Major changes in data structures:

- Combined FieldAssembly and BoundaryAssembly to Assembly
- Combined FieldProblem and BoundaryProblem to Problem
- FieldProblem and BoundaryProblem are now abstract types
- Renamed stiffness_matrix, mass_matrix and force_vector to K, M, f for
  easier notation
- Problems are no more abstract types but concrete types, see
  elasticity.jl for example
- Combined linear_elasticity.jl and elasticity.jl
- Removed obsolete code directsolver.jl
- Almost all tests probably fail at this point
This commit is contained in:
Jukka Aho
2016-02-03 06:49:42 +02:00
parent 60046942e5
commit 90319b2644
10 changed files with 433 additions and 731 deletions
+2 -321
View File
@@ -1,100 +1,7 @@
# This file is a part of JuliaFEM.
# License is MIT: see https://github.com/JuliaFEM/JuliaFEM.jl/blob/master/LICENSE.md
## Direct solver
using JuliaFEM
type DirectSolver
name :: ASCIIString
field_problems :: Vector{Problem}
boundary_problems :: Vector{BoundaryProblem}
parallel :: Bool
solve_residual :: Bool
nonlinear_max_iterations :: Int64
nonlinear_convergence_tolerance :: Float64
linear_system_solver_preprocessors :: Vector{Tuple{Symbol,Any,Any}}
linear_system_solvers :: Vector{Tuple{Symbol,Any,Any}}
linear_system_solver_postprocessors :: Vector{Tuple{Symbol,Any,Any}}
end
""" Default initializer. """
function DirectSolver(name="DirectSolver")
DirectSolver(
name,
[], # field problems
[], # boundary problems
false, # parallel run?
true, # solve residual or total quantity
10, # nonlinear problem max iterations
5.0e-6, # nonlinear convergence tolerance
[], # default solution preprocessors
[(:UMFPACK, (), [])], # linear system solver: CHOLMOD, UMFPACK
[], # default solution postprocessors
)
end
function set_name!(solver::DirectSolver, name::ASCIIString)
solver.name = name
end
function set_linear_system_solver!(solver::DirectSolver, method::Symbol)
solver.linear_system_solvers = [(method, (), [])]
end
function set_nonlinear_max_iterations!(solver::DirectSolver, max_iterations::Int)
solver.nonlinear_max_iterations = max_iterations
end
function push!(solver::DirectSolver, problem::FieldProblem)
push!(solver.field_problems, problem)
end
function push!(solver::DirectSolver, problem::BoundaryProblem)
push!(solver.boundary_problems, problem)
end
function add_linear_system_solver_preprocessor!(solver::DirectSolver, preprocessor_name::Symbol, args...; kwargs...)
push!(solver.linear_system_solver_preprocessors, (preprocessor_name, args, kwargs))
end
function add_linear_system_solver_postprocessor!(solver::DirectSolver, postprocessor_name::Symbol, args...; kwargs...)
push!(solver.linear_system_solver_postprocessors, (postprocessor_name, args, kwargs))
end
function tic(timing, what::ASCIIString)
timing[what * " start"] = time()
end
function toc(timing, what::ASCIIString)
timing[what * " finish"] = time()
end
function time_elapsed(timing, what::ASCIIString)
return timing[what * " finish"] - timing[what * " start"]
end
"""
Linear system solver for problem
Ku + C₁'λ = f
C₂u + Dλ = g
"""
function linear_system_solver_solve!(solver, iter, time, K, f, C1, C2, D, g, sol, la, ::Type{Val{:UMFPACK}})
t0 = Base.time()
dim = size(K, 1)
A = [K C1'; C2 D]
b = [f; g]
nz1 = sort(unique(rowvals(A)))
nz2 = sort(unique(rowvals(A')))
u = zeros(length(b))
u[nz1] = lufact(A[nz1,nz2]) \ full(b[nz1])
sol[:] = u[1:dim]
la[:] = u[dim+1:end]
info("UMFPACK: solved in ", Base.time()-t0, " seconds. norm = ", norm(sol))
end
#=
""" Solution preprocessor: dump matrices to disk before solution.
