Loogle!
Result
Found 45 declarations mentioning Submodule.topologicalClosure.
- Submodule.topologicalClosure ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] (s : Submodule R M) : Submodule R M - Submodule.isClosed_topologicalClosure ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] (s : Submodule R M) : IsClosed โs.topologicalClosure - Submodule.closure_subset_topologicalClosure_span ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] (s : Set M) : closure s โ โ(Submodule.span R s).topologicalClosure - IsClosed.submodule_topologicalClosure_eq ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] {s : Submodule R M} (hs : IsClosed โs) : s.topologicalClosure = s - Submodule.le_topologicalClosure ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] (s : Submodule R M) : s โค s.topologicalClosure - Submodule.topologicalClosure_coe ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] (s : Submodule R M) : โs.topologicalClosure = closure โs - Submodule.dense_iff_topologicalClosure_eq_top ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] {s : Submodule R M} : Dense โs โ s.topologicalClosure = โค - Submodule.topologicalClosure_mono ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] {s t : Submodule R M} (h : s โค t) : s.topologicalClosure โค t.topologicalClosure - Submodule.topologicalClosure.completeSpace ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} [Semiring R] {M' : Type u_1} [AddCommMonoid M'] [Module R M'] [UniformSpace M'] [ContinuousAdd M'] [ContinuousConstSMul R M'] [CompleteSpace M'] (U : Submodule R M') : CompleteSpace โฅU.topologicalClosure - Submodule.topologicalClosure_minimal ๐ Mathlib.Topology.Algebra.Module.Basic
{R : Type u} {M : Type v} [Semiring R] [TopologicalSpace M] [AddCommMonoid M] [Module R M] [ContinuousConstSMul R M] [ContinuousAdd M] (s : Submodule R M) {t : Submodule R M} (h : s โค t) (ht : IsClosed โt) : s.topologicalClosure โค t - Submodule.topologicalClosure_iSup_map_single ๐ Mathlib.Topology.Algebra.Module.Basic
{ฮน : Type u_1} {R : Type u_2} {M : ฮน โ Type u_3} [Semiring R] [(i : ฮน) โ AddCommMonoid (M i)] [(i : ฮน) โ Module R (M i)] [(i : ฮน) โ TopologicalSpace (M i)] [DecidableEq ฮน] [โ (i : ฮน), ContinuousAdd (M i)] [โ (i : ฮน), ContinuousConstSMul R (M i)] (s : (i : ฮน) โ Submodule R (M i)) : (โจ i, Submodule.map (LinearMap.single R M i) (s i)).topologicalClosure = Submodule.pi Set.univ fun i => (s i).topologicalClosure - Submodule.topologicalClosure_map ๐ Mathlib.Topology.Algebra.Module.ContinuousLinearMap.Basic
{Rโ : Type u_1} {Rโ : Type u_2} [Semiring Rโ] [Semiring Rโ] {ฯโโ : Rโ โ+* Rโ} {Mโ : Type u_4} [TopologicalSpace Mโ] [AddCommMonoid Mโ] {Mโ : Type u_6} [TopologicalSpace Mโ] [AddCommMonoid Mโ] [Module Rโ Mโ] [Module Rโ Mโ] [RingHomSurjective ฯโโ] [TopologicalSpace Rโ] [TopologicalSpace Rโ] [ContinuousSMul Rโ Mโ] [ContinuousAdd Mโ] [ContinuousSMul Rโ Mโ] [ContinuousAdd Mโ] (f : Mโ โSL[ฯโโ] Mโ) (s : Submodule Rโ Mโ) : Submodule.map (โf) s.topologicalClosure โค (Submodule.map (โf) s).topologicalClosure - DenseRange.topologicalClosure_map_submodule ๐ Mathlib.Topology.Algebra.Module.ContinuousLinearMap.Basic
