[Join[unittangents n, -n unittangents, 2]]
    },
    SparseArray @@ {Automatic, {n, d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A4x = Most[A];
    A5x = SparseArray[{-Total[A]/n}];
    A2λ = With[{
    rp = Range[0, d (n - 1)],
    ci = Partition[Flatten[Transpose[ConstantArray[Range[n - 1], d]]], 1],
    vals = Flatten[-Most[tangents]]
    },
    SparseArray @@ {Automatic, {d (n - 1), n - 1}, 0., {1, {rp, ci}, vals}}
    ];
    A4μ = SparseArray[ConstantArray[-1., {n - 1, 1}]];
    A5μ = SparseArray[{{1.}}];
    ArrayFlatten[{
    {A1x, 0., 0.},
    {A2x, A2λ, 0.},
    {A3x, 0., 0.},
    {A4x, 0., A4μ},
    {A5x, 0., A5μ}
    }]
    ];


    Application



    Let's load the data and make an interpolation function from it. Because DF assumes that ϕ is twice differentiable, we use spline interpolation of order 5.



    data = Developer`ToPackedArray[N@Rest[
    Import[FileNameJoin[{NotebookDirectory, "data-e.txt"}], "Table"]
    ]];

    p = {180.0, 179.99};
    q = {124.5, 124.49};

    Block[{x, y},
    ϕ = Interpolation[data, Method -> "Spline", InterpolationOrder -> 5];
    Dϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 1}]];
    DDϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 2}]];
    ];


    Now, we create some initial data for the system: The straight line from $p$ to $q$ as initial guess for $x$ and some educated guesses for $lambda$ and $mu$. I also perturb the potential minimizer q a bit, because that seems to help FindRoot.



    d = Length[p];
    n = 1000;
    tlist = Subdivide[0., 1., n];
    xinit = KroneckerProduct[(1 - tlist), p] + KroneckerProduct[tlist , q + RandomReal[{-1, 1}, d]];

    p1 = Most[xinit];
    p2 = Rest[xinit];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);

    λinit = Norm /@ (Dϕ @@@ Most[midpts])/(Norm /@ Most[tangents]);
    μinit = Norm[p - q];
    X0 = Join[Flatten[xinit], λinit, {μinit}];


    Throwing FindRoot onto it:



    sol = FindRoot[F[X] == 0. F[X0], {X, X0}, Jacobian -> DF[X]]; // AbsoluteTiming //First
    Xsol = (X /. sol);
    Max[Abs[F[Xsol]]]



    0.120724



    6.15813*10^-10




    Partitioning the solution and plotting the result:



    xsol = Partition[Xsol[[1 ;; (n + 1) d]], d];
    λsol = Xsol[[(n + 1) d + 1 ;; -2]];
    μsol = Xsol[[-1]];
    curve = Join[xsol, Partition[ϕ @@@ xsol, 1], 2];

    {x0, x1} = MinMax[data[[All, 1]]];
    {y0, y1} = MinMax[data[[All, 2]]];

    Show[
    Graphics3D[{Thick, Line[curve]}],
    Plot3D[ϕ[x, y], {x, x0, x1}, {y, y0, y1}]
    ]


    enter image description here






    share|improve this answer











    $endgroup$



    Smooth Equations



    Let $varphi colon mathbb{R}^d to mathbb{R}$ denote a potential function (e.g., from OP's data file).



    We attempt to solve the system
    $$
    left{
    begin{aligned}
    gamma(0) &= p,\
    operatorname{grad}(varphi)|_{gamma(t)} &= lambda(t) , gamma'(t)quad text{for all $t in [0,1]$,}\
    operatorname{grad}(varphi)|_{gamma(1)} &= 0,\
    |gamma'(t)| & = mu quad text{for all $t in [0,1]$,}\
    mu &= mathcal{L}(gamma).
    end{aligned}
    right.
    $$



    Here $gamma colon [0,1] to mathbb{R}^d$ is the curve that we are looking for, $p in mathbb{R}^d$ is the starting point, $mathcal{L}(gamma)$ denotes arc length of the curve, and $mu in mathbb{R}$ and $lambda colon [0,1] to mathbb{R}$ are dummy variables. For the interested reader who wonders why the last two equations are not joined to the single equation $|gamma'(t)| = mathcal{L}(gamma)$: This is done in order to enforce that the linearization of the discretized system (see below) is a sparse matrix. Moreover, these two equations are added for stability and in order to have as many degrees of freedom as equations in the discretized setting.