Examples
@@ -117,232 +24,6 @@ end
function linear_system_solver_postprocess!
end
""" Initialize unknown field ready for nonlinear iterations, i.e.,
take last known value and set it as a initial quess for next
time increment.
"""
function initialize!(problem::FieldProblem, time::Real)
field_name = get_unknown_field_name(problem)
field_dim = get_unknown_field_dimension(problem)
for element in get_elements(problem)
gdofs = get_gdofs(element, problem)
if haskey(element, field_name)
if !isapprox(last(element[field_name]).time, time)
last_data = copy(last(element[field_name]).data)
push!(element[field_name], time => last_data)
end
else # if field not found at all, initialize new zero field.
data = Vector{Float64}[zeros(field_dim) for i in 1:length(element)]
element[field_name] = (time => data)
end
end
end
function initialize!(problem::BoundaryProblem, time::Real; initialize_primary_field=false)
field_name = problem.parent_field_name
field_dim = problem.parent_field_dim
for element in get_elements(problem)
gdofs = get_gdofs(element, problem)
data = Vector{Float64}[zeros(field_dim) for i in 1:length(element)]
# add new field "reaction force" for boundary element if not found
if haskey(element, "reaction force")
if !isapprox(last(element["reaction force"]).time, time)
push!(element["reaction force"], time => data)
end
else
element["reaction force"] = (time => data)
end
if initialize_primary_field
# add new primary field for boundary element if not found
if haskey(element, field_name)
if !isapprox(last(element[field_name]).time, time)
last_data = copy(last(element[field_name]).data)
push!(element[field_name], time => last_data)
end
else
data = Vector{Float64}[zeros(field_dim) for i in 1:length(element)]
element[field_name] = (time => data)
end
end
end
end
function update!(problem::FieldProblem, solution::Vector, ::Type{Val{:elements}})
field_name = get_unknown_field_name(problem)
field_dim = get_unknown_field_dimension(problem)
for element in get_elements(problem)
gdofs = get_gdofs(element, problem)
local_sol = solution[gdofs]
local_sol = reshape(local_sol, field_dim, length(element))
local_sol = Vector{Float64}[local_sol[:,i] for i=1:length(element)]
last(element[field_name]).data = local_sol
end
end
function update!(problem::BoundaryProblem, solution::Vector, ::Type{Val{:elements}})
field_name = problem.parent_field_name
field_dim = problem.parent_field_dim
for element in get_elements(problem)
gdofs = get_gdofs(element, field_dim)
local_sol = solution[gdofs]
local_sol = reshape(local_sol, field_dim, length(element))
local_sol = Vector{Float64}[local_sol[:,i] for i=1:length(element)]
last(element["reaction force"]).data = local_sol
end
end
=#
""" Call solver to solve a set of problems. """
function call(solver::DirectSolver, time::Real=0.0)
info("Starting solver $(solver.name)")
info("# of field problems: $(length(solver.field_problems))")
info("# of boundary problems: $(length(solver.boundary_problems))")
(length(solver.field_problems) != 0) || error("no field problems defined for solver, use push!(solver, problem, ...) to define field problems.")
timing = Dict{ASCIIString, Float64}()
tic(timing, "solver")
# check that all problems are "same kind"
field_name = get_unknown_field_name(solver.field_problems[1])
field_dim = get_unknown_field_dimension(solver.field_problems[1])
for field_problem in solver.field_problems
get_unknown_field_name(field_problem) == field_name || error("several different fields not supported yet")
get_unknown_field_dimension(field_problem) == field_dim || error("several different field dimensions not supported yet")
end
tic(timing, "initialization")
for field_problem in solver.field_problems
initialize!(field_problem, time)
end
for boundary_problem in solver.boundary_problems
initialize!(boundary_problem, time)
end
toc(timing, "initialization")
dim = nothing
sol = nothing
last_sol = nothing
la = nothing
last_la = nothing
for iter=1:solver.nonlinear_max_iterations
info("Starting nonlinear iteration $iter")
tic(timing, "non-linear iteration")
tic(timing, "field assembly")
info("Assembling field problems...")