{Rโ : Type u_1} {Rโ : Type u_2} [Semiring Rโ] [Semiring Rโ] {ฯโโ : Rโ โ+* Rโ} {Mโ : Type u_4} [TopologicalSpace Mโ] [AddCommMonoid Mโ] {Mโ : Type u_6} [TopologicalSpace Mโ] [AddCommMonoid Mโ] [Module Rโ Mโ] [Module Rโ Mโ] [RingHomSurjective ฯโโ] [TopologicalSpace Rโ] [TopologicalSpace Rโ] [ContinuousSMul Rโ Mโ] [ContinuousAdd Mโ] [ContinuousSMul Rโ Mโ] [ContinuousAdd Mโ] {f : Mโ โSL[ฯโโ] Mโ} (hf' : DenseRange โf) {s : Submodule Rโ Mโ} (hs : s.topologicalClosure = โค) : (Submodule.map (โf) s).topologicalClosure = โค - Submodule.topologicalClosure_mem_invtSubmodule ๐ Mathlib.Topology.Algebra.Module.ContinuousLinearMap.Basic
{Rโ : Type u_1} [Semiring Rโ] {Mโ : Type u_4} [TopologicalSpace Mโ] [AddCommMonoid Mโ] [Module Rโ Mโ] [TopologicalSpace Rโ] [ContinuousSMul Rโ Mโ] [ContinuousAdd Mโ] {f : Mโ โL[Rโ] Mโ} {s : Submodule Rโ Mโ} (hs : s โ Module.End.invtSubmodule โf) : s.topologicalClosure โ Module.End.invtSubmodule โf - Submodule.mem_closure_iff ๐ Mathlib.Topology.Algebra.Module.ClosedSubmodule
{R : Type u_2} {M : Type u_3} [Semiring R] [AddCommMonoid M] [TopologicalSpace M] [Module R M] [ContinuousAdd M] [ContinuousConstSMul R M] {x : M} {s : Submodule R M} : x โ s.closure โ x โ s.topologicalClosure - Submodule.CoFG.topologicalClosure ๐ Mathlib.Topology.Algebra.Module.FiniteDimension
{๐ : Type u_1} {E : Type u_2} [AddCommGroup E] [TopologicalSpace E] [Ring ๐] [Module ๐ E] [ContinuousAdd E] [ContinuousConstSMul ๐ E] (s : Submodule ๐ E) [s.CoFG] : s.topologicalClosure.CoFG - ContinuousLinearMap.closed_range_of_antilipschitz ๐ Mathlib.Analysis.Normed.Operator.Banach
{๐ : Type u_1} {๐' : Type u_2} [NontriviallyNormedField ๐] [NontriviallyNormedField ๐'] {E : Type u_3} [NormedAddCommGroup E] [NormedSpace ๐ E] {ฯ : ๐ โ+* ๐'} {ฯ' : ๐' โ+* ๐} [RingHomInvPair ฯ ฯ'] {F : Type u_4} [NormedAddCommGroup F] [NormedSpace ๐' F] [CompleteSpace E] {f : E โSL[ฯ] F} {c : NNReal} (hf : AntilipschitzWith c โf) : (โf).range.topologicalClosure = (โf).range - ContinuousLinearMap.bijective_iff_dense_range_and_antilipschitz ๐ Mathlib.Analysis.Normed.Operator.Banach
{๐ : Type u_1} {๐' : Type u_2} [NontriviallyNormedField ๐] [NontriviallyNormedField ๐'] {E : Type u_3} [NormedAddCommGroup E] [NormedSpace ๐ E] {ฯ : ๐ โ+* ๐'} {ฯ' : ๐' โ+* ๐} [RingHomInvPair ฯ ฯ'] {F : Type u_4} [NormedAddCommGroup F] [NormedSpace ๐' F] [CompleteSpace E] [CompleteSpace F] [RingHomInvPair ฯ' ฯ] [RingHomIsometric ฯ] [RingHomIsometric ฯ'] (f : E โSL[ฯ] F) : Function.Bijective โf โ (โf).range.topologicalClosure = โค โง โ c, AntilipschitzWith c โf - Submodule.orthogonal_closure ๐ Mathlib.Analysis.InnerProductSpace.Orthogonal
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] (K : Submodule ๐ E) : K.topologicalClosureแฎ = Kแฎ - Submodule.orthogonal_closure' ๐ Mathlib.Analysis.InnerProductSpace.Orthogonal
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] (K : Submodule ๐ E) (x : E) : (โ y โ K, inner ๐ y x = 0) โ โ y โ K.topologicalClosure, inner ๐ y x = 0 - Submodule.orthogonal_orthogonal_eq_closure ๐ Mathlib.Analysis.InnerProductSpace.Projection.Submodule
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] (K : Submodule ๐ E) [CompleteSpace E] : Kแฎแฎ = K.topologicalClosure - Submodule.topologicalClosure_eq_top_iff ๐ Mathlib.Analysis.InnerProductSpace.Projection.Submodule
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] {K : Submodule ๐ E} [CompleteSpace E] : K.topologicalClosure = โค โ Kแฎ = โฅ - Submodule.starProjection_tendsto_self ๐ Mathlib.Analysis.InnerProductSpace.Projection.Submodule