    Discretized equations



    Next, we discretize the system. We replace the curve $gamma$ by a polygonal line with $n$ edges and vertex coordinates given by $x_1,x_2,dotsc,x_{n+1}$ in $mathbb{R}^d$ and the function $lambda$ by a sequence $lambda_1,dotsc,lambda_n$ (one may think of this as function that is piecewise constant on edges). Replacing derivatives $gamma'(t)$ by finite differences $frac{x_{i+1}-x_i}{n}$ and by evaluating $operatorname{grad}(varphi)$ on the first $n-1$ edge midpoints, we arrive at the discretized system



    $$
    left{
    begin{aligned}
    x_1 &= p,\
    operatorname{grad}(varphi)|_{(x_i+x_{i+1})/2} &= lambda_i , tfrac{x_{i+1}-x_{i}}{n}quad text{for all $i in {1,dotsc,n-1}$,}\
    operatorname{grad}(varphi)|_{x_{n+1}} &= 0,\
    left| tfrac{x_{i+1}-x_{i}}{n} right| & = mu quad text{for all $i in {1,dotsc,n-1}$,}\
    mu &= sum_{i=1}^{n} left|x_{i+1}-x_{i}right|.
    end{aligned}
    right.
    $$



    Implementation



    These are routines for the system and its linearization. While ϕ denotes the potential, and DDϕ denote its first and second derivative, respectively. n is the number of edges and d is the dimension of the Euclidean space at hand.



    The code is already optized for performance (direct initialization of SparseArray from CRS data), so hard to read. Sorry.



    ClearAll[F, DF];
    F[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, midpts, speeds},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);
    speeds = Sqrt[(tangents^2).ConstantArray[1., d]];
    Join[
    x[[1]] - p,
    Flatten[Dϕ @@@ Most[midpts] - λ Most[tangents]],
    Dϕ @@ x[[-1]],
    Most[speeds] - μ,
    {μ - Total[speeds]/n}
    ]
    ];

    DF[X_?VectorQ] :=
    Module[{x, λ, μ, p1, p2, tangents, unittangents, midpts, id, A1x, A2x, A3x, A4x, A5x, buffer, A2λ, A, A4μ, A5μ},
    x = Partition[X[[1 ;; (n + 1) d]], d];
    λ = X[[(n + 1) d + 1 ;; -2]];
    μ = X[[-1]];
    p1 = Most[x];
    p2 = Rest[x];
    tangents = (p1 - p2) n;
    unittangents = tangents/Sqrt[(tangents^2).ConstantArray[1., d]];
    midpts = 0.5 (p1 + p2);
    id = IdentityMatrix[d, WorkingPrecision -> MachinePrecision];
    A1x = SparseArray[Transpose[{Range[d], Range[d]}] -> 1., {d, d (n + 1)}, 0.];
    buffer = 0.5 DDϕ @@@ Most[midpts];
    A2x = With[{
    rp = Range[0, 2 d d (n - 1), 2 d],
    ci = Partition[Flatten[Transpose[ConstantArray[Partition[Range[d n], 2 d, d], d]]], 1],
    vals = Flatten@Join[
    buffer - λ ConstantArray[id n, n - 1],
    buffer + λ ConstantArray[id n, n - 1],
    3
    ]
    },
    SparseArray @@ {Automatic, {d (n - 1), d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A3x = SparseArray[Flatten[Table[{i, n d + j}, {i, 1, d}, {j, 1, d}], 1] -> Flatten[DDϕ @@ x[[-1]]], {d, d (n + 1)}, 0.];
    A = With[{
    rp = Range[0, 2 d n, 2 d],
    ci = Partition[Flatten[Partition[Range[ d (n + 1)], 2 d, d]], 1],
    vals = Flatten[Join[unittangents n, -n unittangents, 2]]
    },
    SparseArray @@ {Automatic, {n, d (n + 1)}, 0., {1, {rp, ci}, vals}}];
    A4x = Most[A];
    A5x = SparseArray[{-Total[A]/n}];
    A2λ = With[{
    rp = Range[0, d (n - 1)],
    ci = Partition[Flatten[Transpose[ConstantArray[Range[n - 1], d]]], 1],
    vals = Flatten[-Most[tangents]]
    },
    SparseArray @@ {Automatic, {d (n - 1), n - 1}, 0., {1, {rp, ci}, vals}}
    ];
    A4μ = SparseArray[ConstantArray[-1., {n - 1, 1}]];
    A5μ = SparseArray[{{1.}}];
    ArrayFlatten[{
    {A1x, 0., 0.},
    {A2x, A2λ, 0.},
    {A3x, 0., 0.},
    {A4x, 0., A4μ},
    {A5x, 0., A5μ}
    }]
    ];


