forked from OSchip/llvm-project
Revert "ADT: SmallVector size/capacity use word-size integers when elements are small"
This reverts commit b5f0eae1dc
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clang-cmake-armv7-quick/llvm/llvm/lib/Support/SmallVector.cpp:81:22:
error: duplicate explicit instantiation of 'SmallVectorBase<unsigned int>'
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@ -16,10 +16,10 @@
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#include "llvm/ADT/iterator_range.h"
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#include "llvm/Support/AlignOf.h"
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#include "llvm/Support/Compiler.h"
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#include "llvm/Support/ErrorHandling.h"
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#include "llvm/Support/MathExtras.h"
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#include "llvm/Support/MemAlloc.h"
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#include "llvm/Support/type_traits.h"
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#include "llvm/Support/ErrorHandling.h"
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#include <algorithm>
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#include <cassert>
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#include <cstddef>
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@ -27,7 +27,6 @@
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#include <cstring>
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#include <initializer_list>
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#include <iterator>
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#include <limits>
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#include <memory>
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#include <new>
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#include <type_traits>
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@ -35,23 +34,11 @@
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namespace llvm {
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/// This is all the stuff common to all SmallVectors.
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///
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/// The template parameter specifies the type which should be used to hold the
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/// Size and Capacity of the SmallVector, so it can be adjusted.
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/// Using 32 bit size is desirable to shink the size of the SmallVector.
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/// Using 64 bit size is desirable for cases like SmallVector<char>, where a
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/// 32 bit size would limit the vector to ~4GB. SmallVectors are used for
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/// buffering bitcode output - which can exceed 4GB.
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template <class Size_T> class SmallVectorBase {
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/// This is all the non-templated stuff common to all SmallVectors.
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class SmallVectorBase {
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protected:
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void *BeginX;
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Size_T Size = 0, Capacity;
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/// The maximum value of the Size_T used.
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static constexpr size_t SizeTypeMax() {
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return std::numeric_limits<Size_T>::max();
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}
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unsigned Size = 0, Capacity;
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SmallVectorBase() = delete;
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SmallVectorBase(void *FirstEl, size_t TotalCapacity)
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@ -83,13 +70,9 @@ public:
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}
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};
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template <class T>
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using SmallVectorSizeType =
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typename std::conditional<sizeof(T) < 4, uintptr_t, uint32_t>::type;
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/// Figure out the offset of the first element.
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template <class T, typename = void> struct SmallVectorAlignmentAndSize {
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AlignedCharArrayUnion<SmallVectorBase<SmallVectorSizeType<T>>> Base;
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AlignedCharArrayUnion<SmallVectorBase> Base;
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AlignedCharArrayUnion<T> FirstEl;
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};
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@ -97,10 +80,7 @@ template <class T, typename = void> struct SmallVectorAlignmentAndSize {
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/// the type T is a POD. The extra dummy template argument is used by ArrayRef
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/// to avoid unnecessarily requiring T to be complete.
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template <typename T, typename = void>
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class SmallVectorTemplateCommon
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: public SmallVectorBase<SmallVectorSizeType<T>> {
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using Base = SmallVectorBase<SmallVectorSizeType<T>>;
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class SmallVectorTemplateCommon : public SmallVectorBase {
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/// Find the address of the first element. For this pointer math to be valid
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/// with small-size of 0 for T with lots of alignment, it's important that
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/// SmallVectorStorage is properly-aligned even for small-size of 0.
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@ -112,20 +92,21 @@ class SmallVectorTemplateCommon
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// Space after 'FirstEl' is clobbered, do not add any instance vars after it.
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protected:
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SmallVectorTemplateCommon(size_t Size) : Base(getFirstEl(), Size) {}
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SmallVectorTemplateCommon(size_t Size)
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: SmallVectorBase(getFirstEl(), Size) {}
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void grow_pod(size_t MinCapacity, size_t TSize) {
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Base::grow_pod(getFirstEl(), MinCapacity, TSize);
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SmallVectorBase::grow_pod(getFirstEl(), MinCapacity, TSize);
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}
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/// Return true if this is a smallvector which has not had dynamic
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/// memory allocated for it.
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bool isSmall() const { return this->BeginX == getFirstEl(); }
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bool isSmall() const { return BeginX == getFirstEl(); }
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/// Put this vector in a state of being small.
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void resetToSmall() {
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this->BeginX = getFirstEl();
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this->Size = this->Capacity = 0; // FIXME: Setting Capacity to 0 is suspect.
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BeginX = getFirstEl();
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Size = Capacity = 0; // FIXME: Setting Capacity to 0 is suspect.
