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  • //  ************************************************************************************************
    //
    //  BornAgain: simulate and fit reflection and scattering
    //
    //! @file      Base/Axis/Frame.cpp
    //! @brief     Implements class Frame.
    //!
    //! @homepage  http://www.bornagainproject.org
    //! @license   GNU General Public License v3 or higher (see COPYING)
    //! @copyright Forschungszentrum Jülich GmbH 2018
    //! @authors   Scientific Computing Group at MLZ (see CITATION, AUTHORS)
    //
    //  ************************************************************************************************
    
    #include "Base/Axis/Frame.h"
    
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    #include "Base/Axis/FrameUtil.h"
    
    #include "Base/Axis/Scale.h"
    
    #include "Base/Util/Assert.h"
    
    
    Frame::Frame(std::vector<const Scale*>&& axes)
    
        : m_axes(std::move(axes))
        , m_size(FrameUtil::product_size(m_axes.reference()))
    
    Frame::Frame(const Scale*&& ax0)
        : m_axes(std::vector<const Scale*>{std::move(ax0)})
        , m_size(FrameUtil::product_size(m_axes.reference()))
    {
    }
    
    
    Frame::Frame(const Scale*&& ax0, const Scale*&& ax1)
        : m_axes(std::vector<const Scale*>{std::move(ax0), std::move(ax1)})
        , m_size(FrameUtil::product_size(m_axes.reference()))
    {
    }
    
    
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    Frame* Frame::clone() const
    {
        return new Frame(m_axes.cloned_vector());
    }
    
    
    size_t Frame::rank() const
    {
        return m_axes.size();
    }
    
    size_t Frame::size() const
    {
        return m_size;
    }
    
    
    const Scale& Frame::axis(size_t k_axis) const
    
        ASSERT(k_axis < rank());
    
        return *m_axes.at(k_axis);
    }
    
    const Scale& Frame::xAxis() const
    
    {
        return *m_axes.at(0);
    }
    
    const Scale& Frame::yAxis() const
    
        ASSERT(1 < rank());
    
        return *m_axes.at(1);
    }
    
    
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    size_t Frame::projectedSize(size_t k_axis) const
    {
    
        ASSERT(k_axis < rank());
    
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        return m_axes[k_axis]->size();
    
    double Frame::projectedCoord(size_t i_flat, size_t k_axis) const
    
        auto axis_index = projectedIndex(i_flat, k_axis);
    
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        return m_axes[k_axis]->binCenter(axis_index);
    
    std::vector<int> Frame::allIndices(size_t i_flat) const
    
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        std::vector<int> result(rank());
    
        for (size_t k = 0; k < rank(); ++k)
            result[k] = projectedIndex(i_flat, k);
    
    size_t Frame::projectedIndex(size_t i_flat, size_t k_axis) const
    
        if (rank() == 1)
    
        if (rank() == 2) {
    
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            if (k_axis == 0)
    
                return (i_flat / m_axes[1]->size()) % m_axes[0]->size();
    
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            if (k_axis == 1)
                return i_flat % m_axes[1]->size();
    
            ASSERT(false);
    
        ASSERT(false);
    
    }
    
    size_t Frame::toGlobalIndex(const std::vector<unsigned>& axes_indices) const
    {
        ASSERT(axes_indices.size() == rank());
        size_t result = 0;
        size_t step_size = 1;
    
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        for (int k = rank() - 1; k >= 0; --k) {
            ASSERT(axes_indices[k] < m_axes[k]->size());
            result += axes_indices[k] * step_size;
            step_size *= m_axes[k]->size();
    
    bool Frame::operator==(const Frame& o) const
    {
    
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        if (rank() != o.rank())
    
            return false;
    
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        for (size_t k = 0; k < rank(); ++k)
    
            if (axis(k) != o.axis(k))
                return false;
        return true;
    }
    
    
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    std::vector<const Scale*> Frame::clonedAxes() const
    {
        return m_axes.cloned_vector();
    }
    
    
    bool Frame::hasSameSizes(const Frame& o) const
    {
    
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        if (rank() != o.rank())
    
            return false;
    
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        for (size_t k = 0; k < rank(); ++k)
    
            if (axis(k).size() != o.axis(k).size())
                return false;
        return true;
    }
    
    
    Frame* Frame::plottableFrame() const
    {
        std::vector<const Scale*> outaxes;
        for (const Scale* s : m_axes)
            outaxes.emplace_back(new Scale(s->plottableScale()));
        return new Frame(std::move(outaxes));
    }
    
    
    Frame* Frame::flat() const
    {
        std::vector<const Scale*> outaxes;
        for (const Scale* s : m_axes)
            if (s->size() > 1)
                outaxes.emplace_back(s->clone());
        return new Frame(std::move(outaxes));
    }