Loogle!
Result
Found 4 declarations mentioning SingularManifold.map.
- SingularManifold.map 📋 Mathlib.Geometry.Manifold.Bordism
{X : Type u_7} {Y : Type u_8} [TopologicalSpace X] [TopologicalSpace Y] {k : WithTop ℕ∞} {E : Type u_9} {H : Type u_10} [NormedAddCommGroup E] [NormedSpace ℝ E] [FiniteDimensional ℝ E] [TopologicalSpace H] {I : ModelWithCorners ℝ E H} (s : SingularManifold X k I) {φ : X → Y} (hφ : Continuous φ) : SingularManifold Y k I - SingularManifold.map_M 📋 Mathlib.Geometry.Manifold.Bordism
{X : Type u_1} {Y : Type u_2} [TopologicalSpace X] [TopologicalSpace Y] {k : WithTop ℕ∞} {E : Type u_4} {H : Type u_5} [NormedAddCommGroup E] [NormedSpace ℝ E] [FiniteDimensional ℝ E] [TopologicalSpace H] {I : ModelWithCorners ℝ E H} (s : SingularManifold X k I) {φ : X → Y} (hφ : Continuous φ) : (s.map hφ).M = s.M - SingularManifold.map_f 📋 Mathlib.Geometry.Manifold.Bordism
{X : Type u_1} {Y : Type u_2} [TopologicalSpace X] [TopologicalSpace Y] {k : WithTop ℕ∞} {E : Type u_4} {H : Type u_5} [NormedAddCommGroup E] [NormedSpace ℝ E] [FiniteDimensional ℝ E] [TopologicalSpace H] {I : ModelWithCorners ℝ E H} (s : SingularManifold X k I) {φ : X → Y} (hφ : Continuous φ) : (s.map hφ).f = φ ∘ s.f - SingularManifold.map_comp 📋 Mathlib.Geometry.Manifold.Bordism
{X : Type u_1} {Y : Type u_2} {Z : Type u_3} [TopologicalSpace X] [TopologicalSpace Y] [TopologicalSpace Z] {k : WithTop ℕ∞} {E : Type u_4} {H : Type u_5} [NormedAddCommGroup E] [NormedSpace ℝ E] [FiniteDimensional ℝ E] [TopologicalSpace H] {I : ModelWithCorners ℝ E H} (s : SingularManifold X k I) {φ : X → Y} {ψ : Y → Z} (hφ : Continuous φ) (hψ : Continuous ψ) : ((s.map hφ).map hψ).f = (ψ ∘ φ) ∘ s.f
About
Loogle searches Lean and Mathlib definitions and theorems.
You can use Loogle from within the Lean4 VSCode language extension
using (by default) Ctrl-K Ctrl-S. 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:
🔍Real.sin
finds all lemmas whose statement somehow mentions the sine function.By lemma name substring:
🔍"differ"
finds all lemmas that have"differ"
somewhere in their lemma name.By subexpression:
🔍_ * (_ ^ _)
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
🔍Real.sqrt ?a * Real.sqrt ?a
If the pattern has parameters, they are matched in any order. Both of these will find
List.map
:
🔍(?a -> ?b) -> List ?a -> List ?b
🔍List ?a -> (?a -> ?b) -> List ?b
By main conclusion:
🔍|- tsum _ = _ * tsum _
finds all lemmas where the conclusion (the subexpression to the right of all→
and∀
) 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,
🔍|- _ < _ → tsum _ < tsum _
will findtsum_lt_tsum
even though the hypothesisf i < g i
is not the last.
If you pass more than one such search filter, separated by commas
Loogle will return lemmas which match all of them. The
search
🔍 Real.sin, "two", tsum, _ * _, _ ^ _, |- _ < _ → _
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.
This is Loogle revision 19971e9
serving mathlib revision 40fea08