A New Adaptive Algorithm for Convex Quadratic Multicriteria Optimization
نویسندگان
چکیده
We present a new adaptive algorithm for convex quadratic multicriteria optimization. The algorithm is able to adaptively refine the approximation to the set of efficient points by way of a warm-start interior-point scalarization approach. Numerical results show that this technique is faster than a standard method used for this problem.
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