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                  <mods:namePart>Rota, R</mods:namePart>
               </mods:name>
               <mods:name>
                  <mods:role>
                     <mods:roleTerm type="text">author</mods:roleTerm>
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                  <mods:namePart>Casulleras Ambrós, Joaquín</mods:namePart>
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               <mods:name>
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                  <mods:namePart>Mazzanti Castrillejo, Fernando Pablo</mods:namePart>
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               <mods:name>
                  <mods:role>
                     <mods:roleTerm type="text">author</mods:roleTerm>
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                  <mods:namePart>Boronat Medico, Jordi</mods:namePart>
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                  <mods:dateIssued encoding="iso8601">2015-03-21</mods:dateIssued>
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               <mods:abstract>We present a method based on the path integral Monte Carlo formalism for the calculation of ground-state time correlation functions in quantum systems. The key point of the method is the consideration of time as a complex variable whose phase d acts as an adjustable parameter. By using high-order approximations for the quantum propagator, it is possible to obtain Monte Carlo data all the way from purely imaginary time to d values near the limit of real time. As a consequence, it is possible to infer accurately the spectral functions using simple inversion algorithms. We test this approach in the calculation of the dynamic structure function S(q, omega) of two one-dimensional model systems, harmonic and quartic oscillators, for which S(q, omega) can be exactly calculated. We notice a clear improvement in the calculation of the dynamic response with respect to the common approach based on the inverse Laplace transform of the imaginary-time correlation function. (C) 2015 AIP Publishing LLC.Postprint (author’s final draft)</mods:abstract>
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               <mods:accessCondition type="useAndReproduction">http://creativecommons.org/licenses/by-nc-nd/3.0/es/ Open Access Attribution-NonCommercial-NoDerivs 3.0 Spain</mods:accessCondition>
               <mods:subject>
                  <mods:topic>Àrees temàtiques de la UPC::Física</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Monte Carlo method</mods:topic>
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               <mods:subject>
                  <mods:topic>Quantum systems</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Path integrals</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Analytic continuation</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Analytic continuation</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Path-integrals</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Maximum-entropy</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Rate constants</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Systems</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Simulations</mods:topic>
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               <mods:subject>
                  <mods:topic>Monte Carlo, Mètode de</mods:topic>
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               <mods:subject>
                  <mods:topic>Quàntums, Teoria dels</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Integrals</mods:topic>
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               <mods:titleInfo>
                  <mods:title>Quantum Monte Carlo estimation of complex-time correlations for the study of the ground-state dynamic structure function</mods:title>
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