field_assembly = FieldAssembly()
for (i, problem) in enumerate(solver.field_problems)
info("Assembling body $i: $(problem.name)")
append!(field_assembly, assemble(problem, time))
end
K = sparse(field_assembly.stiffness_matrix)
dim = size(K, 1)
f = sparse(field_assembly.force_vector, dim, 1)
field_assembly = nothing
gc()
toc(timing, "field assembly")
tic(timing, "boundary assembly")
info("Assembling boundary problems...")
boundary_assembly = BoundaryAssembly()
for (i, problem) in enumerate(solver.boundary_problems)
info("Assembling boundary $i: $(problem.name)")
append!(boundary_assembly, assemble(problem, time))
end
C1 = sparse(boundary_assembly.C1, dim, dim)
C2 = sparse(boundary_assembly.C2, dim, dim)
D = sparse(boundary_assembly.D, dim, dim)
g = sparse(boundary_assembly.g, dim, 1)
boundary_assembly = nothing
gc()
toc(timing, "boundary assembly")
if iter == 1
# initialize vectors in first iteration
sol = zeros(dim)
la = zeros(dim)
last_sol = zeros(dim)
last_la = zeros(dim)
end
tic(timing, "preprocess solution")
# NOTE: sol and la are vectors from previous solution
for (preprocessor, args, kwargs) in solver.linear_system_solver_preprocessors
linear_system_solver_preprocess!(solver, iter, time, K, f, C1, C2, D, g, sol, la, Val{preprocessor}, args...; kwargs...)
end
toc(timing, "preprocess solution")
gc()
tic(timing, "solution of system")
info("Solving linear system Ax=b")
for (linear_solver, args, kwargs) in solver.linear_system_solvers
last_sol = copy(sol)
last_la = copy(la)
sol = fill!(sol, 0.0)
la = fill!(la, 0.0)
linear_system_solver_solve!(solver, iter, time, K, f, C1, C2, D, g, sol, la, Val{linear_solver}, args...; kwargs...)
# if solved only difference, add to last known solution, i.e. x(i+1) = x(i) + Δx
solver.solve_residual && (sol += last_sol)
end
toc(timing, "solution of system")
gc()
tic(timing, "postprocess solution")
for (postprocessor, args, kwargs) in solver.linear_system_solver_postprocessors
linear_system_solver_postprocess!(solver, iter, time, K, f, C1, C2, D, g, sol, la, Val{postprocessor}, args...; kwargs...)
end
toc(timing, "postprocess solution")
tic(timing, "update element data")
for problem in solver.field_problems
update!(problem, sol, Val{:elements})
end
for problem in solver.boundary_problems
update!(problem, la, Val{:elements})
end
toc(timing, "update element data")
toc(timing, "non-linear iteration")
if false
info("timing info for iteration:")
info("boundary assembly : ", time_elapsed(timing, "boundary assembly"))
info("field assembly : ", time_elapsed(timing, "field assembly"))
info("preprocess of solution : ", time_elapsed(timing, "preprocess solution"))
info("solve linearized problem : ", time_elapsed(timing, "solution of system"))
info("update element data : ", time_elapsed(timing, "update element data"))
info("non-linear iteration : ", time_elapsed(timing, "non-linear iteration"))
end
# check convergence
function is_converged(solver, sol, last_sol, la, last_la)
if solver.solve_residual
if norm(sol) < solver.nonlinear_convergence_tolerance
return true
end
else
if abs(norm(sol) - norm(last_sol)) < solver.nonlinear_convergence_tolerance
return true
end
end
return false
end
if is_converged(solver, sol, last_sol, la, last_la)
toc(timing, "solver")
info("converged in $iter iterations! solver finished in ", time_elapsed(timing, "solver"), " seconds.")
return (iter, true)
end
end
info("Warning: did not coverge in $(solver.nonlinear_max_iterations) iterations!")
return (solver.nonlinear_max_iterations, false)
end