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] {ฮน : Type u_4} [Preorder ฮน] (U : ฮน โ Submodule ๐ E) [โ (t : ฮน), (U t).HasOrthogonalProjection] (hU : Monotone U) (x : E) (hU' : โค โค (โจ t, U t).topologicalClosure) : Filter.Tendsto (fun t => (U t).starProjection x) Filter.atTop (nhds x) - Submodule.starProjection_tendsto_closure_iSup ๐ Mathlib.Analysis.InnerProductSpace.Projection.Submodule
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] {ฮน : Type u_4} [Preorder ฮน] (U : ฮน โ Submodule ๐ E) [โ (i : ฮน), (U i).HasOrthogonalProjection] [(โจ i, U i).topologicalClosure.HasOrthogonalProjection] (hU : Monotone U) (x : E) : Filter.Tendsto (fun i => (U i).starProjection x) Filter.atTop (nhds ((โจ i, U i).topologicalClosure.starProjection x)) - Submodule.topologicalClosure_eq_self ๐ Mathlib.Analysis.InnerProductSpace.Projection.FiniteDimensional
{๐ : Type u_1} {E : Type u_2} [RCLike ๐] [NormedAddCommGroup E] [InnerProductSpace ๐ E] (K : Submodule ๐ E) [FiniteDimensional ๐ โฅK] : K.topologicalClosure = K - ContinuousLinearMap.orthogonal_ker ๐ Mathlib.Analysis.InnerProductSpace.Adjoint
{๐ : Type u_1} {E : Type u_2} {F : Type u_3} [RCLike ๐] [NormedAddCommGroup E] [NormedAddCommGroup F] [InnerProductSpace ๐ E] [InnerProductSpace ๐ F] [CompleteSpace E] [CompleteSpace F] (T : E โL[๐] F) : (โT).kerแฎ = (โ(ContinuousLinearMap.adjoint T)).range.topologicalClosure - compactOperator_topologicalClosure ๐ Mathlib.Analysis.Normed.Operator.Compact.Basic
{๐โ : Type u_1} {๐โ : Type u_2} [NontriviallyNormedField ๐โ] [NormedField ๐โ] {ฯโโ : ๐โ โ+* ๐โ} {Mโ : Type u_3} {Mโ : Type u_4} [SeminormedAddCommGroup Mโ] [AddCommGroup Mโ] [NormedSpace ๐โ Mโ] [Module ๐โ Mโ] [UniformSpace Mโ] [IsUniformAddGroup Mโ] [ContinuousConstSMul ๐โ Mโ] [T2Space Mโ] [CompleteSpace Mโ] : (compactOperator ฯโโ Mโ Mโ).topologicalClosure = compactOperator ฯโโ Mโ Mโ - HilbertBasis.dense_span ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] (b : HilbertBasis ฮน ๐ E) : (Submodule.span ๐ (Set.range โb)).topologicalClosure = โค - HilbertBasis.mk ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] [CompleteSpace E] {v : ฮน โ E} (hv : Orthonormal ๐ v) (hsp : โค โค (Submodule.span ๐ (Set.range v)).topologicalClosure) : HilbertBasis ฮน ๐ E - HilbertBasis.coe_mk ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] [CompleteSpace E] {v : ฮน โ E} (hv : Orthonormal ๐ v) (hsp : โค โค (Submodule.span ๐ (Set.range v)).topologicalClosure) : โ(HilbertBasis.mk hv hsp) = v - Orthonormal.isHilbertSum ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] [CompleteSpace E] {v : ฮน โ E} (hv : Orthonormal ๐ v) (hsp : โค โค (Submodule.span ๐ (Set.range v)).topologicalClosure) : IsHilbertSum ๐ (fun x => ๐) fun i => LinearIsometry.toSpanSingleton ๐ E โฏ - HilbertBasis.finite_spans_dense ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] [DecidableEq E] (b : HilbertBasis ฮน ๐ E) : (โจ J, Submodule.span ๐ โ(Finset.image (โb) J)).topologicalClosure = โค - IsHilbertSum.mk ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] {G : ฮน โ Type u_4} [(i : ฮน) โ NormedAddCommGroup (G i)] [(i : ฮน) โ InnerProductSpace ๐ (G i)] [CompleteSpace E] {V : (i : ฮน) โ G i โโแตข[๐] E} [โ (i : ฮน), CompleteSpace (G i)] (hVortho : OrthogonalFamily ๐ G V) (hVtotal : โค โค (โจ i, (V i).range).topologicalClosure) : IsHilbertSum ๐ G V - IsHilbertSum.mkInternal ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] [CompleteSpace E] (F : ฮน โ Submodule ๐ E) [โ (i : ฮน), CompleteSpace โฅ(F i)] (hFortho : OrthogonalFamily ๐ (fun i => โฅ(F i)) fun i => (F i).subtypeโแตข) (hFtotal : โค โค (โจ i, F i).topologicalClosure) : IsHilbertSum ๐ (fun i => โฅ(F i)) fun i => (F i).subtypeโแตข - OrthogonalFamily.range_linearIsometry ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] {G : ฮน โ Type u_4} [(i : ฮน) โ NormedAddCommGroup (G i)] [(i : ฮน) โ InnerProductSpace ๐ (G i)] [CompleteSpace E] {V : (i : ฮน) โ G i โโแตข[๐] E} (hV : OrthogonalFamily ๐ G V) [โ (i : ฮน), CompleteSpace (G i)] : hV.linearIsometry.range = (โจ i, (V i).range).topologicalClosure - Orthonormal.linearIsometryEquiv_symm_apply_single_one ๐ Mathlib.Analysis.InnerProductSpace.l2Space
{ฮน : Type u_1} {๐ : Type u_2} [RCLike ๐] {E : Type u_3} [NormedAddCommGroup E] [InnerProductSpace ๐ E] [CompleteSpace E] {v : ฮน โ E} (hv : Orthonormal ๐ v) [DecidableEq ฮน] (h : โค โค (Submodule.span ๐ (Set.range v)).topologicalClosure) (i : ฮน) : โฏ.linearIsometryEquiv.symm (lp.single 2 i 1) = v i - span_fourier_closure_eq_top ๐ Mathlib.Analysis.Fourier.AddCircle
{T : โ} [hT : Fact (0 < T)] : (Submodule.span โ (Set.range fourier)).topologicalClosure = โค - span_fourierLp_closure_eq_top ๐ Mathlib.Analysis.Fourier.AddCircle
{T : โ} [hT : Fact (0 < T)] {p : ENNReal} [Fact (1 โค p)] (hp : p โ โค) : (Submodule.span โ (Set.range (fourierLp p))).topologicalClosure = โค - UnitAddTorus.span_mFourier_closure_eq_top ๐ Mathlib.Analysis.Fourier.AddCircleMulti
{d : Type u_1} [Fintype d] : (Submodule.span โ (Set.range UnitAddTorus.mFourier)).topologicalClosure = โค - UnitAddTorus.span_mFourierLp_closure_eq_top ๐ Mathlib.Analysis.Fourier.AddCircleMulti
{d : Type u_1} [Fintype d] {p : ENNReal} [Fact (1 โค p)] (hp : p โ โค) : (Submodule.span โ (Set.range (UnitAddTorus.mFourierLp p))).topologicalClosure = โค - LinearPMap.closure_def ๐ Mathlib.Topology.Algebra.Module.LinearPMap
{R : Type u_1} {E : Type u_2} {F : Type u_3} [CommRing R] [AddCommGroup E] [AddCommGroup F] [Module R E] [Module R F] [TopologicalSpace E] [TopologicalSpace F] [ContinuousAdd E] [ContinuousAdd F] [TopologicalSpace R] [ContinuousSMul R E] [ContinuousSMul R F] {f : E โโ.[R] F} (hf : f.IsClosable) : f.closure = Exists.choose hf - LinearPMap.IsClosable.graph_closure_eq_closure_graph ๐ Mathlib.Topology.Algebra.Module.LinearPMap
{R : Type u_1} {E : Type u_2} {F : Type u_3} [CommRing R] [AddCommGroup E] [AddCommGroup F] [Module R E] [Module R F] [TopologicalSpace E] [TopologicalSpace F] [ContinuousAdd E] [ContinuousAdd F] [TopologicalSpace R] [ContinuousSMul R E] [ContinuousSMul R F] {f : E โโ.[R] F} (hf : f.IsClosable) : f.graph.topologicalClosure = f.closure.graph - LinearPMap.IsClosable.existsUnique ๐ Mathlib.Topology.Algebra.Module.LinearPMap
{R : Type u_1} {E : Type u_2} {F : Type u_3} [CommRing R] [AddCommGroup E] [AddCommGroup F] [Module R E] [Module R F] [TopologicalSpace E] [TopologicalSpace F] [ContinuousAdd E] [ContinuousAdd F] [TopologicalSpace R] [ContinuousSMul R E] [ContinuousSMul R F] {f : E โโ.[R] F} (hf : f.IsClosable) : โ! f', f.graph.topologicalClosure = f'.graph - LinearPMap.closure_inverse_graph ๐ Mathlib.Topology.Algebra.Module.LinearPMap