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}
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public:
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@ -143,10 +124,6 @@ public:
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using pointer = T *;
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using const_pointer = const T *;
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using Base::capacity;
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using Base::empty;
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using Base::size;
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// forward iterator creation methods.
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iterator begin() { return (iterator)this->BeginX; }
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const_iterator begin() const { return (const_iterator)this->BeginX; }
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@ -160,9 +137,7 @@ public:
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const_reverse_iterator rend() const { return const_reverse_iterator(begin());}
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size_type size_in_bytes() const { return size() * sizeof(T); }
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size_type max_size() const {
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return std::min(this->SizeTypeMax(), size_type(-1) / sizeof(T));
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}
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size_type max_size() const { return size_type(-1) / sizeof(T); }
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size_t capacity_in_bytes() const { return capacity() * sizeof(T); }
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@ -257,21 +232,18 @@ public:
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// Define this out-of-line to dissuade the C++ compiler from inlining it.
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template <typename T, bool TriviallyCopyable>
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void SmallVectorTemplateBase<T, TriviallyCopyable>::grow(size_t MinSize) {
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// Ensure we can fit the new capacity.
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// This is only going to be applicable when the capacity is 32 bit.
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if (MinSize > this->SizeTypeMax())
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if (MinSize > UINT32_MAX)
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report_bad_alloc_error("SmallVector capacity overflow during allocation");
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// Ensure we can meet the guarantee of space for at least one more element.
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// The above check alone will not catch the case where grow is called with a
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// default MinCapacity of 0, but the current capacity cannot be increased.
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// This is only going to be applicable when the capacity is 32 bit.
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if (this->capacity() == this->SizeTypeMax())
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if (this->capacity() == size_t(UINT32_MAX))
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report_bad_alloc_error("SmallVector capacity unable to grow");
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// Always grow, even from zero.
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size_t NewCapacity = size_t(NextPowerOf2(this->capacity() + 2));
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NewCapacity = std::min(std::max(NewCapacity, MinSize), this->SizeTypeMax());
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NewCapacity = std::min(std::max(NewCapacity, MinSize), size_t(UINT32_MAX));
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T *NewElts = static_cast<T*>(llvm::safe_malloc(NewCapacity*sizeof(T)));
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// Move the elements over.
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@ -37,30 +37,24 @@ static_assert(sizeof(SmallVector<void *, 1>) ==
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sizeof(unsigned) * 2 + sizeof(void *) * 2,
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"wasted space in SmallVector size 1");
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static_assert(sizeof(SmallVector<char, 0>) ==
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sizeof(void *) * 2 + sizeof(void *),
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"1 byte elements have word-sized type for size and capacity");
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// Note: Moving this function into the header may cause performance regression.
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template <class Size_T>
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void SmallVectorBase<Size_T>::grow_pod(void *FirstEl, size_t MinCapacity,
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size_t TSize) {
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// Ensure we can fit the new capacity.
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// This is only going to be applicable when the capacity is 32 bit.
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if (MinCapacity > SizeTypeMax())
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/// grow_pod - This is an implementation of the grow() method which only works
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/// on POD-like datatypes and is out of line to reduce code duplication.
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/// This function will report a fatal error if it cannot increase capacity.
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void SmallVectorBase::grow_pod(void *FirstEl, size_t MinCapacity,
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size_t TSize) {
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// Ensure we can fit the new capacity in 32 bits.
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if (MinCapacity > UINT32_MAX)
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report_bad_alloc_error("SmallVector capacity overflow during allocation");
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// Ensure we can meet the guarantee of space for at least one more element.
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// The above check alone will not catch the case where grow is called with a
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// default MinCapacity of 0, but the current capacity cannot be increased.
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// This is only going to be applicable when the capacity is 32 bit.
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if (capacity() == SizeTypeMax())
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if (capacity() == size_t(UINT32_MAX))
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report_bad_alloc_error("SmallVector capacity unable to grow");
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// In theory 2*capacity can overflow if the capacity is 64 bit, but the
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// original capacity would never be large enough for this to be a problem.
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size_t NewCapacity = 2 * capacity() + 1; // Always grow.
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NewCapacity = std::min(std::max(NewCapacity, MinCapacity), SizeTypeMax());
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NewCapacity =
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std::min(std::max(NewCapacity, MinCapacity), size_t(UINT32_MAX));
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void *NewElts;
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if (BeginX == FirstEl) {
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this->BeginX = NewElts;
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this->Capacity = NewCapacity;
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}
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template class llvm::SmallVectorBase<uint32_t>;
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template class llvm::SmallVectorBase<uintptr_t>;
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