    Application



    Let's load the data and make an interpolation function from it. Because DF assumes that ϕ is twice differentiable, we use spline interpolation of order 5.



    data = Developer`ToPackedArray[N@Rest[
    Import[FileNameJoin[{NotebookDirectory, "data-e.txt"}], "Table"]
    ]];

    p = {180.0, 179.99};
    q = {124.5, 124.49};

    Block[{x, y},
    ϕ = Interpolation[data, Method -> "Spline", InterpolationOrder -> 5];
    Dϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 1}]];
    DDϕ = {x, y} [Function] Evaluate[D[ϕ[x, y], {{x, y}, 2}]];
    ];


    Now, we create some initial data for the system: The straight line from $p$ to $q$ as initial guess for $x$ and some educated guesses for $lambda$ and $mu$. I also perturb the potential minimizer q a bit, because that seems to help FindRoot.



    d = Length[p];
    n = 1000;
    tlist = Subdivide[0., 1., n];
    xinit = KroneckerProduct[(1 - tlist), p] + KroneckerProduct[tlist , q + RandomReal[{-1, 1}, d]];

    p1 = Most[xinit];
    p2 = Rest[xinit];
    tangents = (p1 - p2) n;
    midpts = 0.5 (p1 + p2);

    λinit = Norm /@ (Dϕ @@@ Most[midpts])/(Norm /@ Most[tangents]);
    μinit = Norm[p - q];
    X0 = Join[Flatten[xinit], λinit, {μinit}];


    Throwing FindRoot onto it:



    sol = FindRoot[F[X] == 0. F[X0], {X, X0}, Jacobian -> DF[X]]; // AbsoluteTiming //First
    Xsol = (X /. sol);
    Max[Abs[F[Xsol]]]



    0.120724



    6.15813*10^-10




    Partitioning the solution and plotting the result:



    xsol = Partition[Xsol[[1 ;; (n + 1) d]], d];
    λsol = Xsol[[(n + 1) d + 1 ;; -2]];
    μsol = Xsol[[-1]];
    curve = Join[xsol, Partition[ϕ @@@ xsol, 1], 2];

    {x0, x1} = MinMax[data[[All, 1]]];
    {y0, y1} = MinMax[data[[All, 2]]];

    Show[
    Graphics3D[{Thick, Line[curve]}],
    Plot3D[ϕ[x, y], {x, x0, x1}, {y, y0, y1}]
    ]


    enter image description here







    share|improve this answer














    share|improve this answer



    share|improve this answer








    edited 9 hours ago

























    answered 10 hours ago









    Henrik SchumacherHenrik Schumacher

    54.1k472150




    54.1k472150












    • $begingroup$
      This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
      $endgroup$
      – b3m2a1
      8 hours ago




















    • $begingroup$
      This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
      $endgroup$
      – b3m2a1
      8 hours ago


















    $begingroup$
    This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
    $endgroup$
    – b3m2a1
    8 hours ago






    $begingroup$
    This is great. I can see many, many applications for something like this. Once the paclet server is out WRI should take these functions and paclet them up to put on there...
    $endgroup$
    – b3m2a1
    8 hours ago













    9












    $begingroup$

    Interesting problem. Decided to treat it as a graph problem, rather than fitting an InterpolatingFunction to it and getting descent directions from there. If I knew the graph packages better, I'd do it differently. But this works...