{R : Type u_1} {E : Type u_2} {F : Type u_3} [CommRing R] [AddCommGroup E] [AddCommGroup F] [Module R E] [Module R F] [TopologicalSpace E] [TopologicalSpace F] {f : E โโ.[R] F} [ContinuousAdd E] [ContinuousAdd F] [TopologicalSpace R] [ContinuousSMul R E] [ContinuousSMul R F] (hf : f.ker = โฅ) (hf' : f.IsClosable) (hcf : f.closure.ker = โฅ) : f.closure.inverse.graph = f.inverse.graph.topologicalClosure - RKHS.kerFun_dense ๐ Mathlib.Analysis.InnerProductSpace.Reproducing
{๐ : Type u_1} [RCLike ๐] {X : Type u_2} {V : Type u_3} [NormedAddCommGroup V] [InnerProductSpace ๐ V] (H : Type u_4) [NormedAddCommGroup H] [InnerProductSpace ๐ H] [RKHS ๐ H X V] [CompleteSpace H] [CompleteSpace V] : (Submodule.span ๐ {x | โ x_1 v, (RKHS.kerFun H x_1) v = x}).topologicalClosure = โค
About
Loogle searches Lean and Mathlib definitions and theorems.
You can use Loogle from within the Lean4 VSCode language extension
using the Loogle command from the command palette. You can also try the
#loogle command from LeanSearchClient,
the CLI version, the Loogle
VS Code extension, the lean.nvim
integration or the Zulip bot.
Usage
Loogle finds definitions and lemmas in various ways:
By constant:
๐Real.sin
finds all lemmas whose statement somehow mentions the sine function.By lemma name substring:
๐"differ"
finds all lemmas that have"differ"somewhere in their lemma name.By subexpression:
๐_ * (_ ^ _)
finds all lemmas whose statements somewhere include a product where the second argument is raised to some power.The pattern can also be non-linear, as in
๐Real.sqrt ?a * Real.sqrt ?aIf the pattern has parameters, they are matched in any order. Both of these will find
List.map:
๐(?a -> ?b) -> List ?a -> List ?b
๐List ?a -> (?a -> ?b) -> List ?bBy main conclusion:
๐|- tsum _ = _ * tsum _
finds all lemmas where the conclusion (the subexpression to the right of allโandโ) has the given shape.As before, if the pattern has parameters, they are matched against the hypotheses of the lemma in any order; for example,
๐|- _ < _ โ tsum _ < tsum _
will findtsum_lt_tsumeven though the hypothesisf i < g iis not the last.You can filter for definitions vs theorems: Using
โข (_ : Type _)finds all definitions which provide data whileโข (_ : Prop)finds all theorems (and definitions of proofs).
If you pass more than one such search filter, separated by commas
Loogle will return lemmas which match all of them. The
search
๐ Real.sin, "two", tsum, _ * _, _ ^ _, |- _ < _ โ _
would find all lemmas which mention the constants Real.sin
and tsum, have "two" as a substring of the
lemma name, include a product and a power somewhere in the type,
and have a hypothesis of the form _ < _ (if
there were any such lemmas). Metavariables (?a) are
assigned independently in each filter.
The #lucky button will directly send you to the
documentation of the first hit.
Source code
You can find the source code for this service at https://github.com/nomeata/loogle. The https://loogle.lean-lang.org/ service is provided by the Lean FRO. Please review the Lean FRO Terms of Use and Privacy Policy.
This is Loogle revision 9f11169 serving mathlib revision ce5dd8c