| 12345678910111213141516171819202122232425262728293031323334353637383940414243444546474849505152535455565758596061626364656667686970717273747576777879 | <?phpnamespace PhpOffice\PhpSpreadsheet\Shared\Trend;class LinearBestFit extends BestFit{    /**     * Algorithm type to use for best-fit     * (Name of this Trend class).     *     * @var string     */    protected $bestFitType = 'linear';    /**     * Return the Y-Value for a specified value of X.     *     * @param float $xValue X-Value     *     * @return float Y-Value     */    public function getValueOfYForX($xValue)    {        return $this->getIntersect() + $this->getSlope() * $xValue;    }    /**     * Return the X-Value for a specified value of Y.     *     * @param float $yValue Y-Value     *     * @return float X-Value     */    public function getValueOfXForY($yValue)    {        return ($yValue - $this->getIntersect()) / $this->getSlope();    }    /**     * Return the Equation of the best-fit line.     *     * @param int $dp Number of places of decimal precision to display     *     * @return string     */    public function getEquation($dp = 0)    {        $slope = $this->getSlope($dp);        $intersect = $this->getIntersect($dp);        return 'Y = ' . $intersect . ' + ' . $slope . ' * X';    }    /**     * Execute the regression and calculate the goodness of fit for a set of X and Y data values.     *     * @param float[] $yValues The set of Y-values for this regression     * @param float[] $xValues The set of X-values for this regression     * @param bool $const     */    private function linearRegression($yValues, $xValues, $const)    {        $this->leastSquareFit($yValues, $xValues, $const);    }    /**     * Define the regression and calculate the goodness of fit for a set of X and Y data values.     *     * @param float[] $yValues The set of Y-values for this regression     * @param float[] $xValues The set of X-values for this regression     * @param bool $const     */    public function __construct($yValues, $xValues = [], $const = true)    {        if (parent::__construct($yValues, $xValues) !== false) {            $this->linearRegression($yValues, $xValues, $const);        }    }}
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