    Bring in the data, dropping the header, and plot the grid along with the two points. Note I converted it to a CSV file in Excel first.



    data = Import["C:\data-e.csv"] // Rest
    ListPointPlot3D[{data, {{180.0, 179.99, 21.132}, {124.5, 124.49, 0}}},
    PlotStyle -> {Red, {PointSize[Large], Blue}}
    ]


    enter image description here



    Partition your data so it is 181 x 201 points on a grid.



    datpar = Partition[data, 201];
    Dimensions[datpar]
    (* {181, 201, 3} *)


    Put it on a regularized grid, to simplify a few things. Now the first two elements of each point will also be its coordinates.



    datNorm = Table[{x, y, datpar[[x, y, 3]]}, {x, 181}, {y, 201}];


    Here's a messy function that looks at the 9 points in vicinity (includes itself) and finds the lowest value of them (best point). Then it returns that coordinate of that best point. Some checks in there to keep the search with the boundaries. (Cleaned this up in an edit).



    bn[{a1_, a2_}] := Most@First@SortBy[
    Flatten[
    datNorm[[Max[1,a1-1];;Min[181,a1+1], Max[1,a2-1];;Min[201,a2+1]]],
    1],
    Last]


    Now just let it loose from a start point and run it as a fixed point until it stops changing. This will be the steepest descent path to a minimum.



    path = FixedPointList[bn[#] &, {1, 201}, 200];


    Get back to the orginal problem space



    trajectory = datpar[[First@#, Last@#]] & /@ path


    Take a look



    ListPointPlot3D[{data, trajectory},
    PlotStyle -> {Blue, {PointSize[Large], Red}}
    ]


    enter image description here



    Using Interpolation, we can look at the streamline...



    interp = Interpolation@({{#[[1]], #[[2]]}, #[[3]]} & /@ data)

    StreamPlot[
    Evaluate[-D[interp[x, y], {{x, y}}]], {x, 90, 180}, {y, 79.99, 179.99},
    StreamStyle -> "Segment",
    StreamPoints -> {{{{179, 179.9}, Red}, Automatic}},
    GridLines -> {Table[i, {i, 90, 180, 1}], Table[i, {i, 80, 180, 1}]},
    Mesh -> 50]


    enter image description here






    share|improve this answer











    $endgroup$









    • 1




      $begingroup$
      You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
      $endgroup$
      – b3m2a1
      11 hours ago






    • 1




      $begingroup$
      Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
      $endgroup$
      – b3m2a1
      11 hours ago










    • $begingroup$
      I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
      $endgroup$
      – MikeY
      10 hours ago


















    9












    $begingroup$

    Interesting problem. Decided to treat it as a graph problem, rather than fitting an InterpolatingFunction to it and getting descent directions from there. If I knew the graph packages better, I'd do it differently. But this works...



    Bring in the data, dropping the header, and plot the grid along with the two points. Note I converted it to a CSV file in Excel first.



    data = Import["C:\data-e.csv"] // Rest
    ListPointPlot3D[{data, {{180.0, 179.99, 21.132}, {124.5, 124.49, 0}}},
    PlotStyle -> {Red, {PointSize[Large], Blue}}
    ]


    enter image description here



    Partition your data so it is 181 x 201 points on a grid.



    datpar = Partition[data, 201];
    Dimensions[datpar]
    (* {181, 201, 3} *)


    Put it on a regularized grid, to simplify a few things. Now the first two elements of each point will also be its coordinates.



    datNorm = Table[{x, y, datpar[[x, y, 3]]}, {x, 181}, {y, 201}];


    Here's a messy function that looks at the 9 points in vicinity (includes itself) and finds the lowest value of them (best point). Then it returns that coordinate of that best point. Some checks in there to keep the search with the boundaries. (Cleaned this up in an edit).



    bn[{a1_, a2_}] := Most@First@SortBy[
    Flatten[
    datNorm[[Max[1,a1-1];;Min[181,a1+1], Max[1,a2-1];;Min[201,a2+1]]],
    1],
    Last]


    Now just let it loose from a start point and run it as a fixed point until it stops changing. This will be the steepest descent path to a minimum.



    path = FixedPointList[bn[#] &, {1, 201}, 200];


    Get back to the orginal problem space



    trajectory = datpar[[First@#, Last@#]] & /@ path


    Take a look



    ListPointPlot3D[{data, trajectory},
    PlotStyle -> {Blue, {PointSize[Large], Red}}
    ]


    enter image description here



    Using Interpolation, we can look at the streamline...



    interp = Interpolation@({{#[[1]], #[[2]]}, #[[3]]} & /@ data)

