When two resistors, \(R_1\) and \(R_2\), are connected in parallel, the combined resistance, \(R_{\text{combined}}\), is given by the formula:

\(\frac{1}{R_{\text{combined}}} = \frac{1}{R_1} + \frac{1}{R_2}\)

Given that \(R_2 > R_1\), it's clear that the combined resistance will be less than the smaller resistor (\(R_1\)) because adding any positive quantity to \(\frac{1}{R_1}\) will yield a result that has a higher denominator than \(R_1\) alone, thus making \(R_{\text{combined}}\) smaller than \(R_1\).

Therefore, the correct answer is less than \(R_1\)