    StreamPlot[
    Evaluate[-D[interp[x, y], {{x, y}}]], {x, 90, 180}, {y, 79.99, 179.99},
    StreamStyle -> "Segment",
    StreamPoints -> {{{{179, 179.9}, Red}, Automatic}},
    GridLines -> {Table[i, {i, 90, 180, 1}], Table[i, {i, 80, 180, 1}]},
    Mesh -> 50]


    enter image description here






    share|improve this answer











    $endgroup$









    • 1




      $begingroup$
      You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
      $endgroup$
      – b3m2a1
      11 hours ago






    • 1




      $begingroup$
      Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
      $endgroup$
      – b3m2a1
      11 hours ago










    • $begingroup$
      I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
      $endgroup$
      – MikeY
      10 hours ago
















    9












    9








    9





    $begingroup$

    Interesting problem. Decided to treat it as a graph problem, rather than fitting an InterpolatingFunction to it and getting descent directions from there. If I knew the graph packages better, I'd do it differently. But this works...



    Bring in the data, dropping the header, and plot the grid along with the two points. Note I converted it to a CSV file in Excel first.



    data = Import["C:\data-e.csv"] // Rest
    ListPointPlot3D[{data, {{180.0, 179.99, 21.132}, {124.5, 124.49, 0}}},
    PlotStyle -> {Red, {PointSize[Large], Blue}}
    ]


    enter image description here



    Partition your data so it is 181 x 201 points on a grid.



    datpar = Partition[data, 201];
    Dimensions[datpar]
    (* {181, 201, 3} *)


    Put it on a regularized grid, to simplify a few things. Now the first two elements of each point will also be its coordinates.



    datNorm = Table[{x, y, datpar[[x, y, 3]]}, {x, 181}, {y, 201}];


    Here's a messy function that looks at the 9 points in vicinity (includes itself) and finds the lowest value of them (best point). Then it returns that coordinate of that best point. Some checks in there to keep the search with the boundaries. (Cleaned this up in an edit).



    bn[{a1_, a2_}] := Most@First@SortBy[
    Flatten[
    datNorm[[Max[1,a1-1];;Min[181,a1+1], Max[1,a2-1];;Min[201,a2+1]]],
    1],
    Last]


    Now just let it loose from a start point and run it as a fixed point until it stops changing. This will be the steepest descent path to a minimum.



    path = FixedPointList[bn[#] &, {1, 201}, 200];


    Get back to the orginal problem space



    trajectory = datpar[[First@#, Last@#]] & /@ path


    Take a look



    ListPointPlot3D[{data, trajectory},
    PlotStyle -> {Blue, {PointSize[Large], Red}}
    ]


    enter image description here



    Using Interpolation, we can look at the streamline...



    interp = Interpolation@({{#[[1]], #[[2]]}, #[[3]]} & /@ data)

    StreamPlot[
    Evaluate[-D[interp[x, y], {{x, y}}]], {x, 90, 180}, {y, 79.99, 179.99},
    StreamStyle -> "Segment",
    StreamPoints -> {{{{179, 179.9}, Red}, Automatic}},
    GridLines -> {Table[i, {i, 90, 180, 1}], Table[i, {i, 80, 180, 1}]},
    Mesh -> 50]


    enter image description here






    share|improve this answer











    $endgroup$



    Interesting problem. Decided to treat it as a graph problem, rather than fitting an InterpolatingFunction to it and getting descent directions from there. If I knew the graph packages better, I'd do it differently. But this works...



    Bring in the data, dropping the header, and plot the grid along with the two points. Note I converted it to a CSV file in Excel first.



    data = Import["C:\data-e.csv"] // Rest
    ListPointPlot3D[{data, {{180.0, 179.99, 21.132}, {124.5, 124.49, 0}}},
    PlotStyle -> {Red, {PointSize[Large], Blue}}
    ]


    enter image description here



    Partition your data so it is 181 x 201 points on a grid.



    datpar = Partition[data, 201];
    Dimensions[datpar]
    (* {181, 201, 3} *)


    Put it on a regularized grid, to simplify a few things. Now the first two elements of each point will also be its coordinates.



    datNorm = Table[{x, y, datpar[[x, y, 3]]}, {x, 181}, {y, 201}];


    Here's a messy function that looks at the 9 points in vicinity (includes itself) and finds the lowest value of them (best point). Then it returns that coordinate of that best point. Some checks in there to keep the search with the boundaries. (Cleaned this up in an edit).



    bn[{a1_, a2_}] := Most@First@SortBy[
    Flatten[
    datNorm[[Max[1,a1-1];;Min[181,a1+1], Max[1,a2-1];;Min[201,a2+1]]],
    1],
    Last]


    Now just let it loose from a start point and run it as a fixed point until it stops changing. This will be the steepest descent path to a minimum.



    path = FixedPointList[bn[#] &, {1, 201}, 200];


    Get back to the orginal problem space



    trajectory = datpar[[First@#, Last@#]] & /@ path


    Take a look



    ListPointPlot3D[{data, trajectory},
    PlotStyle -> {Blue, {PointSize[Large], Red}}
    ]


    enter image description here



    Using Interpolation, we can look at the streamline...



    interp = Interpolation@({{#[[1]], #[[2]]}, #[[3]]} & /@ data)

    StreamPlot[
    Evaluate[-D[interp[x, y], {{x, y}}]], {x, 90, 180}, {y, 79.99, 179.99},
    StreamStyle -> "Segment",
    StreamPoints -> {{{{179, 179.9}, Red}, Automatic}},
    GridLines -> {Table[i, {i, 90, 180, 1}], Table[i, {i, 80, 180, 1}]},
    Mesh -> 50]


    enter image description here







    share|improve this answer














    share|improve this answer



    share|improve this answer








    edited 9 hours ago

























    answered 12 hours ago









    MikeYMikeY

    2,917412




    2,917412








    • 1




      $begingroup$
      You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
      $endgroup$
      – b3m2a1
      11 hours ago






    • 1




      $begingroup$
      Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
      $endgroup$
      – b3m2a1
      11 hours ago










    • $begingroup$
      I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
      $endgroup$
      – MikeY
      10 hours ago
















    • 1




      $begingroup$
      You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
      $endgroup$
      – b3m2a1
      11 hours ago






    • 1




      $begingroup$
      Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
      $endgroup$
      – b3m2a1
      11 hours ago










    • $begingroup$
      I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
      $endgroup$
      – MikeY
      10 hours ago










    1




    1




    $begingroup$
    You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
    $endgroup$
    – b3m2a1
    11 hours ago




    $begingroup$
    You could also use your regularized grid with NDSolve`FiniteDifferenceDerivative to get the gradient at each point and just track that. It'd be more numerically efficient I think since this problem really can't get trapped in a spurious minimum (based on the plot)
    $endgroup$
    – b3m2a1
    11 hours ago




    1




    1




    $begingroup$
    Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
    $endgroup$
    – b3m2a1
    11 hours ago




    $begingroup$
    Another option if you want to go the Graph route is create a weighted GridGraph where the EdgeWeights are the squared differences in PE between points. Then you can use FindShortestPath.
    $endgroup$
    – b3m2a1
    11 hours ago












    $begingroup$
    I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
    $endgroup$
    – MikeY
    10 hours ago






    $begingroup$
    I fiddled with a GridGraph a little. I was thinking that I could assign the point values to VertexWeight or EdgeWeightand then have it find a shortest/least costly path, but got bogged down in the details of posing the problem. Would love to see a solution based on that.
    $endgroup$
    – MikeY
    10 hours ago













    3












    $begingroup$

    If I understand the problem correctly, we just need to extract the path from StreamPlot, don't we?



    If you have difficulty in accessing the data in dropbox in the question, try the following:



    Import["http://halirutan.github.io/Mathematica-SE-Tools/decode.m"]["http://i.stack.imgur.
    com/eDzXT.png"]
    SelectionMove[EvaluationNotebook, Previous, Cell, 1];
    dat = Uncompress@First@First@NotebookRead@EvaluationNotebook;
    NotebookDelete@EvaluationNotebook;

    func = Interpolation@dat;

    {vx, vy} = Function[{x, y}, #] & /@ Grad[func[x, y], {x, y}];

    begin = {180.0, 179.99};
    end = {124.5, 124.49};

    plot = StreamPlot[{vx[x, y], vy[x, y]}, {x, #, #2}, {y, #3, #4}, StreamPoints -> {begin},
    StreamStyle -> "Line", Epilog -> Point@{begin, end}] & @@ Flatten@func["Domain"]


    Mathematica graphics



    path = Cases[Normal@plot, Line[a_] :> a, Infinity][[1]];

    ListPlot3D@dat~Show~Graphics3D@Line[Flatten /@ ({path, func @@@ path}[Transpose])]


    Mathematica graphics






    share|improve this answer











    $endgroup$


















      3












      $begingroup$

      If I understand the problem correctly, we just need to extract the path from StreamPlot, don't we?



      If you have difficulty in accessing the data in dropbox in the question, try the following:



      Import["http://halirutan.github.io/Mathematica-SE-Tools/decode.m"]["http://i.stack.imgur.
      com/eDzXT.png"]
      SelectionMove[EvaluationNotebook, Previous, Cell, 1];
      dat = Uncompress@First@First@NotebookRead@EvaluationNotebook;
      NotebookDelete@EvaluationNotebook;

      func = Interpolation@dat;

      {vx, vy} = Function[{x, y}, #] & /@ Grad[func[x, y], {x, y}];

      begin = {180.0, 179.99};
      end = {124.5, 124.49};

      plot = StreamPlot[{vx[x, y], vy[x, y]}, {x, #, #2}, {y, #3, #4}, StreamPoints -> {begin},
      StreamStyle -> "Line", Epilog -> Point@{begin, end}] & @@ Flatten@func["Domain"]


      Mathematica graphics



      path = Cases[Normal@plot, Line[a_] :> a, Infinity][[1]];

      ListPlot3D@dat~Show~Graphics3D@Line[Flatten /@ ({path, func @@@ path}[Transpose])]


      Mathematica graphics






      share|improve this answer











      $endgroup$
















        3












        3








        3





        $begingroup$

        If I understand the problem correctly, we just need to extract the path from StreamPlot, don't we?



        If you have difficulty in accessing the data in dropbox in the question, try the following:



        Import["http://halirutan.github.io/Mathematica-SE-Tools/decode.m"]["http://i.stack.imgur.
        com/eDzXT.png"]
        SelectionMove[EvaluationNotebook, Previous, Cell, 1];
        dat = Uncompress@First@First@NotebookRead@EvaluationNotebook;
        NotebookDelete@EvaluationNotebook;

        func = Interpolation@dat;

        {vx, vy} = Function[{x, y}, #] & /@ Grad[func[x, y], {x, y}];

        begin = {180.0, 179.99};
        end = {124.5, 124.49};

        plot = StreamPlot[{vx[x, y], vy[x, y]}, {x, #, #2}, {y, #3, #4}, StreamPoints -> {begin},
        StreamStyle -> "Line", Epilog -> Point@{begin, end}] & @@ Flatten@func["Domain"]


        Mathematica graphics



        path = Cases[Normal@plot, Line[a_] :> a, Infinity][[1]];

        ListPlot3D@dat~Show~Graphics3D@Line[Flatten /@ ({path, func @@@ path}[Transpose])]


        Mathematica graphics






        share|improve this answer











        $endgroup$



        If I understand the problem correctly, we just need to extract the path from StreamPlot, don't we?



        If you have difficulty in accessing the data in dropbox in the question, try the following:



        Import["http://halirutan.github.io/Mathematica-SE-Tools/decode.m"]["http://i.stack.imgur.
        com/eDzXT.png"]
        SelectionMove[EvaluationNotebook, Previous, Cell, 1];
        dat = Uncompress@First@First@NotebookRead@EvaluationNotebook;
        NotebookDelete@EvaluationNotebook;

        func = Interpolation@dat;

        {vx, vy} = Function[{x, y}, #] & /@ Grad[func[x, y], {x, y}];

        begin = {180.0, 179.99};
        end = {124.5, 124.49};

        plot = StreamPlot[{vx[x, y], vy[x, y]}, {x, #, #2}, {y, #3, #4}, StreamPoints -> {begin},
        StreamStyle -> "Line", Epilog -> Point@{begin, end}] & @@ Flatten@func["Domain"]


        Mathematica graphics



        path = Cases[Normal@plot, Line[a_] :> a, Infinity][[1]];

        ListPlot3D@dat~Show~Graphics3D@Line[Flatten /@ ({path, func @@@ path}[Transpose])]


        Mathematica graphics







        share|improve this answer














        share|improve this answer



        share|improve this answer








        edited 2 hours ago

























        answered 2 hours ago









        xzczdxzczd

        27.1k472250




        27.1k472250






























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